Powered blending container

Abstract
A blending device is shown and described. The blending device may include a blending container and a power source operatively connected to the blending container. The power source may be configured to supply power to the blending container. The blending container may also include a feature that is powered by the power source.
Description
TECHNICAL FIELD

The present teachings generally relate to a powered blending container, more specifically a blending container powered by a power source operatively connected to the blending container. The blending container includes features powered by the power source such as illuminated gradient markings, temperature sensors, interlocking features, vibration detection sensors, and sensors to detect air pockets.


BACKGROUND

Blenders to facilitate the processing of food, drinks, and other blended food preparations, have become ubiquitous in both commercial and residential settings. Such appliances are particularly useful where there are a variety of operations to be performed repeatedly with accuracy and precision.


Presently, blending containers are not powered. Having a separate power source for the blending container permits the addition of features that will further facilitate commercial and residential uses of blenders. For example, a powered blending container could include gradient markings that are luminescent. This would be of particular use in areas with low lighting, such as bars or restaurants, and would permit a user to more accurately measure ingredients in such environments.


SUMMARY

A blending device is shown and described. The blending device may include a blending container and a power source operatively connected to the blending container. The power source may be configured to supply power to the blending container. The blending container may also include a feature that is powered by the power source.


A blending device may include a blending container and a wireless power source positioned in the blending container for supplying power to the blending container. The blending container may also include gradient markings that are powered by the power source.


A blending device may include a blending container and a wireless power source operatively coupled to the blending container. The wireless power source may be directly connected to the blending container to supply power to the blending container. The blending container may also comprise a wireless sensor that is powered by the wireless power source.





BRIEF DESCRIPTION OF THE DRAWINGS

The operation of the invention may be better understood by reference to the detailed description taken in connection with the following illustrations, wherein:



FIG. 1 is a perspective view of a blending device.



FIG. 2 is a top perspective view of an external charging stand.



FIG. 3 is a perspective view of a blending device with a sensor included in the blending container.



FIG. 4A is a first cross-sectional view of a blending container.



FIG. 4B is a second cross-sectional view of a blending container.



FIG. 5 is a perspective view of an embodiment of the blade base.



FIG. 6 is a plan view of a blender base.





DETAILED DESCRIPTION

Reference will now be made in detail to exemplary embodiments of the present teachings, examples of which are illustrated in the accompanying drawings. It is to be understood that other embodiments may be utilized and structural and functional changes may be made without departing from the respective scope of the present teachings. Moreover, features of the various embodiments may be combined or altered without departing from the scope of the present teachings. As such, the following description is presented by way of illustration only and should not limit in any way the various alternatives and modifications that may be made to the illustrated embodiments and still be within the spirit and scope of the present teachings.


With reference to FIG. 1, an exemplary embodiment of a blending device 10 made in accordance with the present teaching is shown. The blending device 10 may include a blending container 14 and a blending base 18.


Blending container 14 may include a lid 22, a body 26, a handle 30, and a base 34. The blending container 14 may have a power source 36 positioned in the blending container 14 at any appropriate location. By way of a non-limiting example, the power source 36 may be positioned in the body 26, in the handle 30 or in the base 34. The power source 36 is configured to provide power to the blending container 14. The power source 36 may be of any appropriate type—the present teachings are not limited to the power source 36 shown herein. In the embodiment shown in FIG. 1, the power source 36 is an energy storage device, such as a battery 36. The battery 36 may be a rechargeable battery or a non-rechargeable battery. For those embodiments in which the battery 36 is a rechargeable battery, the battery 36 may be charged by the blender base 18 or by an external charging stand 40. The blending container 14 may be stored and charged on the external charging stand 40 when not in use.


The blending container 14 may include features that require power such as illuminated gradient markings, sensors, or a microprocessor. In the embodiment shown in FIG. 1, the blending container 14 includes gradient marker elements 44 that are luminescent. The power for illuminating the gradient marker elements 44 comes from the power source (e.g., the battery 36). The gradient marker elements 44 may be illuminated in any appropriate manner. The gradient marker elements may be individual elements and may be illuminated together or individually. For example, the illuminated gradient marker elements 44 may provide instructions for users to add ingredients during operation of the blending device 10 or merely as an illumination source for the blending container 14.


The blending container 14 may include gradient markers on a display panel that is attached to or is an integral part of the blending container 14. It will be appreciated that the display panel could be any appropriate means for displaying information, including, but not limited to an LCD, LED or OLED display.


Further still, the blending container 14 may include a light, such as an LED light or the like. The power source (e.g., the battery 36) may provide power to illuminate such light. The light may allow users to see the blending container 14 in dark conditions, e.g., in a dark bar.


As described below, the blending container 14 may be in operative communication with the blending base 18, the blending device 10 and/or other wireless devices. The display panel may display information received from sensors contained within the blending container 14 or information received from the blending base 18 or the blending device 10. The display panel may further display information received from another wireless device that is in operative communication with the blending container 14. For example, a wireless device, such as a tablet, may be used to download recipes or blending programs from a remote database or website, such as www.vitamix.com, and download the recipes or programs to the wireless device. The wireless device may then communicate the recipe information to the blending container 14 by way of a wireless controller. A display on the blending container 14 can then display the recipe information to the user in a step by step format so that the user can easily follow the recipe instructions while using the blender.


By way of a non-limiting example, the user may be directed to add ingredients to the blending container 14 upon illumination of one or more of the gradient marker elements 44. Further still, the amount of ingredients may be indicated by illuminating a predetermined one or more of the gradient marker elements 44 so that the user may add such ingredient up to the illuminated gradient marker elements 44. Similarly, the blending container 14 may direct the user to turn on or off a specific blending process, such as through illumination of the gradient marker elements 44 and/or the light. In these embodiments, the light or gradient marker elements 44 may illuminate when the user is to take a step with regard to a recipe, e.g., turn off the blending system 10.


The blending container 14 may include a sensor that is powered by the power source. The sensor may be a wireless sensor operatively coupled with the power source. It should be understood that the sensors described herein are non-limiting examples of the types of sensors that can be powered by the power source of the blending container 14. It should be further understood that any appropriate method for displaying, notifying or otherwise interpreting the information from the sensors can be used in the blending device 10 of the present teachings.


In the embodiment shown in FIG. 3, the blending container 14 includes a sensor 52 for detecting the temperature of the contents of the blending container 14. A display 48 may be operatively connected to the sensor and may display the temperature of the blending container 14 contents to the user. The sensor may be in operative connection with an alarm that is triggered when a desired temperature is reached. By way of a non-limiting example, the alarm may be illumination of the gradient marker elements 44 or light, may be an audible alarm or a combination of such.


The blending container 14 may include a sensor for detecting an air pocket in the content of the blending container 14. The sensor may be operatively connected to a display system that provides notification to the user that there is an air pocket in the contents of the blending container 14. The user can then remove the air pocket by, e.g., stirring the contents, utilizing a tamper to tamp the contents, or adjusting the speed of the blending system 10 accordingly. Further, the sensor may be operatively connected to a control panel that adjusts the blending speed to eliminate the air pocket.


The blending container 14 may include a sensor for detecting vibrations of the blending device 10. The sensor may be operatively connected to a control panel, a display panel or to the blade assembly 56. If, for example, the vibrations from the blending device 10 exceed a predetermined threshold, the display panel may alert the user and/or the blending device 10 may automatically turn off via the control panel. By way of a non-limiting example, the control panel may alert the user by illuminating one of the gradient marker elements 44 or the light, provide an audible alert or a combination of such.


As identified above, the blending container 14 may include the lid 22 selectively attached thereto. A sensor for detecting presence of the lid 22 may be included in the blending container 14. The blending container 14 and the lid 22 may include an interlock feature. The interlock feature may be of any appropriate configuration to generally prevent the blending device 10 from operating when the lid 22 is not on the blending container 14 or is not positioned correctly on the blending container 14. If the sensor does not detect presence of the lid 22 on the blending container 14, the blending device 10 may be configured to be disabled, i.e., not operate.


In an embodiment, the lid 22 may include a magnet and the blending container 14 may include a magnet and a sensor, such as a reed switch (not shown) in its proximity. The reed switch may be utilized to indicate when both magnets are in sufficient proximity to indicate that the lid 22 is on the blending container 14.


The blending container 14 may include a sensor as part of an interlock feature 60. In the embodiment shown in FIGS. 4A and 4B, the blending container 14 and blade assembly 56 may include the interlock feature 60. The interlock feature 60 may be of any appropriate configuration to generally prevent access to the blade 124 when it is spinning. As shown in FIG. 4A, for example, the blending container 14 may include a first tab 192 extending therefrom. As shown in FIG. 4A, the first tab 192 may include a magnet 196 embedded therein. The at least one magnet 196 may be secured with the blending container 14 in any appropriate manner. By way of a non-limiting example, the magnet 196 may be welded into a pocket 200 formed in the blending container 14 between the inner layer 84 and the outer layer 88. In a further non-limiting example, the magnet 196 may be adhered, such as through use of an adhesive, between the inner layer 84 and the outer layer 88 of the blending container 14.


Further, as shown, the blending container 14 may include a second tab 204 extending therefrom. The second tab 204 may be of a similar configuration as the first tab 192, but may be of a different size. Further, the second tab 204 may be offset from the first tab 192 along the circumference of the blending container 14 at an angle that is other than 180 degrees. In other words, the first tab 192 and second tab 204 are not aligned with one another, as described in more detail below. The second tab 204 may include a second magnet 208 embedded therein. The second magnet 208 may be welded into a second pocket 212 formed in the blending container 14 between the inner layer 84 and the outer layer 88. In a further non-limiting example, the second magnet 208 may be adhered, such as through use of an adhesive, between the inner layer 84 and the outer layer 88 of the blending container 32. While the first tab 192 and second tab 204 with the magnet 196 and second magnet 208 are shown and described, any number of tabs and magnets may be used without departing from the present teachings. Further still, the number of tabs and magnets utilized are not limited to that shown. Any appropriate number of tabs and magnets may be utilized, e.g., three, four, etc.


In these embodiments, the first magnet 196 and second magnet 208 may be positioned in the tabs 192 and 204, respectively. Once inserted therein, the inner and outer layers 84, 88 may be sonic welded together. Once sonic welded, the magnets 196 and 208 are melted into the tabs 192 and 204 capturing the magnets 196 and 208 between the inner and outer layers 84, 88.


As shown in FIG. 6, the blender base 24 may include a lip 216 in the opening 116 in the pedestal 76; the lip 216 may generally encompass a majority portion or all of the opening 116. The lip 216 may include first and second recessed portions 220, 224. The first and second recessed portions 220, 224 may be configured such that the tab 192 and second tab 204 are selectively and operatively engageable with such first and second recessed portions 220, 224. The first recessed portion 220 may be shaped and sized such that only the first tab 192 may be capable of operatively engaging it. Similarly, the second recessed portion 224 may be shaped and sized such that only the second tab 204 is operatively engageable therewith.


Further each of the first and second recessed portions 220, 224 may include a sensor, such as a reed switch (not shown) in its proximity. The reed switch may be utilized to indicate when both of the tab 192 and second tab 204 are operatively positioned within the first and second recesses 220, 224. Contacts of the reed switch may be in normally open position when the magnets 196 and 208 are not in proximity thereto, i.e., when the tabs 192 and 204 are not positioned in the first and second recessed portions 220, 224. When the magnets 196 and 208 within the tabs 192, 204, respectively, are moved in operative proximity to the reed switch, the reed switch will close, i.e., the reed switch will close when a magnetic field is present. Once the magnets 196 and 208 are moved away from the switch, the reed switch will go back to its original open position.


When the reed switch is in the open position, the motor (not shown) is configured to be disabled, i.e., not operate. When the motor is disabled, the blade assembly 56 and more particularly, the blade 124 is not capable of operation. Therefore, in order to operate the blending system 10, the blending container 14 and blade assembly 56 must be operatively coupled with the blender base 18. Specifically, the tabs 192 and 208 must be operatively positioned within the first and second recessed portions 220, 224, respectively in order for the blending system 10 to operate. This generally prevents the user from being able to access or otherwise contact the blade 124.


The blending container 14 may be connected to a microprocessor. The microprocessor may be configured to receive inputs from the user (e.g., push-button controls) or from the sensors. The microprocessor may further be configured to receive power from the power source and to perform the tasks described herein. For example, the microprocessor may receive input from the sensors and may be programmed to carry out given tasks based on sensor inputs. The display on the blending container 14 may display any appropriate message received from the microprocessor.


The blending container 14 may include a wireless controller for communicating with the blending base 18 or the blending device 10. The blending container 14 may be configured to communicate wirelessly with other wireless devices (not shown), such as a smartphone, computer, tablet, personal computer, NFC point, or other wireless device. The wireless device may be capable of sending or receiving data, such as a blender program, recipe data or system settings, to the blending container 14 by way of a wireless controller.


The wireless controller may include a memory, a processor, and a wireless control module. The wireless signal may be any wireless signal, such as a Wi-Fi signal, Bluetooth signal, ZigBee signal, or cellular network signal. The wireless controller may be integrally formed with the blending container 14 or may be removably connectable to the blending container 14 through a communication port.


In an embodiment, the wireless device may be capable of downloading and running a software application. The software application may be capable of connecting to a network, such as the Internet. The software application may be capable of accessing step by step recipes or blending programs from a remote database or website, such as www.vitamix.com, and downloading the recipes or programs to the wireless device. One example of communicating the recipe, or other information, from the wireless device to the blending container 14 is through near field communication. For instance, data can be exchanged (e.g., recipes) between the wireless device and the blending container 14 when they are brought into a predefined close proximity of each other. The wireless device may then communicate the recipe information to the blending container 14 by way of the wireless controller. A display on the blending device 10 can then display the recipe information to a user in a step by step format so that the user can easily follow the recipe instructions while using the blender.


In an embodiment, the blender container 14 may communicate with a wireless device such as a tablet. The wireless device may transmit a recipe to the blending container 14. Using the wireless device, a user indicates when each step of the recipe has been completed (e.g., the ingredients have been added to the blending container). Once the steps of the recipe have been confirmed, the wireless device may transmit the blend profile (e.g., the motor speed, duration, etc.) to the blending container 14. Instructions to start the blending device 10 may be received from the tablet or the user may start the blending device by, for example, hitting the start button on the blending device 10.


In an embodiment, the blending container 14 includes one or more sensors configured to sense parameters of the blending device 10. The blending container 14 further includes a wireless controller configured to send a wireless signal related to one or more of the sensed parameters. The sensed parameters may include temperature, cycle time, cycle count, or other parameters. The blending container 14 may communicate the sensed parameters to the blending device 10.


In an embodiment, the wireless controller is configured to receive a blending program. The blender container 14 may communicate the blending program to the blending device 10. The blending program may comprise at least one motor speed and at least one time interval for the given motor speed. The program may be stored on a memory and recalled by the blending container 14 or the blending device 10.


The power source for the blending device 10 may be positioned in the blending container 14, e.g., in the lid 22, the body 26, the handle 30, the base 34 or any combination thereof. The power source may also be located in the blending base 18 such that when the blending container 14 is attached to the blending base 18, the power source positioned in the blending base could be used to power the blending container 18. The power source may be wireless. Non-limiting examples of power supplies include energy storage devices and rechargeable and regenerative power supplies.


In the embodiment depicted in FIG. 1, the power source is an energy storage device, specifically a battery 36 located in the handle 30 of the blending container 14. The battery 36 can be a rechargeable battery. The battery 36 can be recharged using the base of the blending device 10. For example, when the base 18 of the blending device 10 is plugged in, the power from the base may be used to charge the rechargeable battery 36. The battery 36 may also be charged on an external charging stand 40 when the blending device 10 is not being used. In the embodiment depicted in FIG. 2, the charging stand 40 is generally shaped like the blender base 18. However, it should be appreciated that the charging stand 40 may be of any appropriate configuration and is not limited to that shown and described. For example, the charging stand 40 can accommodate the blending container 14 such that the base of the blending container 14 is in contact with the charging stand 40. Alternatively, the lid portion of the blending container 14 could be in contact with the charging stand (i.e., the blending container 14 can be stored upside down on the charging stand).


The blending container 14 can also be powered using regenerative energy. For example, a coil may be embedded or encapsulated in the blending container 14. A magnet in operative proximity to the coil induces an electrical current and provides power to the blending container 14. The magnet moves with the movement of the blending device 10. When the magnet passes by the coil in the blending container 14, an electric current is induced and is available to provide power to the blending container 14. The magnet may be positioned in the blender base 18. The regenerative energy may be used to charge the rechargeable battery 36.


Other types of energy may be used to power the blender container 14. For example, solar energy could be the power source or could be used to recharge the power source.


Any of the described power sources could be used to charge or recharge an energy storage device such as a battery or capacitor.


Although the embodiments of the present teachings have been illustrated in the accompanying drawings and described in the foregoing detailed description, it is to be understood that the present teachings are not to be limited to just the embodiments disclosed, but that the present teachings described herein are capable of numerous rearrangements, modifications and substitutions without departing from the scope of the claims hereafter. The claims as follows are intended to include all modifications and alterations insofar as they come within the scope of the claims or the equivalent thereof.

Claims
  • 1. A blending device comprising: a base comprising a motor;a blending container operatively positionable on the base, the blending container comprising a blade assembly;a lid selectively attached to the blending container;an interlock feature contained within the blending container and the lid, the interlock feature preventing operation of either the blade assembly or the motor when the lid is not positioned on the blending container; anda wireless controller positioned in the blending container, the wireless controller configured to communicate with the base,wherein the interlock feature comprises a sensor configured to detect presence of the lid on the blending container, and wherein the sensor and wireless controller are sealed within a body of the container; andwherein the wireless controller is configured to communicate with a wireless device to receive a recipe from the wireless device, and configured to receive a command from the wireless device to start the motor.
  • 2. The blending device of claim 1, wherein the sensor is a reed switch.
  • 3. The blending device of claim 1, wherein the sensor comprises a magnet positioned in the lid and a reed switch positioned in the blending container.
  • 4. The blending device of claim 3, wherein the reed switch indicates when the magnet in the lid is in proximity to the reed switch to indicate that the lid is positioned on the blending container.
  • 5. The blending device of claim 1, wherein the wireless controller comprises a near field communication device.
  • 6. The blending device of claim 1, wherein the wireless controller is configured to communicate utilizing near field communication.
  • 7. The blending device of claim 1, wherein the wireless controller is configured to communicate with the wireless device using near field communication to receive the recipe.
  • 8. The blending device of claim 1, wherein the interlock feature prevents operation of the blade assembly and motor when the lid is not positioned on the container.
  • 9. The blending device of claim 1, wherein the interlock feature comprises: a second sensor contained within the lid, the sensor and second sensor preventing operation of the motor and blade assembly when the lid is not positioned on the blending container.
  • 10. The blending container of claim 9, wherein the sensor comprises a magnet and the second sensor comprises a reed switch.
  • 11. The blending device of claim 10, wherein the reed switch indicates when the magnet in the lid is in proximity to the reed switch to indicate that the lid is positioned on the blending container.
  • 12. A blending device comprising: a base comprising a motor;a blending container operatively positionable on the base, the blending container comprising a blade assembly, wherein the motor drives the blade assembly;a lid selectively attached to the blending container;a wireless controller positioned in the blending container, the wireless controller configured to communicate with a wireless device via near field communication to receive a recipe from the wireless device, and configured to: communicate with the base via near field communications to facilitate execution of the recipe,receive a command from the wireless device to start the motor, andstart the motor in response to receiving the command;an interlock feature contained within the blending container and the lid, the interlock feature preventing operation of the blade assembly when the lid is not positioned on the blending container.
  • 13. The blending device of claim 12, wherein the interlock feature comprises: a first sensor contained within the blending container;a second sensor contained within the lid, the first and second sensors preventing operation of the motor and blade assembly when the lid is not positioned on the blending container.
  • 14. The blending container of claim 13, wherein the first sensor comprises a magnet and the second sensor comprises a reed switch, the reed switch indicates when the magnet in the lid is in proximity to the reed switch to indicate that the lid is positioned on the blending container.
  • 15. A blending device comprising: a base comprising a motor;a blending container operatively positionable on the base, the blending container comprising a blade assembly, wherein the motor drives the blade assembly;a lid selectively attached to the blending container;a wireless controller positioned in the blending container, the wireless controller configured to communicate with a wireless device via near field communication, wherein the wireless controller is configured to communicate with the wireless device to receive a recipe from the wireless device, and configured to receive a command from the wireless device to start the motor;an interlock feature contained within the blending container and the lid, the interlocking feature preventing operation of the wireless controller when the lid is not positioned on the blending container.
  • 16. The blending device of claim 15, wherein the interlock feature prevents operation of the blade assembly when the lid is not positioned on the blending container.
  • 17. The blending device of claim 15, wherein the interlock feature prevents operation of the motor when the lid is not positioned on the blending container.
CROSS-REFERENCE TO RELATED APPLICATION

This application is a continuation of U.S. patent application Ser. No. 14/213,557, entitled “POWERED BLENDING CONTAINER,” filed on Mar. 14, 2014, which claims priority to U.S. Provisional Application No. 61/787,594 entitled “SELF-POWERED AND CHARGING BLENDER JAR,” filed on Mar. 15, 2013, which are hereby incorporated by reference in their entirety.

US Referenced Citations (272)
Number Name Date Kind
112477 Merrill Mar 1871 A
181013 Sawyer Aug 1876 A
298503 Rex May 1884 A
400566 Harry Apr 1889 A
460265 Mulford Sep 1891 A
698755 Stiehle Apr 1902 A
742955 Augur Nov 1903 A
747249 Smith Dec 1903 A
796692 Scantlin Aug 1905 A
937772 Cullen Oct 1909 A
1139534 Klenk May 1915 A
1380066 Johnson May 1921 A
2012113 Thompson Aug 1935 A
2086858 Dunkelberger Jul 1937 A
2246054 Marty Jun 1941 A
2282866 Hagen May 1942 A
2404915 McCullough Jul 1946 A
D163117 Hobbs May 1951 S
2626078 Hutchisson Jan 1953 A
2628081 Laird Feb 1953 A
2711644 Myers Jun 1955 A
2761659 Collura Sep 1956 A
2774576 Frank Dec 1956 A
2776691 Tupper Jan 1957 A
D180096 Moore Apr 1957 S
2798701 Francesco Jul 1957 A
2860550 Louis Nov 1958 A
2897862 Malz Aug 1959 A
2924349 Huck Feb 1960 A
2942301 Price Jun 1960 A
2954174 Polleys Sep 1960 A
2955186 Ritter Oct 1960 A
3064949 Dewenter Nov 1962 A
3082900 Goodman Mar 1963 A
D198303 Dewenter May 1964 S
3175594 Ivar Mar 1965 A
3216473 Dewenter Nov 1965 A
3223486 Holl Dec 1965 A
D204117 Sesa Mar 1966 S
3240246 Dewenter Mar 1966 A
3299226 Edwards Jan 1967 A
3311353 Rogenski Mar 1967 A
D207692 Dykes May 1967 S
3342425 Morton Sep 1967 A
3355045 David Nov 1967 A
3362590 Martin Jan 1968 A
3363820 Schilling Jan 1968 A
3417972 Vincent Dec 1968 A
3419196 Moore Dec 1968 A
3441173 Edwards Apr 1969 A
D217178 Crider Apr 1970 S
3548280 Cockroft Dec 1970 A
D220416 Folden Apr 1971 S
3612126 Emmons Oct 1971 A
3627008 Samuelian Dec 1971 A
3731059 Wilson May 1973 A
3738583 Berland Jun 1973 A
D227535 Grimes Jul 1973 S
D228698 Barnard Oct 1973 S
3812995 Lewis May 1974 A
D232297 Mantelet Aug 1974 S
3841528 Eisenberg Oct 1974 A
3873435 Ziebarth Mar 1975 A
3943421 Shibata et al. Mar 1976 A
3951351 Ernster et al. Apr 1976 A
3963220 Ohchi Jun 1976 A
D241228 Boduch Aug 1976 S
4003555 Swartz Jan 1977 A
4087053 Voglesonger May 1978 A
D257315 Keon Oct 1980 S
D259133 Klawitter May 1981 S
4561782 Jacobsen Dec 1985 A
4568193 Contri et al. Feb 1986 A
D282896 Conti Mar 1986 S
D286726 Daenen Nov 1986 S
D287324 Schmidt Dec 1986 S
4655373 Essen Apr 1987 A
4660733 Snyder Apr 1987 A
4664530 Kurome May 1987 A
4671452 Pupp Jun 1987 A
4686356 Ueda et al. Aug 1987 A
D291659 Powell Sep 1987 S
4762057 Hirota et al. Aug 1988 A
4822172 Stottmann Apr 1989 A
4891966 Kramer Jan 1990 A
4893942 Stottmann Jan 1990 A
4911557 Dormer Mar 1990 A
D309077 Pomroy Jul 1990 S
4968864 Doi et al. Nov 1990 A
4981365 Bow Jan 1991 A
5156867 Leuthold et al. Oct 1992 A
D335382 O'brien May 1993 S
D336590 Barnard Jun 1993 S
5219419 Prothe Jun 1993 A
5226558 Whitney Jul 1993 A
5267211 Kobayashi et al. Nov 1993 A
5267790 Sutherland et al. Dec 1993 A
5287980 Saltz Feb 1994 A
5316382 Penaranda et al. May 1994 A
5323973 Ferrara Jun 1994 A
5332115 Schafer Jul 1994 A
D350451 Dickson Sep 1994 S
5347205 Piland Sep 1994 A
5360176 Mugge Nov 1994 A
5363746 Gordon Nov 1994 A
5392695 Junkel Feb 1995 A
5397022 Schafer Mar 1995 A
5487511 Sansone Jan 1996 A
5531153 Maruyama et al. Jul 1996 A
5551594 Schafer Sep 1996 A
5556198 Dickson, Jr. et al. Sep 1996 A
5562020 Shigeshiro Oct 1996 A
5577735 Reed et al. Nov 1996 A
5589119 Hetherington Dec 1996 A
5605090 Mantani et al. Feb 1997 A
5616083 Subbaraman Apr 1997 A
5660467 Mineo et al. Aug 1997 A
5660468 Okajima Aug 1997 A
5678726 Porteous Oct 1997 A
5738240 Vavra Apr 1998 A
5768978 Dorner et al. Jun 1998 A
5823382 Van Giezen Oct 1998 A
5829341 Lin Nov 1998 A
5839356 Dornbush et al. Nov 1998 A
5888565 Gics Mar 1999 A
5957577 Dickson Sep 1999 A
5958484 Gics Sep 1999 A
5967021 Yung Oct 1999 A
6065861 Chen May 2000 A
D429956 Bohannon Aug 2000 S
6116469 Wallays Sep 2000 A
D435192 Bohannon Dec 2000 S
D437192 Verherbrugghen Feb 2001 S
D437731 Thackray Feb 2001 S
6210033 Karkos, Jr. et al. Apr 2001 B1
D452296 Egnell Dec 2001 S
6364522 Kolar et al. Apr 2002 B2
6390665 Silveria May 2002 B1
D458723 Malvasio Jun 2002 S
6402365 Wong Jun 2002 B1
6609821 Wulf et al. Aug 2003 B2
D480904 Backes Oct 2003 S
D480915 Kolar Oct 2003 S
6632013 Wulf Oct 2003 B2
6705484 Schafer Mar 2004 B2
6715706 Planca Apr 2004 B1
D491019 Marsden Jun 2004 S
D495925 Ulanski Sep 2004 S
6811303 Dickson Nov 2004 B2
6854876 Dickson Feb 2005 B2
D508187 Dais Aug 2005 S
D508188 Zettle Aug 2005 S
6959562 Navedo et al. Nov 2005 B2
6979117 Dickson Dec 2005 B2
D514458 Lawson Feb 2006 S
D514868 Achenbach Feb 2006 S
D521316 Katz May 2006 S
7047872 Mulle May 2006 B2
7063456 Miller Jun 2006 B2
D525080 Katz Jul 2006 S
D526839 Boozer Aug 2006 S
D527575 Ulanski Sep 2006 S
D527588 De Groote Sep 2006 S
D528363 Ulanski Sep 2006 S
7267478 Miller Sep 2007 B2
D552916 Bodum Oct 2007 S
7275666 Rukavina Oct 2007 B2
7281842 Dickson Oct 2007 B2
7350963 Williams Apr 2008 B2
7357273 Lutz Apr 2008 B1
D568156 Wilson May 2008 S
D577545 Ulanski Sep 2008 S
7422362 Sands Sep 2008 B2
D587526 Barnard Mar 2009 S
D588406 Ulanski Mar 2009 S
7520659 Wulf Apr 2009 B2
D597380 Epstein Aug 2009 S
7632007 Wulf Dec 2009 B2
7648264 Breviere Jan 2010 B2
D611384 Biegel Mar 2010 S
D621656 Ulanski Aug 2010 S
D637862 Fouquet May 2011 S
7975868 Flies Jul 2011 B1
D645340 Menard Sep 2011 S
D655133 Brinckerhoff Mar 2012 S
D661947 Conti Jun 2012 S
D662359 Boozer Jun 2012 S
D664808 Dickson Aug 2012 S
D672617 Stamper Dec 2012 S
D673010 Stamper Dec 2012 S
D678727 Kolar Mar 2013 S
D685263 Danenberg Jul 2013 S
8529120 Ulanski Sep 2013 B2
D698649 Quint Feb 2014 S
D705064 Sy May 2014 S
D705606 Coakley May 2014 S
D708903 Wong Jul 2014 S
D711192 Picozza Aug 2014 S
8814011 Ulanski Aug 2014 B2
D738670 Sands Sep 2015 S
9149155 Vidal Oct 2015 B2
D742172 Dickson Nov 2015 S
9259122 Martin et al. Feb 2016 B2
D753482 Serrano Apr 2016 S
D753954 Schreiber Apr 2016 S
D756771 Covey May 2016 S
9370280 Conti Jun 2016 B2
D777515 Potter Jan 2017 S
D782247 Kim Mar 2017 S
D783354 Smith Apr 2017 S
D783355 Tu Apr 2017 S
D783356 Kim Apr 2017 S
D793227 Maskell Aug 2017 S
D798109 Ulanski Sep 2017 S
20020009017 Kolar et al. Jan 2002 A1
20020141286 Wulf Oct 2002 A1
20020176320 Wulf et al. Nov 2002 A1
20030121189 Williams Jul 2003 A1
20030147234 Harada Aug 2003 A1
20030213373 Dickson Nov 2003 A1
20030214875 Dickson Nov 2003 A1
20040011798 Dubois Jan 2004 A1
20040100862 Arroubi May 2004 A1
20040203387 Grannan Oct 2004 A1
20050018534 Nikkah Jan 2005 A1
20050061821 Smith Mar 2005 A1
20050099884 Lee May 2005 A1
20050133514 Schutz Jun 2005 A1
20050229795 Stuckey Oct 2005 A1
20050258197 Rukavina Nov 2005 A1
20060086843 Lin et al. Apr 2006 A1
20060108372 Aiken May 2006 A1
20060169715 Emmendorfer et al. Aug 2006 A1
20060176765 Pryor Aug 2006 A1
20060203610 Bohannon, Jr. et al. Sep 2006 A1
20060214765 Pitchers et al. Sep 2006 A1
20060261066 Boozer Nov 2006 A1
20070165484 Branson Jul 2007 A1
20070210194 Carnevale Sep 2007 A1
20070221668 Baarman et al. Sep 2007 A1
20080163767 Wu Chang Jul 2008 A1
20080170465 Bohannon Jul 2008 A1
20090032551 Mcginley Feb 2009 A1
20090045229 Mcginley Feb 2009 A1
20090078594 Lookholder Mar 2009 A1
20090129200 Breviere May 2009 A1
20090167506 Wong Jul 2009 A1
20090238034 Ulanski Sep 2009 A1
20100227038 Carroll, Jr. Sep 2010 A1
20110046786 Wulf Feb 2011 A1
20110189358 Herbert Aug 2011 A1
20110199852 Martin Aug 2011 A1
20110210195 Garcia Sep 2011 A1
20110240624 Zhang Oct 2011 A1
20110248108 Carriere Oct 2011 A1
20120206995 Wu Aug 2012 A1
20130042767 Alet Vidal Feb 2013 A1
20130074706 Fevre Mar 2013 A1
20130153572 Gillette Jun 2013 A1
20130192477 Hoare Aug 2013 A1
20140144804 Roodnat May 2014 A1
20140233344 Aliberti Aug 2014 A1
20140247686 Arnett Sep 2014 A1
20150008255 Lin Jan 2015 A1
20150044344 Choi Feb 2015 A1
20150258514 Boozer Sep 2015 A1
20150265983 Fleming Sep 2015 A1
20150272394 Lin Oct 2015 A1
20150366385 Wang Dec 2015 A1
20170224169 Kolar Aug 2017 A1
20170274332 Gandhi Sep 2017 A1
20170283149 Rhue Oct 2017 A1
Foreign Referenced Citations (34)
Number Date Country
1860663 Nov 2006 CN
200939970 Aug 2007 CN
200973620 Nov 2007 CN
101194807 Jun 2008 CN
201542964 Aug 2010 CN
201899991 Jul 2011 CN
202312540 Jul 2012 CN
102892344 Jan 2013 CN
19539382 Jan 1997 DE
19947466 May 2001 DE
0963726 Dec 1999 EP
2548485 Jan 2013 EP
2585676 Feb 1987 FR
3013649 Jul 2003 GB
2398733 Sep 2004 GB
401145030 Jun 1989 JP
H1145031 Jun 1989 JP
401310616 Dec 1989 JP
403193013 Aug 1991 JP
404017820 Jan 1992 JP
406178734 Jun 1994 JP
H0937970 Feb 1997 JP
2002-210287 Jul 2002 JP
2005-04014 7 Feb 2005 JP
10-1995-0003546 Feb 1995 KR
20-1999-0001638 Jan 1999 KR
10-2001-0073392 Aug 2001 KR
10-2013-0085276 Jul 2013 KR
WO9615706 May 1996 WO
WO03001954 Jan 2003 WO
2005031952 Apr 2005 WO
2006104651 Oct 2006 WO
2006124051 Nov 2006 WO
WO2007061967 May 2007 WO
Non-Patent Literature Citations (10)
Entry
Young, Lee, International Search Report and Written Opinion, PCT/US2015/020769, dated Jun. 17, 2015, ISA/US, Alexandria, Virginia.
International Search Report for PCT/US2015/021663 dated Jun. 25, 2015.
Annex to Form PCT/ISA/206 Communication Relating to the Results of the Partial International Search (International Application No. PCT/US2009/001077—1 page from communication dated Jun. 29, 2009).
Copenheaver, Blaine, International Search Report and Written Opinion, PCT/US2014/029134, dated Aug. 1, 2014, International Search Authority/USA.
Young, Lee W., International Search Report and Written Opinion, PCT/US2014/029384, dated Aug. 11, 2014, International Search Authority/USA.
Gaggia Espanola, S.A., ipanerma, brochure, undated.
Gaggia Espanola, S.A., Copacabana, brochure, undated.
Gaggia Espanola, S.A., ipanema Space-Saving High Technology, brochure, undated.
Communication pursuant to Article 94(3) European Patent Office regarding Application No. 14762667.5, dated Nov. 29, 2018.
Notification of Reexamination in connection with Application No. 201480013182.4, dated Sep. 20, 2019, 8 pages.
Related Publications (1)
Number Date Country
20170224169 A1 Aug 2017 US
Provisional Applications (1)
Number Date Country
61787594 Mar 2013 US
Continuations (1)
Number Date Country
Parent 14213557 Mar 2014 US
Child 15497261 US