EP3942370B1 - Toner container having an encoded member and an alignment guide for locating a sensor relative to the encoded member - Google Patents
Toner container having an encoded member and an alignment guide for locating a sensor relative to the encoded member Download PDFInfo
- Publication number
- EP3942370B1 EP3942370B1 EP20778396.0A EP20778396A EP3942370B1 EP 3942370 B1 EP3942370 B1 EP 3942370B1 EP 20778396 A EP20778396 A EP 20778396A EP 3942370 B1 EP3942370 B1 EP 3942370B1
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- EP
- European Patent Office
- Prior art keywords
- toner container
- housing
- image forming
- forming device
- sensor
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Images
Classifications
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03G—ELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
- G03G21/00—Arrangements not provided for by groups G03G13/00 - G03G19/00, e.g. cleaning, elimination of residual charge
- G03G21/16—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements
- G03G21/1661—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements means for handling parts of the apparatus in the apparatus
- G03G21/1676—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements means for handling parts of the apparatus in the apparatus for the developer unit
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03G—ELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
- G03G15/00—Apparatus for electrographic processes using a charge pattern
- G03G15/06—Apparatus for electrographic processes using a charge pattern for developing
- G03G15/08—Apparatus for electrographic processes using a charge pattern for developing using a solid developer, e.g. powder developer
- G03G15/0822—Arrangements for preparing, mixing, supplying or dispensing developer
- G03G15/0863—Arrangements for preparing, mixing, supplying or dispensing developer provided with identifying means or means for storing process- or use parameters, e.g. an electronic memory
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03G—ELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
- G03G21/00—Arrangements not provided for by groups G03G13/00 - G03G19/00, e.g. cleaning, elimination of residual charge
- G03G21/16—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements
- G03G21/18—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements using a processing cartridge, whereby the process cartridge comprises at least two image processing means in a single unit
- G03G21/1875—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements using a processing cartridge, whereby the process cartridge comprises at least two image processing means in a single unit provided with identifying means or means for storing process- or use parameters, e.g. lifetime of the cartridge
- G03G21/1878—Electronically readable memory
- G03G21/1892—Electronically readable memory for presence detection, authentication
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03G—ELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
- G03G21/00—Arrangements not provided for by groups G03G13/00 - G03G19/00, e.g. cleaning, elimination of residual charge
- G03G21/16—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements
- G03G21/18—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements using a processing cartridge, whereby the process cartridge comprises at least two image processing means in a single unit
- G03G21/1875—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements using a processing cartridge, whereby the process cartridge comprises at least two image processing means in a single unit provided with identifying means or means for storing process- or use parameters, e.g. lifetime of the cartridge
- G03G21/1896—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements using a processing cartridge, whereby the process cartridge comprises at least two image processing means in a single unit provided with identifying means or means for storing process- or use parameters, e.g. lifetime of the cartridge mechanical or optical identification means, e.g. protrusions, bar codes
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03G—ELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
- G03G21/00—Arrangements not provided for by groups G03G13/00 - G03G19/00, e.g. cleaning, elimination of residual charge
- G03G21/16—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements
- G03G21/18—Mechanical means for facilitating the maintenance of the apparatus, e.g. modular arrangements using a processing cartridge, whereby the process cartridge comprises at least two image processing means in a single unit
- G03G21/1839—Means for handling the process cartridge in the apparatus body
- G03G21/1842—Means for handling the process cartridge in the apparatus body for guiding and mounting the process cartridge, positioning, alignment, locks
- G03G21/1853—Means for handling the process cartridge in the apparatus body for guiding and mounting the process cartridge, positioning, alignment, locks the process cartridge being mounted perpendicular to the axis of the photosensitive member
Definitions
- the present disclosure relates generally to image forming devices and more particularly to a toner container having an encoded member and an alignment guide for locating a sensor relative to the encoded member.
- each toner container In electrophotographic image forming devices, one or more replaceable toner containers may be used to supply toner for printing onto sheets of media.
- Each toner container often includes a toner agitator assembly that agitates and mixes toner stored in a toner reservoir to prevent the toner from clumping and that moves the toner to an outlet of the toner container.
- EP 3637191A1 (which claims a priority date preceding that of the present specification, but a publication date of later than the current specification and so is relevant as prior art only under the terms of Article 54(3) EPC) shows a toner container having a common input gear for a toner agitator assembly and an encoded member.
- EP2369423 also discloses pertinent prior art.
- a toner container for use in an electrophotographic image forming device includes, inter alia , a housing having a top, a bottom, a front and a rear positioned between a first side and a second side of the housing of the toner container.
- the housing of the toner container has a reservoir for holding toner.
- An outlet on the front of the housing of the toner container is in fluid communication with the reservoir for exiting toner from the toner container.
- An input gear is positioned at the first side of the housing of the toner container for mating with a corresponding output gear in the image forming device when the toner container is installed in the image forming device.
- the toner container includes an encoded member that is encoded with identifying information of the toner container and that is operatively connected to the input gear such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device when the toner container is installed in the image forming device. At least a portion of the encoded member is exposed on the first side of the housing of the toner container. A first alignment guide on the first side of the housing of the toner container is positioned axially outboard of the encoded member relative to a rotational axis of the input gear and is positioned below an exposed portion of the encoded member.
- the first alignment guide includes a top surface that is unobstructed to contact a sensor housing in the image forming device from below when the toner container is installed in the image forming device. At least a portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the exposed portion of the encoded member.
- Embodiments include those wherein the encoded member is rotatably connected to the input gear such that rotation of the input gear causes rotation of the encoded member.
- the encoded member is positioned on an axially outboard face of the input gear that faces away from the reservoir.
- the top surface of the first alignment guide includes a front portion and a rear portion. The front portion of the top surface of the first alignment guide is positioned closer to the front of the housing of the toner container than the rear portion of the top surface of the first alignment guide is to the front of the housing of the toner container. The front portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container.
- At least a portion of the rear portion of the top surface of the first alignment guide is positioned higher than the rotational axis of the input gear. In some embodiments, at least a portion of the rear portion of the top surface of the first alignment guide extends rearward of the rotational axis of the input gear.
- Embodiments include those wherein the first alignment guide extends outward sideways from the first side of the housing of the toner container.
- the toner container according to claim 1 further includes a second alignment guide on the first side of the housing of the toner container.
- the second alignment guide includes a frontward facing surface that faces toward the front of the housing of the toner container.
- the frontward facing surface extends upward from a rear end of the top surface of the first alignment guide.
- the frontward facing surface is unobstructed to contact the sensor housing in the image forming device when the toner container is installed in the image forming device for limiting a position of the sensor of the image forming device in a direction from the front of the housing of the toner container toward the rear of the housing of the toner container.
- the second alignment guide includes a first guide surface and a second guide surface.
- the second guide surface is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear of the housing of the toner container than the first guide surface is to the rear of the housing of the toner container.
- the first guide surface inclines outward sideways and rearward away from the first side and toward the rear of the housing of the toner container.
- the second guide surface inclines inward sideways and rearward toward the second side and toward the rear of the housing of the toner container.
- the first and second guide surfaces are unobstructed to contact the sensor housing in the image forming device during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear during insertion of the toner container into the image forming device.
- the second alignment guide leads rearward along the first side of the housing of the toner container to the exposed portion of the encoded member.
- each of the first and second guide surfaces is positioned closer to the front of the housing of the toner container than the exposed portion of the encoded member is to the front of the housing of the toner container, and at least a portion of each of the first and second guide surfaces is positioned higher than a portion of the top surface of the first alignment guide.
- a toner container for use in an electrophotographic image forming device includes a housing having a top, a bottom, a front and a rear positioned between a first side and a second side of the housing of the toner container.
- the housing of the toner container has a reservoir for holding toner.
- An outlet on the front of the housing of the toner container is in fluid communication with the reservoir for exiting toner from the toner container.
- An input gear is positioned at the first side of the housing of the toner container for mating with a corresponding output gear in the image forming device when the toner container is installed in the image forming device.
- the toner container includes an encoded member that is encoded with identifying information of the toner container and that is rotatably connected to the input gear such that rotation of the input gear causes rotation of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device when the toner container is installed in the image forming device.
- the encoded member is positioned on an axially outboard face of the input gear that faces away from the reservoir.
- a first alignment guide on the first side of the housing of the toner container is positioned axially outboard of the encoded member relative to a rotational axis of the input gear. The first alignment guide overlaps with the axially outboard face of the input gear as viewed from the first side of the housing of the toner container.
- the first alignment guide includes a top surface that is unobstructed to contact a sensor housing in the image forming device from below when the toner container is installed in the image forming device. At least a portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the encoded member.
- Implementations include those wherein the top surface of the first alignment guide includes a front portion and a rear portion.
- the front portion of the top surface of the first alignment guide is positioned closer to the front of the housing of the toner container than the rear portion of the top surface of the first alignment guide is to the front of the housing of the toner container.
- the front portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container.
- At least a portion of the rear portion of the top surface of the first alignment guide is positioned higher than the rotational axis of the input gear.
- at least a portion of the rear portion of the top surface of the first alignment guide extends rearward of the rotational axis of the input gear.
- Implementations include those wherein the first alignment guide extends outward sideways from the first side of the housing of the toner container.
- the second alignment guide includes a frontward facing surface that faces toward the front of the housing of the toner container.
- the frontward facing surface extends upward from a rear end of the top surface of the first alignment guide.
- the frontward facing surface is unobstructed to contact the sensor housing in the image forming device when the toner container is installed in the image forming device for limiting a position of the sensor of the image forming device in a direction from the front of the housing of the toner container toward the rear of the housing of the toner container.
- the second alignment guide includes a first guide surface and a second guide surface.
- the second guide surface is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear of the housing of the toner container than the first guide surface is to the rear of the housing of the toner container.
- the first guide surface inclines outward sideways and rearward away from the first side and toward the rear of the housing of the toner container.
- the second guide surface inclines inward sideways and rearward toward the second side and toward the rear of the housing of the toner container.
- the first and second guide surfaces are unobstructed to contact the sensor housing in the image forming device during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear during insertion of the toner container into the image forming device.
- at least a portion of each of the first and second guide surfaces is positioned closer to the front of the housing of the toner container than the rotational axis of the input gear is to the front of the housing of the toner container, and at least a portion of each of the first and second guide surfaces is positioned higher than a portion of the top surface of the first alignment guide.
- a toner container for use in an electrophotographic image forming device includes a housing having a top, a bottom, a front and a rear positioned between a first side and a second side of the housing of the toner container.
- the housing of the toner container has a reservoir for holding toner.
- An outlet on the front of the housing of the toner container is in fluid communication with the reservoir for exiting toner from the toner container.
- An input gear is positioned at the first side of the housing of the toner container for mating with a corresponding output gear in the image forming device when the toner container is installed in the image forming device.
- the toner container includes an encoded member that is encoded with identifying information of the toner container and that is operatively connected to the input gear such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device when the toner container is installed in the image forming device. At least a portion of the encoded member is exposed on the first side of the housing of the toner container.
- a first alignment guide on the first side of the housing of the toner container leads rearward along the first side of the housing of the toner container to the exposed portion of the encoded member.
- the first alignment guide includes a first guide surface that inclines outward sideways and rearward away from the first side and toward the rear of the housing of the toner container.
- the first guide surface is unobstructed to contact a sensor housing in the image forming device during insertion of the toner container into the image forming device with the front of the housing of the toner container leading the insertion for moving the sensor housing in the image forming device axially relative to a rotational axis of the input gear during insertion of the toner container into the image forming device.
- Implementations include those wherein the encoded member is rotatably connected to the input gear such that rotation of the input gear causes rotation of the encoded member.
- the encoded member is positioned on an axially outboard face of the input gear that faces away from the reservoir.
- at least a portion of the first guide surface is positioned closer to the front of the housing of the toner container than the rotational axis of the input gear is to the front of the housing of the toner container, and at least a portion of the first guide surface is positioned higher than the rotational axis of the input gear.
- Implementations include those wherein the first alignment guide includes a second guide surface that is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear of the housing of the toner container than the first guide surface is to the rear of the housing of the toner container.
- the second guide surface inclines inward sideways and rearward toward the second side and toward the rear of the housing of the toner container.
- the second guide surface is unobstructed to contact the sensor housing in the image forming device during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear during insertion of the toner container into the image forming device.
- Some implementations include a second alignment guide on the first side of the housing of the toner container.
- the second alignment guide is positioned axially outboard of the encoded member relative to the rotational axis of the input gear and is positioned below the exposed portion of the encoded member.
- the second alignment guide includes a top surface that is unobstructed to contact the sensor housing in the image forming device from below when the toner container is installed in the image forming device. At least a portion of the top surface of the second alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device for aligning the sensor of the image forming device with the exposed portion of the encoded member.
- Some implementations further include a third alignment guide on the first side of the housing of the toner container.
- the third alignment guide includes a frontward facing surface that faces toward the front of the housing of the toner container.
- the frontward facing surface extends upward from a rear end of the top surface of the second alignment guide.
- the frontward facing surface is unobstructed to contact the sensor housing in the image forming device when the toner container is installed in the image forming device for limiting a position of the sensor of the image forming device in a direction from the front of the housing of the toner container toward the rear of the housing of the toner container.
- a preferred method of installing a replaceable unit into an image forming device includes a first alignment guide on the replaceable unit contacting and lifting a sensor housing in the image forming device relative to a frame of the image forming device on which the sensor housing is mounted as the replaceable unit advances during insertion into the image forming device.
- the first alignment guide contacts and maintains the sensor housing in the image forming device at an aligned position where a sensor on the sensor housing is aligned vertically with an encoded member exposed on an exterior of the replaceable unit permitting the sensor to read identifying information of the replaceable unit from an exposed portion of the encoded member during operation.
- the first alignment guide on the replaceable unit contacting and lifting the sensor housing in the image forming device relative to the frame of the image forming device includes the first alignment guide on the replaceable unit lifting the sensor housing in the image forming device against a downward spring bias on the sensor housing.
- a second alignment guide on the replaceable unit contacts and pushes the sensor housing in the image forming device toward the frame of the image forming device and away from the replaceable unit against a spring bias on the sensor housing that is away from the frame of the image forming device and toward the replaceable unit as the replaceable unit advances during insertion into the image forming device; and the second alignment guide on the replaceable unit contacts and permits the sensor housing in the image forming device to move away from the frame of the image forming device and toward the replaceable unit as a result of the spring bias on the sensor housing that is away from the frame of the image forming device and toward the replaceable unit as the replaceable unit advances further during insertion into the image forming device.
- Imaging system 20 includes an image forming device 22 and a computer 24.
- Image forming device 22 communicates with computer 24 via a communications link 26.
- communications link generally refers to any structure that facilitates electronic communication between multiple components and may operate using wired or wireless technology and may include communications over the Internet.
- image forming device 22 is a multifunction machine (sometimes referred to as an all-in-one (AIO) device) that includes a controller 28, a print engine 30, a laser scan unit (LSU) 31, an imaging unit 200, a toner cartridge 100, a user interface 36, a media feed system 38, a media input tray 39, a scanner system 40, a drive motor 70 and a sensor 300.
- Image forming device 22 may communicate with computer 24 via a standard communication protocol, such as, for example, universal serial bus (USB), Ethernet or IEEE 802.xx.
- Image forming device 22 may be, for example, an electrophotographic printer/copier including an integrated scanner system 40 or a standalone electrophotographic printer.
- Controller 28 includes a processor unit and associated electronic memory 29.
- the processor may include one or more integrated circuits in the form of a microprocessor or central processing unit and may be formed as one or more application-specific integrated circuits (ASICs).
- Memory 29 may be any volatile or non-volatile memory or combination thereof, such as, for example, random access memory (RAM), read only memory (ROM), flash memory and/or non-volatile RAM (NVRAM).
- RAM random access memory
- ROM read only memory
- NVRAM non-volatile RAM
- Memory 29 may be in the form of a separate memory (e.g., RAM, ROM, and/or NVRAM), a hard drive, a CD or DVD drive, or any memory device convenient for use with controller 28.
- Controller 28 may be, for example, a combined printer and scanner controller.
- controller 28 communicates with print engine 30 via a communications link 50. Controller 28 communicates with imaging unit 200 and processing circuitry 44 thereon via a communications link 51. Controller 28 communicates with toner cartridge 100 and processing circuitry 45 thereon via a communications link 52. Controller 28 communicates with media feed system 38 via a communications link 53. Controller 28 communicates with scanner system 40 via a communications link 54. User interface 36 is communicatively coupled to controller 28 via a communications link 55. Controller 28 communicates with drive motor 70 via a communications link 56. Controller 28 communicates with sensor 300 via a communications link 57. Controller 28 processes print and scan data and operates print engine 30 during printing and scanner system 40 during scanning.
- Processing circuitry 44, 45 may provide authentication functions, safety and operational interlocks, operating parameters and usage information related to imaging unit 200 and toner cartridge 100, respectively.
- Each of processing circuitry 44, 45 includes a processor unit and associated electronic memory.
- the processor may include one or more integrated circuits in the form of a microprocessor or central processing unit and may include one or more application-specific integrated circuits (ASICs).
- the memory may be any volatile or non-volatile memory or combination thereof or any memory device convenient for use with processing circuitry 44, 45.
- Computer 24, which is optional, may be, for example, a personal computer, including electronic memory 60, such as RAM, ROM, and/or NVRAM, an input device 62, such as a keyboard and/or a mouse, and a display monitor 64.
- Computer 24 also includes a processor, input/output (I/O) interfaces, and may include at least one mass data storage device, such as a hard drive, a CD-ROM and/or a DVD unit (not shown).
- Computer 24 may also be a device capable of communicating with image forming device 22 other than a personal computer such as, for example, a tablet computer, a smartphone, or other electronic device.
- computer 24 includes in its memory a software program including program instructions that function as an imaging driver 66, e.g., printer/scanner driver software, for image forming device 22.
- Imaging driver 66 is in communication with controller 28 of image forming device 22 via communications link 26.
- Imaging driver 66 facilitates communication between image forming device 22 and computer 24.
- One aspect of imaging driver 66 may be, for example, to provide formatted print data to image forming device 22, and more particularly to print engine 30, to print an image.
- Another aspect of imaging driver 66 may be, for example, to facilitate collection of scanned data from scanner system 40.
- image forming device 22 it may be desirable to operate image forming device 22 in a standalone mode.
- image forming device 22 In the standalone mode, image forming device 22 is capable of functioning without computer 24. Accordingly, all or a portion of imaging driver 66, or a similar driver, may be located in controller 28 of image forming device 22 so as to accommodate printing and/or scanning functionality when operating in the standalone mode.
- Print engine 30 includes a laser scan unit (LSU) 31, toner cartridge 100, imaging unit 200 and a fuser 37, all mounted within image forming device 22.
- Imaging unit 200 is removably mounted in image forming device 22 and includes a developer unit 202 that houses a toner reservoir and a toner development system.
- the toner development system utilizes what is commonly referred to as a single component development system.
- the toner development system includes a toner adder roll that provides toner from the toner reservoir of developer unit 202 to a developer roll. A doctor blade provides a metered uniform layer of toner on the surface of the developer roll.
- the toner development system utilizes what is commonly referred to as a dual component development system.
- toner in the toner reservoir of developer unit 202 is mixed with magnetic carrier beads.
- the magnetic carrier beads may be coated with a polymeric film to provide triboelectric properties to attract toner to the carrier beads as the toner and the magnetic carrier beads are mixed in the toner reservoir of developer unit 202.
- developer unit 202 includes a magnetic roll that attracts the magnetic carrier beads having toner thereon to the magnetic roll through the use of magnetic fields.
- Imaging unit 200 also includes a cleaner unit 204 that houses a photoconductive drum and a waste toner removal system.
- Toner cartridge 100 is removably mounted in imaging forming device 22 in a mating relationship with developer unit 202 of imaging unit 200.
- An outlet port on toner cartridge 100 communicates with an inlet port on developer unit 202 allowing toner to be periodically transferred from toner cartridge 100 to resupply the toner reservoir in developer unit 202.
- laser scan unit 31 creates a latent image on the photoconductive drum in cleaner unit 204.
- Toner is transferred from the toner reservoir in developer unit 202 to the latent image on the photoconductive drum by the developer roll (in the case of a single component development system) or by the magnetic roll (in the case of a dual component development system) to create a toned image.
- the toned image is then transferred to a media sheet received by imaging unit 200 from media input tray 39 for printing.
- Toner may be transferred directly to the media sheet by the photoconductive drum or by an intermediate transfer member that receives the toner from the photoconductive drum.
- Toner remnants are removed from the photoconductive drum by the waste toner removal system.
- the toner image is bonded to the media sheet in fuser 37 and then sent to an output location or to one or more finishing options such as a duplexer, a stapler or a hole-punch.
- Imaging unit 200 includes a developer unit 202 and a cleaner unit 204 mounted on a common frame 206.
- Developer unit 202 includes a toner inlet port 208 positioned to receive toner from toner cartridge 100.
- imaging unit 200 and toner cartridge 100 are each removably installed in image forming device 22.
- Imaging unit 200 is first slidably inserted into image forming device 22.
- Toner cartridge 100 is then inserted into image forming device 22 and onto frame 206 in a mating relationship with developer unit 202 of imaging unit 200 as indicated by the arrow A shown in Figure 2 , which also indicates the direction of insertion of imaging unit 200 and toner cartridge 100 into image forming device 22.
- Imaging unit 200 may also be readily removed as desired in order to maintain, repair or replace the components associated with developer unit 202, cleaner unit 204 or frame 206 or to clear a media jam.
- toner cartridge 100 includes a housing 102 having an enclosed reservoir 104 ( Figure 5 ) for storing toner.
- Housing 102 includes a top 106, a bottom 107, first and second sides 108, 109, a front 110 and a rear 111.
- Front 110 of housing 102 leads during insertion of toner cartridge 100 into image forming device 22 and rear 111 trails.
- each side 108, 109 of housing 102 includes an end cap 112, 113 mounted, e.g., by fasteners or a snap-fit engagement, to side walls 114, 115 of a main body 116 of housing 102.
- housing 102 includes main body 116 as well as various attachments (direct and indirect) thereto forming the overall body of toner cartridge 100 including, for example, end caps 112, 113.
- An outlet port 118 in fluid communication with reservoir 104 is positioned on front 110 of housing 102 near side 109 for exiting toner from toner cartridge 100.
- Housing 102 may include legs 120 on bottom 107 to assist with the insertion of toner cartridge 100 into image forming device 22 and to support housing 102 when toner cartridge 100 is set on a flat surface.
- a handle 122 may be provided on top 106 or rear 111 of housing 102 to assist with insertion and removal of toner cartridge 100 into and out of image forming device 22.
- Sides 108, 109 may each include a positioning guide 124 that extends outward from the respective side 108, 109 to assist the insertion of toner cartridge 100 into image forming device 22.
- Positioning guides 124 travel in corresponding guide slots in image forming device 22 that guide the insertion of toner cartridge 100 into image forming device 22.
- a positioning guide 124 is positioned on the outer side of each end cap 112, 113.
- Positioning guides 124 may run along a front-to-rear dimension 126 of housing 102, which extends from front 110 to rear 111, as shown in Figures 3 and 4 .
- a toner agitator assembly 130 is rotatably positioned within toner reservoir 104.
- Toner agitator assembly 130 includes an auger 132 having first and second ends 132a, 132b and a spiral screw flight.
- Auger 132 is positioned in a channel 128 that runs along the front 110 of housing 102 from side wall 114 to side wall 115. Channel 128 is oriented generally horizontal when toner cartridge 100 is installed in image forming device 22.
- Auger 132 includes a rotational axis 133. In operation, auger 132 rotates in an operative rotational direction 138.
- Rotation of auger 132 in operative rotational direction 138 delivers toner in channel 128 to outlet port 118, which is positioned at the bottom of channel 128 so that gravity assists in exiting toner through outlet port 118.
- Channel 128 includes an open portion 128a and may include an enclosed portion 128b.
- Open portion 128a is open to toner reservoir 104 and extends from side wall 114 toward second end 132b of auger 132.
- Enclosed portion 128b of channel 128 extends from side wall 115 and encloses second end 132b of auger 132.
- outlet port 118 is positioned at the bottom of enclosed portion 128b of channel 128.
- Toner agitator assembly 130 also includes a rotatable drive shaft 134 and one or more toner agitators 136 in the form of extensions outward from drive shaft 134.
- Drive shaft 134 includes a rotational axis 135.
- rotational axis 135 of drive shaft 134 is parallel to rotational axis 133 of auger 132.
- drive shaft 134 rotates in an operative rotational direction 139.
- Toner agitators 136 rotate with drive shaft 134 around rotational axis 135 when drive shaft 134 rotates in operative rotational direction 139.
- toner agitators 136 agitate and mix the toner stored in toner reservoir 104 and, in the embodiment illustrated, move toner toward channel 128 where auger 132 moves the toner to outlet port 118.
- first and second ends of drive shaft 134 extend through aligned openings in side walls 114, 115, respectively.
- drive shaft 134 may take other positions and orientations as desired.
- Bushings may be provided on an inner side of each side wall 114, 115 where drive shaft 134 passes through side walls 114, 115.
- a drive train 140 on housing 102 is operatively connected to auger 132 and drive shaft 134 and may be positioned within a space formed between end cap 112 and side wall 114.
- Drive train 140 includes an input gear 142 that engages with a corresponding output gear in image forming device 22 that provides rotational motion from drive motor 70 in image forming device 22 to input gear 142.
- Input gear 142 is rotatable about a rotational axis 141. In the embodiment illustrated, rotational axis 141 is orthogonal to front-to-rear dimension 126.
- a front portion of input gear 142 is exposed at the front 110 of housing 102 near the top 106 of housing 102 where input gear 142 engages the output gear in image forming device 22.
- a front portion of input gear 142 is exposed in a cutout 158 formed in a front portion of end cap 112.
- drive train 140 also includes a drive gear 144 on one end of drive shaft 134 that is connected to input gear 142 either directly or via one or more intermediate gears to rotate drive shaft 134.
- drive train 140 also includes a drive gear 146 on first end 132a of auger 132 that is connected to input gear 142 either directly or via one or more intermediate gears to rotate auger 132.
- toner cartridge 100 includes an encoded member 150 that is movably connected to drive train 140, either directly or indirectly to input gear 142.
- encoded member 150 includes a rotatable disk 152 operatively connected to drive train 140, such as, for example, positioned on an outboard face 143 of input gear 142, coaxially with input gear 142 as illustrated.
- Disk 152 may be formed integrally with input gear 142 or separately attached to input gear 142.
- encoded member 150 is, for example, translatable, such as by way of a rack and pinion arrangement or a cam and follower arrangement. Information pertaining to toner cartridge 100 is encoded on encoded member 150.
- Encoded member 150 is detectable by sensor 300 in image forming device 22 when toner cartridge 100 is installed in image forming device 22 permitting sensor 300 to communicate the encoded information of toner cartridge 100 to controller 28 of image forming device 22 via communications link 57.
- the encoded information may include, for example, authentication information such as a signature, serial number, or other identifier for authenticating or validating toner cartridge 100 upon installation of toner cartridge 100 in image forming device 22 or periodically during use of toner cartridge 100.
- the encoded information may include, for example, characteristics of toner cartridge 100 such as toner color, initial toner fill amount, toner type, geographic region, manufacture location, manufacture date, etc.
- authentication information is encoded on encoded member 150 by randomly distributed magnetized particles 154 dispersed on disk 152, e.g., on the surface of disk 152 and/or within disk 152. Particles 154 are distributed randomly such that it is difficult to reproduce the exact distribution and alignment of particles 154 thereby making the distribution difficult to copy.
- sensor 300 is positioned in close proximity to encoded member 150 when toner cartridge 100 is installed in image forming device 22, such as, adjacent to and facing the outboard side of disk 152 as schematically illustrated in Figure 7 .
- sensor 300 measures the magnetic field of disk 152 in one, two or three orthogonal dimensions as disk 152 rotates due to rotation of input gear 142 by motor 70.
- the magnetic field values measured by sensor 300 are communicated to controller 28 via communications link 57.
- Controller 28 may then compare the magnetic field values received from sensor 300 to values stored during manufacture in non-volatile memory of processing circuitry 45 of toner cartridge 100.
- Controller 28 may confirm the authenticity of toner cartridge 100 to controller 28 if the magnetic field values received from sensor 300 match the values stored in non-volatile memory of processing circuitry 45.
- informationend by a random distribution of magnetized particles and detection by measuring the magnetic field of the particles may be encoded by a random distribution of non-magnetized particles and detection may occur according to other means, such as, for example, by measuring an optical property of the particles.
- information may be encoded according to a predetermined pattern using any suitable indicia and detection method.
- it is preferred for authentication information to be encoded according to a random pattern so that encoded authentication information is more difficult for a counterfeiter to reproduce.
- encoded member 150 is exposed on the exterior of toner cartridge 100, e.g., above rotational axis 141 of input gear 142, for reading by sensor 300.
- encoded member 150 is exposed through a cutout 156 in end cap 112 that is positioned above rotational axis 141 of input gear 142.
- encoded member 150 may be covered by a relatively thin material, e.g., in place of cutout 156, so long as sensor 300 is still able to accurately read encoded member 150 through the material.
- Figure 8 shows drive train 140 in greater detail according to one example embodiment.
- input gear 142 is a compound gear that includes a first portion 142a that mates with the corresponding output gear in image forming device 22 when toner cartridge 100 is installed in image forming device 22 and a second portion 142b that meshes with drive gear 144 in order to provide rotational motion to drive shaft 134.
- First portion 142a of input gear 142 also meshes with an idler gear 147 that, in turn, meshes with a compound idler gear 148.
- Compound idler gear 148 includes a first portion 148a that meshes with idler gear 147 and a second portion 148b that meshes with drive gear 146 in order to provide rotational motion to auger 132.
- drive train 140 may take many suitable configurations for transferring rotational motion from input gear 142 to toner agitator assembly 130 and to encoded member 150.
- controller 28 drives motor 70 in a first rotational direction to drive toner agitator assembly 130 and in a second rotational direction to perform a reading of encoded member 150 by sensor 300.
- input gear 142 rotates in a first rotational direction 149a and, in turn, rotates auger 132 and drive shaft 134 in operative rotational directions 138, 139 to feed toner from toner cartridge 100 to developer unit 202.
- controller 28 drives motor 70 in the second rotational direction
- input gear 142 rotates in a second rotational direction 149b.
- Sensor 300 is configured to read encoded member 150 as input gear 142 rotates in rotational direction 149b.
- sensor 300 is able to perform a reading of encoded member 150 separately from a toner feed operation so that the authenticity or validity of toner cartridge 100 may be checked prior to the first use of toner cartridge 100 or at other times when toner cartridge 100 is not in use.
- toner agitator assembly 130 includes a one-way clutch that limits the rotational motion of at least one component of toner agitator assembly 130 to its operative rotational direction.
- the one-way clutch may limit auger 132 and/or drive shaft 134 to its operative rotational direction 138, 139.
- the one-way clutch may be operatively connected to drive gear 144 such that when input gear 142 rotates in rotational direction 149a, drive shaft 134 rotates in operative rotational direction 139 and when input gear 142 rotates in rotational direction 149b, drive shaft 134 is decoupled and does not rotate with input gear 142.
- toner agitators 136 do not rotate while sensor 300 performs a reading of encoded member 150.
- torque on drive shaft 134 and toner agitators 136 from toner stored in reservoir 104 does not affect the movement of encoded member 150 thereby permitting better control of encoded member 150 while sensor 300 performs a reading of encoded member 150 and improving the accuracy of the reading performed by sensor 300.
- toner agitators 136 may include flexible wipers that could displace or become damaged upon rotating counter to operative rotational direction 139. Decoupling drive shaft 134 from input gear 142 when input gear 142 rotates in rotational direction 149b prevents this from occurring.
- toner cartridge 100 includes a vertical alignment guide 160 positioned on side 108 of housing 102, e.g., on an outer side of end cap 112.
- alignment guide 160 is positioned axially outboard of input gear 142 and encoded member 150 relative to rotational axis 141.
- alignment guide 160 is positioned below the portion of encoded member 150 exposed through cutout 156.
- Alignment guide 160 is positioned to contact a housing of sensor 300 when toner cartridge 100 is installed in image forming device 22 and to position sensor 300 vertically relative to encoded member 150 as discussed in greater detail below.
- Alignment guide 160 includes a top surface 162 that is unobstructed (i.e., by any other portion of toner cartridge 100) to contact a housing of sensor 300 from below in order to lift sensor 300 upward during insertion of toner cartridge 100 into image forming device 22 and in order to support the housing of sensor 300 from below when toner cartridge 100 is in its final installed position in image forming device 22 to maintain vertical alignment of sensor 300 with encoded member 150 during operation as discussed in greater detail below.
- alignment guide 160 is formed as an extension outward sideways from side 108 of housing, such as away from an outer side of end cap 112.
- Top surface 162 includes a front portion 164 and a rear portion 166.
- front portion 164 and rear portion 166 combine to form a continuous top surface 162.
- Front portion 164 of top surface 162 is positioned further forward (toward front 110 of housing 102) than rear portion 166 of top surface 162. That is, front portion 164 of top surface 162 is positioned closer to front 110 of housing 102 than rear portion 166 of top surface 162 is to front 110 of housing 102, and rear portion 166 of top surface 162 is positioned closer to rear 111 of housing 102 than front portion 164 of top surface 162 is to rear 111 of housing 102.
- Front portion 164 of top surface 162 of alignment guide 160 inclines upward and rearward, toward top 106 and rear 111, such that front portion 164 of top surface 162 is positioned higher as it extends rearward toward rear 111 of housing 102.
- Front portion 164 of top surface 162 may include a planar surface (including one or multiple planar facets) that inclines upward and rearward, a curved surface (e.g., a convex surface as viewed from above) that inclines upward and rearward, or a combination thereof.
- front portion 164 of top surface 162 contacts a housing of sensor 300 and lifts sensor 300 upward relative to toner cartridge 100 due to the incline of front portion 164 of top surface 162.
- Front portion 164 of top surface 162 leads rearward to rear portion 166 of top surface 162.
- a portion of front portion 164 of top surface 162 extends lower than rear portion 166 of top surface 162.
- rear portion 166 of top surface 162 of alignment guide 160 contacts a housing of sensor 300 and sets the final vertical position of sensor 300 relative to toner cartridge 100 when toner cartridge 100 is in its final installed position in image forming device 22 in order to align sensor 300 vertically with disc 152 of encoded member 150 during operation of toner cartridge 100.
- rear portion 166 of top surface 162 is positioned higher than rotational axis 141 of input gear 142 and of disc 152, and at least a portion of rear portion 166 of top surface 162 extends rearward (toward rear 111 of housing 102) of rotational axis 141 of input gear 142 and of disc 152.
- rear portion 166 of top surface 162 may take other positions relative to rotational axis 141 depending on the location of the segment of encoded member 150 to be read by sensor 300.
- Rear portion 166 of top surface 162 overlaps with outboard face 143 of input gear 142, including a portion of encoded member 150 on input gear 142 exposed through cutout 156, as viewed from side 108 of housing 102 (i.e., as viewed in Figure 6 ) in order to permit sensor 300 to read encoded member 150 when a housing of sensor 300 is in contact with rear portion 166 of top surface 162.
- cutout 156 extends upward from rear portion 166 of top surface 162 such that a portion of encoded member 150 is exposed directly above rear portion 166 of top surface 162 for reading by sensor 300.
- rear portion 166 of top surface 162 is positioned lower than a topmost portion of the gear teeth of input gear 142 and lower than at least a portion of the magnetized particles 154 on disc 152 of encoded member 150 in order to permit sensor 300 to read encoded member 150 when a housing of sensor 300 is in contact with rear portion 166 of top surface 162.
- rear portion 166 of top surface 162 is positioned immediately adjacent to encoded member 150, e.g., spaced a few millimeters along an axial dimension of input gear 142 from encoded member 150, in order to permit sensor 300 to be positioned in close proximity to encoded member 150 when toner cartridge 100 is installed in image forming device 22.
- rear portion 166 of top surface 162 is formed by a planar portion of top surface 162. In the example embodiment illustrated, rear portion 166 of top surface 162 is parallel to a bottom contact surface 125 of positioning guide 124 on side 108 of toner cartridge 100.
- bottom contact surface 125 of positioning guide 124 contacts a top surface of a corresponding guide rail in image forming device 22 to define the vertical position of toner cartridge 100 relative to image forming device 22.
- bottom contact surface 125 of positioning guide 124 is defined by a pair of rounded bottom contact surfaces 125a, 125b that extend downward in a convex manner from the rest of positioning guide 124.
- an imaginary line 125c formed by the bottommost points of rounded bottom contact surfaces 125a, 125b of positioning guide 124 on side 108 of housing 102 is parallel to rear portion 166 of top surface 162 as depicted by imaginary line 168.
- toner cartridge 100 also includes a rear stop 170 positioned on side 108 of housing 102, e.g., on an outer side of end cap 112. Stop 170 is positioned at a rear end of alignment guide 160. Stop 170 includes a frontward facing surface 172 that faces toward front 110 of housing 102. Frontward facing surface 172 may include, for example, a vertical or primarily vertical surface.
- Frontward facing surface 172 is unobstructed (i.e., by any other portion of toner cartridge 100) to contact the housing of sensor 300 in order to limit the position of sensor 300 in a direction from front 110 toward rear 111 along front-to-rear dimension 126 when toner cartridge 100 is in its final installed position in image forming device 22 in order to ensure that sensor 300 is aligned with encoded member 150 along front-to-rear dimension 126.
- frontward facing surface 172 extends upward from a rear end of rear portion 166 of top surface 162 of alignment guide 160, and frontward facing surface 172 is spaced rearward (toward rear 111 of housing 102) from rotational axis 141 of input gear 142 and of disc 152.
- toner cartridge 100 includes an axial alignment guide 180 positioned on side 108 of housing 102, e.g., on an outer side of end cap 112.
- alignment guide 180 is positioned to contact a housing of sensor 300 during insertion of toner cartridge 100 into image forming device 22 and to move the housing of sensor 300 axially relative to rotational axis 141 in order to ensure that the housing of sensor 300 clears front edges of input gear 142 and disc 152 and to guide the housing of sensor 300 to cutout 156 for reading encoded member 150.
- alignment guide 180 is positioned directly in front of cutout 156, closer to front 110 of housing 102 than cutout 156 is to front 110 of housing 102. Alignment guide 180 leads rearward along side 108 of housing 102 toward the portion of encoded member 150 exposed through cutout 156.
- Alignment guide 180 includes a first guide surface 182 and a second guide surface 184 that is positioned rearward of first guide surface 182. That is, first guide surface 182 is positioned closer to front 110 of housing 102 than second guide surface 184 is to front 110 of housing 102, and second guide surface 184 is positioned closer to rear 111 of housing 102 than first guide surface 182 is to rear 111 of housing 102.
- First guide surface 182 inclines outward sideways and rearward, away from side 108 of housing 102 and toward rear 111 of housing 102, such that first guide surface 182 is positioned further outward sideways as it extends rearward toward rear 111 of housing 102.
- First guide surface 182 may include a planar surface (including one or multiple planar facets) that inclines outward sideways and rearward, a curved surface that inclines outward sideways and rearward, or a combination thereof.
- Second guide surface 184 inclines inward sideways and rearward, toward reservoir 104 and opposite side 109 of housing 102 and toward rear 111 of housing 102, such that second guide surface 184 is positioned further inward sideways as it extends rearward toward rear 111 of housing 102.
- Second guide surface 184 may include a planar surface (including one or multiple planar facets) that inclines inward sideways and rearward, a curved surface that inclines inward sideways and rearward, or a combination thereof.
- a third guide surface 186 is positioned between first guide surface 182 and second guide surface 184 along front-to-rear dimension 126.
- first guide surface 182 leads rearward to third guide surface 186
- third guide surface 186 leads rearward to second guide surface 184.
- Third guide surface 186 has a substantially constant position along an axial dimension of rotational axis 141. That is, in the embodiment illustrated, third guide surface 186 does not angle or incline inward sideways or outward sideways as it extends frontward or rearward.
- first guide surface 182 leads directly to second guide surface 184 as desired.
- Guide surfaces 182, 184, 186 are unobstructed (i.e., by any other portion of toner cartridge 100) to contact the housing of sensor 300 during insertion of toner cartridge 100 into image forming device 22 and to move the housing of sensor 300 axially relative to rotational axis 141 during insertion of toner cartridge 100 into image forming device 22.
- first, second and third guide surfaces 182, 184, 186 of alignment guide 180 is positioned higher than rotational axis 141 and higher than top surface 162 of vertical alignment guide 160.
- first and third guide surfaces 182, 186 are spaced forward, toward front 110 of housing 102, from rotational axis 141. In this manner, each of first and third guide surfaces 182, 186 is positioned closer to front 110 of housing 102 than rotational axis 141 is to front 110 of housing 102.
- second guide surface 184 is spaced forward, toward front 110 of housing 102, from rotational axis 141, i.e., closer to front 110 of housing 102 than rotational axis 141 is to front 110 of housing 102.
- the positioning of guide surfaces 182, 184, 186 allows alignment guide 180 to contact the housing of sensor 300 during insertion of toner cartridge 100 into image forming device 22 prior to sensor 300 reaching cutout 156 or encoded member 150 in order to ensure that the housing of sensor 300 clears front edges of input gear 142 and disc 152 and to guide the housing of sensor 300 to cutout 156 for reading encoded member 150.
- each of first and second guide surfaces 182, 184 extends further outward sideways from side 108 of housing 102 than input gear 142 and disc 152 of encoded member 150 extend from side 108 of housing 102 in order to ensure that the housing of sensor 300 clears front edges of input gear 142 and disc 152 during insertion of toner cartridge 100 into image forming device 22.
- Third guide surface 186 is also positioned further outward sideways relative to side 108 of housing 102 than input gear 142 and disc 152 of encoded member 150 extend from side 108 of housing 102.
- disc 152 of encoded member 150 extends further outward sideways from side 108 of housing 102 than an innermost axial (relative to rotational axis 141) portion of each of first and second guide surfaces 182, 184 in order to permit the housing of sensor 300 to directly contact disc 152 of encoded member 150 when toner cartridge 100 is in its final installed position in image forming device 22 and sensor 300 is aligned with cutout 156.
- Sensor assembly 302 includes sensor 300 mounted to a sensor housing 304.
- Sensor housing 304 is, in turn, mounted to a portion of a frame 306 of image forming device 22.
- Frame 306 runs along front-to-rear dimension 126 of toner cartridge 100 when toner cartridge 100 is installed in image forming device 22.
- Frame 306 is positioned in close proximity with and generally faces side 108 of toner cartridge 100 when toner cartridge 100 is installed in image forming device 22.
- Frame 306 includes a guide slot 308 formed therein that receives positioning guide 124 on side 108 of toner cartridge 100 during insertion of toner cartridge 100 into image forming device 22.
- Guide slot 308 is defined by a gap formed between a bottom guide rail 310 and a top guide rail 312. A top surface 311 of bottom guide rail 310 contacts bottom contact surface 125 of positioning guide 124 on side 108 of toner cartridge 100 when toner cartridge 100 is installed in image forming device 22 to define the vertical position of toner cartridge 100 at side 108 relative to image forming device 22. Guide slot 308 extends primarily along front-to-rear dimension 126 of toner cartridge 100. A rear end 314 of guide slot 308 shown in Figure 10 is positioned proximate to rear 111 of toner cartridge 100 when toner cartridge 100 is installed in image forming device.
- An output gear 316 is exposed on a portion of frame 306 above top guide rail 312 in the embodiment illustrated. Output gear 316 is operatively connected to motor 70 in image forming device 22 and mates with corresponding input gear 142 of toner cartridge 100 when toner cartridge 100 is installed in image forming device 22 in order to provide rotational motion to input gear 142.
- Frame 306 also includes a sensor mount 320 that is positioned above top guide rail 312 in the embodiment illustrated.
- Sensor housing 304 is mounted to sensor mount 320 of frame 306 in a manner that permits sensor housing 304 to move relative to frame 306.
- Sensor mount 320 includes a top guide wall 322, a bottom guide wall 323, a front guide wall 324 and a rear guide wall 325 that aid in positioning sensor housing 304 vertically and along front-to-rear dimension 126 of toner cartridge 100 relative to frame 306.
- Sensor mount 320 also includes an end wall 326 that aids in positioning sensor housing 304 axially relative to rotational axis 141 of toner cartridge 100 relative to frame 306.
- sensor 300 includes one or more hall-effect sensors 330 mounted on a printed circuit board 332.
- Hall-effect sensor(s) 330 are configured to measure the magnetic field of magnetized particles 154 on disc 152 of encoded member 150 in one, two or three orthogonal dimensions as disc 152 rotates.
- Printed circuit board 332 facilitates communication of the magnetic field measurements obtained by hall-effect sensor(s) 330 to controller 28 of image forming device 22 by way of communications path 57.
- Printed circuit board 332 having sensor 300 is fixedly mounted to sensor housing 304.
- a portion of sensor 300 is exposed through a cutout 334 on an outer face 336 of sensor housing 304 to permit an unobstructed reading of the magnetic field of magnetized particles 154 of encoded member 150 by sensor 300.
- Outer face 336 of sensor housing 304 is positioned at an innermost end of sensor housing 304 along rotational axis 141 of toner cartridge 100 (nearest toner cartridge 100) and faces toward side 108 of toner cartridge 100.
- sensor housing 304 includes a top 340, a bottom 341, a front side 342 and a rear side 343 that are positioned in close proximity to inside surfaces of top guide wall 322, bottom guide wall 323, front guide wall 324 and rear guide wall 325, respectively.
- sensor housing 304 and sensor mount 320 are sized to permit vertical movement of sensor housing 304 relative to sensor mount 320 of frame 306. Upward movement of sensor housing 304 relative to frame 306 is limited by contact between top 340 of sensor housing 304 and top guide wall 322 of sensor mount 320, and downward movement of sensor housing 304 relative to frame 306 is limited by contact between bottom 341 of sensor housing 304 and bottom guide wall 323 of sensor mount 320.
- sensor housing 304 and sensor mount 320 are sized to limit lateral movement along front-to-rear dimension 126 of toner cartridge 100 in comparison with the amount of vertical movement permitted. Forward lateral movement of sensor housing 304 along front-to-rear dimension 126 relative to frame 306 is limited by contact between front side 342 of sensor housing 304 and front guide wall 324 of sensor mount 320, and rearward lateral movement of sensor housing 304 along front-to-rear dimension 126 relative to frame 306 is limited by contact between rear side 343 of sensor housing 304 and rear guide wall 325 of sensor mount 320.
- sensor housing 304 is biased by one or more springs downward and rearward along front-to-rear dimension 126, i.e., toward bottom guide wall 323 and rear guide wall 325 of sensor mount 320.
- an extension spring 360 biases sensor housing 304 downward and rearward along front-to-rear dimension 126.
- a first end 362 of extension spring 360 is anchored to top guide wall 322, and a second end 363 of extension spring 360 is anchored to front guide wall 324.
- the bending of coil portion 364 of extension spring 360 around corner 344 of sensor housing 304 causes coil portion 364 to remain in constant contact with corner 344 of sensor housing 304 and to apply a bias force on corner 344 of sensor housing 304 that urges sensor housing 304 downward and rearward as indicated by the arrow F1 in Figure 10 .
- Corner 344 may include a chamfered surface 345 that provides a contact surface that is less likely to catch or snag on coil portion 364 of extension spring 360.
- sensor housing 304 and sensor mount 320 are sized to permit axial movement of sensor housing 304 relative to sensor mount 320 of frame 306 along rotational axis 141 of toner cartridge 100.
- a vertical post 346 extends upward from top 340 of sensor housing 304.
- Post 346 is received by an elongated slot 328 formed in top guide wall 322 of sensor mount 320.
- Slot 328 is elongated axially relative to rotational axis 141 permitting post 346 to move axially within slot 328 relative to rotational axis 141.
- bottom 341 of sensor housing 304 includes a post substantially identical to post 346 and bottom guide wall 323 of sensor mount 320 includes an elongated slot substantially identical to elongated slot 328.
- the relationship between the posts of sensor housing 304 and the elongated slots of sensor mount 320 permit sensor housing 304 to move relative to frame 306 axially along rotational axis 141, toward and away from side 108 of toner cartridge 100.
- post/slot interface of sensor housing 304 and sensor mount 320 may be reversed to instead include one or more guide posts on sensor mount 320 and one or more corresponding elongated guide slots in sensor housing 304 as desired to permit movement of sensor housing 304 relative to frame 306 axially along rotational axis 141 of toner cartridge 100.
- sensor housing 304 is biased by one or more springs outward from frame 306 (toward side 108 of toner cartridge 100) along rotational axis 141, away from end wall 326 of sensor mount 320.
- a compression spring 370 biases sensor housing 304 outward from frame 306 (toward side 108 of toner cartridge 100) along rotational axis 141.
- a first end 372 of compression spring 370 is positioned against end wall 326 of sensor mount 320, and a second end 373 of compression spring 370 is positioned against a surface of sensor housing 304 and/or printed circuit board 332 that faces end wall 326.
- Compression spring 370 applies a bias force on sensor housing 304 that urges sensor housing 304 outward from frame 306 (toward side 108 of toner cartridge 100) as indicated by the arrow F2 in Figure 11 .
- the force applied by compression spring 370 urges the posts of sensor housing 304 toward the innermost ends (nearest toner cartridge 100) of the elongated slots of sensor mount 320 in the embodiment illustrated.
- sensor housing 304 includes first and second chamfered surfaces 348, 349 that facilitate smooth contact between sensor housing 304 and axial alignment guide 180 of toner cartridge 100 during insertion of toner cartridge 100 into image forming device 22 as discussed in greater detail below.
- First chamfered surface 348 is formed at an intersection of outer face 336 with front side 342 of sensor housing 304.
- Second chamfered surface 349 is formed at an intersection of outer face 336 with rear side 343 of sensor housing 304.
- each chamfered surface 348, 349 is formed as a planar facet that is angled from outer face 336 toward the respective front side 342 and rear side 343 of sensor housing 304.
- rounded surfaces may be used at the intersections of outer face 336 with front side 342 and rear side 343 of sensor housing 304 in place of the planar surfaces illustrated.
- Figures 13-18B sequentially illustrate the interaction between sensor housing 304 in image forming device 22 and the corresponding alignment guides on toner cartridge 100 during insertion of toner cartridge 100 into image forming device 22.
- Figure 13 is a top plan view showing the position of toner cartridge 100 relative to frame 306 as toner cartridge 100 enters image forming device 22 when a front end of positioning guide 124 on side 108 of toner cartridge 100 enters guide slot 310 on frame 306.
- Arrow 190 indicates the direction of insertion of toner cartridge 100 into image forming device 22 with front 110 of toner cartridge 100 leading.
- Figure 13 shows first guide surface 182 of axial alignment guide 180 of toner cartridge 100 approaching chamfered surface 349 of sensor housing 304 as toner cartridge 100 advances in direction of insertion 190.
- sensor housing 304 Prior to contact between axial alignment guide 180 of toner cartridge 100 and sensor housing 304, sensor housing 304 is fully extended outward along rotational axis 141, toward side 108 of toner cartridge 100 as a result of the bias applied by compression spring 370 with post 346 of sensor housing 304 in contact with an innermost end 329a (nearest toner cartridge 100) of elongated slot 328.
- Figure 14 is a top plan view showing the position of toner cartridge 100 relative to frame 306 with toner cartridge 100 advanced along direction of insertion 190 from the position shown in Figure 13 .
- first guide surface 182 of axial alignment guide 180 of toner cartridge 100 contacts chamfered surface 349 of sensor housing 304.
- the force applied to chamfered surface 349 of sensor housing 304 by first guide surface 182 of axial alignment guide 180 as toner cartridge 100 advances overcomes the bias force applied to sensor housing 304 by compression spring 370 causing sensor housing 304 to retract along rotational axis 141, toward frame 306 and away from side 108 of toner cartridge 100, as a result of the angle of first guide surface 182.
- Figures 15A and 15B are a top plan view and a side elevation view, respectively, showing the position of toner cartridge 100 relative to frame 306 with toner cartridge 100 advanced along direction of insertion 190 from the position shown in Figure 14 .
- Figure 15B shows the positions of sensor 300, sensor housing 304 and sensor mount 320 relative to side 108 of toner cartridge 100 illustrated schematically in dashed line in order to avoid obscuring the features of toner cartridge 100.
- first guide surface 182 of axial alignment guide 180 of toner cartridge 100 clears and passes chamfered surface 349 of sensor housing 304, and third guide surface 186 of axial alignment guide 180 of toner cartridge 100 contacts outer face 336 of sensor housing 304.
- Contact between third guide surface 186 of axial alignment guide 180 and outer face 336 of sensor housing 304 maintains a substantially constant retracted axial position of sensor housing 304 relative to rotational axis 141 as toner cartridge 100 continues to advance as a result of the substantially constant position of third guide surface 186 along the axial dimension of rotational axis 141.
- Figure 15B shows front portion 164 of top surface 162 of vertical alignment guide 160 approaching bottom 341 of sensor housing 304.
- sensor housing 304 Prior to contact between vertical alignment guide 160 of toner cartridge 100 and sensor housing 304, sensor housing 304 is in its lowest vertical position as a result of the bias applied by extension spring 360 with bottom 341 of sensor housing 304 in contact with bottom guide wall 323 of sensor mount 320.
- Figures 16A and 16B are a top plan view and a side elevation view, respectively, showing the position of toner cartridge 100 relative to frame 306 with toner cartridge 100 advanced along direction of insertion 190 from the position shown in Figures 15A and 15B .
- third guide surface 186 of axial alignment guide 180 of toner cartridge 100 maintains contact with and slides across outer face 336 of sensor housing 304 maintaining the retracted axial position of sensor housing 304 relative to rotational axis 141.
- Figures 17A and 17B are a top plan view and a side elevation view, respectively, showing the position of toner cartridge 100 relative to frame 306 with toner cartridge 100 advanced along direction of insertion 190 from the position shown in Figures 16A and 16B .
- Figure 17A as toner cartridge 100 advances further into image forming device 22 along direction of insertion 190, third guide surface 186 of axial alignment guide 180 of toner cartridge 100 clears and passes outer face 336 of sensor housing 304, and second guide surface 184 of axial alignment guide 180 of toner cartridge 100 contacts chamfered surface 348 of sensor housing 304.
- the bias force applied to sensor housing 304 by compression spring 370 causes sensor housing 304 to gradually extend along rotational axis 141, away from frame 306 and toward side 108 of toner cartridge 100 as limited by contact between chamfered surface 348 of sensor housing 304 and second guide surface 184 of axial alignment guide 180 due to the angle of second guide surface 184.
- sensor housing 304 extends, away from frame 306 and toward side 108 of toner cartridge 100, post 346 of sensor housing 304 moves back toward innermost end 329a of elongated slot 328 and away from outermost end 329b of elongated slot 328 as shown in Figure 17A .
- Figures 18A and 18B are a top plan view and a side elevation view, respectively, showing the final position of toner cartridge 100 relative to frame 306 when toner cartridge 100 is in its final installed position in image forming device 22.
- second guide surface 184 of axial alignment guide 180 of toner cartridge 100 clears chamfered surface 348 of sensor housing 304, and sensor housing 304 reaches its final axial position along rotational axis 141 relative to toner cartridge 100 in order to set the axial distance from sensor 300 to disc 152 of encoded member 150.
- contact between outer face 336 of sensor housing 304 and disc 152 sets the final axial position of sensor housing 304 relative to toner cartridge 100.
- contact between outer face 336 of sensor housing 304 and a portion of housing 102, such as a portion of the outer side of end cap 112 positioned above cutout 156 sets the final axial position of sensor housing 304 relative to toner cartridge 100.
- forward facing surface 172 of rear stop 170 contacts rear side 343 of sensor housing 304 when toner cartridge 100 is in its final installed position in image forming device 22, and contact between forward facing surface 172 of rear stop 170 and rear side 343 of sensor housing 304 sets the final position of sensor housing 304 relative to toner cartridge 100 along front-to-rear dimension 126 of toner cartridge 100 in order to align sensor 300 along front-to-rear dimension 126 with the portion of disc 152 of encoded member 150 to be read by sensor 300.
- rear stop 170 may be omitted so long as precise alignment of toner cartridge 100 relative to image forming device 22 along front-to-rear dimension 126 is achieved.
- sensor housing 304 is biased upward instead of downward, and vertical alignment guide 160, rear stop 170 and axial alignment guide 180 are flipped vertically relative to the embodiment shown in Figure 6 such that rear stop 170 and axial alignment guide 180 are positioned lower than vertical alignment guide 160, and a portion of a bottom surface of vertical alignment guide 160 angles downward and rearward for contacting and moving sensor housing 304 downward against its bias during insertion of toner cartridge 100 into image forming device 22 with front 110 of housing 102 leading.
- the alignment guides of toner cartridge 100, encoded member 150 and sensor 300 may take other suitable positions and orientations as desired.
- toner agitator assembly 130 may include any suitable combination of rotating, shifting, reciprocating or otherwise movable toner agitators, which may take many shapes, forms, sizes and orientations.
- the toner agitator(s) may include any suitable combination of one or more paddles, augers, rakes, combs, scoops, plows, arms, extensions, prongs, flaps, mixers, conveyors, screws, etc.
- the replaceable unit(s) of image forming device 22 may employ any suitable configuration as desired.
- the main toner supply for image forming device 22, developer unit 202 and cleaner unit 204 are housed in one replaceable unit.
- the main toner supply for image forming device 22 and developer unit 202 are provided in a first replaceable unit (with the developer roll or magnetic roll of developer unit 202 forming the outlet of the first replaceable unit) and cleaner unit 204 is provided in a second replaceable unit.
- the example image forming device 22 discussed above includes one toner cartridge 100 and corresponding imaging unit 200, in the case of an image forming device configured to print in color, separate replaceable units may be used for each toner color needed.
- the image forming device includes four toner cartridges and four corresponding imaging units, each toner cartridge containing a particular toner color (e.g., black, cyan, yellow or magenta) and each imaging unit corresponding with one of the toner cartridges to permit color printing.
- a particular toner color e.g., black, cyan, yellow or magenta
- toner agitator assembly 130 an encoded member 150 and various alignment guides of a toner cartridge 100
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Description
- The present disclosure relates generally to image forming devices and more particularly to a toner container having an encoded member and an alignment guide for locating a sensor relative to the encoded member.
- In electrophotographic image forming devices, one or more replaceable toner containers may be used to supply toner for printing onto sheets of media. Each toner container often includes a toner agitator assembly that agitates and mixes toner stored in a toner reservoir to prevent the toner from clumping and that moves the toner to an outlet of the toner container. It is often desired for each toner container to communicate characteristics of the toner container to the image forming device for proper operation. For example, it may be desired to communicate such information as authentication or validation information, toner fill amount, toner color, toner type, etc.
- European Patent Application Publication Number
EP 3637191A1 (which claims a priority date preceding that of the present specification, but a publication date of later than the current specification and so is relevant as prior art only under the terms of Article 54(3) EPC) shows a toner container having a common input gear for a toner agitator assembly and an encoded member.EP2369423 also discloses pertinent prior art. - The invention is defined by the appended claims. A toner container for use in an electrophotographic image forming device according to one example embodiment includes, inter alia, a housing having a top, a bottom, a front and a rear positioned between a first side and a second side of the housing of the toner container. The housing of the toner container has a reservoir for holding toner. An outlet on the front of the housing of the toner container is in fluid communication with the reservoir for exiting toner from the toner container. An input gear is positioned at the first side of the housing of the toner container for mating with a corresponding output gear in the image forming device when the toner container is installed in the image forming device. The toner container includes an encoded member that is encoded with identifying information of the toner container and that is operatively connected to the input gear such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device when the toner container is installed in the image forming device. At least a portion of the encoded member is exposed on the first side of the housing of the toner container. A first alignment guide on the first side of the housing of the toner container is positioned axially outboard of the encoded member relative to a rotational axis of the input gear and is positioned below an exposed portion of the encoded member. The first alignment guide includes a top surface that is unobstructed to contact a sensor housing in the image forming device from below when the toner container is installed in the image forming device. At least a portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the exposed portion of the encoded member.
- Embodiments include those wherein the encoded member is rotatably connected to the input gear such that rotation of the input gear causes rotation of the encoded member. In some embodiments, the encoded member is positioned on an axially outboard face of the input gear that faces away from the reservoir. In some embodiments, the top surface of the first alignment guide includes a front portion and a rear portion. The front portion of the top surface of the first alignment guide is positioned closer to the front of the housing of the toner container than the rear portion of the top surface of the first alignment guide is to the front of the housing of the toner container. The front portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container. At least a portion of the rear portion of the top surface of the first alignment guide is positioned higher than the rotational axis of the input gear. In some embodiments, at least a portion of the rear portion of the top surface of the first alignment guide extends rearward of the rotational axis of the input gear.
- Embodiments include those wherein the first alignment guide extends outward sideways from the first side of the housing of the toner container.
- The toner container according to
claim 1 further includes a second alignment guide on the first side of the housing of the toner container. In some embodiments, the second alignment guide includes a frontward facing surface that faces toward the front of the housing of the toner container. The frontward facing surface extends upward from a rear end of the top surface of the first alignment guide. The frontward facing surface is unobstructed to contact the sensor housing in the image forming device when the toner container is installed in the image forming device for limiting a position of the sensor of the image forming device in a direction from the front of the housing of the toner container toward the rear of the housing of the toner container. - The second alignment guide includes a first guide surface and a second guide surface. The second guide surface is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear of the housing of the toner container than the first guide surface is to the rear of the housing of the toner container. The first guide surface inclines outward sideways and rearward away from the first side and toward the rear of the housing of the toner container. The second guide surface inclines inward sideways and rearward toward the second side and toward the rear of the housing of the toner container. The first and second guide surfaces are unobstructed to contact the sensor housing in the image forming device during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear during insertion of the toner container into the image forming device. In some embodiments, the second alignment guide leads rearward along the first side of the housing of the toner container to the exposed portion of the encoded member. In some embodiments, at least a portion of each of the first and second guide surfaces is positioned closer to the front of the housing of the toner container than the exposed portion of the encoded member is to the front of the housing of the toner container, and at least a portion of each of the first and second guide surfaces is positioned higher than a portion of the top surface of the first alignment guide.
- Also provided is a toner container for use in an electrophotographic image forming device according to another example embodiment includes a housing having a top, a bottom, a front and a rear positioned between a first side and a second side of the housing of the toner container. The housing of the toner container has a reservoir for holding toner. An outlet on the front of the housing of the toner container is in fluid communication with the reservoir for exiting toner from the toner container. An input gear is positioned at the first side of the housing of the toner container for mating with a corresponding output gear in the image forming device when the toner container is installed in the image forming device. The toner container includes an encoded member that is encoded with identifying information of the toner container and that is rotatably connected to the input gear such that rotation of the input gear causes rotation of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device when the toner container is installed in the image forming device. The encoded member is positioned on an axially outboard face of the input gear that faces away from the reservoir. A first alignment guide on the first side of the housing of the toner container is positioned axially outboard of the encoded member relative to a rotational axis of the input gear. The first alignment guide overlaps with the axially outboard face of the input gear as viewed from the first side of the housing of the toner container. The first alignment guide includes a top surface that is unobstructed to contact a sensor housing in the image forming device from below when the toner container is installed in the image forming device. At least a portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the encoded member.
- Implementations include those wherein the top surface of the first alignment guide includes a front portion and a rear portion. The front portion of the top surface of the first alignment guide is positioned closer to the front of the housing of the toner container than the rear portion of the top surface of the first alignment guide is to the front of the housing of the toner container. The front portion of the top surface of the first alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container. At least a portion of the rear portion of the top surface of the first alignment guide is positioned higher than the rotational axis of the input gear. In some embodiments, at least a portion of the rear portion of the top surface of the first alignment guide extends rearward of the rotational axis of the input gear.
- Implementations include those wherein the first alignment guide extends outward sideways from the first side of the housing of the toner container.
- Some implementations include a second alignment guide on the first side of the housing of the toner container. In some implementations, the second alignment guide includes a frontward facing surface that faces toward the front of the housing of the toner container. The frontward facing surface extends upward from a rear end of the top surface of the first alignment guide. The frontward facing surface is unobstructed to contact the sensor housing in the image forming device when the toner container is installed in the image forming device for limiting a position of the sensor of the image forming device in a direction from the front of the housing of the toner container toward the rear of the housing of the toner container.
- In some implementations, the second alignment guide includes a first guide surface and a second guide surface. The second guide surface is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear of the housing of the toner container than the first guide surface is to the rear of the housing of the toner container. The first guide surface inclines outward sideways and rearward away from the first side and toward the rear of the housing of the toner container. The second guide surface inclines inward sideways and rearward toward the second side and toward the rear of the housing of the toner container. The first and second guide surfaces are unobstructed to contact the sensor housing in the image forming device during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear during insertion of the toner container into the image forming device. In some implementations, at least a portion of each of the first and second guide surfaces is positioned closer to the front of the housing of the toner container than the rotational axis of the input gear is to the front of the housing of the toner container, and at least a portion of each of the first and second guide surfaces is positioned higher than a portion of the top surface of the first alignment guide.
- Also provided is a toner container for use in an electrophotographic image forming device according to another example implementation that includes a housing having a top, a bottom, a front and a rear positioned between a first side and a second side of the housing of the toner container. The housing of the toner container has a reservoir for holding toner. An outlet on the front of the housing of the toner container is in fluid communication with the reservoir for exiting toner from the toner container. An input gear is positioned at the first side of the housing of the toner container for mating with a corresponding output gear in the image forming device when the toner container is installed in the image forming device. The toner container includes an encoded member that is encoded with identifying information of the toner container and that is operatively connected to the input gear such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device when the toner container is installed in the image forming device. At least a portion of the encoded member is exposed on the first side of the housing of the toner container. A first alignment guide on the first side of the housing of the toner container leads rearward along the first side of the housing of the toner container to the exposed portion of the encoded member. The first alignment guide includes a first guide surface that inclines outward sideways and rearward away from the first side and toward the rear of the housing of the toner container. The first guide surface is unobstructed to contact a sensor housing in the image forming device during insertion of the toner container into the image forming device with the front of the housing of the toner container leading the insertion for moving the sensor housing in the image forming device axially relative to a rotational axis of the input gear during insertion of the toner container into the image forming device.
- Implementations include those wherein the encoded member is rotatably connected to the input gear such that rotation of the input gear causes rotation of the encoded member. In some implementations, the encoded member is positioned on an axially outboard face of the input gear that faces away from the reservoir. In some implementations, at least a portion of the first guide surface is positioned closer to the front of the housing of the toner container than the rotational axis of the input gear is to the front of the housing of the toner container, and at least a portion of the first guide surface is positioned higher than the rotational axis of the input gear.
- Implementations include those wherein the first alignment guide includes a second guide surface that is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear of the housing of the toner container than the first guide surface is to the rear of the housing of the toner container. The second guide surface inclines inward sideways and rearward toward the second side and toward the rear of the housing of the toner container. The second guide surface is unobstructed to contact the sensor housing in the image forming device during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear during insertion of the toner container into the image forming device.
- Some implementations include a second alignment guide on the first side of the housing of the toner container. The second alignment guide is positioned axially outboard of the encoded member relative to the rotational axis of the input gear and is positioned below the exposed portion of the encoded member. The second alignment guide includes a top surface that is unobstructed to contact the sensor housing in the image forming device from below when the toner container is installed in the image forming device. At least a portion of the top surface of the second alignment guide inclines upward and rearward toward the top and the rear of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device for aligning the sensor of the image forming device with the exposed portion of the encoded member.
- Some implementations further include a third alignment guide on the first side of the housing of the toner container. The third alignment guide includes a frontward facing surface that faces toward the front of the housing of the toner container. The frontward facing surface extends upward from a rear end of the top surface of the second alignment guide. The frontward facing surface is unobstructed to contact the sensor housing in the image forming device when the toner container is installed in the image forming device for limiting a position of the sensor of the image forming device in a direction from the front of the housing of the toner container toward the rear of the housing of the toner container.
- Also provided is a method according to claim 11. A preferred method of installing a replaceable unit into an image forming device according to one example implementation includes a first alignment guide on the replaceable unit contacting and lifting a sensor housing in the image forming device relative to a frame of the image forming device on which the sensor housing is mounted as the replaceable unit advances during insertion into the image forming device. As the replaceable unit advances further during insertion into the image forming device, the first alignment guide contacts and maintains the sensor housing in the image forming device at an aligned position where a sensor on the sensor housing is aligned vertically with an encoded member exposed on an exterior of the replaceable unit permitting the sensor to read identifying information of the replaceable unit from an exposed portion of the encoded member during operation. In some implementations, the first alignment guide on the replaceable unit contacting and lifting the sensor housing in the image forming device relative to the frame of the image forming device includes the first alignment guide on the replaceable unit lifting the sensor housing in the image forming device against a downward spring bias on the sensor housing. In some implementations, a second alignment guide on the replaceable unit contacts and pushes the sensor housing in the image forming device toward the frame of the image forming device and away from the replaceable unit against a spring bias on the sensor housing that is away from the frame of the image forming device and toward the replaceable unit as the replaceable unit advances during insertion into the image forming device; and the second alignment guide on the replaceable unit contacts and permits the sensor housing in the image forming device to move away from the frame of the image forming device and toward the replaceable unit as a result of the spring bias on the sensor housing that is away from the frame of the image forming device and toward the replaceable unit as the replaceable unit advances further during insertion into the image forming device.
- The accompanying drawings incorporated in and forming a part of the specification, illustrate several aspects of the present disclosure, and together with the description serve to explain the principles of the present disclosure.
-
Figure 1 is a block diagram of an imaging system according to one example embodiment. -
Figure 2 is a perspective view of a toner cartridge and an imaging unit according to one example embodiment. -
Figure 3 is a front perspective view of the toner cartridge shown inFigure 2 . -
Figure 4 is a rear perspective view of the toner cartridge shown inFigures 2 and3 . -
Figure 5 is an exploded view of the toner cartridge shown inFigures 2-4 showing a toner agitator assembly of the toner cartridge according to one example embodiment. -
Figure 6 is a side elevation view of the toner cartridge shown inFigures 2-5 showing an encoded member of the toner cartridge according to one example embodiment. -
Figure 7 is a side elevation view of the encoded member of the toner cartridge according to one example embodiment. -
Figure 8 is a side elevation view of a drive train of the toner cartridge according to one example embodiment. -
Figure 9 is a top plan view of a portion of the toner cartridge shown inFigures 2-6 according to one example embodiment. -
Figure 10 is a side elevation view of a sensor assembly of an image forming device according to one example embodiment. -
Figure 11 is a top plan view of the sensor assembly shown inFigure 10 . -
Figure 12 is an exploded view of the sensor assembly shown inFigures 10 and11 . -
Figure 13 is a top plan view showing the position of the toner cartridge relative to the sensor assembly as the toner cartridge enters the image forming device according to one example embodiment. -
Figure 14 is a top plan view showing the position of the toner cartridge relative to the sensor assembly with the toner cartridge advanced further into the image forming device from the position shown inFigure 13 showing an axial alignment guide of the toner cartridge contacting a sensor housing of the sensor assembly. -
Figures 15A and 15B are a top plan view and a side elevation view, respectively, showing the position of the toner cartridge relative to the sensor assembly with the toner cartridge advanced further into the image forming device from the position shown inFigure 14 . -
Figures 16A and 16B are a top plan view and a side elevation view, respectively, showing the position of the toner cartridge relative to the sensor assembly with the toner cartridge advanced further into the image forming device from the position shown inFigures 15A and 15B showing a vertical alignment guide of the toner cartridge contacting the sensor housing of the sensor assembly. -
Figures 17A and 17B are a top plan view and a side elevation view, respectively, showing the position of the toner cartridge relative to the sensor assembly with the toner cartridge advanced further into the image forming device from the position shown inFigures 16A and 16B . -
Figures 18A and 18B are a top plan view and a side elevation view, respectively, showing the position of the toner cartridge relative to the sensor assembly with the toner cartridge in its final installed position in the image forming device. - In the following description, reference is made to the accompanying drawings where like numerals represent like elements. The embodiments are described in sufficient detail to enable those skilled in the art to practice the present disclosure. It is to be understood that other embodiments may be utilized and that process, electrical, and mechanical changes, etc., may be made without departing from the scope of the present disclosure. Examples merely typify possible variations. Portions and features of some embodiments may be included in or substituted for those of others. The following description, therefore, is not to be taken in a limiting sense and the scope of the present disclosure is defined only by the appended claims.
- Referring now to the drawings and particularly to
Figure 1 , there is shown a block diagram depiction of animaging system 20 according to one example embodiment.Imaging system 20 includes animage forming device 22 and acomputer 24.Image forming device 22 communicates withcomputer 24 via acommunications link 26. As used herein, the term "communications link" generally refers to any structure that facilitates electronic communication between multiple components and may operate using wired or wireless technology and may include communications over the Internet. - In the example embodiment shown in
Figure 1 ,image forming device 22 is a multifunction machine (sometimes referred to as an all-in-one (AIO) device) that includes acontroller 28, aprint engine 30, a laser scan unit (LSU) 31, animaging unit 200, atoner cartridge 100, auser interface 36, amedia feed system 38, a media input tray 39, ascanner system 40, adrive motor 70 and asensor 300.Image forming device 22 may communicate withcomputer 24 via a standard communication protocol, such as, for example, universal serial bus (USB), Ethernet or IEEE 802.xx.Image forming device 22 may be, for example, an electrophotographic printer/copier including anintegrated scanner system 40 or a standalone electrophotographic printer. -
Controller 28 includes a processor unit and associatedelectronic memory 29. The processor may include one or more integrated circuits in the form of a microprocessor or central processing unit and may be formed as one or more application-specific integrated circuits (ASICs).Memory 29 may be any volatile or non-volatile memory or combination thereof, such as, for example, random access memory (RAM), read only memory (ROM), flash memory and/or non-volatile RAM (NVRAM).Memory 29 may be in the form of a separate memory (e.g., RAM, ROM, and/or NVRAM), a hard drive, a CD or DVD drive, or any memory device convenient for use withcontroller 28.Controller 28 may be, for example, a combined printer and scanner controller. - In the example embodiment illustrated,
controller 28 communicates withprint engine 30 via acommunications link 50.Controller 28 communicates withimaging unit 200 andprocessing circuitry 44 thereon via acommunications link 51.Controller 28 communicates withtoner cartridge 100 andprocessing circuitry 45 thereon via acommunications link 52.Controller 28 communicates withmedia feed system 38 via acommunications link 53.Controller 28 communicates withscanner system 40 via acommunications link 54.User interface 36 is communicatively coupled tocontroller 28 via acommunications link 55.Controller 28 communicates withdrive motor 70 via acommunications link 56.Controller 28 communicates withsensor 300 via acommunications link 57.Controller 28 processes print and scan data and operatesprint engine 30 during printing andscanner system 40 during scanning.Processing circuitry imaging unit 200 andtoner cartridge 100, respectively. Each of processingcircuitry processing circuitry -
Computer 24, which is optional, may be, for example, a personal computer, includingelectronic memory 60, such as RAM, ROM, and/or NVRAM, aninput device 62, such as a keyboard and/or a mouse, and adisplay monitor 64.Computer 24 also includes a processor, input/output (I/O) interfaces, and may include at least one mass data storage device, such as a hard drive, a CD-ROM and/or a DVD unit (not shown).Computer 24 may also be a device capable of communicating withimage forming device 22 other than a personal computer such as, for example, a tablet computer, a smartphone, or other electronic device. - In the example embodiment illustrated,
computer 24 includes in its memory a software program including program instructions that function as animaging driver 66, e.g., printer/scanner driver software, forimage forming device 22.Imaging driver 66 is in communication withcontroller 28 ofimage forming device 22 via communications link 26.Imaging driver 66 facilitates communication betweenimage forming device 22 andcomputer 24. One aspect ofimaging driver 66 may be, for example, to provide formatted print data to image formingdevice 22, and more particularly to printengine 30, to print an image. Another aspect ofimaging driver 66 may be, for example, to facilitate collection of scanned data fromscanner system 40. - In some circumstances, it may be desirable to operate
image forming device 22 in a standalone mode. In the standalone mode,image forming device 22 is capable of functioning withoutcomputer 24. Accordingly, all or a portion ofimaging driver 66, or a similar driver, may be located incontroller 28 ofimage forming device 22 so as to accommodate printing and/or scanning functionality when operating in the standalone mode. -
Print engine 30 includes a laser scan unit (LSU) 31,toner cartridge 100,imaging unit 200 and afuser 37, all mounted withinimage forming device 22.Imaging unit 200 is removably mounted inimage forming device 22 and includes adeveloper unit 202 that houses a toner reservoir and a toner development system. In one embodiment, the toner development system utilizes what is commonly referred to as a single component development system. In this embodiment, the toner development system includes a toner adder roll that provides toner from the toner reservoir ofdeveloper unit 202 to a developer roll. A doctor blade provides a metered uniform layer of toner on the surface of the developer roll. In another embodiment, the toner development system utilizes what is commonly referred to as a dual component development system. In this embodiment, toner in the toner reservoir ofdeveloper unit 202 is mixed with magnetic carrier beads. The magnetic carrier beads may be coated with a polymeric film to provide triboelectric properties to attract toner to the carrier beads as the toner and the magnetic carrier beads are mixed in the toner reservoir ofdeveloper unit 202. In this embodiment,developer unit 202 includes a magnetic roll that attracts the magnetic carrier beads having toner thereon to the magnetic roll through the use of magnetic fields.Imaging unit 200 also includes acleaner unit 204 that houses a photoconductive drum and a waste toner removal system. -
Toner cartridge 100 is removably mounted inimaging forming device 22 in a mating relationship withdeveloper unit 202 ofimaging unit 200. An outlet port ontoner cartridge 100 communicates with an inlet port ondeveloper unit 202 allowing toner to be periodically transferred fromtoner cartridge 100 to resupply the toner reservoir indeveloper unit 202. - The electrophotographic printing process is well known in the art and, therefore, is described briefly herein. During a printing operation,
laser scan unit 31 creates a latent image on the photoconductive drum incleaner unit 204. Toner is transferred from the toner reservoir indeveloper unit 202 to the latent image on the photoconductive drum by the developer roll (in the case of a single component development system) or by the magnetic roll (in the case of a dual component development system) to create a toned image. The toned image is then transferred to a media sheet received byimaging unit 200 from media input tray 39 for printing. Toner may be transferred directly to the media sheet by the photoconductive drum or by an intermediate transfer member that receives the toner from the photoconductive drum. Toner remnants are removed from the photoconductive drum by the waste toner removal system. The toner image is bonded to the media sheet infuser 37 and then sent to an output location or to one or more finishing options such as a duplexer, a stapler or a hole-punch. - Referring now to
Figure 2 ,toner cartridge 100 andimaging unit 200 are shown according to one example embodiment.Imaging unit 200 includes adeveloper unit 202 and acleaner unit 204 mounted on acommon frame 206.Developer unit 202 includes atoner inlet port 208 positioned to receive toner fromtoner cartridge 100. As discussed above,imaging unit 200 andtoner cartridge 100 are each removably installed inimage forming device 22.Imaging unit 200 is first slidably inserted intoimage forming device 22.Toner cartridge 100 is then inserted intoimage forming device 22 and ontoframe 206 in a mating relationship withdeveloper unit 202 ofimaging unit 200 as indicated by the arrow A shown inFigure 2 , which also indicates the direction of insertion ofimaging unit 200 andtoner cartridge 100 intoimage forming device 22. This arrangement allowstoner cartridge 100 to be removed and reinserted easily when replacing anempty toner cartridge 100 without having to removeimaging unit 200.Imaging unit 200 may also be readily removed as desired in order to maintain, repair or replace the components associated withdeveloper unit 202,cleaner unit 204 orframe 206 or to clear a media jam. - With reference to
Figures 2-5 ,toner cartridge 100 includes ahousing 102 having an enclosed reservoir 104 (Figure 5 ) for storing toner.Housing 102 includes a top 106, a bottom 107, first andsecond sides Front 110 ofhousing 102 leads during insertion oftoner cartridge 100 intoimage forming device 22 and rear 111 trails. In one embodiment, eachside housing 102 includes anend cap side walls main body 116 ofhousing 102. In this embodiment,housing 102 includesmain body 116 as well as various attachments (direct and indirect) thereto forming the overall body oftoner cartridge 100 including, for example, end caps 112, 113. Anoutlet port 118 in fluid communication withreservoir 104 is positioned onfront 110 ofhousing 102 nearside 109 for exiting toner fromtoner cartridge 100.Housing 102 may includelegs 120 onbottom 107 to assist with the insertion oftoner cartridge 100 intoimage forming device 22 and to supporthousing 102 whentoner cartridge 100 is set on a flat surface. Ahandle 122 may be provided on top 106 or rear 111 ofhousing 102 to assist with insertion and removal oftoner cartridge 100 into and out ofimage forming device 22. -
Sides positioning guide 124 that extends outward from therespective side toner cartridge 100 intoimage forming device 22. Positioning guides 124 travel in corresponding guide slots inimage forming device 22 that guide the insertion oftoner cartridge 100 intoimage forming device 22. In the example embodiment illustrated, apositioning guide 124 is positioned on the outer side of eachend cap rear dimension 126 ofhousing 102, which extends fromfront 110 to rear 111, as shown inFigures 3 and 4 . - With reference to
Figure 5 , in the example embodiment illustrated, atoner agitator assembly 130 is rotatably positioned withintoner reservoir 104.Toner agitator assembly 130 includes anauger 132 having first andsecond ends Auger 132 is positioned in achannel 128 that runs along thefront 110 ofhousing 102 fromside wall 114 toside wall 115.Channel 128 is oriented generally horizontal whentoner cartridge 100 is installed inimage forming device 22.Auger 132 includes arotational axis 133. In operation,auger 132 rotates in an operativerotational direction 138. Rotation ofauger 132 in operativerotational direction 138 delivers toner inchannel 128 tooutlet port 118, which is positioned at the bottom ofchannel 128 so that gravity assists in exiting toner throughoutlet port 118.Channel 128 includes anopen portion 128a and may include anenclosed portion 128b.Open portion 128a is open totoner reservoir 104 and extends fromside wall 114 towardsecond end 132b ofauger 132.Enclosed portion 128b ofchannel 128 extends fromside wall 115 and enclosessecond end 132b ofauger 132. In this embodiment,outlet port 118 is positioned at the bottom ofenclosed portion 128b ofchannel 128. -
Toner agitator assembly 130 also includes arotatable drive shaft 134 and one ormore toner agitators 136 in the form of extensions outward fromdrive shaft 134. Driveshaft 134 includes arotational axis 135. In the example embodiment illustrated,rotational axis 135 ofdrive shaft 134 is parallel torotational axis 133 ofauger 132. In operation, driveshaft 134 rotates in an operativerotational direction 139.Toner agitators 136 rotate withdrive shaft 134 aroundrotational axis 135 whendrive shaft 134 rotates in operativerotational direction 139. Asdrive shaft 134 rotates in operativerotational direction 139,toner agitators 136 agitate and mix the toner stored intoner reservoir 104 and, in the embodiment illustrated, move toner towardchannel 128 whereauger 132 moves the toner tooutlet port 118. In the example embodiment illustrated, first and second ends ofdrive shaft 134 extend through aligned openings inside walls drive shaft 134 may take other positions and orientations as desired. Bushings may be provided on an inner side of eachside wall drive shaft 134 passes throughside walls - A
drive train 140 onhousing 102 is operatively connected to auger 132 and driveshaft 134 and may be positioned within a space formed betweenend cap 112 andside wall 114. Drivetrain 140 includes aninput gear 142 that engages with a corresponding output gear inimage forming device 22 that provides rotational motion fromdrive motor 70 inimage forming device 22 to inputgear 142.Input gear 142 is rotatable about arotational axis 141. In the embodiment illustrated,rotational axis 141 is orthogonal to front-to-rear dimension 126. As shown inFigure 3 , in one embodiment, a front portion ofinput gear 142 is exposed at thefront 110 ofhousing 102 near the top 106 ofhousing 102 whereinput gear 142 engages the output gear inimage forming device 22. In the embodiment illustrated, a front portion ofinput gear 142 is exposed in acutout 158 formed in a front portion ofend cap 112. With reference back toFigure 5 , in the embodiment illustrated,drive train 140 also includes adrive gear 144 on one end ofdrive shaft 134 that is connected to inputgear 142 either directly or via one or more intermediate gears to rotatedrive shaft 134. In the embodiment illustrated,drive train 140 also includes adrive gear 146 onfirst end 132a ofauger 132 that is connected to inputgear 142 either directly or via one or more intermediate gears to rotateauger 132. - With reference to
Figures 5-7 ,toner cartridge 100 includes an encodedmember 150 that is movably connected to drivetrain 140, either directly or indirectly to inputgear 142. In the example embodiment illustrated, encodedmember 150 includes arotatable disk 152 operatively connected to drivetrain 140, such as, for example, positioned on anoutboard face 143 ofinput gear 142, coaxially withinput gear 142 as illustrated.Disk 152 may be formed integrally withinput gear 142 or separately attached to inputgear 142. In other embodiments, encodedmember 150 is, for example, translatable, such as by way of a rack and pinion arrangement or a cam and follower arrangement. Information pertaining totoner cartridge 100 is encoded on encodedmember 150. Encodedmember 150 is detectable bysensor 300 inimage forming device 22 whentoner cartridge 100 is installed inimage forming device 22 permittingsensor 300 to communicate the encoded information oftoner cartridge 100 tocontroller 28 ofimage forming device 22 via communications link 57. The encoded information may include, for example, authentication information such as a signature, serial number, or other identifier for authenticating or validatingtoner cartridge 100 upon installation oftoner cartridge 100 inimage forming device 22 or periodically during use oftoner cartridge 100. The encoded information may include, for example, characteristics oftoner cartridge 100 such as toner color, initial toner fill amount, toner type, geographic region, manufacture location, manufacture date, etc. - In the example embodiment illustrated, authentication information is encoded on encoded
member 150 by randomly distributedmagnetized particles 154 dispersed ondisk 152, e.g., on the surface ofdisk 152 and/or withindisk 152.Particles 154 are distributed randomly such that it is difficult to reproduce the exact distribution and alignment ofparticles 154 thereby making the distribution difficult to copy. In this embodiment,sensor 300 is positioned in close proximity to encodedmember 150 whentoner cartridge 100 is installed inimage forming device 22, such as, adjacent to and facing the outboard side ofdisk 152 as schematically illustrated inFigure 7 . At predetermined times, such as upon the installation of a new toner cartridge inimage forming device 22,sensor 300 measures the magnetic field ofdisk 152 in one, two or three orthogonal dimensions asdisk 152 rotates due to rotation ofinput gear 142 bymotor 70. The magnetic field values measured bysensor 300 are communicated tocontroller 28 via communications link 57.Controller 28 may then compare the magnetic field values received fromsensor 300 to values stored during manufacture in non-volatile memory ofprocessing circuitry 45 oftoner cartridge 100.Controller 28 may confirm the authenticity oftoner cartridge 100 tocontroller 28 if the magnetic field values received fromsensor 300 match the values stored in non-volatile memory ofprocessing circuitry 45. - While the example embodiment illustrated includes information encoded by a random distribution of magnetized particles and detection by measuring the magnetic field of the particles, it will be appreciated that information may be encoded by a random distribution of non-magnetized particles and detection may occur according to other means, such as, for example, by measuring an optical property of the particles. Further, in lieu of a random pattern, information may be encoded according to a predetermined pattern using any suitable indicia and detection method. However, as discussed above, it is preferred for authentication information to be encoded according to a random pattern so that encoded authentication information is more difficult for a counterfeiter to reproduce.
- With reference to
Figure 6 , in the example embodiment illustrated, at least a portion of encodedmember 150 is exposed on the exterior oftoner cartridge 100, e.g., aboverotational axis 141 ofinput gear 142, for reading bysensor 300. For example, in the embodiment illustrated, encodedmember 150 is exposed through acutout 156 inend cap 112 that is positioned aboverotational axis 141 ofinput gear 142. Although it is preferred for at least a portion of encodedmember 150 to be exposed for reading bysensor 300 in order to ensure an accurate reading of encodedmember 150, in other embodiments, encodedmember 150 may be covered by a relatively thin material, e.g., in place ofcutout 156, so long assensor 300 is still able to accurately read encodedmember 150 through the material. -
Figure 8 shows drivetrain 140 in greater detail according to one example embodiment. In the example embodiment illustrated,input gear 142 is a compound gear that includes afirst portion 142a that mates with the corresponding output gear inimage forming device 22 whentoner cartridge 100 is installed inimage forming device 22 and asecond portion 142b that meshes withdrive gear 144 in order to provide rotational motion to driveshaft 134.First portion 142a ofinput gear 142 also meshes with anidler gear 147 that, in turn, meshes with acompound idler gear 148.Compound idler gear 148 includes afirst portion 148a that meshes withidler gear 147 and asecond portion 148b that meshes withdrive gear 146 in order to provide rotational motion to auger 132. It will be appreciated that the embodiment illustrated inFigure 8 is merely an example and thatdrive train 140 may take many suitable configurations for transferring rotational motion frominput gear 142 totoner agitator assembly 130 and to encodedmember 150. - In some embodiments, in operation,
controller 28 drives motor 70 in a first rotational direction to drivetoner agitator assembly 130 and in a second rotational direction to perform a reading of encodedmember 150 bysensor 300. In particular, whencontroller 28 drives motor 70 in the first rotational direction,input gear 142 rotates in a firstrotational direction 149a and, in turn, rotatesauger 132 and driveshaft 134 in operativerotational directions toner cartridge 100 todeveloper unit 202. Whencontroller 28 drives motor 70 in the second rotational direction,input gear 142 rotates in a secondrotational direction 149b.Sensor 300 is configured to read encodedmember 150 asinput gear 142 rotates inrotational direction 149b. In this manner,sensor 300 is able to perform a reading of encodedmember 150 separately from a toner feed operation so that the authenticity or validity oftoner cartridge 100 may be checked prior to the first use oftoner cartridge 100 or at other times whentoner cartridge 100 is not in use. - In some embodiments,
toner agitator assembly 130 includes a one-way clutch that limits the rotational motion of at least one component oftoner agitator assembly 130 to its operative rotational direction. For example, the one-way clutch may limitauger 132 and/or driveshaft 134 to its operativerotational direction gear 144 such that wheninput gear 142 rotates inrotational direction 149a,drive shaft 134 rotates in operativerotational direction 139 and wheninput gear 142 rotates inrotational direction 149b,drive shaft 134 is decoupled and does not rotate withinput gear 142. In this manner,drive shaft 134 andtoner agitators 136 do not rotate whilesensor 300 performs a reading of encodedmember 150. As a result, torque ondrive shaft 134 andtoner agitators 136 from toner stored inreservoir 104 does not affect the movement of encodedmember 150 thereby permitting better control of encodedmember 150 whilesensor 300 performs a reading of encodedmember 150 and improving the accuracy of the reading performed bysensor 300. Further, in some embodiments,toner agitators 136 may include flexible wipers that could displace or become damaged upon rotating counter to operativerotational direction 139.Decoupling drive shaft 134 frominput gear 142 wheninput gear 142 rotates inrotational direction 149b prevents this from occurring. - With reference back to
Figure 6 ,toner cartridge 100 includes avertical alignment guide 160 positioned onside 108 ofhousing 102, e.g., on an outer side ofend cap 112. In the embodiment illustrated,alignment guide 160 is positioned axially outboard ofinput gear 142 and encodedmember 150 relative torotational axis 141. In this embodiment,alignment guide 160 is positioned below the portion of encodedmember 150 exposed throughcutout 156.Alignment guide 160 is positioned to contact a housing ofsensor 300 whentoner cartridge 100 is installed inimage forming device 22 and to positionsensor 300 vertically relative to encodedmember 150 as discussed in greater detail below.Alignment guide 160 includes atop surface 162 that is unobstructed (i.e., by any other portion of toner cartridge 100) to contact a housing ofsensor 300 from below in order to liftsensor 300 upward during insertion oftoner cartridge 100 intoimage forming device 22 and in order to support the housing ofsensor 300 from below whentoner cartridge 100 is in its final installed position inimage forming device 22 to maintain vertical alignment ofsensor 300 with encodedmember 150 during operation as discussed in greater detail below. In the embodiment illustrated,alignment guide 160 is formed as an extension outward sideways fromside 108 of housing, such as away from an outer side ofend cap 112.Top surface 162 includes afront portion 164 and arear portion 166. In the embodiment illustrated,front portion 164 andrear portion 166 combine to form a continuoustop surface 162.Front portion 164 oftop surface 162 is positioned further forward (towardfront 110 of housing 102) thanrear portion 166 oftop surface 162. That is,front portion 164 oftop surface 162 is positioned closer tofront 110 ofhousing 102 thanrear portion 166 oftop surface 162 is tofront 110 ofhousing 102, andrear portion 166 oftop surface 162 is positioned closer to rear 111 ofhousing 102 thanfront portion 164 oftop surface 162 is to rear 111 ofhousing 102. -
Front portion 164 oftop surface 162 ofalignment guide 160 inclines upward and rearward, towardtop 106 and rear 111, such thatfront portion 164 oftop surface 162 is positioned higher as it extends rearward towardrear 111 ofhousing 102.Front portion 164 oftop surface 162 may include a planar surface (including one or multiple planar facets) that inclines upward and rearward, a curved surface (e.g., a convex surface as viewed from above) that inclines upward and rearward, or a combination thereof. As discussed in greater detail below, during insertion oftoner cartridge 100 intoimage forming device 22,front portion 164 oftop surface 162 contacts a housing ofsensor 300 and liftssensor 300 upward relative totoner cartridge 100 due to the incline offront portion 164 oftop surface 162.Front portion 164 oftop surface 162 leads rearward torear portion 166 oftop surface 162. In the embodiment illustrated, a portion offront portion 164 oftop surface 162 extends lower thanrear portion 166 oftop surface 162. - As discussed in greater detail below,
rear portion 166 oftop surface 162 ofalignment guide 160 contacts a housing ofsensor 300 and sets the final vertical position ofsensor 300 relative totoner cartridge 100 whentoner cartridge 100 is in its final installed position inimage forming device 22 in order to alignsensor 300 vertically withdisc 152 of encodedmember 150 during operation oftoner cartridge 100. In the example embodiment illustrated,rear portion 166 oftop surface 162 is positioned higher thanrotational axis 141 ofinput gear 142 and ofdisc 152, and at least a portion ofrear portion 166 oftop surface 162 extends rearward (towardrear 111 of housing 102) ofrotational axis 141 ofinput gear 142 and ofdisc 152. However,rear portion 166 oftop surface 162 may take other positions relative torotational axis 141 depending on the location of the segment of encodedmember 150 to be read bysensor 300. -
Rear portion 166 oftop surface 162 overlaps withoutboard face 143 ofinput gear 142, including a portion of encodedmember 150 oninput gear 142 exposed throughcutout 156, as viewed fromside 108 of housing 102 (i.e., as viewed inFigure 6 ) in order to permitsensor 300 to read encodedmember 150 when a housing ofsensor 300 is in contact withrear portion 166 oftop surface 162. In the embodiment illustrated,cutout 156 extends upward fromrear portion 166 oftop surface 162 such that a portion of encodedmember 150 is exposed directly aboverear portion 166 oftop surface 162 for reading bysensor 300. In the example embodiment illustrated,rear portion 166 oftop surface 162 is positioned lower than a topmost portion of the gear teeth ofinput gear 142 and lower than at least a portion of themagnetized particles 154 ondisc 152 of encodedmember 150 in order to permitsensor 300 to read encodedmember 150 when a housing ofsensor 300 is in contact withrear portion 166 oftop surface 162. In the embodiment illustrated,rear portion 166 oftop surface 162 is positioned immediately adjacent to encodedmember 150, e.g., spaced a few millimeters along an axial dimension ofinput gear 142 from encodedmember 150, in order to permitsensor 300 to be positioned in close proximity to encodedmember 150 whentoner cartridge 100 is installed inimage forming device 22. - In some embodiments,
rear portion 166 oftop surface 162 is formed by a planar portion oftop surface 162. In the example embodiment illustrated,rear portion 166 oftop surface 162 is parallel to abottom contact surface 125 ofpositioning guide 124 onside 108 oftoner cartridge 100. Whentoner cartridge 100 is installed inimage forming device 22,bottom contact surface 125 ofpositioning guide 124 contacts a top surface of a corresponding guide rail inimage forming device 22 to define the vertical position oftoner cartridge 100 relative to image formingdevice 22. In the embodiment illustrated,bottom contact surface 125 ofpositioning guide 124 is defined by a pair of roundedbottom contact surfaces positioning guide 124. As shown inFigure 6 , animaginary line 125c formed by the bottommost points of roundedbottom contact surfaces positioning guide 124 onside 108 ofhousing 102 is parallel torear portion 166 oftop surface 162 as depicted byimaginary line 168. - In some embodiments,
toner cartridge 100 also includes arear stop 170 positioned onside 108 ofhousing 102, e.g., on an outer side ofend cap 112. Stop 170 is positioned at a rear end ofalignment guide 160. Stop 170 includes a frontward facingsurface 172 that faces towardfront 110 ofhousing 102.Frontward facing surface 172 may include, for example, a vertical or primarily vertical surface.Frontward facing surface 172 is unobstructed (i.e., by any other portion of toner cartridge 100) to contact the housing ofsensor 300 in order to limit the position ofsensor 300 in a direction fromfront 110 toward rear 111 along front-to-rear dimension 126 whentoner cartridge 100 is in its final installed position inimage forming device 22 in order to ensure thatsensor 300 is aligned with encodedmember 150 along front-to-rear dimension 126. In the example embodiment illustrated, frontward facingsurface 172 extends upward from a rear end ofrear portion 166 oftop surface 162 ofalignment guide 160, and frontward facingsurface 172 is spaced rearward (towardrear 111 of housing 102) fromrotational axis 141 ofinput gear 142 and ofdisc 152. - With reference to
Figures 6 and9 , in the example embodiment illustrated,toner cartridge 100 includes anaxial alignment guide 180 positioned onside 108 ofhousing 102, e.g., on an outer side ofend cap 112. As discussed in greater detail below,alignment guide 180 is positioned to contact a housing ofsensor 300 during insertion oftoner cartridge 100 intoimage forming device 22 and to move the housing ofsensor 300 axially relative torotational axis 141 in order to ensure that the housing ofsensor 300 clears front edges ofinput gear 142 anddisc 152 and to guide the housing ofsensor 300 to cutout 156 for reading encodedmember 150. In the embodiment illustrated,alignment guide 180 is positioned directly in front ofcutout 156, closer tofront 110 ofhousing 102 thancutout 156 is tofront 110 ofhousing 102.Alignment guide 180 leads rearward alongside 108 ofhousing 102 toward the portion of encodedmember 150 exposed throughcutout 156. -
Alignment guide 180 includes afirst guide surface 182 and asecond guide surface 184 that is positioned rearward offirst guide surface 182. That is,first guide surface 182 is positioned closer tofront 110 ofhousing 102 thansecond guide surface 184 is tofront 110 ofhousing 102, andsecond guide surface 184 is positioned closer to rear 111 ofhousing 102 thanfirst guide surface 182 is to rear 111 ofhousing 102.First guide surface 182 inclines outward sideways and rearward, away fromside 108 ofhousing 102 and towardrear 111 ofhousing 102, such thatfirst guide surface 182 is positioned further outward sideways as it extends rearward towardrear 111 ofhousing 102.First guide surface 182 may include a planar surface (including one or multiple planar facets) that inclines outward sideways and rearward, a curved surface that inclines outward sideways and rearward, or a combination thereof.Second guide surface 184 inclines inward sideways and rearward, towardreservoir 104 andopposite side 109 ofhousing 102 and towardrear 111 ofhousing 102, such thatsecond guide surface 184 is positioned further inward sideways as it extends rearward towardrear 111 ofhousing 102.Second guide surface 184 may include a planar surface (including one or multiple planar facets) that inclines inward sideways and rearward, a curved surface that inclines inward sideways and rearward, or a combination thereof. - In the embodiment illustrated, a
third guide surface 186 is positioned betweenfirst guide surface 182 andsecond guide surface 184 along front-to-rear dimension 126. In this embodiment,first guide surface 182 leads rearward tothird guide surface 186, andthird guide surface 186 leads rearward tosecond guide surface 184.Third guide surface 186 has a substantially constant position along an axial dimension ofrotational axis 141. That is, in the embodiment illustrated,third guide surface 186 does not angle or incline inward sideways or outward sideways as it extends frontward or rearward. In other embodiments,first guide surface 182 leads directly tosecond guide surface 184 as desired. Guide surfaces 182, 184, 186 are unobstructed (i.e., by any other portion of toner cartridge 100) to contact the housing ofsensor 300 during insertion oftoner cartridge 100 intoimage forming device 22 and to move the housing ofsensor 300 axially relative torotational axis 141 during insertion oftoner cartridge 100 intoimage forming device 22. - In the embodiment illustrated, at least a portion of each of first, second and third guide surfaces 182, 184, 186 of
alignment guide 180 is positioned higher thanrotational axis 141 and higher thantop surface 162 ofvertical alignment guide 160. In the embodiment illustrated, first and third guide surfaces 182, 186 are spaced forward, towardfront 110 ofhousing 102, fromrotational axis 141. In this manner, each of first and third guide surfaces 182, 186 is positioned closer tofront 110 ofhousing 102 thanrotational axis 141 is tofront 110 ofhousing 102. Further, at least a portion ofsecond guide surface 184, such as a point wheresecond guide surface 184 begins to angle inward sideways and rearward, is spaced forward, towardfront 110 ofhousing 102, fromrotational axis 141, i.e., closer tofront 110 ofhousing 102 thanrotational axis 141 is tofront 110 ofhousing 102. The positioning of guide surfaces 182, 184, 186 allowsalignment guide 180 to contact the housing ofsensor 300 during insertion oftoner cartridge 100 intoimage forming device 22 prior tosensor 300 reachingcutout 156 or encodedmember 150 in order to ensure that the housing ofsensor 300 clears front edges ofinput gear 142 anddisc 152 and to guide the housing ofsensor 300 to cutout 156 for reading encodedmember 150. - With reference to
Figure 9 , in the embodiment illustrated, at least a portion of each of first and second guide surfaces 182, 184 extends further outward sideways fromside 108 ofhousing 102 thaninput gear 142 anddisc 152 of encodedmember 150 extend fromside 108 ofhousing 102 in order to ensure that the housing ofsensor 300 clears front edges ofinput gear 142 anddisc 152 during insertion oftoner cartridge 100 intoimage forming device 22.Third guide surface 186 is also positioned further outward sideways relative toside 108 ofhousing 102 thaninput gear 142 anddisc 152 of encodedmember 150 extend fromside 108 ofhousing 102. In the embodiment illustrated,disc 152 of encodedmember 150 extends further outward sideways fromside 108 ofhousing 102 than an innermost axial (relative to rotational axis 141) portion of each of first and second guide surfaces 182, 184 in order to permit the housing ofsensor 300 to directly contactdisc 152 of encodedmember 150 whentoner cartridge 100 is in its final installed position inimage forming device 22 andsensor 300 is aligned withcutout 156. - With reference to
Figures 10-12 , asensor assembly 302 ofimage forming device 22 is shown according to one example embodiment.Sensor assembly 302 includessensor 300 mounted to asensor housing 304.Sensor housing 304 is, in turn, mounted to a portion of aframe 306 ofimage forming device 22. Frame 306 runs along front-to-rear dimension 126 oftoner cartridge 100 whentoner cartridge 100 is installed inimage forming device 22.Frame 306 is positioned in close proximity with and generally facesside 108 oftoner cartridge 100 whentoner cartridge 100 is installed inimage forming device 22.Frame 306 includes aguide slot 308 formed therein that receivespositioning guide 124 onside 108 oftoner cartridge 100 during insertion oftoner cartridge 100 intoimage forming device 22.Guide slot 308 is defined by a gap formed between abottom guide rail 310 and atop guide rail 312. Atop surface 311 ofbottom guide rail 310 contactsbottom contact surface 125 ofpositioning guide 124 onside 108 oftoner cartridge 100 whentoner cartridge 100 is installed inimage forming device 22 to define the vertical position oftoner cartridge 100 atside 108 relative to image formingdevice 22.Guide slot 308 extends primarily along front-to-rear dimension 126 oftoner cartridge 100. Arear end 314 ofguide slot 308 shown inFigure 10 is positioned proximate to rear 111 oftoner cartridge 100 whentoner cartridge 100 is installed in image forming device. - An
output gear 316 is exposed on a portion offrame 306 abovetop guide rail 312 in the embodiment illustrated.Output gear 316 is operatively connected tomotor 70 inimage forming device 22 and mates withcorresponding input gear 142 oftoner cartridge 100 whentoner cartridge 100 is installed inimage forming device 22 in order to provide rotational motion to inputgear 142. -
Frame 306 also includes asensor mount 320 that is positioned abovetop guide rail 312 in the embodiment illustrated.Sensor housing 304 is mounted tosensor mount 320 offrame 306 in a manner that permitssensor housing 304 to move relative to frame 306.Sensor mount 320 includes atop guide wall 322, abottom guide wall 323, afront guide wall 324 and arear guide wall 325 that aid inpositioning sensor housing 304 vertically and along front-to-rear dimension 126 oftoner cartridge 100 relative to frame 306.Sensor mount 320 also includes anend wall 326 that aids inpositioning sensor housing 304 axially relative torotational axis 141 oftoner cartridge 100 relative to frame 306. - In the example embodiment illustrated,
sensor 300 includes one or more hall-effect sensors 330 mounted on a printedcircuit board 332. Hall-effect sensor(s) 330 are configured to measure the magnetic field ofmagnetized particles 154 ondisc 152 of encodedmember 150 in one, two or three orthogonal dimensions asdisc 152 rotates. Printedcircuit board 332 facilitates communication of the magnetic field measurements obtained by hall-effect sensor(s) 330 tocontroller 28 ofimage forming device 22 by way ofcommunications path 57. Printedcircuit board 332 havingsensor 300 is fixedly mounted tosensor housing 304. In the embodiment illustrated, a portion ofsensor 300 is exposed through acutout 334 on anouter face 336 ofsensor housing 304 to permit an unobstructed reading of the magnetic field ofmagnetized particles 154 of encodedmember 150 bysensor 300.Outer face 336 ofsensor housing 304 is positioned at an innermost end ofsensor housing 304 alongrotational axis 141 of toner cartridge 100 (nearest toner cartridge 100) and faces towardside 108 oftoner cartridge 100. - With reference to
Figure 10 ,sensor housing 304 includes a top 340, a bottom 341, afront side 342 and arear side 343 that are positioned in close proximity to inside surfaces oftop guide wall 322,bottom guide wall 323,front guide wall 324 andrear guide wall 325, respectively. In the embodiment illustrated,sensor housing 304 andsensor mount 320 are sized to permit vertical movement ofsensor housing 304 relative tosensor mount 320 offrame 306. Upward movement ofsensor housing 304 relative to frame 306 is limited by contact betweentop 340 ofsensor housing 304 andtop guide wall 322 ofsensor mount 320, and downward movement ofsensor housing 304 relative to frame 306 is limited by contact betweenbottom 341 ofsensor housing 304 andbottom guide wall 323 ofsensor mount 320. In the embodiment illustrated,sensor housing 304 andsensor mount 320 are sized to limit lateral movement along front-to-rear dimension 126 oftoner cartridge 100 in comparison with the amount of vertical movement permitted. Forward lateral movement ofsensor housing 304 along front-to-rear dimension 126 relative to frame 306 is limited by contact betweenfront side 342 ofsensor housing 304 andfront guide wall 324 ofsensor mount 320, and rearward lateral movement ofsensor housing 304 along front-to-rear dimension 126 relative to frame 306 is limited by contact betweenrear side 343 ofsensor housing 304 andrear guide wall 325 ofsensor mount 320. - In the example embodiment illustrated,
sensor housing 304 is biased by one or more springs downward and rearward along front-to-rear dimension 126, i.e., towardbottom guide wall 323 andrear guide wall 325 ofsensor mount 320. In the embodiment illustrated, anextension spring 360biases sensor housing 304 downward and rearward along front-to-rear dimension 126. Afirst end 362 ofextension spring 360 is anchored totop guide wall 322, and asecond end 363 ofextension spring 360 is anchored tofront guide wall 324. Acorner 344 ofsensor housing 304 formed at an intersection oftop 340 andfront side 342 contacts acoil portion 364 ofextension spring 360 that is intermediate ends 362, 363 and displacescoil portion 364 from its natural position along a straight line between ends 362, 363 causingcoil portion 364 to bend aroundcorner 344 ofsensor housing 304. The bending ofcoil portion 364 ofextension spring 360 aroundcorner 344 ofsensor housing 304 causescoil portion 364 to remain in constant contact withcorner 344 ofsensor housing 304 and to apply a bias force oncorner 344 ofsensor housing 304 that urgessensor housing 304 downward and rearward as indicated by the arrow F1 inFigure 10 .Corner 344 may include achamfered surface 345 that provides a contact surface that is less likely to catch or snag oncoil portion 364 ofextension spring 360. - With reference to
Figures 11 and12 , in the embodiment illustrated,sensor housing 304 andsensor mount 320 are sized to permit axial movement ofsensor housing 304 relative tosensor mount 320 offrame 306 alongrotational axis 141 oftoner cartridge 100. In the embodiment illustrated, avertical post 346 extends upward fromtop 340 ofsensor housing 304.Post 346 is received by anelongated slot 328 formed intop guide wall 322 ofsensor mount 320.Slot 328 is elongated axially relative torotational axis 141 permittingpost 346 to move axially withinslot 328 relative torotational axis 141. Although not shown, in the example embodiment illustrated,bottom 341 ofsensor housing 304 includes a post substantially identical to post 346 andbottom guide wall 323 ofsensor mount 320 includes an elongated slot substantially identical toelongated slot 328. The relationship between the posts ofsensor housing 304 and the elongated slots ofsensor mount 320permit sensor housing 304 to move relative to frame 306 axially alongrotational axis 141, toward and away fromside 108 oftoner cartridge 100. It will be appreciated that the post/slot interface ofsensor housing 304 andsensor mount 320 may be reversed to instead include one or more guide posts onsensor mount 320 and one or more corresponding elongated guide slots insensor housing 304 as desired to permit movement ofsensor housing 304 relative to frame 306 axially alongrotational axis 141 oftoner cartridge 100. - In the example embodiment illustrated,
sensor housing 304 is biased by one or more springs outward from frame 306 (towardside 108 of toner cartridge 100) alongrotational axis 141, away fromend wall 326 ofsensor mount 320. In the embodiment illustrated, acompression spring 370biases sensor housing 304 outward from frame 306 (towardside 108 of toner cartridge 100) alongrotational axis 141. Afirst end 372 ofcompression spring 370 is positioned againstend wall 326 ofsensor mount 320, and asecond end 373 ofcompression spring 370 is positioned against a surface ofsensor housing 304 and/or printedcircuit board 332 that facesend wall 326.Compression spring 370 applies a bias force onsensor housing 304 that urgessensor housing 304 outward from frame 306 (towardside 108 of toner cartridge 100) as indicated by the arrow F2 inFigure 11 . The force applied bycompression spring 370 urges the posts ofsensor housing 304 toward the innermost ends (nearest toner cartridge 100) of the elongated slots ofsensor mount 320 in the embodiment illustrated. - In the embodiment illustrated,
sensor housing 304 includes first and secondchamfered surfaces sensor housing 304 andaxial alignment guide 180 oftoner cartridge 100 during insertion oftoner cartridge 100 intoimage forming device 22 as discussed in greater detail below. First chamferedsurface 348 is formed at an intersection ofouter face 336 withfront side 342 ofsensor housing 304. Second chamferedsurface 349 is formed at an intersection ofouter face 336 withrear side 343 ofsensor housing 304. In the embodiment illustrated, eachchamfered surface outer face 336 toward the respectivefront side 342 andrear side 343 ofsensor housing 304. As desired, rounded surfaces may be used at the intersections ofouter face 336 withfront side 342 andrear side 343 ofsensor housing 304 in place of the planar surfaces illustrated. -
Figures 13-18B sequentially illustrate the interaction betweensensor housing 304 inimage forming device 22 and the corresponding alignment guides ontoner cartridge 100 during insertion oftoner cartridge 100 intoimage forming device 22.Figure 13 is a top plan view showing the position oftoner cartridge 100 relative to frame 306 astoner cartridge 100 entersimage forming device 22 when a front end ofpositioning guide 124 onside 108 oftoner cartridge 100 entersguide slot 310 onframe 306.Arrow 190 indicates the direction of insertion oftoner cartridge 100 intoimage forming device 22 withfront 110 oftoner cartridge 100 leading.Figure 13 showsfirst guide surface 182 ofaxial alignment guide 180 oftoner cartridge 100 approaching chamferedsurface 349 ofsensor housing 304 astoner cartridge 100 advances in direction ofinsertion 190. Prior to contact betweenaxial alignment guide 180 oftoner cartridge 100 andsensor housing 304,sensor housing 304 is fully extended outward alongrotational axis 141, towardside 108 oftoner cartridge 100 as a result of the bias applied bycompression spring 370 withpost 346 ofsensor housing 304 in contact with aninnermost end 329a (nearest toner cartridge 100) ofelongated slot 328. -
Figure 14 is a top plan view showing the position oftoner cartridge 100 relative to frame 306 withtoner cartridge 100 advanced along direction ofinsertion 190 from the position shown inFigure 13 . Astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190,first guide surface 182 ofaxial alignment guide 180 oftoner cartridge 100 contacts chamferedsurface 349 ofsensor housing 304. The force applied to chamferedsurface 349 ofsensor housing 304 byfirst guide surface 182 ofaxial alignment guide 180 astoner cartridge 100 advances overcomes the bias force applied tosensor housing 304 bycompression spring 370 causingsensor housing 304 to retract alongrotational axis 141, towardframe 306 and away fromside 108 oftoner cartridge 100, as a result of the angle offirst guide surface 182. Whensensor housing 304 retracts, towardframe 306 and away fromside 108 oftoner cartridge 100, post 346 ofsensor housing 304 moves away frominnermost end 329a ofelongated slot 328 and towardoutermost end 329b ofelongated slot 328 as shown inFigure 14 . -
Figures 15A and 15B are a top plan view and a side elevation view, respectively, showing the position oftoner cartridge 100 relative to frame 306 withtoner cartridge 100 advanced along direction ofinsertion 190 from the position shown inFigure 14 .Figure 15B shows the positions ofsensor 300,sensor housing 304 andsensor mount 320 relative toside 108 oftoner cartridge 100 illustrated schematically in dashed line in order to avoid obscuring the features oftoner cartridge 100. As shown inFigure 15A , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190,first guide surface 182 ofaxial alignment guide 180 oftoner cartridge 100 clears and passeschamfered surface 349 ofsensor housing 304, andthird guide surface 186 ofaxial alignment guide 180 oftoner cartridge 100 contactsouter face 336 ofsensor housing 304. Contact betweenthird guide surface 186 ofaxial alignment guide 180 andouter face 336 ofsensor housing 304 maintains a substantially constant retracted axial position ofsensor housing 304 relative torotational axis 141 astoner cartridge 100 continues to advance as a result of the substantially constant position ofthird guide surface 186 along the axial dimension ofrotational axis 141.Figure 15B showsfront portion 164 oftop surface 162 ofvertical alignment guide 160 approachingbottom 341 ofsensor housing 304. Prior to contact betweenvertical alignment guide 160 oftoner cartridge 100 andsensor housing 304,sensor housing 304 is in its lowest vertical position as a result of the bias applied byextension spring 360 withbottom 341 ofsensor housing 304 in contact withbottom guide wall 323 ofsensor mount 320. -
Figures 16A and 16B are a top plan view and a side elevation view, respectively, showing the position oftoner cartridge 100 relative to frame 306 withtoner cartridge 100 advanced along direction ofinsertion 190 from the position shown inFigures 15A and 15B . As shown inFigure 16A , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190,third guide surface 186 ofaxial alignment guide 180 oftoner cartridge 100 maintains contact with and slides acrossouter face 336 ofsensor housing 304 maintaining the retracted axial position ofsensor housing 304 relative torotational axis 141. As shown inFigure 16B , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190,front portion 164 oftop surface 162 ofvertical alignment guide 160 oftoner cartridge 100 contacts bottom 341 ofsensor housing 304. The force applied tobottom 341 ofsensor housing 304 byfront portion 164 oftop surface 162 ofvertical alignment guide 160 astoner cartridge 100 advances overcomes the bias force applied tosensor housing 304 byextension spring 360 causingsensor housing 304 to lift upward as a result of the angle offront portion 164 oftop surface 162. Whensensor housing 304 lifts upward,bottom 341 ofsensor housing 304 lifts upward away frombottom guide wall 323 ofsensor mount 320 as shown inFigure 16B . -
Figures 17A and 17B are a top plan view and a side elevation view, respectively, showing the position oftoner cartridge 100 relative to frame 306 withtoner cartridge 100 advanced along direction ofinsertion 190 from the position shown inFigures 16A and 16B . As shown inFigure 17A , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190,third guide surface 186 ofaxial alignment guide 180 oftoner cartridge 100 clears and passesouter face 336 ofsensor housing 304, andsecond guide surface 184 ofaxial alignment guide 180 oftoner cartridge 100 contacts chamferedsurface 348 ofsensor housing 304. Astoner cartridge 100 continues to advance along direction ofinsertion 190, the bias force applied tosensor housing 304 bycompression spring 370 causessensor housing 304 to gradually extend alongrotational axis 141, away fromframe 306 and towardside 108 oftoner cartridge 100 as limited by contact betweenchamfered surface 348 ofsensor housing 304 andsecond guide surface 184 ofaxial alignment guide 180 due to the angle ofsecond guide surface 184. Whensensor housing 304 extends, away fromframe 306 and towardside 108 oftoner cartridge 100, post 346 ofsensor housing 304 moves back towardinnermost end 329a ofelongated slot 328 and away fromoutermost end 329b ofelongated slot 328 as shown inFigure 17A . As shown inFigure 17B , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190,rear portion 166 oftop surface 162 ofvertical alignment guide 160 oftoner cartridge 100 contacts bottom 341 ofsensor housing 304. Contact betweenrear portion 166 oftop surface 162 ofvertical alignment guide 160 oftoner cartridge 100 andbottom 341 ofsensor housing 304 sets the final vertical position ofsensor housing 304 relative totoner cartridge 100 in order to alignsensor 300 vertically with the portion ofdisc 152 of encodedmember 150 exposed incutout 156 to be read bysensor 300. -
Figures 18A and 18B are a top plan view and a side elevation view, respectively, showing the final position oftoner cartridge 100 relative to frame 306 whentoner cartridge 100 is in its final installed position inimage forming device 22. As shown inFigure 18A , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190 toward the final installed position oftoner cartridge 100 inimage forming device 22,second guide surface 184 ofaxial alignment guide 180 oftoner cartridge 100 clears chamferedsurface 348 ofsensor housing 304, andsensor housing 304 reaches its final axial position alongrotational axis 141 relative totoner cartridge 100 in order to set the axial distance fromsensor 300 todisc 152 of encodedmember 150. In the example embodiment illustrated, contact betweenouter face 336 ofsensor housing 304 anddisc 152 sets the final axial position ofsensor housing 304 relative totoner cartridge 100. In other embodiments, contact betweenouter face 336 ofsensor housing 304 and a portion ofhousing 102, such as a portion of the outer side ofend cap 112 positioned abovecutout 156, sets the final axial position ofsensor housing 304 relative totoner cartridge 100. As shown inFigure 18B , astoner cartridge 100 advances further intoimage forming device 22 along direction ofinsertion 190 toward the final installed position oftoner cartridge 100 inimage forming device 22,rear portion 166 oftop surface 162 ofvertical alignment guide 160 oftoner cartridge 100 maintains contact with and slides acrossbottom 341 ofsensor housing 304 maintaining the final vertical position ofsensor housing 304 relative totoner cartridge 100. In the embodiment illustrated, forward facingsurface 172 ofrear stop 170 contactsrear side 343 ofsensor housing 304 whentoner cartridge 100 is in its final installed position inimage forming device 22, and contact between forward facingsurface 172 ofrear stop 170 andrear side 343 ofsensor housing 304 sets the final position ofsensor housing 304 relative totoner cartridge 100 along front-to-rear dimension 126 oftoner cartridge 100 in order to alignsensor 300 along front-to-rear dimension 126 with the portion ofdisc 152 of encodedmember 150 to be read bysensor 300. In other embodiments, because of the limited freedom of movement ofsensor housing 304 relative tosensor mount 320 along front-to-rear dimension 126,rear stop 170 may be omitted so long as precise alignment oftoner cartridge 100 relative to image formingdevice 22 along front-to-rear dimension 126 is achieved. - While the example embodiment illustrated includes various alignment guides for engaging
sensor 300 positioned onside 108 oftoner cartridge 100, neartop 106 oftoner cartridge 100, it will be appreciated that the alignment guides oftoner cartridge 100 that engage andposition sensor 300 relative totoner cartridge 100 may be positioned in other suitable locations and orientations depending on the positions and orientations of encodedmember 150 andsensor 300. For example, in another embodiment,sensor housing 304 is biased upward instead of downward, andvertical alignment guide 160,rear stop 170 andaxial alignment guide 180 are flipped vertically relative to the embodiment shown inFigure 6 such thatrear stop 170 andaxial alignment guide 180 are positioned lower thanvertical alignment guide 160, and a portion of a bottom surface ofvertical alignment guide 160 angles downward and rearward for contacting and movingsensor housing 304 downward against its bias during insertion oftoner cartridge 100 intoimage forming device 22 withfront 110 ofhousing 102 leading. The alignment guides oftoner cartridge 100, encodedmember 150 andsensor 300 may take other suitable positions and orientations as desired. - Further, while the example embodiments discussed above include a
toner agitator assembly 130 that includes arotatable auger 132 and arotatable drive shaft 134 havingtoner agitators 136 extending outward therefrom, it will be appreciated thattoner agitator assembly 130 may include any suitable combination of rotating, shifting, reciprocating or otherwise movable toner agitators, which may take many shapes, forms, sizes and orientations. For example, the toner agitator(s) may include any suitable combination of one or more paddles, augers, rakes, combs, scoops, plows, arms, extensions, prongs, flaps, mixers, conveyors, screws, etc. - While the example embodiment shown in
Figure 2 includes a pair of replaceable units in the form oftoner cartridge 100 andimaging unit 200, it will be appreciated that the replaceable unit(s) ofimage forming device 22 may employ any suitable configuration as desired. For example, in one embodiment, the main toner supply forimage forming device 22,developer unit 202 andcleaner unit 204 are housed in one replaceable unit. In another embodiment, the main toner supply forimage forming device 22 anddeveloper unit 202 are provided in a first replaceable unit (with the developer roll or magnetic roll ofdeveloper unit 202 forming the outlet of the first replaceable unit) andcleaner unit 204 is provided in a second replaceable unit. Further, while the exampleimage forming device 22 discussed above includes onetoner cartridge 100 andcorresponding imaging unit 200, in the case of an image forming device configured to print in color, separate replaceable units may be used for each toner color needed. For example, in one embodiment, the image forming device includes four toner cartridges and four corresponding imaging units, each toner cartridge containing a particular toner color (e.g., black, cyan, yellow or magenta) and each imaging unit corresponding with one of the toner cartridges to permit color printing. Further, while the example embodiments illustrated pertain to atoner agitator assembly 130, an encodedmember 150 and various alignment guides of atoner cartridge 100, it will be appreciated that they may apply to a toner agitator assembly, an encoded member and alignment guides of any toner container including, for example, a developer unit, an imaging unit or a waste toner container. - The foregoing description illustrates various aspects of the present disclosure. It is not intended to be exhaustive. Rather, it is chosen to illustrate the principles of the present disclosure and its practical application to enable one of ordinary skill in the art to utilize the present disclosure, including its various modifications that naturally follow. All modifications and variations are contemplated within the scope of the present disclosure as determined by the appended claims.
Claims (11)
- A toner container (100) for use in an electrophotographic image forming device (22), comprising:a housing (102) having a top (106), a bottom (107), a front (110) and a rear (111) positioned between a first side (108) and a second side (109) of the housing of the toner container (100), the housing of the toner container has a reservoir (104) for holding toner;an outlet (118) on the front (110) of the housing (102) of the toner container (100) in fluid communication with the reservoir (104) for exiting toner from the toner container;an input gear (142) positioned at the first side (108) of the housing (102) of the toner container (100) for mating with a corresponding output gear (316) in the image forming device (22) when the toner container is installed in the image forming device;an encoded member (150) encoded with identifying information of the toner container (100) and operatively connected to the input gear (142) such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to a sensor of the image forming device (22) when the toner container is installed in the image forming device, at least a portion of the encoded member is exposed on the first side (108) of the housing (102) of the toner container;a first alignment guide (160) on the first side (108) of the housing (102) of the toner container (100), the first alignment guide is positioned axially outboard of the encoded member (150) relative to a rotational axis of the input gear (142) and is positioned below an exposed portion of the encoded member, the first alignment guide includes a top surface (162) that is unobstructed to contact a sensor housing (304) in the image forming device (22) from below when the toner container is installed in the image forming device, at least a portion of the top surface (162) of the first alignment guide inclines upward and rearward toward the top (106) and the rear (111) of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front (110) of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the exposed portion of the encoded member (150); anda second alignment guide (180) on the first side (108) of the housing (102) of the toner container (100), the second alignment guide includes a first guide surface (182) and a second guide surface (184), the second guide surface is positioned rearward of the first guide surface such that the second guide surface is positioned closer to the rear (111) of the housing of the toner container (100) than the first guide surface (182) is to the rear of the housing of the toner container, the first guide surface inclines outward sideways and rearward away from the first side (108) and toward the rear of the housing of the toner container, the second guide surface (184) inclines inward sideways and rearward toward the second side (109) and toward the rear of the housing of the toner container, the first and second guide surfaces are unobstructed to contact the sensor housing (304) in the image forming device (22) during insertion of the toner container into the image forming device for moving the sensor housing in the image forming device axially relative to the rotational axis of the input gear (142) during insertion of the toner container into the image forming device.
- The toner container (100) of claim 1, wherein the encoded member (150) is rotatably connected to the input gear (142) such that rotation of the input gear causes rotation of the encoded member.
- The toner container (100) of claim 2, wherein the encoded member (150) is positioned on an axially outboard face of the input gear (142) that faces away from the reservoir (104).
- The toner container (100) of any one of claims 1 to 3, wherein the top surface (162) of the first alignment guide (160) includes a front portion and a rear portion, the front portion of the top surface (162) of the first alignment guide is positioned closer to the front (110) of the housing (102) of the toner container than the rear portion of the top surface (162) of the first alignment guide is to the front (110) of the housing of the toner container, the front portion of the top surface of the first alignment guide inclines upward and rearward toward the top (106) and the rear of the housing of the toner container, at least a portion of the rear portion of the top surface of the first alignment guide is positioned higher than the rotational axis of the input gear (142).
- The toner container (100) of claim 4, wherein at least a portion of the rear portion of the top surface (162) of the first alignment guide (160) extends rearward of the rotational axis of the input gear (142).
- The toner container (100) of any one of claims 1 to 5, wherein the first alignment guide (160) extends outward sideways from the first side (108) of the housing (102) of the toner container.
- The toner container (100) of claim 1, wherein the second alignment guide (180) leads rearward along the first side (108) of the housing (102) of the toner container to the exposed portion of the encoded member (150).
- The toner container (100) of claim 1, wherein at least a portion of each of the first and second guide surfaces (182, 184) is positioned closer to the front (110) of the housing (102) of the toner container than the exposed portion of the encoded member (150) is to the front of the housing of the toner container, and at least a portion of each of the first and second guide surfaces (182, 184) is positioned higher than a portion of the top surface of the first alignment guide (160).
- The toner container (100) of claim 3, wherein the first alignment guide (160) overlaps with the axially outboard face of the input gear (142) as viewed from the first side (108) of the housing (102) of the toner container.
- An electrophotographic image forming device (22) comprising a sensor (300), a sensor housing (304), an output gear(316) and a toner container (100), the toner container comprising:a housing (102) having a top (106), a bottom (107), a front (110) and a rear (111) positioned between a first side (108) and a second side (109) of the housing of the toner container (100), the housing of the toner container has a reservoir (104) for holding toner;an outlet (118) on the front (110) of the housing (102) of the toner container (100) in fluid communication with the reservoir (104) for exiting toner from the toner container;an input gear (142) positioned at the first side (108) of the housing (102) of the toner container (100) for mating with the output gear (316) in the image forming device (22) when the toner container is installed in the image forming device;an encoded member (150) encoded with identifying information of the toner container (100) and operatively connected to the input gear (142) such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to the sensor of the image forming device (22) when the toner container is installed in the image forming device, at least a portion of the encoded member is exposed on the first side (108) of the housing (102) of the toner container; anda first alignment guide (160) on the first side (108) of the housing (102) of the toner container (100), the first alignment guide is positioned axially outboard of the encoded member (150) relative to a rotational axis of the input gear (142) and is positioned below an exposed portion of the encoded member, the first alignment guide includes a top surface (162) that is unobstructed to contact the sensor housing (304) in the image forming device (22) from below when the toner container is installed in the image forming device, at least a portion of the top surface (162) of the first alignment guide inclines upward and rearward toward the top (106) and the rear (111) of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front (110) of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the exposed portion of the encoded member (150).
- A method comprising the step of inserting a toner container in an electrophotographic image forming device (22), the electrophotographic image forming device comprising a sensor (300), a sensor housing (304), an output gear (316) and the toner container (100) comprising:a housing (102) having a top (106), a bottom (107), a front (110) and a rear (111) positioned between a first side (108) and a second side (109) of the housing of the toner container (100), the housing of the toner container has a reservoir (104) for holding toner;an outlet (118) on the front (110) of the housing (102) of the toner container (100) in fluid communication with the reservoir (104) for exiting toner from the toner container;an input gear (142) positioned at the first side (108) of the housing (102) of the toner container (100) for mating with the output gear (316) in the image forming device (22) when the toner container is installed in the image forming device;an encoded member (150) encoded with identifying information of the toner container (100) and operatively connected to the input gear (142) such that rotation of the input gear causes movement of the encoded member for communicating the identifying information of the toner container to the sensor of the image forming device (22) when the toner container is installed in the image forming device, at least a portion of the encoded member is exposed on the first side (108) of the housing (102) of the toner container; anda first alignment guide (160) on the first side (108) of the housing (102) of the toner container (100), the first alignment guide is positioned axially outboard of the encoded member (150) relative to a rotational axis of the input gear (142) and is positioned below an exposed portion of the encoded member, the first alignment guide includes a top surface (162) that is unobstructed to contact the sensor housing (304) in the image forming device (22) from below when the toner container is installed in the image forming device, at least a portion of the top surface (162) of the first alignment guide inclines upward and rearward toward the top (106) and the rear (111) of the housing of the toner container for contacting and lifting the sensor housing in the image forming device upward during insertion of the toner container into the image forming device with the front (110) of the housing of the toner container leading the insertion for aligning the sensor of the image forming device with the exposed portion of the encoded member (150).
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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US201962822088P | 2019-03-22 | 2019-03-22 | |
PCT/US2020/023094 WO2020197844A1 (en) | 2019-03-22 | 2020-03-17 | Toner container having an encoded member and an alignment guide for locating a sensor relative to the encoded member |
Publications (3)
Publication Number | Publication Date |
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EP3942370A1 EP3942370A1 (en) | 2022-01-26 |
EP3942370A4 EP3942370A4 (en) | 2022-12-14 |
EP3942370B1 true EP3942370B1 (en) | 2024-04-24 |
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EP20778396.0A Active EP3942370B1 (en) | 2019-03-22 | 2020-03-17 | Toner container having an encoded member and an alignment guide for locating a sensor relative to the encoded member |
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EP (1) | EP3942370B1 (en) |
CN (1) | CN113574470B (en) |
Family Cites Families (14)
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US5634169A (en) * | 1996-02-16 | 1997-05-27 | Lexmark International, Inc. | Multiple function encoder wheel for cartridges utilized in an electrophotographic output device |
US6510303B2 (en) * | 2001-03-15 | 2003-01-21 | Clarity Imaging Technologies | Extended-life toner cartridge for a laser printer |
US7177567B2 (en) * | 2003-12-19 | 2007-02-13 | Steven Miller | Integrated toner cartridge with toner agitator and sensing device |
EP1640814B1 (en) * | 2004-08-06 | 2011-10-05 | Brother Kogyo Kabushiki Kaisha | Photosensitive member cartridge, developer cartridge and process cartridge having handle interlocking elements |
JP5440310B2 (en) * | 2010-03-24 | 2014-03-12 | ブラザー工業株式会社 | Developer cartridge |
US8867970B2 (en) * | 2011-12-30 | 2014-10-21 | Lexmark International, Inc. | Toner cartridges having positional control features |
US8867966B2 (en) * | 2011-12-30 | 2014-10-21 | Lexmark International, Inc. | Toner cartridge for use in an image forming device |
US8938179B2 (en) * | 2012-06-25 | 2015-01-20 | Lexmark International, Inc. | Toner cartridge for an image forming device having a retainer assembly having positioning features for processing circuitry |
US20140029960A1 (en) * | 2012-07-25 | 2014-01-30 | Adam Jude Ahne | Magnetic Interlock for a Replaceable Unit of an Image Forming Device |
JP5942735B2 (en) * | 2012-09-21 | 2016-06-29 | ブラザー工業株式会社 | cartridge |
US9360797B1 (en) * | 2015-08-13 | 2016-06-07 | Lexmark International, Inc. | Toner cartridge having a movable projection for providing installation feedback to an image forming device |
US9360834B1 (en) * | 2015-09-15 | 2016-06-07 | Lexmark International, Inc. | Replaceable unit for an electrophotographic image forming device having positioning features for electrical contacts |
US9989917B1 (en) * | 2017-05-17 | 2018-06-05 | Lexmark International, Inc. | Toner cartridge with positional control features |
US10527967B1 (en) * | 2018-10-11 | 2020-01-07 | Lexmark International, Inc. | Toner container having a common input gear for a toner agitator assembly and an encoded member |
-
2020
- 2020-03-17 EP EP20778396.0A patent/EP3942370B1/en active Active
- 2020-03-17 CN CN202080020729.9A patent/CN113574470B/en active Active
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EP3942370A1 (en) | 2022-01-26 |
EP3942370A4 (en) | 2022-12-14 |
CN113574470B (en) | 2024-02-09 |
CN113574470A (en) | 2021-10-29 |
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