Systems, methods and devices for processing coins with linear array of coin imaging sensors

Information

  • Patent Grant
  • 11625968
  • Patent Number
    11,625,968
  • Date Filed
    Saturday, September 1, 2018
    5 years ago
  • Date Issued
    Tuesday, April 11, 2023
    a year ago
Abstract
Currency processing systems, coin processing machines, and methods of imaging coins are presented herein. A currency processing system is disclosed which includes a housing with a coin input area for receiving coins and coin receptacles for stowing processed coins. A disk-type coin processing unit is coupled to the coin input area and coin receptacles. The disk-type coin processing unit includes a rotatable disk for imparting motion to the coins, and a sorting head having a lower surface adjacent the rotatable disk. The lower surface forms various shaped regions for guiding the coins, under the motion imparted by the rotatable disk, to exit channels through which the coins are discharged to the coin receptacles. A linear array of sensors is mounted to the sorting head and/or the rotatable disk. The sensors examine each coin on the rotatable disk and output a signal indicative of coin image information for processing the coin.
Description
TECHNICAL FIELD

The present disclosure relates generally to systems, methods, and devices for processing currency. More particularly, aspects of this disclosure relate to coin processing units for imaging and evaluating batches of coins.


BACKGROUND

Some businesses, particularly banks, are regularly faced with large amounts of currency which must be organized, counted, authenticated and recorded. To hand count and record large amounts of currency of mixed denominations requires diligent care and effort, and demands significant manpower and time that might otherwise be available for more profitable and less tedious activity. To make counting of bills and coins less laborious, machines have been developed which automatically sort, by denomination, mixed assortments of currency, and transfer the processed currency into receptacles specific to the corresponding denominations. For example, coin processing machines for processing large quantities of coins from either the public at large or private institutions, such as banks, casinos, supermarkets, and cash-in-transit (CIT) companies, have the ability to receive bulk coins from users of the machine, count and sort the coins, and store the received coins in one or more coin receptacles, such as coin bins or coin bags. One type of currency processing machine is a redemption-type processing machine wherein, after the deposited coins and/or bank notes are counted, funds are returned to the user in a pre-selected manner, such as a payment ticket or voucher, a smartcard, a cash card, a gift card, and the like. Another variation is the deposit-type processing machine where funds which have been deposited by the user are credited to a personal account. Hybrid variations of these machines are also known and available.


A well-known device for processing coins is the disk-type coin sorter. In one exemplary configuration, the coin sorter, which is designed to process a batch of mixed coins by denomination, includes a rotatable disk that is driven by an electric motor. The lower surface of a stationary, annular sorting head is parallel to and spaced slightly from the upper surface of the rotatable disk. The mixed batch of coins is progressively deposited onto the top surface of the rotatable disk. As the disk is rotated, coins deposited on the top surface thereof tend to slide outwardly due to centrifugal force. As the coins move outwardly, those coins which are lying flat on the top surface of the rotatable disk enter a gap between the disk and the sorting head. The lower surface of the sorting head is formed with an array of exit channels which guide coins of different denominations to different exit locations around the periphery of the disk. The exiting coins, having been sorted by denomination for separate storage, are counted by sensors packed along the exit channel. A representative disk-type coin sorting mechanism is disclosed in U.S. Pat. No. 5,009,627, to James M. Rasmussen, which is incorporated herein by reference in its entirety and for all purposes.


It is oftentimes desirable in the sorting of coins to discriminate between valid coins and invalid coins. Use of the term “valid coin” can refer to genuine coins of the type to be sorted. Conversely, use of the term “invalid coin” can refer to items in the coin processing unit that are not one of the coins to be sorted. For example, it is common that foreign (or “stranger”) coins and counterfeit coins enter a coin processing system for sorting domestic coin currency. So that such items are not sorted and counted as valid coins, it is helpful to detect and discard these “invalid coins” from the coin processing system. In another application wherein it is desired to process only U.S. quarters, nickels and dimes, all other U.S. coins, including dollar coins, half-dollar coins, pennies, etc., are considered “invalid.” Additionally, coins from all other coins sets including Canadian coins and European coins, for example, would be considered “invalid” when processing U.S. coins. In another application it may be desirable to separate coins of one country (e.g., Canadian coins) from coins of another country (e.g., U.S. coins). Finally, any truly counterfeit coins (also referred to in the art as “slugs”) are always considered “invalid” regardless of application.


Historically, coins have been sorted and validated or otherwise processed based on physical assessment of their structural characteristics, such as coin diameter, coin thickness, shape, and engravings on obverse and reverse sides of the coin. To improve discriminating accuracy, coin processing units have been designed for discriminating and authenticating coins by optically detecting coin surface patterns. For example, one conventional coin discriminating apparatus is provided with light generating elements, such as light emitting diodes (LED's), for projecting light onto a passing coin, and a photodetector, charge-coupled device (CCD) detector, or other optical sensor for optically detecting light emitted from the light emitting elements and reflected by the surface of the coin. From the reflected light pattern, the apparatus is able to authenticate and denominate coins based on coin image pattern data that was optically detected and digitized.


SUMMARY

One drawback with many prior art optical coin discriminating devices is an undesirably large proportion of discrimination errors caused by variations in coin surface reflectance due to aging and wear. Another drawback with prior art discrimination and authentication methods is the use of single point sensors, each of which is employed to detect a single coin parameter. With this approach, it is particularly difficult to detect, for example, all of the defects in a coin unless every defect passes directly under the sole sensor. Use of a single, wider sensor to detect information from the entire coin typically lacks spatial resolution. In addition, the processing and remediation time for identifying and removing invalid or unfit coins using many conventional optical coin discriminating devices is undesirably long for bulk coin processing systems that must process thousands of coins within a few minutes. In addition to being slow and unreliable, many conventional optical coin discriminating devices are costly and require a great deal of packaging space with a large window for imaging. Moreover, most optical coin processing systems that are available today utilize single wavelength lighting schemes that can only capture limited spectral characteristics of the coins being processed.


Currency processing systems, coin processing machines, coin processing units, and methods of imaging and processing batches of coins are presented herein. Some aspects of the present disclosure are directed to currency processing systems, such as coin processing machines with disk-type coin processing units, which utilize a one-dimensional (1D) or linear array of coin-imaging sensors. For some implementations, multiple linear arrays are aligned one next to the other or staggered. Traditionally, the term imaging has been associated with optical imaging provided by optical sensors. However, as used herein, the term “imaging” also includes images generated by non-optical sensing elements which allow mapping of the specific properties of an object. Typically the quality of the optical image has been associated with the size of the smallest segment of the image, known as a “pixel.” The traditional definition of the optical pixel, however, can be extended to other techniques of imaging, such as magnetic, capacitive, electromagnetic and other. This disclosure will teach about using a 1D linear array of sensors to map/image certain properties of objects, such as coins and banknotes.


For some embodiments, the linear array consists of optical sensors, electromagnetic sensors, magnetic field or remanence sensors, or capacitive sensors. In this regard, an optical sensor array will produce an optical image, a magnetic sensor array will produce a magnetic image, a capacitive sensor array will produce a capacitive image, and an electromagnetic sensor array will produce an electromagnetic image, and so on. Each sensor system may consist essentially of means to excite a specific property of the coin, means to detect such a property using a 1D array of sensors capable of detecting such a property, means to process the sensors' signals, means to convert the signals into a digital format, means to analyze the information contained in the signal against a specific pattern or detection or authentication algorithm, and means to provide information about, for example, coin denomination, authentication, fitness and other relevant information.


In an example, an imaging-capable coin processing machine may include a coin transport system, a coin imaging sensor system, an electronics and image processing system, and a processing system to decide if each processed coin is fit for circulation, is of a particular denomination, belongs to a specific coin set, is authentic, and/or meets other criteria as required by the system. For some embodiments, the coin transport system can transport coins at a linear speed of at least approximately 50 inches per second (ips) and, for some embodiments, at a linear speed of at least approximately 300 ips. It is also within the scope and spirit of this disclosure to process coins at speeds which exceed 300 ips and at speeds that are slower than 50 ips. The 1D sensor array may include means to excite a certain property or properties of a coin using, for example, electric energy, magnetic energy, or electromagnetic energy, and means to capture the response from the coin by capturing imaging information by means of using the plurality of sensing elements. The resolution of the image may range from at least approximately 2 dots per inch (dpi) and, for some embodiments, at least approximately 50 dpi or more.


Aspects of the present disclosure are directed to a currency processing system with a housing, one or more coin receptacles, and a disk-type coin processing unit. The housing has a coin input area for receiving a batch of coins. The one or more coin receptacles are stowed inside or adjacent the housing and are otherwise operatively coupled to the housing. The disk-type coin processing unit is operatively coupled to the coin input area and the one or more coin receptacles to transfer coins therebetween. The coin processing unit includes a rotatable disk for imparting motion to a plurality of the coins, and a sorting head with a lower surface that is generally parallel to and at least partially spaced from the rotatable disk. The lower surface forms a plurality of shaped regions for guiding the coins, under the motion imparted by the rotatable disk, to a plurality of exit stations through which the coins are discharged from the coin processing unit to the one or more coin receptacles. A linear array of sensors is mounted to the sorting head adjacent the rotatable disk. The linear array of sensors is configured to sense each of the coins on the rotatable disk and output a signal indicative of coin image information for processing each coin. In the present disclosure, a disk-type coin processing unit is provided as a specific example for implementation of the novel and inventive concepts of the subject invention; however the invention is applicable to any type of coin processing unit where the position of a processed coin is controlled.


A coin processing machine is also featured in accordance with aspects of this disclosure. The coin processing machine has a housing with a coin input area for receiving therethrough a batch of coins. Plural coin receptacles are stowed inside the housing. A processor is also stored inside the housing or, optionally, stored remotely and communicatively coupled to the coin processing machine. A disk-type coin processing unit is disposed at least partially inside the housing and is operatively coupled to the coin input area and the plurality of coin receptacles to transfer coins therebetween. The coin processing unit includes a rotatable disk for supporting on an upper surface thereof and imparting motion to a plurality of coins received from the coin input area. The coin processing unit also includes a stationary sorting head with a lower surface that is generally parallel to and spaced slightly apart from the rotatable disk. The lower surface forms a plurality of exit channels for guiding the coins, under the motion imparted by the rotatable disk, to exit stations through which the coins are discharged to one or more of the coin receptacles. A linear array of sensors is mounted to the sorting head facing the rotatable disk. Optionally, the linear array of sensors is mounted to the housing to allow capturing of imaging information from the opposite side of the coin. The linear array of sensors is configured to examine the entirety of an upper surface of each of the coins on the rotatable disk and output to the processor a coin image signal indicative thereof. The processor is configured to receive the coin image signals from the linear array of sensors and generate therefrom an image of the upper surface of each of the coins for processing the coins. Optionally, the linear array of sensors is configured to “face” a surface of each of the coins, which may include an upper surface, a lower surface, or both, and examine the entirety of the coin and output to the processor a coin image signal indicative thereof. In some embodiments, the imaging sensor images the side of the coin.


According to other aspects of the present disclosure, a coin imaging sensor system for a coin processing apparatus is presented. The coin processing apparatus includes a housing with an input area for receiving coins, one or more coin receptacles for stowing processed coins, a coin sorting device for separating the coins by denomination, and a coin transport mechanism for transferring the coins from the input area, through the coin sorting device, to the one or more coin receptacles. The coin imaging sensor system comprises a linear array of sensors that is mounted inside the housing adjacent the coin transport mechanism downstream from the coin input area and upstream from the one or more coin receptacles. The linear array of sensors is configured to sense each of the coins and output a signal indicative of coin image information. An image processing circuit is operatively coupled to the linear array of sensors and configured to process the coin image information signals output therefrom. The coin imaging sensor system also includes a processor that is operatively coupled to the image processing circuit and configured to examine the processed signals and generate therefrom an image for each of the coins for processing the coins.


In accord with yet other aspects of the present disclosure, a currency processing device is presented. The currency processing device includes a coin input area for receiving coins from a user, and at least one coin receptacle for receiving and stowing processed coins. The currency processing device also includes a coin processing unit that receives coins from the coin input area, processes the received coins, and outputs the processed coins to the coin receptacle(s). A linear array of sensors is mounted to or adjacent the coin processing unit. The linear array of sensors is configured to examine, for example, one side (surface) or both sides (surfaces) or the side (thickness) of each of the processed coins and output a signal indicative of coin image information. At least one processor receives the coin image signals from the linear array of sensors and generates therefrom an image of a surface of each of the coins.


For any of the disclosed configurations, the linear array of sensors may comprise or consist essentially of electromagnetic imaging sensors, magnetic in-field or magnetic remanence imaging sensors, ultrasonic imaging sensors, time-decay fluorescence sensors, and/or capacitive imaging sensors. For some configurations, numerous identical sensors are aligned rectilinearly adjacent one another, extending transversely with respect to the path of transport of the coins. Optionally, a second linear array of sensors can be mounted generally parallel to and aligned with or interlaced with the linear array of sensors. Like the first array, the second linear array of sensors examines passing coins and generates signals indicative of coin image information for processing the coins. It may be desirable that each linear array of sensors be configured to examine substantially the entire area of a surface of each of the coins.


The above summary is not intended to represent each embodiment or every aspect of the present disclosure. Rather, the foregoing summary merely provides an exemplification of some of the novel aspects and features set forth herein. The above features and advantages, and other features and advantages of the present disclosure, will be readily apparent from the following detailed description of the exemplary embodiments and modes for carrying out the present invention when taken in connection with the accompanying drawings and appended claims.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a front perspective-view illustration of an example of a currency processing system in accordance with aspects of the present disclosure.



FIG. 2 is a schematic side-view illustration of the representative currency processing machine of FIG. 1.



FIG. 3 is a front perspective-view illustration of an example of a coin processing machine in accordance with aspects of the present disclosure.



FIG. 4 is a partially broken away perspective-view illustration of an example of a disk-type coin processing unit in accordance with aspects of the present disclosure.



FIG. 5 is an enlarged bottom-view illustration of the sorting head of the exemplary disk-type coin processing unit of FIG. 4.



FIG. 6 is an underside perspective-view illustration of the annular sorting head of a disk-type coin processing unit with a representative one-dimensional linear array of coin-imaging sensors, such as capacitive sensors, in accordance with aspects of the present disclosure.



FIG. 7 is an example of a reconstructed image of a coin analyzed with the one-dimensional linear array of coin-imaging sensors of FIG. 6.



FIG. 8 is a plan-view illustration of an example of a one-dimensional linear array of magnetic in-field coin-imaging sensors in accordance with aspects of the present disclosure.



FIGS. 9 and 10 are examples of reconstructed images of coins analyzed with the one-dimensional linear array of magnetic field coin-imaging sensors of FIG. 8.



FIG. 11 is a schematic illustration of an example of a one-dimensional linear array of electromagnetic coin-imaging sensors in accordance with aspects of the present disclosure.



FIG. 12 is an example of a raster scan of a coin analyzed with the one-dimensional linear array of electromagnetic coin-imaging sensors of FIG. 11.





The present disclosure is susceptible to various modifications and alternative forms, and some representative embodiments have been shown by way of example in the drawings and will be described in detail herein. It should be understood, however, that the disclosure is not intended to be limited to the particular forms disclosed. Rather, the disclosure is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention as defined by the appended claims.


DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS

This invention is susceptible of embodiment in many different forms. There are shown in the drawings, and will herein be described in detail, representative embodiments of the invention with the understanding that the present disclosure is to be considered as an exemplification of the principles of the invention and is not intended to limit the broad aspects of the invention to the embodiments illustrated. To that extent, elements and limitations that are disclosed, for example, in the Abstract, Summary, and Detailed Description sections, but not explicitly set forth in the claims, should not be incorporated into the claims, singly or collectively, by implication, inference or otherwise. For purposes of the present detailed description, unless specifically disclaimed: the singular includes the plural and vice versa; the words “and” and “or” shall be both conjunctive and disjunctive; the word “all” means “any and all”; the word “any” means “any and all”; and the word “including” means “including without limitation.” Moreover, words of approximation, such as “about,” “almost,” “substantially,” “approximately,” and the like, can be used herein in the sense of “at, near, or nearly at,” or “within 3-5% of,” or “within acceptable manufacturing tolerances,” or any logical combination thereof, for example.


Referring now to the drawings, wherein like reference numerals refer to like components throughout the several views, FIG. 1 illustrates an example of a currency processing system, designated generally as 10, in accordance with aspects of the present disclosure. Many of the disclosed concepts are discussed with reference to the representative currency processing systems depicted in the drawings. However, the novel aspects and features of the present disclosure are not per se limited to the particular arrangements and components presented in the drawings. For example, many of the features and aspects presented herein can be applied to other currency processing systems without departing from the intended scope and spirit of the present disclosure. Examples of currency processing systems into which the disclosed concepts can be incorporated are the JetSort™ family of coin sorting machines available from Cummins-Allison Corp. The inventive aspects of the present disclosure, however, are not limited to coins processing systems utilizing sorting disks and could be utilized in other currency processing systems, such as conveyor belt systems and rail systems, regardless of the speed as long as the coin position is controlled. In addition, although differing in appearance, the coin processing systems and devices depicted and discussed herein can each take on any of the various forms, optional configurations, and functional alternatives described above and below with respect to the other disclosed embodiments, and thus can include any of the corresponding options and features. It should also be understood that the drawings are not necessarily to scale and are provided purely for descriptive purposes; thus, the individual and relative dimensions and orientations presented in the drawings are not to be considered limiting.


The currency processing system 10 is a hybrid redemption-type and deposit-type currency processing machine with which funds may be deposited into and returned from the machine, in similar or different forms, in whole or in part, and/or funds may be credited to and withdrawn from a personal account. The currency processing machine 10 illustrated in FIG. 1 includes a housing 11 that may house various input devices, output devices, and input/output devices. By way of non-limiting example, the currency processing machine 10 includes a display device 12 that may provide various input and output functions, such as displaying information and instructions to a user and receiving selections, requests, and other forms of inputs from a user. The display device 12 is, in various embodiments, a cathode ray tube (CRT), a high-resolution liquid crystal display (LCD), a plasma display, a light emitting diode (LED) display, a DLP projection display, an electroluminescent (EL) panel, or any other type of display suitable for use in the currency processing machine 10. A touch screen, which has one or more user-selectable soft touch keys, may be mounted over the display device 12. While a display device 12 with a touchscreen may be a preferred means for a user to enter data, the currency processing machine 10 may include other known input devices, such as a keyboard, mouse, joystick, microphone, etc.


The currency processing machine 10 includes a coin input area 14, such as a bin or tray, which receives batches of coins from a user. Each coin batch may be of a single denomination, a mixed denomination, a local currency, or a foreign currency, or any combination thereof. Additionally, a bank note input area 16, which may be in the nature of a retractable pocket or basket, is also offered by the currency processing machine 10. The bank note input area 16, which is illustrated in its open position in FIG. 1, can be retracted by the currency processing machine 10 once the bulk currency has been placed therein by the user. In addition to banknotes, or as a possible alternative, the bank note receptacle 16 of the currency processing machine 10 can also be operable to accommodate casino scrip, paper tokens, bar coded tickets, or other known forms of value. These input devices—i.e., the currency input areas 14 and 16, allow the user of the currency processing machine 10 to input his or her funds, which can ultimately be converted to some other sort of fund source that is available to the user. Optionally or alternatively, the currency processing machine 10 can operate to count, authenticate, valuate, and/or package funds deposited by a user.


In addition to the above-noted output devices, the currency processing machine 10 may include various output devices, such as a bank note dispensing receptacle 20 and a coin dispensing receptacle 22 for dispensing to the user a desired amount of funds in bank notes, coins, or a combination thereof. An optional bank note return slot 18 may also be included with the currency processing machine 10 to return notes to the user, such as those which are deemed to be counterfeit or otherwise cannot be authenticated or processed. Coins which cannot be authenticated or otherwise processed may be returned to the user via the coin dispensing receptacle 22. The currency processing machine 10 further includes a paper dispensing slot 26, which can be operable for providing a user with a receipt of the transaction that was performed.


In one representative transaction, the currency processing machine 10 receives funds from a user via the coin input area 14 and/or the bank note input area 16 and, after these deposited funds have been authenticated and counted, the currency processing machine 10 returns to the user an amount equal to the deposited funds but in a different variation of bank notes and coins. Optionally, the user may be assessed one or more fees for the transaction (e.g., service fees, transaction fees, etc.). For example, the user of the currency processing machine 10 may input $102.99 in various small bank notes and pennies and in turn receive a $100 bank note, two $1 bank notes, three quarters, two dimes, and four pennies. As another option or alternative, the currency processing machine 10 may simply output a voucher or a receipt of the transaction through the paper dispensing slot 26 which the user can then redeem for funds by an attendant of the currency processing machine 10. Yet another option or alternative would be for the currency processing machine 10 to credit some or all of the funds to a personal account, such as a bank account or store account. As yet another option, the currency processing machine 10 may credit some or all of the funds to a smartcard, gift card, cash card, virtual currency, etc.


The currency processing machine 10 may also include a media reader slot 24 into which the user inserts a portable medium or form of identification, such as a driver's license, credit card, or bank card, so that the currency processing machine 10 can, for example, identify the user and/or an account associated with the user. The media reader 24 may take on various forms, such as a ticket reader, card reader, bar code scanner, wireless transceiver (e.g., RFID, Bluetooth, etc.), or computer-readable-storage-medium interface. The display device 12 with a touchscreen typically provides the user with a menu of options which prompts the user to carry out a series of actions for identifying the user by displaying certain commands and requesting that the user press touch keys on the touch screen (e.g. a user PIN). The media reader device 24 of the illustrated example is configured to read from and write to one or more types of media. This media may include various types of memory storage technology such as magnetic storage, solid state memory devices, and optical devices. It should be understood that numerous other peripheral devices and other elements exist and are readily utilizable in any number of combinations to create various forms of a currency processing machine in accord with the present concepts.



FIG. 2 is a schematic illustration of the currency processing machine 10 showing various modules which may be provided in accord with the disclosed concepts. A bank note processing module 30, for example, receives bank notes from the bank note input area 16 for processing. In accord with a representative configuration, the inward movement of a retractable bank note input area 16 positions a stack of bills at a feed station of the bank note scanning and counting device which automatically feeds, counts, scans, authenticates, and/or sorts the bank notes, one at a time, at a high rate of speed (e.g., at least approximately 350 bills per minute). In place of, or in addition to the bank note input area 16, the currency processing machine 10 may include a single bank note receptacle for receiving and processing one bank note at a time. The bank notes that are recognized and/or deemed authentic by the bank note processing module 30 are delivered to a currency canister, cassette or other known storage container. When a bank note cannot be recognized by the bank note processing module 30, it can be returned to the customer through the bank note return slot 18. Exemplary machines which scan, sort, count, and authenticate bills as may be required by the bank note processing module 30 are described in U.S. Pat. Nos. 5,295,196, 5,970,497, 5,875,259, which are incorporated herein by reference in their respective entireties and for all purposes.


The representative currency processing machine 10 shown in FIG. 2 also includes a coin processing module 32. The coin processing module 32 may be operable to sort, count, valuate and/or authenticate coins which are deposited in the coin input receptacle 14, which is operatively connected to the coin processing module 32. The coins can be sorted by the coin processing module 32 in a variety of ways, but one known method is sorting based on the diameters of the coins. When a coin cannot be authenticated or counted by the coin processing module 32, it can be directed back to the user through a coin reject tube 33 which leads to the coin dispensing receptacle 22. Thus, a user who has entered such a non-authenticated coin can retrieve the coin by accessing the coin dispensing receptacle 22. Examples of coin sorting and authenticating devices which can perform the function of the coin processing module 32 are disclosed in U.S. Pat. Nos. 5,299,977, 5,453,047, 5,507,379, 5,542,880, 5,865,673, 5,997,395, which are incorporated herein by reference in their respective entireties and for all purposes.


The currency processing machine 10 further includes a bank note dispensing module 34 which is connected via a transport mechanism 35 to the user-accessible bank note dispensing receptacle 20. The bank note dispensing module 34 typically dispenses loose bills in response to a request of the user for such bank notes. Also, the bank note dispensing module 34 may be configured to dispense strapped notes into the bank note dispensing receptacle 20 if that is desired. In one embodiment of the present disclosure, the user may select the denominations of the loose/strapped bills dispensed into the bank note dispensing receptacle 20.


The currency processing machine 10 also includes a coin dispensing module 36 which dispenses loose coins to the user via the coin dispensing receptacle 22. The coin dispensing module 36 is connected to the coin dispensing receptacle 22, for example, via a coin tube 37. With this configuration, a user of the currency processing machine 10 has the ability to select the desired coin denominations that he or she will receive during a transaction, for example, in response to user inputs received by one or more of the available input devices. Also, the coin dispensing module 36 may be configured to dispense packaged (e.g., sachet or rolled) coins into the coin dispensing receptacle 22 if that is desired. The coins which have been sorted into their respective denominations by the coin processing module 32 are discharged into one or more coin chutes or tubes 39 which direct coins to a coin receptacle station(s) 40. In at least some aspects, a plurality of tubes 39 are provided and advantageously are positioned to direct coins of specified denominations to designated coin receptacles. The currency processing machine 10 may include more or fewer than the modules illustrated in FIG. 2, such as a coin packaging module or a note packaging module.


The currency processing machine 10 includes a controller 38 which is coupled to each module within the currency processing machine 10, and optionally to an external system, and controls the interaction between each module. For example, the controller 38 may review the input totals from the funds processing modules 30 and 32 and direct an appropriate funds output via the funds dispensing modules 34 and 36. The controller 38 also directs the operation of the coin receptacle station 40 as described below. While not shown, the controller 38 is also coupled to the other peripheral components of the currency processing machine 10, such as a media reader associated with the media reader slot 24 and also to a printer at the receipt dispenser 26, if these devices are present on the coin processing mechanism 10. The controller 38 may be in the nature of a central processing unit (CPU) connected to a memory device. The controller 38 may include any suitable processor, processors and/or microprocessors, including master processors, slave processors, and secondary or parallel processors. The controller 38 may comprise any suitable combination of hardware, software, or firmware disposed inside and/or outside of the housing 11.


Another example of a currency processing system is illustrated in accordance with aspects of this disclosure in FIG. 3, this time represented by a coin processing machine 100. The coin processing machine 100 has a coin tray 112 that holds coins prior to and/or during inputting some or all of the coins in the coin tray 112 into the coin processing machine 100. The coin tray 112 may be configured to transfer coins deposited thereon, e.g., by pivoting upwards and/or by downwardly sloping coin surfaces, to a coin sorting mechanism (not visible in FIG. 3; may correspond to coin processing unit 200 of FIG. 4) disposed within a cabinet or housing 104. The coins are transferred from the coin tray 112 to the sorting mechanism, under the force of gravity, via a funnel arrangement 114 formed in a coin input area 116 of the cabinet 104. Once processed, the coin sorting mechanism discharges sorted coins to a plurality of coin bags or other coin receptacles that are housed within the cabinet (or “housing”) 104.


A user interface 118 interacts with a controller (e.g., controller 38 of FIG. 2) of the coin processing machine 100. The controller is operable, in at least some embodiments, to control the initiation and termination of coin processing, to determine the coin totals during sorting, to validate the coins, and to calculate or otherwise determine pertinent data regarding the sorted coins. The user interface 118 of FIG. 3 includes a display device 120 for displaying information to an operator of the coin processing machine 100. Like the display device 12 illustrated in FIG. 1, the display device 120 of FIG. 3 may also be capable of receiving inputs from an operator of the coin processing machine 100, e.g., via a touchscreen interface. Inputs from an operator of the coin processing machine 100 can include selection of predefined modes of operation, instructions for defining modes of operation, requests for certain outputs to be displayed on the display device 120 and/or a printer (not shown), identification information, such as an identification code for identifying particular transactions or batches of coins, etc.


During an exemplary batch sorting operation, an operator dumps a batch of mixed coins into the coin tray 112 and inputs an identification number along with any requisite information via the interface 118. The operator (or the machine 100) then transfers some or all of the coins within the coin tray 112 to the sorting mechanism through the coin input area 116 of the cabinet 104. Coin processing may be initiated automatically by the machine 100 or in response to a user input. While the coins are being sorted, the operator can deposit the next batch of coins into the coin tray 112 and enter data corresponding to the next batch. The total value of each processed (e.g., sorted, denominated and authenticated) batch of coins can be redeemed, for example, via a printed receipt or any of the other means disclosed herein.


The coin processing machine 100 has a coin receptacle station 102 disposed within the housing 104. When the coin processing machine 100 is disposed in a retail setting or other publicly accessible environment, e.g., for use as a retail coin redemption machine, the coin receptacle station 102 can be secured inside housing 104, e.g., via a locking mechanism, to prevent unauthorized access to the processed coins. The coin receptacle station 102 includes a plurality of moveable coin-receptacle platforms 106A-H (“moveable platforms”), each of which has one or more respective coin receptacles 108A-H disposed thereon. Each moveable platform 106A-H is slidably attached to a base 110, which may be disposed on the ground beneath the coin processing machine 100, may be mounted to the coin processing machine 100 inside the housing 104, or a combination thereof. In the illustrated embodiment, the coin receptacle station 102 includes eight moveable coin-receptacle platforms 106A-H, each of which supports two coin receptacles 108A-H, such that the coin processing machine 100 accommodates as many as sixteen individual receptacles. Recognizably, the coin processing machine 100 may accommodate greater or fewer than sixteen receptacles that are supported on greater or fewer than eight coin-receptacle platforms.


The coin receptacles 108A-H of the illustrated coin receptacle station 102 are designed to accommodate coin bags. Alternative variations may be designed to accommodate coin cassettes, cashboxes, coin bins, etc. Alternatively still, the moveable platforms 106A-H may have more than one type of receptacle disposed thereon. In normal operation, each of the coin receptacles 108A-H acts as a sleeve that is placed inside of a coin bag to keep coins within a designated volume during filling of the coin bag. In effect, each coin receptacle 108A-H acts as an internal armature, providing an otherwise non-rigid coin bag with a generally rigid internal geometry. Each of the platforms 106A-H includes a coin bag partition 122 that separates adjacent coin bags from one another for preventing coin bags from contacting adjacent coin bags and disrupting the flow of coins into the coin bags. For other embodiments, each moveable platform 106A-H may include multiple partitions 122 to accommodate three or more coin receptacles 108A-H. The moveable platforms 106A-H also include bag clamping mechanisms 124 for each of the coin receptacles 108A-H. Each bag clamping mechanism 124 operatively positions the coin bag for receiving processed coins, and provides structural support to the coin receptacle 108A-H when the moveable platform 106A-H is moved in and out of the machine.


The number of moveable platforms 106A-H incorporated into the coin processing machine 100 can correspond to the number of coin denominations to be processed. For example, in the U.S. coin set: pennies can be directed to the first coin receptacles 108A disposed on the first moveable platform 106A, nickels can be directed to the second coin receptacles 108B disposed on the second moveable platform 106B, dimes can be directed to the third coin receptacles 108C disposed on the third moveable platform 106C, quarters can be directed to the fourth coin receptacles 108D disposed on the fourth moveable platform 106D, half-dollar coins can be directed to the fifth coin receptacles 108E disposed on the fifth moveable platform 106E, dollar coins can be directed to the sixth coin receptacles 108F disposed on the sixth moveable platform 106F. The seventh and/or eighth moveable platforms 106G, 106H can be configured to receive coin overflow, invalid coins, or other rejected coins. Optionally, coins can be routed to the coin receptacles 108A-H in any of a variety of different manners. For example, in the illustrated configuration, if the operator of the coin processing machine 100 is anticipating a larger number of quarters than the other coin denominations, three or more of the coin receptacles 108A-H on the moveable platforms 106A-H may be dedicated to receiving quarters. Alternatively, half-dollar coins and dollar coins, of which there are fewer in circulation and regular use than the other coin denominations, can each be routed to a single dedicated coin receptacle.


In operation, an operator of the coin processing machine 100 who desires to access one or more of the coin receptacles 108A-H unlocks and opens a front door 130 of the housing 104 to access the coin receptacle station 102. Depending on which coin receptacle(s) the operator needs to empty, for example, the operator slides or otherwise moves one of the moveable coin-receptacle platforms 106A-H from a first “stowed” position inside the housing 104 (e.g., moveable platform 106A in FIG. 3) to a second “extracted” position outside of the housing 104 (e.g., moveable platform 106G in FIG. 3). If any of the coin bags are filled and need to be replaced, the operator may remove filled coin bags from the extracted movable platform, replace the filled coin bags with empty coin bags, return the movable platform to the stowed position, and subsequently shut and lock the front door 130.



FIG. 4 shows a non-limiting example of a coin sorting device, represented herein by a disk-type coin processing unit 200 that can be used in any of the currency processing systems, methods and devices disclosed herein. The coin processing unit 200 includes a hopper channel, a portion of which is shown at 210, for receiving coins of mixed denominations from a coin input area (e.g., coin input areas 14 or 116 of FIGS. 1 and 3). The hopper channel 210 feeds the coins through a central opening 230 in an annular, stationary sorting head 212. As the coins pass through this opening, the coins are deposited onto the top surface of a resilient pad 218 disposed on a rotatable disk 214. According to some embodiments, coins are initially deposited by a user onto a coin tray (e.g., coin tray 112 of FIG. 3) disposed above the coin processing unit 200; coins flow from the coin tray into the hopper channel 210 under the force of gravity.


This rotatable disk 214 is mounted for rotation on a shaft (not visible) and driven by an electric motor 216. The rotation of the rotatable disk 214 of FIG. 4 is slowed and stopped by a braking mechanism 220. The disk 214 typically comprises a resilient pad 218, preferably made of a resilient rubber or polymeric material, that is bonded to, fastened on, or integrally formed with the top surface of a solid disk 222. The resilient pad 218 may be compressible such that coins laying on the top surface thereof are biased or otherwise pressed upwardly against the bottom surface of the sorting head 212 as the rotatable disk 214 rotates. The solid disk 222 is typically fabricated from metal, but it can also be made of other materials, such as a rigid polymeric material.


The underside of the inner periphery of the sorting head 212 is spaced above the pad 218 by a distance which is approximately the same as or, in some embodiments, just slightly less than the thickness of the thinnest coin. While the disk 214 rotates, coins deposited on the resilient pad 218 tend to slide outwardly over the top surface of the pad 218 due to centrifugal force. As the coins continue to move outwardly, those coins that are lying flat on the pad 218 enter a gap between the upper surface of the pad 218 and the lower surface of the sorting head 212. As is described in further detail below, the sorting head 212 includes a plurality of coin directing channels (also referred to herein as “exit channels”) for manipulating the movement of the coins from an entry area to a plurality of exit stations (or “exit slot”) where the coins are discharged from the coin processing unit 200. The coin directing channels may sort the coins into their respective denominations and discharge the coins from exit stations in the sorting head 212 corresponding to their denominations.


Referring now to FIG. 5, the underside of the sorting head 212 is shown. The coin set for a given country can be sorted by the sorting head 212 due to variations in the diameter and/or thickness of the individual coin denominations. For example, according to the United States Mint, the U.S. coin set has the following diameters:

    • Penny=0.750 in. (19.05 mm)
    • Nickel=0.835 in. (21.21 mm)
    • Dime=0.705 in. (17.91 mm)
    • Quarter=0.955 in. (24.26 mm)
    • Half Dollar=1.205 in. (30.61 mm)
    • Presidential One Dollar=1.043 in. (26.49 mm)


      The coins circulate between the stationary sorting head 212 and the rotating pad 218 on the rotatable disk 214, as shown in FIG. 4. Coins that are deposited on the pad 218 via the central opening 230 initially enter an entry channel 232 formed in the underside of the sorting head 212. It should be kept in mind that the circulation of the coins in FIG. 5 appears counterclockwise as FIG. 5 is a view of the underside of the sorting head 212.


An outer wall 236 of the entry channel 232 divides the entry channel 232 from the lowermost surface 240 of the sorting head 212. The lowermost surface 240 is preferably spaced from the pad 218 by a distance that is slightly less than the thickness of the thinnest coins. Consequently, the initial outward radial movement of all the coins is terminated when the coins engage the outer wall 236, although the coins continue to move more circumferentially along the wall 236 (e.g., in a counterclockwise direction in FIG. 5) by the rotational movement imparted to the coins by the pad 218 of the rotatable disk 214.


While the pad 218 continues to rotate, those coins that were initially aligned along the wall 236 move across the ramp 262 leading to a queuing channel 266 for aligning the innermost edge of each coin along an inner queuing wall 270. The coins are gripped between the queuing channel 266 and the pad 218 as the coins are rotated through the queuing channel 266. The coins, which were initially aligned with the outer wall 236 of the entry channel 232 as the coins move across the ramp 262 and into the queuing channel 266, are rotated into engagement with inner queuing wall 270. As the pad 218 continues to rotate, the coins which are being positively driven by the pad move through the queuing channel 266 along the queuing wall 270 past a trigger sensor 234 and a discrimination sensor 238, which may be operable for discriminating between valid and invalid coins. In some embodiments, the discrimination sensor 238 may also be operable to determine the denomination of passing coins. The trigger sensor 234 sends a signal to the discrimination sensor 238 that a coin is approaching.


In the illustrated example, coins determined to be invalid are rejected by a diverting pin 242 that is lowered into the coin path such that the pin 242 impacts the invalid coin and thereby redirects the invalid coin to a reject channel 244. In some embodiments, the reject channel 244 guides the rejected coins to a reject chute that returns the coin to the user (e.g., rejected coins ejected into the coin reject tube 33 to the coin dispensing receptacle 22 of FIG. 1). The diverting pin 242 depicted in FIG. 5 remains in a retracted “non-diverting” position until an invalid coin is detected. Those coins not diverted into the reject channel 244 continue along inner queuing wall 270 to a gauging region 250. The inner queuing wall 270 terminates just downstream of the reject channel 244; thus, the coins no longer abut the inner queuing wall 270 at this point and the queuing channel 266 terminates. The radial position of the coins is maintained, because the coins remain under pad pressure, until the coins contact an outer wall 252 of the gauging region 250.


The gauging wall 252 aligns the coins along a common outer radius as the coins approach a series of coin exit channels 261-268 which discharge coins of different denominations through corresponding exit stations 281-288. The first exit channel 261 is dedicated to the smallest coin to be sorted (e.g., the dime in the U.S. coin set). Beyond the first exit channel 261, the sorting head 212 shown in FIGS. 4 and 5 forms seven more exit channels 262-268 which discharge coins of different denominations at different circumferential locations around the periphery of the sorting head 212. Thus, the exit channels 261-268 are spaced circumferentially around the outer periphery of the sorting head 212 with the innermost edges of successive channels located progressively closer to the center of the sorting head 212 so that coins are discharged in the order of increasing diameter. The number of exit channels can vary according to alternative embodiments of the present disclosure.


The innermost edges of the exit channels 261-268 are positioned so that the inner edge of a coin of only one particular denomination can enter each channel 261-268. The coins of all other denominations reaching a given exit channel extend inwardly beyond the innermost edge of that particular exit channel so that those coins cannot enter the channel and, therefore, continue on to the next exit channel under the circumferential movement imparted on them by the pad 218. To maintain a constant radial position of the coins, the pad 218 continues to exert pressure on the coins as they move between successive exit channels 261-268.


Further details of the operation of the sorting head 212 shown in FIGS. 4 and 5 are disclosed in U.S. Patent Application Publication No. US 2003/0168309 A1, which is incorporated herein by reference in its entirety. Other disk-type coin processing devices and related features that may be suitable for use with the coin processing devices disclosed herein are shown in U.S. Pat. Nos. 6,755,730; 6,637,576; 6,612,921; 6,039,644; 5,997,395; 5,865,673; 5,782,686; 5,743,373; 5,630,494; 5,538,468; 5,507,379; 5,489,237; 5,474,495; 5,429,550; 5,382,191; and 5,209,696, each of which is incorporated herein by reference in its entirety and for all purposes. In addition, U.S. Pat. Nos. 7,188,720 B2, 6,996,263 B2, 6,896,118 B2, 6,892,871 B2, 6,810,137 B2, 6,748,101 B 1, 6,731,786 B2, 6,724,926 B2, 6,678,401 B2, 6,637,576 B1, 6,609,604, 6,603,872 B2, 6,579,165 B2, 6,318,537 B1, 6,171,182 B1, 6,068,194, 6,042,470, 6,039,645, 6,021,883, 5,982,918, 5,943,655, 5,905,810, 5,564,974, and 4,543,969, and U.S. Patent Application Publication Nos. 2007/0119681 A1 and 2004/0256197 A1, are incorporated herein by reference in their respective entireties and for all purposes.


Turning next to FIG. 6, there is shown a coin processing unit, designated generally as 300, for sorting coins, counting coins, authenticating coins, denominating coins, validating coins, and/or any other form of processing coins. As indicated above, the coin processing unit 300 can be incorporated into or otherwise take on any of the various forms, optional configurations, and functional alternatives described herein with respect to the examples shown in FIGS. 1-5, and thus can include any of the corresponding options and features. By way of non-limiting example, the coin processing unit 300 of FIG. 6 may be a disk-type coin processing unit for sorting batches of coins, including batches with coins of mixed denomination, country of origin, etc. The coin processing unit 300 is operatively coupled to the coin input area of a currency processing system (e.g., coin input area 116 of coin processing machine 100) to receive therefrom deposited coins, and is also operatively coupled to one or more coin receptacles (e.g., coin receptacles 108A-H) into which processed coins are deposited. In alternative embodiments, the linear sensor arrays disclosed herein can be incorporated into other types of coin processing apparatuses, such as programmable power rail coin processing devices.


Similar to the disk-type coin processing unit 200 of FIGS. 4 and 5, the coin processing unit 300 of FIG. 6 comprises a rotatable disk (not visible in FIG. 6, but structurally and functionally similar to the rotatable disk 214 of FIG. 4) for supporting on an upper surface thereof and imparting motion to coins received from the coin input area of the currency processing system. Like the configuration illustrated in FIG. 4, the rotatable disk of FIG. 6 can be mounted for common rotation with a drive shaft that is driven by an electric motor. A stationary sorting head 312, which is adjacent the rotatable disk, has a lower surface 340 that is located generally parallel to and spaced slightly apart from the top surface of the rotatable disk. The lower surface 340 of the sorting head 312 forms a plurality of distinctly shaped regions (or “exit channels”), each of which guides coins of a common diameter, responsive to motion imparted thereto by the rotatable disk, to one of various exit stations through which the coins are discharged from the coin processing unit 300 to the one or more coin receptacles.


A linear array of sensors, designated generally as 350 in FIG. 6, is mounted proximate to or, as shown, directly on and within the sorting head 312 adjacent and, in some embodiments, facing the rotatable disk. The linear array of sensors 350 examines or otherwise senses coins seated on the rotatable disk and outputs a signal indicative of coin image information for each of the processed coins. For some implementations, the linear array 350 consists essentially of a one-dimensional (1D) array of non-optical imaging sensors. By way of non-limiting example, the linear array of sensors 350 includes a row of rectilinearly aligned capacitive imaging sensors for detecting topographic variations or other predetermined characteristics of passing coins. In the embodiments shown in FIG. 6, the linear array 350 includes a row of drive plates 352 aligned parallel to a row of pickup plates 354. Pickup plates 354 and drive plates 352, which lie transverse to the path of travel of passing coins, are separated by one or more sensor gaps 356. As a coin being sensed passes by the coin imaging sensor system 350, a sensor circuit 358 energizes drive plates 354 with drive signals. As surface variations of the imprint on the obverse side or reverse side of the coin passes across the sensor gap(s) 356, the drive signals applied to drive plates 352 are capacitively coupled to pickup plates 354 according to the capacitances of the individual sensor gaps. The capacitance will vary in accordance with the surface variations (e.g., peaks and valleys) of the coin passing across the sensor gap(s) 356. The capacitance variations are measured and stored, for example, in memory device 360 or any other type of computer-readable medium. The memory device 360 can be read, for example, by one or more processors 338 whereby the changes in capacitance can be interpreted, and an image of the topographic variations in the coin can be reconstructed. With the coin image information signals received from the coin imaging sensor system 350, the processor(s) 338 can determine, for example, whether each of the coins is valid or invalid, which may include determining the denomination and/or authenticity of each coin, by comparing the reconstructed coin image to a previously authenticated image that is stored in a library in the memory device 360.


The sorting head 312 may include a cutout into which is seated a coin trigger sensor 362 that is disposed just upstream of the linear sensor array 350. The coin trigger sensor 362 detects the presence of a coin and outputs an activation signal for readying the sensors 350. Coins first move across the coin trigger sensor 362 (e.g., a photo detector or a metal proximity detector), which responsively sends a signal to the processor(s) 338 indicating that a coin is approaching the linear sensor array 350. It is envisioned that the coin processing unit 200 be provided with multiple linear arrays of sensors, for example, to obtain imaging data from both obverse and reverse sides of each passing coin. In this regard, a linear array of sensors could be mounted adjacent the sorting head 312 to obtain imaging data from the edges of passing coins.



FIG. 7 is an example of a reconstructed image of a coin analyzed with the one-dimensional linear array of coin-imaging sensors 350 of FIG. 6. The array 350 allows for the scanning of each coin along multiple chords and generating a trace for each said chord to more effectively and efficiently create a complete and accurate image of the coin. Within each array, a single sensor can act as a trace sensor for detecting information along a single arc. The imaging information detected by the sensor array can be processed by array electronics (e.g., an analog signal filter in the sensor circuit 358) and interpreted by imaging software (e.g., stored in a physical, non-transient computer readable medium associated with the processor(s) 338). In this regard, the image allows for fast and accurate processing of coins, which may include, in any combination, determining denomination, authenticity, and/or validity, detecting if the coin is part of a specific class, identifying locations of any flaws, defects or imperfections, classifying coins as fit or unfit, etc. A linear sensor array, as disclosed herein, can offer a lower cost, simpler, faster and more compact system solution for coin imaging and processing. The use of a linear sensor array can also help to minimize or otherwise eliminate problems associated with spatial averaging as observed in a single “wide” sensor. Such wide sensors lack sufficient resolution and cause spatial blending of coin information. In addition, single channel sensors typically provide information from only a narrow portion of the coin or data on a single characteristic (e.g., the coins electrical impedance). An array of sensors, as disclosed herein, can obtain information from the entire coin regardless of the coin's dimensions, and form an image without inadvertent spatial blending.


Each of the disclosed linear sensor array embodiments may take on a variety of optional and alternative configurations. One such option is illustrated in FIG. 6, for example, wherein the width of the linear array of sensors 350 can be approximately equal to, equal to, or greater than the diameter of the largest coin to be processed (e.g., the U.S. Half Dollar) such that the array is operable to examine all or substantially all of the top surface, bottom surface, or side surface, or a combination thereof, of each passing coin of any denomination. As another option, each sensor in the coin imaging sensor system 350 can carry a single excitation frequency (e.g., 1F) or multiple excitation frequencies (e.g., 4F). Optional configurations of the coin imaging sensor system comprise means to excite passing coins and read the electrical/capacitive response as a “trace,” each of which can be measured along the diameter or another chord of the coin. In addition, while the illustrated example of FIG. 6 is shown with only a single array, the coin processing unit 300 may further comprise a second linear array of sensors that is mounted proximate to or directly on or within the sorting head. The second linear array may be generally parallel to and adjacent or interlaced with the first linear array of sensors. The second linear array may take on other locations and orientations. Like the first array, the second sensor array is operable to examine or otherwise sense each passing coin on the rotatable disk and output signals indicative of coin image information for processing the coins. For some embodiments, the disclosed linear sensor arrays allow for processing of coins at a linear speed of at least approximately 50 inches per second (ips), for some embodiments, at a linear speed of at least approximately 300 ips, and, for some embodiments, at a linear speed of at least approximately 400 ips. For some embodiments, the disclosed linear sensor arrays allow for processing of at least approximately 10,000 coins per minute (cpm) and, for some embodiments, at least approximately 15,000 cpm. For some embodiments, the disclosed linear sensor arrays allow for an image resolution of at least approximately 2 dots per inch (dpi) and, for some embodiments, at least approximately 50 dpi or more.


In accord with another aspect of the disclosed concepts, the linear array of sensors may comprise rectilinearly aligned magnetic field or magnetic remanence imaging sensors. Designated generally as 450 in FIG. 8, for example, is a magnetic field imaging sensor array that is mounted on a sorting head 412 of a disk-type coin processing unit 400. Like the linear sensor array 350 of FIG. 6, the sensor array 450 of FIG. 8 consists essentially of a one-dimensional (1D) array of imaging sensors that is operable to examine or otherwise sense coins seated on an adjacent rotatable disk (or other coin transport mechanism) and output a signal indicative of coin image information for processing each of the coins. In the same vein, the sensor array 450 of FIG. 8 can include any of the options and alternatives described above with respect to the sensor array 350. As a non-limiting example, the sensor array 450 may comprise a single linear array of sensing elements or multiple linear arrays of sensing elements that are aligned adjacent one another or interlaced with one another.


The sensor array 450 of FIG. 8 comprises a substrate 452 with an arrangement of N (where N is a positive integer) spaced-apart magnetic field sensing elements 454 that are supported on the substrate 452. As a coin being sensed passes by the coin imaging sensor system 450, a sensor circuit 458 generates a magnetic field that energizes the coin. Each magnetic field sensing element 454 is capable of measuring a minimum measurable magnetic field at a given frequency. The magnetic field sensing elements 454 may take the form of extraordinary magnetoresistance (EMR) devices or other types of magnetoresistance devices. One or more processors 438 with one or more memory devices 460 process signals from the magnetic field sensing elements 454 to produce an output signal such that the magnetic field sensor is capable of measuring a magnetic field at a given frequency. For some optional and alternative configurations, the imaging sensor array 450 comprises thin film magnetic remanence (MR) type imaging sensors, Hall technology type imaging sensors, magnetic resonance imaging (MRI) type sensors, or other magnetic imaging sensor technology. FIGS. 9 and 10 are examples of reconstructed images of coins analyzed with the one-dimensional linear array of magnetic field coin-imaging sensors of FIG. 9.


Turning next to FIG. 11, a one-dimensional linear array of electromagnetic coin-imaging sensors, designated generally as 550, is illustrated in accordance with aspects of the present disclosure. Like the linear sensor arrays 350 of FIG. 6 and 450 of FIG. 8, the sensor array 550 of FIG. 11 consists essentially of a one-dimensional (1D) array of non-optical sensors that is operable to examine or otherwise sense coins seated on an adjacent rotatable disk (or other coin transport mechanism) and output a signal indicative of coin image information for processing each of the coins. In the same vein, the sensor array 550 of FIG. 11 can include any of the options and alternatives described above with respect to the sensor arrays 350 and 450.


In the illustrated example, the linear sensor array 550 includes a plurality of electromagnetic imaging sensors 552, each of which comprises a ferromagnetic core 554, a primary coil 556, and a secondary coil 558. The primary coil 556 is wound around a first portion of the core 554 for driving a low frequency signal, and the secondary coil 558 is wound around a second region of the core 554 for driving a high frequency signal. The primary coil 556 may comprise a larger number of turns and use a smaller gauge wire than the secondary coil 558. Furthermore, the primary and secondary coils 556, 558 are separated from one another by a space therebetween. When an electrical potential or voltage is applied to the coils 556, 558, an oscillating magnetic field is created. As a coin is routed through this oscillating electromagnetic field, various coin properties can be sensed, such as changes in inductance or the amount of energy dissipated (conductivity). These sensed properties are output as electrical signals that can be collected and compared against a library or dataset of predetermined coins having corresponding electromagnetic properties to process the coin. FIG. 12 is an example of a raster scan of a coin analyzed with the electromagnetic linear sensor array 550 of FIG. 11.


In an optional configuration, the linear array comprises a row of optical sensors. For optical imaging, each optical sensor or “pixel” of the array will detect the amount of light being reflected from or transmitted through the sensed object. The resultant image typically depends on the wavelength of the light illuminating the object. By way of contrast, each sensor element of a magnetic array is performing a similar function as the optical “pixel” in the optical array. However, in the case of magnetic arrays, the object is excited with a magnetic field (static or alternating), and the response depends, for example, on the magnetic properties of the coin, the strength and direction of the excitation field, the distance between the sensor and the coin, the and the type of field (AC vs. DC). The pixel size can be very small or can be large. For example, the optical sensor could have an effective resolution from a fraction or a few dpi to thousands of dpi.


While particular embodiments and applications of the present disclosure have been illustrated and described, it is to be understood that the present disclosure is not limited to the precise construction and compositions disclosed herein and that various modifications, changes, and variations can be apparent from the foregoing descriptions without departing from the spirit and scope of the invention as defined in the appended claims.

Claims
  • 1. A currency processing system comprising: a housing with a coin input area configured to receive a batch of coins;one or more coin receptacles operatively coupled to the housing; anda coin processing unit operatively coupled to the coin input area and the one or more coin receptacles to transfer coins therebetween, the coin processing unit including: a rotatable disk configured to impart motion to the coins;a sorting head having a lower surface generally parallel to and adjacent the rotatable disk, the lower surface forming a plurality of shaped regions configured to guide the coins, responsive to motion imparted by the rotatable disk, to a plurality of exit stations through which the coins are discharged from the coin processing unit to the one or more coin receptacles; anda linear array of non-optical imaging sensors mounted in the sorting head and facing the rotatable disk, the linear array of non-optical imaging sensors configured to sense each of the coins and output signals indicative of coin image information for processing the coins,wherein the linear array of non-optical imaging sensors includes a plurality of drive plates and a plurality of pickup plates, the plurality of drive plates and the plurality of pickup plates lying transverse to a coin travel path of the sorting head, the plurality of drive plates being separated from the plurality of pickup plates by sensor gaps, and each one of the plurality of drive plates corresponding to and capacitively coupled to a separate one of the plurality of pickup plates lying further within the coin travel path, wherein a capacitance with respect to each drive plate and pickup plate pair varies in accordance with surface variations of a coin passing across the sensor gaps, andwherein the signals indicative of coin image information include a plurality of chords and traces corresponding to the plurality of chords scanned by the linear array of non-optical imaging sensors, wherein each trace corresponds to information detected along an arc, and wherein the traces are used to create a reconstructed coin image including topographic variations in the coin.
  • 2. The currency processing system of claim 1, wherein the linear array of non-optical imaging sensors includes a plurality of electromagnetic imaging sensors aligned rectilinearly adjacent one another.
  • 3. The currency processing system of claim 1, wherein the linear array of non-optical imaging sensors includes a plurality of capacitive imaging sensors aligned rectilinearly adjacent one another.
  • 4. The currency processing system of claim 1, wherein the linear array of non-optical imaging sensors is configured to sense one or more surfaces of each of the coins.
  • 5. The currency processing system of claim 1, further comprising a processor operatively coupled to the linear array of non-optical imaging sensors to receive the signals indicative of coin image information and determine therefrom whether each of the coins is valid or invalid.
  • 6. The currency processing system of claim 1, further comprising a processor operatively coupled to the linear array of non-optical imaging sensors to receive the signals indicative of coin image information and determine therefrom a denomination, a fitness, or an authenticity, or any combination thereof, of each of the coins.
  • 7. The currency processing system of claim 1, further comprising an electronics circuit operable to excite each of the coins using electric energy, magnetic energy, or electromagnetic energy, wherein the linear array of non-optical imaging sensors is operable to capture a response of each of the excited coins, the signals indicative of coin image information being representative of the captured response.
  • 8. The currency processing system of claim 1, wherein the linear array of non-optical imaging sensors is configured to sense the coins at a linear speed of at least 50 inches per second (ips).
  • 9. The currency processing system of claim 1, wherein the signals indicative of coin image information output by the linear array of non-optical imaging sensors are sufficient to generate the reconstructed coin image with a resolution of at least 2 dots per inch (dpi).
  • 10. The currency processing system of claim 1, wherein the linear array of non-optical imaging sensors is configured to sense the coins at a linear speed of less than 50 inches per second (ips).
  • 11. A coin imaging sensor system for a coin processing apparatus, the coin processing apparatus including a housing with an input area for receiving coins, one or more coin receptacles for stowing processed coins, a rotatable disk configured to impart motion to the coins, and a sorting head having a lower surface generally parallel to and adjacent the rotatable disk, the lower surface forming a plurality of shaped regions configured to guide the coins, responsive to motion imparted by the rotatable disk, to a plurality of exit stations through which the coins are discharged from the coin processing apparatus to the one or more coin receptacles, the coin imaging sensor system comprising: a linear array of non-optical imaging sensors configured to mount in the sorting head and facing the rotatable disk, the linear array of non-optical imaging sensors being configured to sense each of the coins and output signals indicative of coin image information;an image processing circuit operatively coupled to the linear array of non-optical imaging sensors and configured to process the signals indicative of coin image information output therefrom,wherein the linear array of non-optical imaging sensors includes a plurality of drive plates and a plurality of pickup plates, the plurality of drive plates and the plurality of pickup plates lying transverse to a coin travel path, the plurality of drive plates being separated from the plurality of pickup plates by sensor gaps, and each one of the plurality of drive plates corresponding to and capacitively coupled to a separate one of the plurality of pickup plates lying further within the coin travel path, wherein a capacitance with respect to each drive plate and pickup plate pair varies in accordance with surface variations of each of the coins passing across the sensor gaps, andwherein the signals indicative of coin image information include a plurality of chords and traces corresponding to the plurality of chords scanned by the linear array of non-optical imaging sensors, wherein each trace corresponds to information detected along an arc; anda processor operatively coupled to the image processing circuit and configured to examine the processed signals and the traces to generate therefrom a reconstructed image for each of the coins, including topographic variations in each of the coins.
  • 12. A currency processing device comprising: a coin processing unit configured to process coins, the coin processing unit including: a rotatable disk configured to impart motion to the coins; anda sorting head having a lower surface generally parallel to and adjacent the rotatable disk, the lower surface forming a plurality of shaped regions configured to guide the coins, responsive to motion imparted by the rotatable disk, to a plurality of exit stations through which the coins are discharged from the coin processing unit to one or more coin receptacles;a linear array of non-optical imaging sensors mounted to or adjacent the coin processing unit, the linear array of non-optical imaging sensors being configured to sense each of the processed coins and output signals indicative of coin image information, wherein the linear array of non-optical imaging sensors includes a plurality of drive plates and a plurality of pickup plates, the plurality of drive plates and the plurality of pickup plates lying transverse to a coin travel path, the plurality of drive plates being separated from the plurality of pickup plates by sensor gaps, and each one of the plurality of drive plates corresponding to and capacitively coupled to a separate one of the plurality of pickup plates lying further within the coin travel path, wherein a capacitance with respect to each drive plate and pickup plate pair varies in accordance with surface variations of each of the coins passing across the sensor gaps, andwherein the signals indicative of coin image information include a plurality of chords and traces corresponding to the plurality of chords scanned by the linear array of non-optical imaging sensors, wherein each trace corresponds to information detected along an arc; andat least one processor configured to receive the signals indicative of coin image information including the traces from the linear array of non-optical imaging sensors and generate therefrom a reconstructed image of each of the coins, including topographic variations in each of the coins.
  • 13. The currency processing device of claim 12, wherein the linear array of non-optical imaging sensors includes a plurality of electromagnetic imaging sensors aligned rectilinearly adjacent one another.
  • 14. The currency processing device of claim 12, wherein the linear array of non-optical imaging sensors includes a plurality of capacitive imaging sensors aligned rectilinearly adjacent one another.
  • 15. The currency processing device of claim 12, wherein the linear array of non-optical imaging sensors is configured to sense one or more surfaces of each of the coins.
  • 16. The currency processing device of claim 12, further comprising an electronics circuit operable to excite each of the coins using electric energy, magnetic energy, or electromagnetic energy, wherein the linear array of non-optical imaging sensors is operable to capture a response of each of the excited coins, the signals indicative of coin image information being representative of the captured response.
CROSS REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 15/835,989, filed on Dec. 8, 2017, now allowed, which is a continuation of U.S. patent application Ser. No. 15/360,004, filed on Nov. 23, 2016, now U.S. Pat. No. 9,870,668, which is a continuation of U.S. patent application Ser. No. 14/804,670, filed on Jul. 21, 2015, now U.S. Pat. No. 9,508,208, which claims the benefit of priority to U.S. Provisional Patent Application No. 62/029,195, which was filed on Jul. 25, 2014, each of which is incorporated herein by reference in its entirety.

US Referenced Citations (578)
Number Name Date Kind
1099706 Lindeen Jun 1914 A
2570920 Clough et al. Oct 1951 A
2669998 Buchholz Feb 1954 A
2750949 Kulo et al. Jun 1956 A
2835260 Buchholz May 1958 A
2865561 Rosapepe Dec 1958 A
3132654 Adams May 1964 A
3376970 Roseberg Apr 1968 A
3771583 Bottemiller Nov 1973 A
3778595 Hatanaka et al. Dec 1973 A
3851755 Hull et al. Dec 1974 A
3916922 Prunun Nov 1975 A
3998237 Kressin Dec 1976 A
3998379 Myers et al. Dec 1976 A
4050218 Call Sep 1977 A
4059122 Kinoshita Nov 1977 A
4075460 Gorgens Feb 1978 A
4124111 Hayashi Nov 1978 A
4150740 Douno Apr 1979 A
4166945 Inoyama et al. Sep 1979 A
4172462 Uchida et al. Oct 1979 A
4179685 O'Maley Dec 1979 A
4179723 Spencer Dec 1979 A
4184366 Butler Jan 1980 A
4197986 Nagata Apr 1980 A
4208549 Polillo et al. Jun 1980 A
4228812 Marti Oct 1980 A
4232295 McConnell Nov 1980 A
4234003 Ristvedt et al. Nov 1980 A
4249552 Margolin et al. Feb 1981 A
4249648 Meyer Feb 1981 A
4251867 Uchida et al. Feb 1981 A
4286703 Schuller et al. Sep 1981 A
RE30773 Glaser et al. Oct 1981 E
4310885 Azcua et al. Jan 1982 A
4317957 Sendrow Mar 1982 A
4341951 Benton Jul 1982 A
4355369 Garvin Oct 1982 A
4360034 Davila et al. Nov 1982 A
4369442 Werth et al. Jan 1983 A
4380316 Glinka et al. Apr 1983 A
4383540 DeMeyer et al. May 1983 A
4385285 Horst et al. May 1983 A
4412292 Sedam et al. Oct 1983 A
4416299 Bergman Nov 1983 A
4417136 Rushby et al. Nov 1983 A
4423316 Sano et al. Dec 1983 A
4434359 Watanabe Feb 1984 A
4436103 Dick Mar 1984 A
4454414 Benton Jun 1984 A
4474197 Kinoshita et al. Oct 1984 A
4488116 Plesko Dec 1984 A
4509633 Chow Apr 1985 A
4531531 Johnson et al. Jul 1985 A
4542287 Watanabe Sep 1985 A
4543969 Rasmussen Oct 1985 A
4549561 Johnson et al. Oct 1985 A
4556140 Okada Dec 1985 A
4558711 Yoshiaki et al. Dec 1985 A
4564036 Ristvedt Jan 1986 A
4570655 Raterman Feb 1986 A
4594664 Hashimoto Jun 1986 A
4602332 Hirose et al. Jul 1986 A
4607649 Taipale et al. Aug 1986 A
4620559 Childers et al. Nov 1986 A
4641239 Takesako Feb 1987 A
4674260 Rasmussen et al. Jun 1987 A
4681128 Ristvedt et al. Jul 1987 A
4705154 Masho et al. Nov 1987 A
4718218 Ristvedt Jan 1988 A
4731043 Ristvedt et al. Mar 1988 A
4733765 Watanabe Mar 1988 A
4749074 Ueki et al. Jun 1988 A
4753624 Adams et al. Jun 1988 A
4753625 Okada Jun 1988 A
4765464 Ristvedt Aug 1988 A
4766548 Cedrone et al. Aug 1988 A
4775353 Childers et al. Oct 1988 A
4775354 Rasmussen et al. Oct 1988 A
4778983 Ushikubo Oct 1988 A
4803347 Sugahara et al. Feb 1989 A
4804830 Miyagisima et al. Feb 1989 A
4805754 Howells Feb 1989 A
4812629 O'Neil et al. Mar 1989 A
4839505 Bradt et al. Jun 1989 A
4840290 Nakamura et al. Jun 1989 A
4844369 Kanayachi Jul 1989 A
4848556 Shah et al. Jul 1989 A
4863414 Ristvedt et al. Sep 1989 A
4883158 Kobayashi et al. Nov 1989 A
4884212 Stutsman Nov 1989 A
4893071 Miller Jan 1990 A
4900909 Nagashima et al. Feb 1990 A
4908516 West Mar 1990 A
4921463 Primdahl et al. May 1990 A
4936435 Griner Jun 1990 A
4953086 Fukatsu Aug 1990 A
4954697 Kokubun et al. Sep 1990 A
4964495 Rasmussen Oct 1990 A
4966570 Ristvedt et al. Oct 1990 A
4970655 Winn et al. Nov 1990 A
4971187 Furuya et al. Nov 1990 A
4988849 Sasaki et al. Jan 1991 A
4992647 Konishi et al. Feb 1991 A
4995848 Goh Feb 1991 A
5009627 Rasmussen Apr 1991 A
5010238 Kadono et al. Apr 1991 A
5010485 Bigari Apr 1991 A
5011455 Rasmussen Apr 1991 A
5022889 Ristvedt et al. Jun 1991 A
5025139 Halliburton, Jr. Jun 1991 A
5026320 Rasmussen Jun 1991 A
5031098 Miller et al. Jul 1991 A
5033602 Saarinen et al. Jul 1991 A
5039848 Stoken Aug 1991 A
5055086 Raterman et al. Oct 1991 A
5055657 Miller et al. Oct 1991 A
5056643 Kirberg Oct 1991 A
5064999 Okamoto et al. Nov 1991 A
5067604 Metcalf Nov 1991 A
5067928 Harris Nov 1991 A
5080633 Ristvedt et al. Jan 1992 A
5091713 Home et al. Feb 1992 A
5104353 Ristvedt et al. Apr 1992 A
5105601 Horiguchi et al. Apr 1992 A
5106338 Rasmussen et al. Apr 1992 A
5111927 Schulze May 1992 A
5114381 Ueda et al. May 1992 A
5120945 Nishibe et al. Jun 1992 A
5123873 Rasmussen Jun 1992 A
5129205 Rasmussen Jul 1992 A
5135435 Rasmussen Aug 1992 A
5140517 Nagata et al. Aug 1992 A
5141443 Rasmussen et al. Aug 1992 A
5141472 Todd et al. Aug 1992 A
5145455 Todd Sep 1992 A
5146067 Sloan et al. Sep 1992 A
5154272 Nishiumi et al. Oct 1992 A
5163866 Rasmussen Nov 1992 A
5163867 Rasmussen Nov 1992 A
5163868 Adams et al. Nov 1992 A
5167313 Dobbins et al. Dec 1992 A
5175416 Mansvelt et al. Dec 1992 A
5176565 Ristvedt et al. Jan 1993 A
5179517 Sarbin et al. Jan 1993 A
5183142 Latchinian et al. Feb 1993 A
5184709 Nishiumi et al. Feb 1993 A
5194037 Jones et al. Mar 1993 A
5197919 Geib et al. Mar 1993 A
5205780 Rasmussen Apr 1993 A
5207784 Schwartzendruber May 1993 A
5209696 Rasmussen et al. May 1993 A
5236071 Lee Aug 1993 A
5243174 Veeneman et al. Sep 1993 A
5251738 Dabrowski Oct 1993 A
5252811 Henochowicz et al. Oct 1993 A
5253167 Yoshida et al. Oct 1993 A
5259491 Ward II Nov 1993 A
5263566 Nara et al. Nov 1993 A
5265874 Dickinson et al. Nov 1993 A
5268561 Kimura et al. Dec 1993 A
5277651 Rasmussen et al. Jan 1994 A
5282127 Mii Jan 1994 A
5286226 Rasmussen Feb 1994 A
5286954 Sato et al. Feb 1994 A
5291003 Avnet et al. Mar 1994 A
5291560 Daugman Mar 1994 A
5293981 Abe et al. Mar 1994 A
5297030 Vassigh et al. Mar 1994 A
5297598 Rasmussen Mar 1994 A
5297986 Ristvedt et al. Mar 1994 A
5299977 Mazur et al. Apr 1994 A
5302811 Fukatsu Apr 1994 A
5324922 Roberts Jun 1994 A
5326104 Pease et al. Jul 1994 A
5370575 Geib et al. Dec 1994 A
5372542 Geib et al. Dec 1994 A
5374814 Kako et al. Dec 1994 A
5379344 Larson et al. Jan 1995 A
5379875 Shames et al. Jan 1995 A
5382191 Rasmussen Jan 1995 A
5390776 Thompson Feb 1995 A
5401211 Geib et al. Mar 1995 A
5404986 Hossfield et al. Apr 1995 A
5410590 Blood et al. Apr 1995 A
RE34934 Raterman et al. May 1995 E
5425669 Geib et al. Jun 1995 A
5429550 Mazur et al. Jul 1995 A
5440108 Tran et al. Aug 1995 A
5443419 Adams et al. Aug 1995 A
5450938 Rademacher Sep 1995 A
5453047 Mazur et al. Sep 1995 A
5458285 Remien Oct 1995 A
5468182 Geib Nov 1995 A
5470079 LeStrange et al. Nov 1995 A
5474495 Geib et al. Dec 1995 A
5474497 Jones et al. Dec 1995 A
5480348 Mazur et al. Jan 1996 A
5489237 Geib et al. Feb 1996 A
5500514 Veeneman et al. Mar 1996 A
5501631 Mennie et al. Mar 1996 A
5507379 Mazur et al. Apr 1996 A
5514034 Jones et al. May 1996 A
5520577 Rasmussen May 1996 A
5531309 Kloss et al. Jul 1996 A
5538468 Ristvedt et al. Jul 1996 A
5542880 Geib et al. Aug 1996 A
5542881 Geib Aug 1996 A
5553320 Matsuura et al. Sep 1996 A
5559887 Davis et al. Sep 1996 A
5564546 Molbak et al. Oct 1996 A
5564974 Mazur et al. Oct 1996 A
5564978 Jones et al. Oct 1996 A
5570465 Tsakanikas Oct 1996 A
5573457 Watts et al. Nov 1996 A
5584758 Geib Dec 1996 A
5592377 Lipkin Jan 1997 A
5602933 Blackwell et al. Feb 1997 A
5615625 Cassidy et al. Apr 1997 A
5620079 Molbak Apr 1997 A
5623547 Jones et al. Apr 1997 A
5625562 Veeneman et al. Apr 1997 A
5630494 Strauts May 1997 A
5641050 Smith et al. Jun 1997 A
5650605 Morioka et al. Jul 1997 A
5650761 Gomm et al. Jul 1997 A
5652421 Veeneman et al. Jul 1997 A
5665952 Ziamo Sep 1997 A
5679070 Ishida et al. Oct 1997 A
5684597 Hossfield et al. Nov 1997 A
5696366 Ziamo Dec 1997 A
5743373 Strauts Apr 1998 A
5746299 Molbak et al. May 1998 A
5774874 Veeneman et al. Jun 1998 A
5782686 Geib et al. Jul 1998 A
5788046 Lamah Aug 1998 A
5799767 Molbak Sep 1998 A
5813510 Rademacher Sep 1998 A
5823315 Hoffman et al. Oct 1998 A
5830054 Petri Nov 1998 A
5838812 Pare, Jr. et al. Nov 1998 A
5842188 Ramsey et al. Nov 1998 A
5842916 Gerrity et al. Dec 1998 A
5850076 Morioka et al. Dec 1998 A
5854581 Mori et al. Dec 1998 A
5865673 Geib et al. Feb 1999 A
5875879 Hawthorn Mar 1999 A
5880444 Shibata et al. Mar 1999 A
5892211 Davis et al. Apr 1999 A
5892827 Beach et al. Apr 1999 A
5909793 Beach et al. Jun 1999 A
5909794 Molbak et al. Jun 1999 A
5913399 Takemoto et al. Jun 1999 A
5918748 Clark et al. Jul 1999 A
5940623 Watts et al. Aug 1999 A
5941364 Wei Aug 1999 A
5944162 Filiberti Aug 1999 A
5944600 Zimmermann Aug 1999 A
5944601 Hayashi et al. Aug 1999 A
5951476 Beach et al. Sep 1999 A
5957262 Molbak et al. Sep 1999 A
5988348 Martin et al. Nov 1999 A
5995949 Morioka et al. Nov 1999 A
5997395 Geib et al. Dec 1999 A
6017270 Ristvedt et al. Jan 2000 A
6021883 Casanova et al. Feb 2000 A
6032859 Muehlberger et al. Mar 2000 A
6039644 Geib et al. Mar 2000 A
6039645 Mazur Mar 2000 A
6042470 Geib et al. Mar 2000 A
6047807 Molbak Apr 2000 A
6047808 Neubarth et al. Apr 2000 A
6056104 Neubarth et al. May 2000 A
6068194 Mazur May 2000 A
6080056 Karlsson Jun 2000 A
6082519 Martin et al. Jul 2000 A
6086471 Zimmermann Jul 2000 A
6095313 Molbak et al. Aug 2000 A
6116402 Beach et al. Sep 2000 A
6131625 Casanova et al. Oct 2000 A
6139418 Geib et al. Oct 2000 A
6142285 Panzeri et al. Nov 2000 A
6145738 Stinson et al. Nov 2000 A
6154879 Pare, Jr. et al. Nov 2000 A
6168001 Davis Jan 2001 B1
6171182 Geib et al. Jan 2001 B1
6174230 Gerrity et al. Jan 2001 B1
6196371 Martin et al. Mar 2001 B1
6196913 Geib et al. Mar 2001 B1
6202006 Scott Mar 2001 B1
6213277 Blad et al. Apr 2001 B1
6230928 Hanna et al. May 2001 B1
6264545 Magee et al. Jul 2001 B1
6305523 House Oct 2001 B1
6308887 Korman et al. Oct 2001 B1
6318536 Korman et al. Nov 2001 B1
6318537 Jones et al. Nov 2001 B1
6340082 House Jan 2002 B1
6349972 Geiger et al. Feb 2002 B1
6386323 Ramachandran et al. May 2002 B1
6412620 Imura Jul 2002 B1
6431342 Schwartz Aug 2002 B1
6438230 Moore Aug 2002 B1
6456928 Johnson Sep 2002 B1
6471030 Neubarth et al. Oct 2002 B1
6474548 Montross et al. Nov 2002 B1
6484863 Molbak Nov 2002 B1
6484884 Gerrity et al. Nov 2002 B1
6494776 Molbak Dec 2002 B1
6499277 Warner et al. Dec 2002 B1
6503138 Spoehr et al. Jan 2003 B2
6520308 Martin et al. Feb 2003 B1
6522772 Morrison et al. Feb 2003 B1
6547131 Foodman et al. Apr 2003 B1
6552781 Rompel et al. Apr 2003 B1
6554185 Montross et al. Apr 2003 B1
6579165 Kuhlin et al. Jun 2003 B2
6581042 Pare, Jr. et al. Jun 2003 B2
6602125 Martin Aug 2003 B2
6609604 Jones et al. Aug 2003 B1
6612921 Geib et al. Sep 2003 B2
6637576 Jones et al. Oct 2003 B1
6640955 Furuya Nov 2003 B1
6640956 Zwieg Nov 2003 B1
6644696 Brown et al. Nov 2003 B2
6652380 Luciano Nov 2003 B1
6655585 Shinn Dec 2003 B2
6659259 Knox et al. Dec 2003 B2
6662166 Pare, Jr. et al. Dec 2003 B2
6663675 Blake et al. Dec 2003 B2
6666318 Gerrity et al. Dec 2003 B2
6688449 Yamagishi Feb 2004 B1
6719121 Alexander et al. Apr 2004 B2
6755730 Geib et al. Jun 2004 B2
6758316 Molbak Jul 2004 B2
6761308 Hanna et al. Jul 2004 B1
6766892 Martin et al. Jul 2004 B2
6783452 Hino et al. Aug 2004 B2
6786398 Stinson et al. Sep 2004 B1
6854581 Molbak Feb 2005 B2
6854640 Peklo Feb 2005 B2
6863168 Gerrity et al. Mar 2005 B1
6892871 Strauts et al. May 2005 B2
6896118 Jones et al. May 2005 B2
6907977 Barchuk Jun 2005 B1
6928546 Nanavati et al. Aug 2005 B1
6950810 Lapsley et al. Sep 2005 B2
6953150 Shepley et al. Oct 2005 B2
6957746 Martin et al. Oct 2005 B2
6966417 Peklo et al. Nov 2005 B2
6976570 Molbak Dec 2005 B2
6988606 Geib et al. Jan 2006 B2
6991530 Hino et al. Jan 2006 B2
7004831 Hino et al. Feb 2006 B2
7014029 Winters Mar 2006 B2
7014108 Sorenson et al. Mar 2006 B2
7017729 Gerrity et al. Mar 2006 B2
7018286 Blake et al. Mar 2006 B2
7028827 Molbak et al. Apr 2006 B1
7036651 Tam et al. May 2006 B2
7083036 Adams Aug 2006 B2
7113929 Beach et al. Sep 2006 B1
7131580 Molbak Nov 2006 B2
7149336 Jones et al. Dec 2006 B2
7152727 Waechter Dec 2006 B2
7158662 Chiles Jan 2007 B2
7188720 Geib et al. Mar 2007 B2
7213697 Martin et al. May 2007 B2
7225911 Yokoi Jun 2007 B2
7243773 Bochonok et al. Jul 2007 B2
7269279 Chiles Sep 2007 B2
7303119 Molbak Dec 2007 B2
7331521 Sorenson et al. Feb 2008 B2
7337890 Bochonok et al. Mar 2008 B2
7427230 Blake et al. Sep 2008 B2
7438172 Long et al. Oct 2008 B2
7464802 Gerrity et al. Dec 2008 B2
7500568 Cousin Mar 2009 B2
7520374 Martin et al. Apr 2009 B2
7551764 Chiles et al. Jun 2009 B2
7552810 Mecklenburg Jun 2009 B2
7580859 Economy Aug 2009 B2
7604107 Richard et al. Oct 2009 B2
7654450 Mateen et al. Feb 2010 B2
7658270 Bochonok et al. Feb 2010 B2
7735125 Alvarez et al. Jun 2010 B1
7743902 Wendell Jun 2010 B2
7778456 Jones et al. Aug 2010 B2
7819308 Osterberg et al. Oct 2010 B2
7874478 Molbak Jan 2011 B2
7886890 Blake et al. Feb 2011 B2
7931304 Brown et al. Apr 2011 B2
7946406 Blake et al. May 2011 B2
7949582 Mennie et al. May 2011 B2
7963382 Wendell et al. Jun 2011 B2
7980378 Jones et al. Jul 2011 B2
8023715 Jones et al. Sep 2011 B2
8042732 Blake et al. Oct 2011 B2
8202144 Hino Jun 2012 B2
8229821 Mennie et al. Jul 2012 B2
8346610 Mennie et al. Jan 2013 B2
8352322 Mennie et al. Jan 2013 B2
8393455 Blake et al. Mar 2013 B2
8443958 Jones et al. May 2013 B2
RE44252 Jones et al. Jun 2013 E
8523641 Kuykendall et al. Sep 2013 B2
8545295 Blake et al. Oct 2013 B2
8602200 Blake Dec 2013 B2
8607957 Blake et al. Dec 2013 B2
8616359 Bochonok et al. Dec 2013 B2
RE44689 Wendell et al. Jan 2014 E
8684159 Blake Apr 2014 B2
8684160 Hallowell et al. Apr 2014 B2
8701860 Blake et al. Apr 2014 B1
8950566 Hallowell et al. Feb 2015 B2
8959029 Jones et al. Feb 2015 B2
9092924 Rasmussen et al. Jul 2015 B1
9330515 Rasmussen et al. May 2016 B1
9378604 Rathjen Jun 2016 B1
9430893 Blake et al. Aug 2016 B1
9437069 Blake et al. Sep 2016 B1
9501885 Yacoubian et al. Nov 2016 B1
9508208 Jagielinski Nov 2016 B1
9633500 Blake et al. Apr 2017 B1
9830762 Blake et al. Nov 2017 B1
9870668 Jagielinski Jan 2018 B1
9875593 Adams et al. Jan 2018 B1
9916713 Yacoubian et al. Mar 2018 B1
9934640 Blake et al. Apr 2018 B2
10043333 Adams et al. Aug 2018 B1
10049521 Blake et al. Aug 2018 B1
10068406 Jagielinski Sep 2018 B1
10089812 Blake et al. Oct 2018 B1
20010034203 Geib et al. Oct 2001 A1
20010048025 Shinn Dec 2001 A1
20020065033 Geib et al. May 2002 A1
20020069104 Beach et al. Jun 2002 A1
20020074209 Karlsson Jun 2002 A1
20020074210 Brandle Jun 2002 A1
20020085745 Jones et al. Jul 2002 A1
20020095587 Doyle et al. Jul 2002 A1
20020107738 Beach et al. Aug 2002 A1
20020126885 Mennie et al. Sep 2002 A1
20020130011 Casanova et al. Sep 2002 A1
20020147588 Davis et al. Oct 2002 A1
20020151267 Kuhlin et al. Oct 2002 A1
20020174348 Ting Nov 2002 A1
20020179401 Knox et al. Dec 2002 A1
20030004878 Akutsu et al. Jan 2003 A1
20030013403 Blake et al. Jan 2003 A1
20030042110 Wilfong Mar 2003 A1
20030062243 Mattice Apr 2003 A1
20030081824 Mennie et al. May 2003 A1
20030127299 Jones et al. Jul 2003 A1
20030168309 Geib et al. Sep 2003 A1
20030168310 Strauts et al. Sep 2003 A1
20030182217 Chiles Sep 2003 A1
20030190882 Blake et al. Oct 2003 A1
20030230464 Deaville et al. Dec 2003 A1
20030234153 Blake et al. Dec 2003 A1
20040021898 Ashizaki Feb 2004 A1
20040055902 Peklo Mar 2004 A1
20040084278 Harris May 2004 A1
20040092222 Kowalczyk et al. May 2004 A1
20040129527 Jonsson Jul 2004 A1
20040153406 Alarcon-Luther et al. Aug 2004 A1
20040153421 Robinson Aug 2004 A1
20040154899 Peklo et al. Aug 2004 A1
20040173432 Jones Sep 2004 A1
20040188221 Carter Sep 2004 A1
20040195302 Washington et al. Oct 2004 A1
20040199924 Ganesh et al. Oct 2004 A1
20040200691 Geib et al. Oct 2004 A1
20040238319 Hand et al. Dec 2004 A1
20040238614 Yoshioka et al. Dec 2004 A1
20040256197 Blake et al. Dec 2004 A1
20050006197 Wendell et al. Jan 2005 A1
20050035140 Carter Feb 2005 A1
20050040007 Geib et al. Feb 2005 A1
20050040225 Csulits et al. Feb 2005 A1
20050045450 Geib et al. Mar 2005 A1
20050067305 Bochonok et al. Mar 2005 A1
20050077142 Tam et al. Apr 2005 A1
20050086140 Ireland et al. Apr 2005 A1
20050087425 Peklo Apr 2005 A1
20050096986 Taylor et al. May 2005 A1
20050098625 Walker et al. May 2005 A1
20050108165 Jones et al. May 2005 A1
20050109836 Ben-Aissa May 2005 A1
20050121507 Brown et al. Jun 2005 A1
20050124407 Rowe Jun 2005 A1
20050150740 Finkenzeller et al. Jul 2005 A1
20050156318 Douglas Jul 2005 A1
20050205654 Carter Sep 2005 A1
20050205655 Carter Sep 2005 A1
20050228717 Gusler et al. Oct 2005 A1
20050256792 Shimizu et al. Nov 2005 A1
20060032726 Vook Feb 2006 A1
20060037835 Doran et al. Feb 2006 A1
20060054455 Kuykendall et al. Mar 2006 A1
20060054457 Long et al. Mar 2006 A1
20060060363 Carter Mar 2006 A2
20060064379 Doran et al. Mar 2006 A1
20060065717 Hurwitz et al. Mar 2006 A1
20060069654 Beach et al. Mar 2006 A1
20060146839 Hurwitz et al. Jul 2006 A1
20060148394 Blake et al. Jul 2006 A1
20060149415 Richards Jul 2006 A1
20060151285 String Jul 2006 A1
20060154589 String Jul 2006 A1
20060163029 Wollny Jul 2006 A1
20060175176 Blake Aug 2006 A1
20060182330 Chiles Aug 2006 A1
20060196754 Bochonok et al. Sep 2006 A1
20060205481 Dominelli Sep 2006 A1
20060207856 Dean et al. Sep 2006 A1
20060219519 Molbak et al. Oct 2006 A1
20060253332 Dobbins Nov 2006 A1
20060283685 Cousin Dec 2006 A1
20070051582 Bochonok et al. Mar 2007 A1
20070071302 Jones et al. Mar 2007 A1
20070108015 Bochonok et al. May 2007 A1
20070119681 Blake et al. May 2007 A1
20070181676 Mateen et al. Aug 2007 A1
20070187494 Hanna Aug 2007 A1
20070221470 Mennie et al. Sep 2007 A1
20070251800 Castleberry Nov 2007 A1
20070269097 Chiles et al. Nov 2007 A1
20070270997 Brumfield et al. Nov 2007 A1
20080033829 Mennie et al. Feb 2008 A1
20080044077 Mennie et al. Feb 2008 A1
20080106622 Turchetta May 2008 A1
20080135608 Ireland et al. Jun 2008 A1
20080220707 Jones et al. Sep 2008 A1
20080223930 Rolland et al. Sep 2008 A1
20090018959 Doran et al. Jan 2009 A1
20090045031 Gunst Feb 2009 A1
20090048803 Zwieg Feb 2009 A1
20090062739 Anderson Mar 2009 A1
20090236200 Hallowell et al. Sep 2009 A1
20090236201 Blake et al. Sep 2009 A1
20090239459 Watts et al. Sep 2009 A1
20090242626 Jones et al. Oct 2009 A1
20090320106 Jones et al. Dec 2009 A1
20090322019 Gudenburr et al. Dec 2009 A1
20100038419 Blake et al. Feb 2010 A1
20100065623 Sauter Mar 2010 A1
20100117295 Miyamoto May 2010 A1
20100198726 Doran et al. Aug 2010 A1
20100234985 Shuren et al. Sep 2010 A1
20100261421 Wendell Oct 2010 A1
20100276485 Jones et al. Nov 2010 A1
20100294617 Straumann Nov 2010 A1
20100327005 Martin et al. Dec 2010 A1
20110098845 Mennie et al. Apr 2011 A1
20110099105 Mennie et al. Apr 2011 A1
20110124405 Okada et al. May 2011 A1
20110259961 Fold et al. Oct 2011 A1
20110270695 Jones et al. Nov 2011 A1
20120067950 Blake Mar 2012 A1
20120138420 Leibu Jun 2012 A1
20120156976 Blake et al. Jun 2012 A1
20120301009 Dabic Nov 2012 A1
20130068586 Jonsson Mar 2013 A1
20130178139 Hallowell et al. Jul 2013 A1
20130199890 Blake Aug 2013 A1
20130205723 Blake et al. Aug 2013 A1
20130240322 Lavanchy et al. Sep 2013 A1
20140037158 McNulty Feb 2014 A1
20140335770 Martin Nov 2014 A1
20150062059 Ho Mar 2015 A1
20150101907 Hall Apr 2015 A1
20150177875 Li Jun 2015 A1
20150302678 Blake et al. Oct 2015 A1
20160018873 Fernald Jan 2016 A1
20180108198 Rasmussen Apr 2018 A1
20180108199 Blake et al. Apr 2018 A1
20200312074 Jagielinski Oct 2020 A1
Foreign Referenced Citations (121)
Number Date Country
2235925 Nov 1995 CA
2189330 Dec 2000 CA
2143943 Mar 2003 CA
2660418 Sep 2009 CA
06 60 354 May 1938 DE
30 21327 Dec 1981 DE
0 351217 Jan 1990 EP
0 667 973 Jan 1997 EP
000818758 Jan 1998 EP
0 926 634 Jun 1999 EP
1 104 920 Jun 2001 EP
1 209 639 May 2002 EP
1 528 513 May 2005 EP
2042254 Feb 1971 FR
1405936 Sep 1975 GB
2035642 Jun 1980 GB
2062327 May 1981 GB
2175427 Nov 1986 GB
2198274 Jun 1988 GB
2279756 Nov 1995 GB
2458387 Sep 2009 GB
2468783 Sep 2010 GB
2514241 Nov 2014 GB
2553928 Mar 2018 GB
49-058899 Jun 1974 JP
52-014495 Feb 1977 JP
52-071300 Jun 1977 JP
56-040992 Apr 1981 JP
57-117080 Jul 1982 JP
59-079392 May 1984 JP
60-016271 Feb 1985 JP
62-134168 Aug 1987 JP
62-182995 Aug 1987 JP
62-221773 Sep 1987 JP
62-166562 Oct 1987 JP
64-035683 Feb 1989 JP
64-042789 Feb 1989 JP
64-067698 Mar 1989 JP
01-118995 May 1989 JP
01-307891 Dec 1989 JP
02-050793 Feb 1990 JP
02-252096 Oct 1990 JP
01-017776 Jan 1991 JP
01-061704 Mar 1991 JP
03-092994 Apr 1991 JP
03-156673 Jul 1991 JP
04-085695 Mar 1992 JP
04-175993 Jun 1992 JP
05 -046839 Feb 1993 JP
05-217048 Aug 1993 JP
05-274527 Oct 1993 JP
06-035946 Feb 1994 JP
06-103285 Apr 1994 JP
09-44641 Feb 1997 JP
09-251566 Sep 1997 JP
2002-117439 Apr 2002 JP
2003-242287 Aug 2003 JP
2004-213188 Jul 2004 JP
44 244 Sep 1988 SE
WO 8500909 Feb 1985 WO
WO 9106927 May 1991 WO
WO 9108952 Jun 1991 WO
WO 9112594 Aug 1991 WO
WO 9118371 Nov 1991 WO
WO 9208212 May 1992 WO
WO 9220043 Nov 1992 WO
WO 9220044 Nov 1992 WO
WO 9222044 Dec 1992 WO
WO 9300660 Jan 1993 WO
WO 9309621 May 1993 WO
WO 9406101 Mar 1994 WO
WO 9408319 Apr 1994 WO
WO 9423397 Oct 1994 WO
WO 9502226 Jan 1995 WO
WO 9504978 Feb 1995 WO
WO 9506920 Mar 1995 WO
WO 9509406 Apr 1995 WO
WO 9513596 May 1995 WO
WO 9519017 Jul 1995 WO
WO 9523387 Aug 1995 WO
WO 9530215 Nov 1995 WO
WO 9607163 Mar 1996 WO
WO 9607990 Mar 1996 WO
WO 9612253 Apr 1996 WO
WO 9627525 Sep 1996 WO
WO 9627859 Sep 1996 WO
WO 9722919 Jun 1997 WO
WO 9725692 Jul 1997 WO
WO 9824041 Jun 1998 WO
WO 9824067 Jun 1998 WO
WO 9848383 Oct 1998 WO
WO 9848384 Oct 1998 WO
WO 9848385 Oct 1998 WO
WO 9851082 Nov 1998 WO
WO 9859323 Dec 1998 WO
WO 9900776 Jan 1999 WO
WO 9906937 Feb 1999 WO
WO-9906965 Feb 1999 WO
W0 9916027 Apr 1999 WO
WO 9933030 Jul 1999 WO
WO 9941695 Aug 1999 WO
WO 9948057 Sep 1999 WO
WO 9948058 Sep 1999 WO
WO 0048911 Aug 2000 WO
WO 0065546 Nov 2000 WO
WO 0163565 Aug 2001 WO
WO 02071343 Sep 2002 WO
WO 03052700 Jun 2003 WO
WO 03079300 Sep 2003 WO
WO 03085610 Oct 2003 WO
WO 03107280 Dec 2003 WO
WO 04044853 May 2004 WO
WO 04109464 Dec 2004 WO
WO 05041134 May 2005 WO
WO 05088563 Sep 2005 WO
WO 06086531 Aug 2006 WO
WO 07035420 Mar 2007 WO
WO 07120825 Oct 2007 WO
WO-2014161893 Oct 2014 WO
2018035381 Feb 2018 WO
WO 2018035381 Feb 2018 WO
Non-Patent Literature Citations (101)
Entry
www.dictionary.com entry for “remanence” (Year: 2020).
Amiel Industries: AI-1500 ‘Pulsar’ High Performance Sorting and Bagging Machine, 13 pages (date unknown, but prior to Dec. 14, 2000).
AUI: Coinverter—“No More Lines . . . Self-Serve Cash-Out,” by Cassius Elston, 1995 World Games Congress/Exposition Converter, 1 page (dated prior to 1995).
Brandt: 95 Series Coin Sorter Counter, 2 pages (1982).
Brandt: Model 817 Automated Coin and Currency Ordering System, 2 pages (1983).
Brandt: Model 920/925 Counter, 2 pages (date unknown, prior to Jul. 2011, possibly prior to Mar. 17, 1997).
Brandt: System 930 Electric Counter/Sorter, “Solving Problems, Pleasing Customer, Building Deposits,” 1 page (date unknown, prior to Mar. 2, 2011, possibly prior to Mar. 17, 1997).
Brandt: Model 940-6 High Speed Sorter/Counter, 2 pages (date unknown, prior to Oct. 31, 1989).
Brandt: System 945 High-Speed Sorter, 2 pages (date unknown, prior to Mar. 2, 2011, possibly prior to Mar. 17, 1997).
Brandt: Model 952 Coin Sorter/Counter, 2 pages (date unknown, prior to Oct. 31, 1989).
Brandt: Model 954 Coin Sorter/Counter, 2 pages (date unknown, prior to Oct. 31, 1989).
Brandt: Model 957 Coin Sorter/Counter, 2 pages (date unknown, prior to Oct. 31, 1989).
Brandt: Model 958 Coin Sorter/Counter, 5 pages (© 1982).
Brandt: Model 960 High-Speed Coin Sorter & Counter, 2 pages (1984).
Brandt; Model 966 Microsort™ Coin Sorter and Counter, 4 pages, (1979).
Brandt: Model 970 Coin Sorter and Counter, 2 pages (1983).
Brandt: Model 1205 Coin Sorter Counter, 2 pages (1986).
Brandt: Model 1400 Coin Sorter Counter, 2 pages (date unknown, prior to Mar. 2, 2011, possibly prior to Mar. 17, 1997).
Brandt: Model 8904 Upfeed—“High Speed 4-Denomination Currency Dispenser,” 2 pages (1989).
Brandt: Mach 7 High-Speed Coin Sorter/Counter, 2 pages (1992).
Case ICC Limited: CDS Automated Receipt Giving Cash Deposit System, 3 pages (date unknown, prior to Nov. 15, 2000).
Cash, Martin: Newspaper Article “Bank Blends New Technology With Service,” Winnipeg Free Press, 1 page (Sep. 4, 1992).
Childers Corporation: Computerized Sorter/Counter, “To coin an old adage, time is money . . . ,” 3 pages (1981).
CTcoin: CDS602 Cash Deposit System, 1 page (date unknown, prior to Jan. 15, 2001).
Cummins: Cash Information and Settlement Systems (Form 023-1408), 4 pages (date Dec. 1991).
Cummins: The Universal Solution to All Coin and Currency Processing Needs (Form 13C1218 3-83), 1 page (Mar. 1983).
Cummins: JetSort® High Speed Sorter/Counter Kits I & J—Operating Instructions (Form 022-7123-00) 12 pages (1994).
Cummins: JetSort® Coin Sorter Counter/CA-130XL Coin Wrapper, Cummins Automated Money Systems (AMS) Case Study—Fifth-Third, “6,000 (Coin Per Minute Counter/Sorter Keeps pace With Fifth-Third Bank's Money Processing Needs,” (Form 13C1180), 2 pages (Nov. 1981).
Cummins: JetSort®, “Venders Love JetSort,” (13C1255), 1 page (Mar. 1987).
Cummins: JetSort® “High Speed Coin Sorter & Counter for Payphone Applications,” “CTOCS Ready” (Form 023-1365), 2 pages (Mar. 1989).
Cummins: JetSort® mailer, “One moving part simplicity,” “Vendors—Are validators changing your coin and cuerrency needs?” (Form 023-1297), 3 pages (Apr. 1987).
Cummins: JetSort® Series V High Speed Coin Sorter/Counter, (Form 023-1383), 2 pages (Sep. 1990).
Cummins: JetSort® “Time for a Change, Be a smashing success!,” (Form 023-1328), 1 page (Jun. 1988).
Cummins: JetSort® “Time for a Change—JetSort® vs. Brandt X,” (Form 023-1330), 1 page (Jun. 1988).
Cummins: JetSort® “Time for a Change—No Coins Sorted After 3:00 or on Saturday,” (Form 023-1327), 1 page (Aug. 1988).
Cummins: JetSort®, “What do all these Banks have in Common . . . ?”, JetSort, CA-130XL coin wrapper, CA-118 coin wrapper, CA-4000 JetCount, (13C1203), 3 pages (Aug. 1982).
Cummins: JetSort® 700-01/CA-118 Coin Wrapper, Cummins Automated Money Systems (AMS) Case Study—university State Bank, “Cummins Money Processing System Boosts Teller Service at University State Bank,” (Form 13C1192), 2 pages (Mar. 1982).
Cummins: JetSort® 700-01, Cummins Automated Money Systems (AMS) Case Study—First State Bank of Oregon, “JetSort® Gives Bank Coin Service Edge,” (Form 13C1196), 2 pages (Apr. 1982).
Cummins: JetSort® 700-01 Coin Sorter/Counter, Operating Instructions, 14 pages (1982).
Cummins: JetSort® 701, Cummins Automated Money System (AMS) Case Study—Convenco Vending, “High Speed Coint Sorter increase coin processing power at Convenco Vending,” (Form 13C1226), 2 pages (Jul. 1983).
Cummins: JetSort Models 701 and 705, “State-of-the-art coins processing comes of age,” 2 pages (Feb. 1984).
Cummins: JetSort® Model CA-750 Coin Processor (Item No. 50-152), 1 page (Jul. 1984).
Cummins: JetSort® Model CA-750 Coin Sorter/Counter and CA-4050 JetCount currency counter, “Money Processing Made Easy,” (Form 13C1221) 2 pages (Jun. 1983).
Cummins: JetSort® Model 1701 with JetStops, Operating Instructions Manual (Form 022-1329-00), 16 pages (1984).
Cummins: JetSort® Model 1760 brochure, (Form 023-1262-00), 2 pages (Jul. 1985).
Cummins: JetSort® Model 1770 and 3000, Communication Package specification and operating instructions, 10 pages (uncertain, possibly Nov. 1985).
Cummins: JetSort® Model 1770, “JetSort® Speed and Accuracy, Now with Communications!”, (Form 023-1272) 1 page (Oct. 1986).
Cummins: JetSort.® 2000 Series High Speed Coin Sorter/Counter (Form 023-1488), 2 pages (Oct. 2000).
Cummins: JetSort® 3000 Series High Speed Coin Sorter (Form 023-1468 Rev 1), 2 pages (Feb. 1995).
Cummins: JetSort® 3000 Series Options, “Talking JetSort 3000” (Form 023-1338-00), 1 page (between Jan. 1989-Feb. 1989).
Cummins: JetSort® 3000, “3,000 Coins per Minute!,” (Form 023-1312), 1 page (date unknown, est. 1987).
Cummins: JetSort® 3200, Enhanced electronics for the JetSort® 3200 (Form 023-1350), 1 page (Apr. 1987).
De La Rue: CDS 500 Cash Deponier System, 6 pages (date unknown, p. 5 has date May 1994, p. 6 has date Dec. 1992) (German).
De La Rue: CDS 5700 and CDS 5800 Cash Deponier System (German) and translation, 7 pp. (date unknown, prior to Aug. 13, 1996).
Diebold: Merchant MicroBranch, “Merchant MicroBranch Combines ATM After-Hour Depository Rolled-Coin Dispenser,” Bank Technology News, 1 page (Nov. 1997).
Fa. GBS-Geldbearbeitungssysteme: GBS9401SB Technical Specification, 24 pages (date unknown, prior to Nov. 10, 2010).
Frisco Bay: Commercial Kiosk, “Provide self-service solutions for your business customers,” 4 pages (date unknown, prior to Mar. 2, 2011, p. 4 has date 1996).
Glory: AMT Automated Merchant Teller, 4 pages (date unknown, prior to Jan. 15, 2001).
Glory: CRS-8000 Cash Redemption System, 2 pages (1996).
Hamilton: Hamilton's Express Banking Center, In Less Space Than A Branch Manager's Desk, 4 pages (date unknown, prior to Jan. 15, 2001).
Intellectual Australia Pty. Ltd.: Microbank, “From down under: Microbank,” “hand-held smart card terminal that combines smart card functions and telephone banking,” 2 pages (Feb. 1996).
ISH Electronic: ISH 12005/500 Coin Counter (with translation), 4 pages (date unknown, prior to Aug. 1996).
ISH Electronic: ISH 12005/501 Self-Service Unit (with translation), 4 pages (date unknown, prior to Aug. 1996).
Namsys, Inc.: Namsys Express, Making currency management . . . more profitable, 2 pages (date unknown, prior to Jan. 15, 2001).
NGZ Geldzahlmaschinengesellschaft: NGZ 2100 Automated Coin Depository, 4 pages (date unknown, prior to Sep. 1996).
Perconta: Contomat Coin Settlement Machine for Customer Self Service, 2 pages (date unknown, prior to Apr. 2003).
Prema GmbH: Prema 405 (RE) Self Service Coin Deposit Facility, 2 pages (date unknown, prior to Apr. 2003).
Reis Eurosystems: CRS 6501/CRS 6510 Cash Receipt Systems for Self-Service Area, 3 pages (date unknown, prior to Aug. 13, 1996, maybe Feb. 1995).
Reis Eurosystems: CRS 6520/ CRS 6525 Standard-Class Coin Deposit Systems, 1 page (date unknown, prior to Apr. 2003).
Reis Eurosystems: CS 3510 Disc-Sorter, 1 page (date unknown, prior to Apr. 2003).
Royal Bank: Hemeon, Jade, “Royal's Burlington drive-in bank provides customers 24-hour tellers,” The Toronto Star, 1 page (Aug. 21, 1991).
Royal Bank: Leitch, Carolyn, “High-Tech Bank Counts Coins,” The Globe and Mail, 2 pages (Sep. 19, 1991).
Royal Bank: Oxby, Murray, “Royal Bank Opens ‘Super Branch,’” The Gazette Montreal, 2 pages (Sep. 19, 1991).
Royal Bank: SuperBranch, “Experience the Ultimate in Convenience Banking,” 2 pages (Feb. 1992).
Scan Coin: International Report, 49 pages (Apr. 1987).
Scan Coin: Money Processing Systems, 8 pages (date unknown, prior to Apr. 2003).
Scan Coin: World, 2 pages (Feb. 1988).
Scan Coin: CDS Cash Deposit System, 6 pages (date unknown, prior to Apr. 2003) [SC 0369].
Scan Coin: CDS Coin Deposit System-Technical Referens Manual, 47 pages (1989).
Scan Coin: CDS 600 User's Manual, 14 pages (date unknown, prior to Apr. 2003).
Scan Coin: CDS 600 & CDS 640 Cash Deposit System—Technical Manual, 45 pages (date unknown, prior to Apr. 2003).
Scan Coin: CDS MK 1 Coin Deposit System—Technical Manual, 32 pages (1991).
Scan Coin: SC 102 Value Counter Technical Manual, 28 pages (date unknown, prior to Apr. 2003).
Pay by Touch: Secure ID News, “Piggly Wiggly Extends Biometric Payments Throughout The Southeast U.S.,” 2 pages, (Dec. 14, 2005).
ESD, Inc: Smartrac Card System, “Coinless laundry makes quarters obsolete; Smartrac Card System really makes a change in laundry industry,” Business Wire, 2 pages (Feb. 23, 1996).
Meece, Mickey: Article “Development Bank of Singapore Gets Cobranding Edge with Smart Cards,” American Banker, New York, NY, vol. 159, Iss. 195, p. 37, 2 pages (Oct. 10, 1994).
Scan Coin: Coin Sachet System brochure, 4 pages (last page marked “© SCAN COIN / Jun. 2007”).
U.S. Appl. No. 13/836,117, filed Mar. 15, 2013, Blake et al., System, Method and Apparatus for Automatically Filling a Coin Cassette.
U.S. Appl. No. 15/461,046, filed Mar. 16, 2017, Jagielinski, Systems, Methods and Devices for Processing Batches of Coins Utilizing Coin Imaging Sensor Assemblies.
U.S. Appl. No. 15/782,343, filed Oct. 12, 2017, Rasmussen, Coin Sorting Head and Coin Processing System Using the Same.
U.S. Appl. No. 15/827,573, filed Nov. 30, 2017, Blake et al., System, Method and Apparatus for Repurposing Currency.
U.S. Appl. No. 16/028,068, filed Jul. 5, 2018, Adams et al., Systems, Methods and Devices for Coin Processing and Coin Recycling.
U.S. Appl. No. 16/059,765, filed Aug. 9, 2018, Blake et al., Systems, Methods and Devices for Managing Rejected Coins During Coin Processing.
U.S. Appl. No. 14/804,670, Office Action, dated Mar. 17, 2016; (10 pages).
U.S. Appl. No. 15/356,295, Office Action, dated Jul. 10, 2017; (13 pages).
U.S. Appl. No. 14/794,262, Office Action, dated Mar. 16, 2016; (9 pages).
U.S. Appl. No. 14/936,846, Office Action, dated Nov. 17, 2016; (12 pages).
U.S. Appl. No. 15/492,561, Office Action, dated Dec. 1, 2017; (8 pages).
U.S. Appl. No. 15/360,004, Office Action, dated Jul. 10, 2017 (9 pages).
U.S. Appl. No. 15/360,004, Notice of Allowance, Dec. 7, 2017 (9 pages).
Non-Final Office Action dated Sep. 2, 2021, in connection with U.S. Appl. No. 16/902,094, 19 pages.
Provisional Applications (1)
Number Date Country
62029195 Jul 2014 US
Continuations (3)
Number Date Country
Parent 15835989 Dec 2017 US
Child 16120252 US
Parent 15360004 Nov 2016 US
Child 15835989 US
Parent 14804670 Jul 2015 US
Child 15360004 US