Some printing devices operate to dispense a liquid onto a surface of a substrate. In some examples, these printing devices may include two-dimensional (2D) and three-dimensional (3D) printing devices. In the context of a 2D printing device, a liquid such as an ink may be deposited onto the surface of the substrate. In the context of a 3D printing device, an additive manufacturing liquid may be dispensed onto a surface of a build platform in order to build up a 3D object during an additive manufacturing process. In these examples, the print liquid is supplied to such printing devices from a reservoir or other supply. The print liquid reservoir holds a volume of print liquid that is passed to a liquid deposition device and ultimately deposited on a surface.
The accompanying drawings illustrate various examples of the principles described herein and are part of the specification. The illustrated examples are given merely for illustration, and do not limit the scope of the claims.
Throughout the drawings, identical reference numbers designate similar, but not necessarily identical, elements. The figures are not necessarily to scale, and the size of some parts may be exaggerated to more clearly illustrate the example shown. Moreover, the drawings provide examples and/or implementations consistent with the description; however, the description is not limited to the examples and/or implementations provided in the drawings.
In order to handle the large volume of prints provided by multi-user businesses or institutional environments, some printing devices include relatively large, replaceable fluid supplies of printing fluid. In some examples, these fluid supplies are inserted into and, while resident within the printing device, provides printing fluid to the printing device. These fluid supplies are able to produce tens of thousands of pages before the fluid supply is to be replaced. Consequently, these fluid supplies may maintain relatively large volumes of printing fluid; as much as 5 or more liters per color or type of fluid used by the printing device. Other type of printing devices also may include internal reservoirs that may maintain a relatively large amount of printing fluid. These internal reservoirs may be “topped-off” or resupplied by a fluid supply being fluidically coupled thereto.
These printing devices may also, in some examples, implement continuous fluid supply systems (CFSS), sometimes called continuous ink supply systems (CISS), that may hold volumes greater than or equal to their fluid supply-based equivalents. As many as 3 or more liters of printing fluid may be implemented to completely refill an internal reservoir. However, this refill process can be time-consuming and cumbersome.
The present specification describes a print supply, the print supply to connect to a printing device to provide a print material to the printing device that includes a machine and human readable print material gauge system, that includes an integrated circuit including a data interface to transfer print material level information describing a level of print material within the print supply and a display to represent the level of print material within the print supply.
The present specification further describes a replaceable printing fluid supply that includes a container to hold a volume of printing fluid, the container comprising a bag to maintain a fluid therein and a box to hold the bag therein; a data interface; logic to interface with a printing device through the data interface, the logic storing code and information to: inform the printing device about a level of the fluid, and respond to authentication challenges; and a machine and human readable fluid gauge system to receive, via the data interface, fluid level data describing the level of fluid within the bag and present a fluid level indicator on a display of the fluid gauge system.
The present specification also describes a fluid supply level indicator that includes a microprocessor to interface with an electrical interface of a printing device; and a display to optically represent data describing a fluid level within a fluid supply coupled to the fluid supply level indicator.
As used in the present specification and in the appended claims, the term “fluid” is meant to be understood as any substance that may be used to form a two-dimensional (2D) image or three-dimensional (3D) object. Examples of fluids may include, without limitations, an ink of any type or color or an additive manufacturing fabrication agent. Still further, as used in the present specification and in the appended claims, the term “fabrication agent” refers to any number of agents that are deposited and includes for example a fusing agent, an inhibitor agent, a binding agent, a coloring agent, and/or a material delivery agent. A material delivery agent refers to a liquid carrier that includes suspended particles of material used in the additive manufacturing process.
Turning now to the figures,
In any example presented herein, the print supply (100) may include a print material gauge system (105). The print material gauge system (105) may provide a machine and human readable indication of the amount of material within the print supply (100). By way of example, the print material gauge system (105) may indicate to a printing device, via an electrical connection, the amount of print material remaining within the print supply (100). In this example, the print material gauge system (105) is both machine readable and writable. In these examples, the print supply (100) may be electrically and communicatively coupled to the print supply (100). The electrical and communicative coupling of the print supply (100) to the printing device may occur before, after, or concurrently with the print supply (100) forming a fluidic connection with the printing device in order to transfer the print material to the printing device.
The print material gauge system (105) may include a integrated circuit (110) including a data interface (120), and a display (115). In an example, the integrated circuit (110) receives a communication from the printing device via the data interface (120) describing the amount of print material within the print supply (100). The integrated circuit (110) may send signals to the display (115) so as to cause a human readable indicator as to the amount of print material within the print supply (100). These signals may be received as specific electrical signals that together create a visual indication that is human readable. In any example presented herein, the integrated circuit (110) may include any memory device such as Random Access Memory (RAM), Read Only Memory (ROM), Hard Disk Drive (HDD) memory, or an EEPROM memory device, among others. In any example presented herein the integrated circuit may include a microprocessor.
In an example, the integrated circuit (110) may communicate with and receive electrical signals from a secure microprocessor interfacing the print supply (100) with the printing device. The secure microprocessor, being electrically coupled to the printing device, may communicate stored print material level information to the printing device. In this example, the printing device may, in real time, send signals through the data interface (120) between the secure microprocessor and the printing device to the integrated circuit (110) in order to provide the indication of the level of print material in the print supply (100). In this example, the secure microprocessor may include an i2C bus which is a synchronous, multi-master, multi-slave, packet switched, single-ended, serial computer bus produced by Philips Semiconductor (now NXP Semiconductors®). The i2C bus may provide for the connection of the printing device with the secure microprocessor and the integrated circuit (110) providing for an independent connection to the integrated circuit (110).
In an example, the display (115) may be an e-ink display. In this example, the e-ink display (115) may receive specific voltage signals from the integrated circuit (110) in order to display the print material levels thereon. In this example, the e-ink display is a bi-stable technology. Consequently, the e-ink display may retain its display state even when power is removed from the integrated circuit (110) and display (115) when the print supply (100) is removed from the printing device. This allows a user to visually determine the amount of print material within the print supply (100) without electrically coupling the print supply (100) to a printing device first. With an e-ink display a user may readily read the levels of print materials within the print supply (100). By being able to determine the print material levels at a glance, a user may prevent the loss or waste of print materials due to premature disposal of the print supply (100). This may be especially true where the print supply (100) is a bag-in-box type print supply (100). Indeed, with a bag-in-box type print supply (100), the amount of print material remaining in the print supply (100) may not be readily discernable when a user, for example, shakes the print supply (100) in order to determine if print material remains therein.
Any type of data may be presented by the display (115). Examples of data may include a type of print material maintained within the print supply (100). A specific “type” of a print material may include descriptions of any characteristic associated with the print material. These characteristics may include a color of the print material, a viscosity of the print material, a size of particles within the print material, a chemical composition of the print material, a manufacturer or supplier of the print material, and/or the manufacturing date of the print material. Consequently, the display (115) may include a visual representation of data describing a color of the print material within the print supply, expiration date of the print material within the print supply, a chemical composition of the print material within the print supply, a level of print material within the print supply, a depletion of the print material within the print supply, information describing a supplier, information that indicates that the print material has become defective, information describing an owner of the print supply or customer who has received the print supply, or combinations thereof.
In an example, the display (115) may also include a machine-readable representation of information associated with the print supply (100) and the print material as described herein. By way of an example, the machine-readable representation may be in the form of any barcode including QR codes. Consequently, the barcode and/or QR code may, when ready by a barcode and/or QR code reader, provide to a user with the characteristics related to the print material maintained within the print supply (100). These characteristics may include a color of the print material, a viscosity of the print material, a size of particles within the print material, a chemical composition of the print material, a manufacturer or supplier of the print material, and/or the manufacturing date of the print material. Consequently, the display (115) may include a visual representation of data describing a color of the print material within the print supply, expiration date of the print material within the print supply, a chemical composition of the print material within the print supply, a level of print material within the print supply, a depletion of the print material within the print supply, information describing a supplier, or combinations thereof. The use of the barcode and/or QR code may allow a user to quickly scan the barcode and/or QR code with a scanner in order to read this data. In an example, the barcode and/or QR code reader may scan a plurality of print supplies (100) and tally up a total amount of print material among the plurality of print supplies (100) scanned.
In an example, the print supply (100) itself may maintain any amount of print material therein and may be formatted to maintain any amount of print material therein. However, the amount of print material maintained in the print supply (100) may not be readily determined visually especially in situations where the print supply (100) is opaque. In some examples presented herein, the print supply (100) may include a bag within a box with the bag maintaining the print material therein. These print supplies (100) may be stored for future use in connection with the printing device. Consequently, the amount of print material maintained within the print supply (100) may vary along the lifetime of the print supply (100). Any number of times, the print supply (100) may be physically, electrically, mechanically and/or fluidically coupled to the printing device in order to transfer any amount of print material from the print supply (100) to, for example, an internal reservoir within the printing device. Therefore, it may take a number of iterations of coupling the print supply (100) to the printing device, transferring an amount of print material from the print supply (100) to the reservoir of the printing device, and decoupling the print supply (100) from the printing device for storage. As the print material is depleted from the print supply (100), a processor of the printing device may update a secure microprocessor of the print supply (100) as described herein. The processor of the printing device and/or the secure microprocessor itself may also provide electrical signals to the integrated circuit (110) so that the integrated circuit (110) can update the information to be displayed on the display (115).
In any example presented herein, the container (205) may include a bag (210) maintained within a box (215). In some examples presented herein, this type of container (205) may referred to as a bag-in-box fluid supply. The box (215) may provide a structure that is relatively easier to be handled by a user than the bag (210) alone. Accordingly, ease of handling makes the replacement of liquid supplies more facile and leads to a more satisfactory user experience. However, in some examples, the container (205) may include the bag (210) without the box (215). The container (205) may be any type of container that may hold an amount of fluid and the present specification contemplates the use of these different types of containers.
In any example presented herein, the replaceable printing fluid supply (200) may include logic (220). The data interface (235) of the logic (220) may include any number of electrical leads that, when coupled to a data interface of a printing device, electrically and communicatively couples the logic (220) and/or the fluid gauge system (105) to a processor of the printing device. The number of leads of the data interface (235) may vary based on the data to be transferred to and from the replaceable printing fluid supply (200) by the printing device. In addition, the data interface (235) of the logic (220) may include a number of leads that securely electrically and communicatively couple the printing device with the fluid gauge system (225) described herein. In an example, the logic (220) may be coupled to an i2C bus that allows for the logic (220) to be communicatively coupled with the printing device and a microprocessor associated with the fluid gauge system (225) described herein. The i2C bus may include a serial interface to interface with a printing device. In nay example presented herein, the logic (220) may be an integrated circuit, an application specific integrated circuit, or a microprocessor, among others.
In any example presented herein, the logic (220) may interface with the printing device to, via execution of stored code by a processor or microprocessor, inform the printing device about a level of fluid in the replaceable printing fluid supply (200) and responds to authentication challenges associated with the authenticity of the replaceable printing fluid supply.
The fluid gauge system (225) may include a display (230). The display (230) may visually convey, to a user, certain properties and characteristics of the replaceable printing fluid supply (200) and/or a printing fluid maintained therein. As described herein, the display (230) may provide visual information such as a color of the printing fluid, a viscosity of the printing fluid, a size of particles within the printing fluid, a chemical composition of the printing fluid, a manufacturer or supplier of the printing fluid, and/or the manufacturing date of the printing fluid. Consequently, the display (230) may include a visual representation of data describing a color of the printing fluid within the print supply, expiration date of the printing fluid within the replaceable printing fluid supply (200), a chemical composition of the printing fluid within the replaceable printing fluid supply (200), a level of printing fluid within the replaceable printing fluid supply (200), a depletion of the printing fluid within the replaceable printing fluid supply (200), information describing a supplier, or combinations thereof.
In any example presented herein, the display (230) may be an e-ink display (230) that is bi-stable so as to retain a visual representation of the information even when power is removed from the display (230). Power may be removed from the display (230) when, for example, the fluid gauge system (225) and/or replaceable printing fluid supply (200) is removed from a fluid/communication/electrical port of the printing device to which the replaceable printing fluid supply (200) may be coupled.
The fluid supply level indicator (300) may be physically coupled to a fluid supply such as those described in connection with
The display (310) may be any type of device that may visually present a fluid level within a fluid supply as described herein. The fluid supply level indicator (300) may also receive data and/or signals indicating how to present, on the display (310), the level of fluid within the fluid supply. In any example, the display (310) may be an e-ink display. As described herein, the e-ink display may be bi-stable so as to retain information presented thereon even when power is removed from the display (310).
The fluid supply level indicator (300) may selectively interface with a printing device during use. In this example, the interface may be an electrical and/or mechanical interface. In these examples, any data describing the transfer of the printing fluid to the printing device from the fluid supply may be relayed to the microprocessor (305). The microprocessor (305) may then execute computer program code to interpret the data and relay signals to the display (310) so as to reflect the fluid level within the fluid supply.
Throughout the description, the print supply (
The fluidic interface between the fluid supply (400) and the printing device (410) may include any devices that allow for the transfer of a printing fluid from the fluid supply (400) to the printing device (410). These devices may include any valves, fluidic channels, and/or pumps that may be used for the fluid transfer described herein. In an example, the printing device (410) may include a processor and fluid transfer module that, when executed by the processor, monitors for the transfer of fluid and detects, in real time, how much fluid is transferred from the fluid supply (400) to the printing device (410). The printing device (410) may further include a data storage device to maintain a record of how much fluid is transferred from any of a number of fluid supplies (400).
In the example shown in
In any example presented herein, the fluid supply level indicator (405) may include a microprocessor (430). The microprocessor (430) may be communicatively coupled to the printing device (410), the secure microprocessor (415), or combinations of both. In an example, fluid level data describing the level of fluid that is present in the fluid supply (400) may be relayed from the printing device (410) to the microprocessor (430) either directly or via the secure microprocessor (415). The signals received by the microprocessor (430) may be processed by the microprocessor (430) and sent to a display (435). The display (435) may include any device that may receive the signals from the microprocessor (430) and represent those signals defining the level of fluid within the fluid supply (400). The display (435) may display any indicator (440) that indicates visually to a user the amount of fluid remaining in the fluid supply (400). In the example shown in
Although
As described herein, the display (500) may also include a barcode (510). The barcode (510) may be a scannable barcode that may provide the same or more information to a user than that which is presented on the display (500) in
Although
The systems described herein allows for the transfer of fluid from a fluid supply (
The data storage device associated with either the secure microprocessor (
Generally, the data storage devices may comprise a computer readable medium, a computer readable storage medium, or a non-transitory computer readable medium, among others. For example, the data storage device may be, but not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing. More specific examples of the computer readable storage medium may include, for example, the following: an electrical connection having a number of wires, a portable computer diskette, a hard disk, a random-access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or Flash memory), a portable compact disc read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the foregoing. In the context of this document, a computer readable storage medium may be any tangible medium that can contain, or store computer usable program code for use by or in connection with an instruction execution system, apparatus, or device. In another example, a computer readable storage medium may be any non-transitory medium that can contain or store a program for use by or in connection with an instruction execution system, apparatus, or device.
The printing device (
To achieve its desired functionality, the printing device (
The processor may include the hardware architecture to retrieve executable code from the data storage device and execute the executable code. The executable code may, when executed by the processor, cause the processor to implement at least the functionality of the printing device (
The hardware adapters in the printing device (
Aspects of the present system and method are described herein with reference to flowchart illustrations and/or block diagrams of methods, apparatus (systems) and computer program products according to examples of the principles described herein. Each block of the flowchart illustrations and block diagrams, and combinations of blocks in the flowchart illustrations and block diagrams, may be implemented by computer usable program code. The computer usable program code may be provided to a processor of a general-purpose computer, special purpose computer, or other programmable data processing apparatus to produce a machine, such that the computer usable program code, when executed via, for example, the processor of the printing device (
The specification and figures describe a fluid supply that includes a fluid supply level indicator. In examples, having an active display on a continuous printing fluid supply as described herein may provide a way to visually communicate a printing fluid level to a user without relying on a display associated with a printing device or other computing device. Additionally, the active display described herein does not constrain the choices of materials within the fluid supply, the size of the fluid supply, a form factor of the fluid supply, and/or a filling process implementing the fluid supply. In these examples, the display of the fluid supply can be updated in real-time during a fluid transfer process regardless of the orientation of the fluid supply. Further, in examples where the display is an e-ink display, the printing fluid levels may be retained on the display regardless of whether power is or is not coupled to the display. In these examples, the printing fluid levels indicated may be retained form significant amounts of time before the e-ink images degrade. A user who may be responsible for supplying the printing device with printing fluid may easily view the displays of a plurality of fluid supplies in order to readily ascertain the fluid levels within each of the fluid supplies without physically handling the fluid supplies themselves. The fluid supply and fluid supply level indicators described herein provide for a display that may be controlled through a secure microprocessor that may be present in the printing fluid supply. The display can also be scaled to provide other relevant content, such as printing device service provider or dealer logos as well as other descriptive characteristics of the fluid provided within the printing fluid supply.
The preceding description has been presented to illustrate and describe examples of the principles described. This description is not intended to be exhaustive or to limit these principles to any precise form disclosed. Many modifications and variations are possible in light of the above teaching.
Filing Document | Filing Date | Country | Kind |
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PCT/US2018/044828 | 8/1/2018 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/027829 | 2/6/2020 | WO | A |
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Xerox Printer Toner and Ink, Web Infocom Services (p) Ltd, Oct. 30, 2020, Delhi, India <https://www.indiamart.com/webinfocomservices/xerox-printer-toner-and-ink.html>. |
Number | Date | Country | |
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20200369037 A1 | Nov 2020 | US |