The present disclosure relates to a developing cartridge that is detachably mounted in an imaging device, wherein the imaging device is an electrophotographic image forming apparatus.
A developing cartridge can be mounted to and detached from an image forming device such as a laser printer. Such a developing cartridge includes electrodes that receive power from the image forming device. The electrodes supply the power received from the image forming device to a developer roller. In addition, the developing cartridge includes a coupler. The coupler receives driving force from the image forming device. Specifically, when the developing cartridge is mounted in the imaging device and the developing cartridge subsequently receives driving force from the imaging device, the detected component rotates. The rotation of the detected component displaces a protrusion between a contact state where the protrusion contacts the detection unit and a non-contact state where the protrusion does not contact the detection unit. This displacement of the protrusion between the contact state and the non-contact state or the number of protrusions indicates the specification of the developing cartridge. An electrode is provided adjacent to a detected component, and the detected component rotates about an electrical contact portion of the electrode.
In one aspect of the present disclosure, a developing cartridge is provided, wherein a chip is added to the developing cartridge, so as to provide more information about the developing cartridge to an imaging device. In another aspect of the present disclosure, a detected component of the developing cartridge may also serve as a part of a developing electrode to simplify the structure of the developing cartridge. In yet another aspect of the present disclosure, a detected component that can move back and forth is provided, further reducing the moving trajectory of the detected component to reduce the size of the developing cartridge.
A developing cartridge, which is detachably mounted in an imaging device, comprising: a housing;
A seal may be provided between the agitator shaft and the first transmission component to prevent leakage of a developer.
The developing cartridge may further comprise a bearing plate and a side cover located on the second side of the housing, wherein the side cover covers at least a part of the bearing plate, the bearing plate is configured to support the developer roller shaft, the bearing plate is provided with a separating force receiving protrusion, the separating force receiving protrusion protrudes along the first direction, the side cover is provided with a limiting portion, and the shortest distance between the separating force receiving portion and the limiting portion in a second direction is less than 2 mm.
Preferably, the detected component is mounted on the bearing plate, a gap portion is formed between the separating force receiving protrusion and the detected component in the second direction, and the limiting portion is configured as a wall portion inserted into the gap portion.
The developing cartridge may further comprise a bearing plate located on the second side of the housing, wherein the bearing plate is configured to support the developer roller shaft, the bearing plate is provided with a separating force receiving protrusion, the separating force receiving protrusion protrudes along the first direction, and the shortest distance between the separating force receiving portion and the detected component in the second direction is less than 2 mm.
The developing cartridge may further comprise a bearing plate located on the second side of the housing, wherein the bearing plate and the detected component are each configured to form a part of the electrode, the detected component is provided with an electrical contact portion, and the electrical contact portion is also configured as a toggle portion that can be detected by the imaging device.
The developing cartridge may further comprise a bearing plate and a side cover provided on the second side of the housing, wherein the side cover covers at least a part of the bearing plate, the bearing plate is provided with a detected component mounting column, the side cover is provided with a second supporting column, the detected component is provided with a supported hole, and both the detected component mounting column and the second supporting column can be inserted into the supported hole.
The first transmission component may be integrally molded with the agitator shaft.
The developing cartridge may further comprise a bearing plate located on the second side of the housing and a supply roller configured to convey a developer to the developer roller, the bearing plate supports both the developer roller shaft and a supply roller shaft, and the bearing plate and the detected component are each configured to form a part of the electrode.
In the following description, an extension direction of an axis of rotation of a developer roller is referred to as a first direction; a direction in which the developer roller and a handle of a developing cartridge are arranged is referred to as a second direction; the first direction intersects with the second direction; and the third direction intersects with both the first direction and the second direction.
First of all, as shown in
The housing 1 has the first side 10 and a second side 20 opposite to the first side in the first direction, the first side 10 is the left end of the housing 1, and the second side 20 is the right end of the housing 1. The first side 10 has a gear train. The gear train includes a driving gear 4, a developer roller gear 5 mounted on an end of a developer roller shaft, a supply roller gear 11 mounted on an end of a supply roller shaft, and an agitator gear 6 mounted on an end of an agitator shaft. A gear cover 33 covering the gear train is located on the first side of the housing 1, and the gear cover 33 covering at least a part of each gear in the gear train. The chip 31 is mounted on a chip holder 32. The chip holder 32 is provided with a pre-mounting buckle 32a, and the gear cover 33 is provided with a pre-mounting joint hole 33b. The pre-mounting buckle 32a is inserted into the pre-mounting joint hole 33b so that the chip holder 32 is pre-mounted in the gear cover 33, and then the chip holder 32 is fastened on the gear cover 33 by screws. The driving gear 4 has a coupling part 4a and a gear part 4b. The coupling part 4a may be meshed with a driving shaft (not shown) in the imaging device to receive rotational driving force, and the gear part 4b may drive other gears in the gear train to rotate. As shown in
The agitator 7 is mounted with the agitator gear 6 at the end of the first side of the housing. A first transmission component 2402 is provided on the second side of the housing 1 in the first direction. The first transmission component 2402 may be mounted on an end of the agitator 7, or may also be integrally molded with the agitator 7, which is not limiting. When adopting a structure in which the first transmission portion is mounted on the end of the agitator 7, the agitator 7 includes an agitator shaft 7a, an agitation blade 7b and an incomplete circular protrusion 7c located at a second side end of the agitator shaft. The first transmission component 2402 is provided with a non-complete circular groove that can be mounted on the incomplete circular protrusion 7c. To prevent the developer from leaking, a seal is mounted at an end of the agitator shaft 7a. The seal may be a sealing sponge made of sponge material. Of course, it may also be made of other materials such as silicone and rubber. Then, the first transmission component 2402 is used to press the seal to prevent the seal from coming out. That is to say, the seal is mounted between the agitator shaft 7a and the first transmission component 2402. The first transmission component 2402 is provided with a helical groove 2402a, which rotates together with the agitator shaft 7a. A second transmission component 2302 is also provided on the second side 20 of the housing 1. The second transmission component 2302 can receive driving force of the first transmission component 2402 and move along the first direction. The second transmission component 2302 is provided with an inner hole 2302c that can be sleeved on the first transmission component 2402. The inner hole 2302c is provided with a bump 2302a protruding inward. The bump 2302a cooperates with the helical groove 2402a. When the first transmission component 2402 rotates, the second transmission component 2302 can be pushed to move along the first direction through the cooperation of the helical groove 2402a and the bump 2302a. The second transmission component 2302 is only provided with a pushing inclined surface 2302b. The side cover 2601 is provided with a developer roller bearing 2601a, a supply roller bearing (not shown in the figure), a pushing force receiving protrusion 2601c, a separating force receiving protrusion 2601d and a detected component mounting column 2601b. The detected component 2202 is provided with a supported hole 2202a, a toggle portion 2202c and a pushed inclined surface 2202b. There may be one or multiple pushed inclined surfaces 2202b. The pushed inclined surface 2202b may cooperate with the pushing inclined surface 2302b to receive force of the second transmission component 2302, so that the detected component 2202 swings around the detected component mounting column 2601b. When there are multiple pushed inclined surfaces 2202b, the detected component 2202 may receive the force of the second transmission component 2302 to swing repeatedly for many times. The developer roller shaft 2a is inserted into the developer roller bearing 2601a to be rotatably supported, and the supply roller shaft 9a is inserted into the supply roller bearing to be rotatably supported. When the developing cartridge needs to perform an image forming action, the pushing force receiving protrusion 2601c can receive force from a pushing unit of a drum assembly (not shown in the figure) mounted in the imaging device, so that the developer roller 2 in the developing cartridge is in tight contact with a photosensitive drum in the drum assembly. When the developing cartridge does not need to perform the image forming action, the separating force receiving protrusion 2601d receives force of a separating mechanism (not shown) in the imaging device, so that the developer roller 2 in the developing cartridge is separated from the photosensitive drum in the drum assembly. The side cover 2601, the detected component 2202 or both are made of conductive material. The toggle portion 2202c of the detected component 2202 can follow the rotation of the driving gear 4 to move and toggle a detection unit in the imaging device, so that the detection unit is moved and detected by the detection unit of the imaging device. At the same time, the detection unit in the imaging device is further provided with a power supply component. Therefore, the toggle portion 2202c may also be used as an electrical contact portion of an electrode to be in electrical contact with the imaging device, achieving the effect of integrating multiple functions in one component. The detected component 2202 and the side cover 2601 together form an electrode of the developing cartridge. The electrode is electrically connected to the developer roller shaft 2a and the supply roller shaft 9a, for example, through the developer roller bearing 2601a and the supply roller bearing. In addition, the chip 31 is provided on the first side of the housing 1, and the electrode is provided on the second side of the housing 1, which can suppress the interference of the electrical signal on the communication between the chip 31 and the imaging device due to the electrical contact between the electrode and the imaging device. In the first direction, the chip 31 may be provided at the leftmost end of the housing 1. In other words, in the first direction, at least a part of the electrical contact 31a of the chip 31 is closer to the outermost end of the housing 1 than the gear cover 33.
Embodiment 2 of the present disclosure will be described below. As shown in
Embodiment 3 of the present disclosure will be described below. With reference to
Number | Date | Country | Kind |
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202221366840.6 | Jun 2022 | CN | national |
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20170261884 | Kyotani | Sep 2017 | A1 |
20170269543 | Itabashi | Sep 2017 | A1 |
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212515361 | Feb 2021 | CN |
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Number | Date | Country | |
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20230393493 A1 | Dec 2023 | US |