This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2021-085904 filed May 21, 2021.
The present disclosure relates to a developing device and an image forming apparatus.
Japanese Patent No. 4344202 (claim 1,
Aspects of non-limiting embodiments of the present disclosure relate to a developing device and an image forming apparatus. When the carrying amount of a magnetic developer on the surface of a developing rotator that rotates through a developing region while carrying the developer is finally adjusted by a second adjusting member before the developer reaches the developing region, the amount of the developer supplied from a supply transport member to the surface of the developing rotator and reaching the second adjusting member may be made more stable than in a case where a first adjusting member is provided to adjust the movement amount of the developer from a movement assist member to the developing rotator and the carrying amount of the developer on the surface of the developing rotator and a minimum distance between a slope of the movement assist member and a facing surface of the first adjusting member, a minimum distance between the facing surface of the first adjusting member and the surface of the developing rotator, and a minimum distance between the second adjusting member and the surface of the developing rotator are not reduced in descending order.
Aspects of certain non-limiting embodiments of the present disclosure address the above advantages and/or other advantages not described above. However, aspects of the non-limiting embodiments are not required to address the advantages described above, and aspects of the non-limiting embodiments of the present disclosure may not address advantages described above.
According to an aspect of the present disclosure, there is provided a developing device comprising a developing rotator configured to rotate through a developing region while carrying a magnetic developer, a supply transport member configured to rotate to transport the developer to be supplied to the developing rotator, a non-magnetic movement assist member arranged between the developing rotator and the supply transport member, and having a slope that receives the developer from the supply transport member and moves the developer to the developing rotator, a first adjusting member having a facing surface that faces, with distances, the slope of the movement assist member and a surface of the developing rotator at a part passing over the movement assist member, and configured to adjust a movement amount of the developer from the movement assist member to the developing rotator and a carrying amount of the developer on the surface of the developing rotator, and a second adjusting member having a distance from the surface of the developing rotator at a part passing over the first adjusting member, and configured to adjust the carrying amount of the developer on the surface of the developing rotator before the developer reaches the developing region. A first minimum distance between the slope of the movement assist member and the facing surface of the first adjusting member, a second minimum distance between the facing surface of the first adjusting member and the surface of the developing rotator, and a third minimum distance between the second adjusting member and the surface of the developing rotator are reduced in descending order.
Exemplary embodiments of the present disclosure will be described in detail based on the following figures, wherein:
Exemplary embodiments of the present disclosure are described below with reference to the drawings.
Arrows X, Y, and Z in
<Image Forming Apparatus>
As illustrated in
In
The image former 2 includes a photoconductor drum 21 that is an example of a latent image carrier that forms and carries a latent image. A charging device 22, an exposing device 23, the developing device 6A, a transfer device 25, and a cleaner 26 are arranged around the photoconductor drum 21.
The photoconductor drum 21 rotates in an arrow A direction about a rotational axis (not illustrated) extending along the depth direction Z. The charging device 22 charges the outer peripheral surface of the photoconductor drum 21 (image forming surface) at an appropriate surface potential. The charging device 22 includes a charging member such as a roller that supplies a charging current in contact with an image forming region on the outer peripheral surface of the photoconductor drum 21. The exposing device 23 forms an electrostatic latent image by exposing the charged outer peripheral surface of the photoconductor drum 21 with light based on image information.
The developing device 6A develops the formed electrostatic latent image into a visible toner image with a developer (toner) of a predetermined color (e.g., black). Details of the developing device 6A are described later.
The transfer device 25 electrostatically transfers the formed toner image onto the recording paper 9. The transfer device 25 includes a transfer member such as a roller that supplies a transfer current in contact with the outer peripheral surface of the photoconductor drum 21. The cleaner 26 cleans the outer peripheral surface of the photoconductor drum 21 by removing (scraping) waste such as unnecessary toner or paper dust adhering to the outer peripheral surface of the photoconductor drum 21.
In the image former 2, a transfer position TP of the toner image is a position where the photoconductor drum 21 and the transfer device 25 face each other.
The paper feeder 4 is arranged below the image former 2. The paper feeder 4 includes a container 41 that contains sheets of recording paper 9, and a sender 43 that sends the sheets of recording paper 9 one by one.
The recording paper 9 is any medium such as plain paper, coated paper, or cardboard that may be transported in the housing 10 and subjected to transfer and fixing of the toner image. The material and shape of the recording paper 9 are not particularly limited.
The fixing device 5 is arranged above the transfer position TP of the image former 2. The fixing device 5 includes a heating rotator 51 and a pressurizing rotator 52 in an internal space of a housing 50 having an entrance and an exit for the recording paper 9.
In the fixing device 5, the heating rotator 51 and the pressurizing rotator 52 are in contact with each other substantially in a horizontal posture. In the fixing device 5, the contact portion between the heating rotator 51 and the pressurizing rotator 52 is a fixing portion (nip) FN where the unfixed toner image is fixed onto the recording paper 9 by heating and pressurizing.
The transport path of the recording paper 9 in the housing 10 is defined by a plurality of transport rollers 45a, 45b, and 45c that nip and transport the recording paper 9, and a plurality of guide members (not illustrated) that guide the recording paper 9 by securing a transport space for the recording paper 9.
In the image forming apparatus 1, the controller (not illustrated) that has received an image forming operation command causes the image former 2 to perform charging, exposing, developing, and transferring operations, and causes the paper feeder 4 to feed the recording paper 9 toward the transfer position TP.
After a toner image is formed on the photoconductor drum 21, the toner image is transferred onto the recording paper 9 fed from the paper feeder 4 to the transfer position TP.
In the image forming apparatus 1, the recording paper 9 having the transferred toner image is transported to the nip FN of the fixing device 5 to perform a fixing operation.
Thus, the unfixed toner image is fixed onto the recording paper 9.
For example, the recording paper 9 subjected to the fixing operation is transported by the transport rollers 45b and 45c and then output to and received by an output receiver 12 at the top of the housing 10.
In the manner described above, the image forming operation for forming the toner image on one side of the recording paper 9 is completed.
<Developing Device>
Next, the developing device 6A according to the first exemplary embodiment is described in detail.
As illustrated in
The opening 61 is a rectangular opening elongated in the depth direction Z along the rotational axis of the photoconductor drum 21 and facing a developing region Ed where a latent image is developed. The opening 61 is connected to the containing portion 62. A developing roller 71 that is an example of a developing rotator is arranged in the lower portion 60a at a position near the opening 61 of the housing 60. The developing roller 71 rotates through the developing region Ed while carrying the developer 8.
The developing roller 71 includes a developing sleeve 71a that is an example of a cylindrical member that rotates while carrying the developer 8, and a magnet roller 71b that is an example of a magnet member fixed in an internal space of the developing sleeve 71a.
The developing sleeve 71a is made of a non-magnetic material. As illustrated in
As illustrated in
The first transport path 63 and the second transport path 64 are grooves extending substantially parallel to the developing roller 71. The first transport path 63 and the second transport path 64 are partitioned from each other by a partition 65 provided therebetween in the up-and-down direction, and are connected to each other by a penetrating first connection portion 67 and a penetrating second connection portion 68 provided at parts behind a downstream end and an upstream end in a transport direction. The developer 8 is transported from one of the first transport path 63 and the second transport path 64 to the other at the first connection portion 67 or the second connection portion 68. Thus, the first transport path 63 and the second transport path 64 serve as a circulation path where the developer 8 circulates.
A first screw auger 72 is arranged in the first transport path 63 as an example of a first transport member that transports the developer 8 forward in a first transport direction D1 while stirring the developer 8. In this exemplary embodiment, the first screw auger 72 is also an example of a supply transport member that rotates to transport the developer 8 to be supplied to the developing roller 71.
In the first screw auger 72, a forward transport blade 72b is helically coiled around a round rotational shaft 72a at a predetermined height, a predetermined inclination angle, and a predetermined pitch. The rotational shaft 72a rotates in the first transport path 63. The forward transport blade 72b transports the developer 8 forward in the first transport direction D1. In the first screw auger 72, a reverse transport blade 72c is helically coiled around the rotational shaft 72a at a downstream end in the first transport direction D1 that is adjacent to the first connection portion 67. The reverse transport blade 72c is coiled in a direction opposite to the coiling direction of the forward transport blade 72b. The reverse transport blade 72c transports the developer 8 in a direction opposite to the first transport direction D1. The uppermost portion of the first screw auger 72 of this exemplary embodiment is positioned higher than the uppermost portion of the developing roller 71 in the up-and-down direction along the gravity direction.
A second screw auger 73 is arranged in the second transport path 64 as an example of a second transport member that transports the developer 8 forward in a second transport direction D2 while stirring the developer 8.
In the second screw auger 73, a forward transport blade 73b is helically coiled around a round rotational shaft 73a at a predetermined height, a predetermined inclination angle, and a predetermined pitch. The rotational shaft 73a rotates in the second transport path 64. The forward transport blade 73b transports the developer 8 forward in the second transport direction D2. In the second screw auger 73, a plurality of plate-shaped transport blades 73c are provided on the rotational shaft 73a at a part adjacent to the second connection portion 68. The plate-shaped transport blades 73c lift the developer 8 to the first transport path 63. In the second screw auger 73, a reverse transport blade 73d is helically coiled around the rotational shaft 73a at a downstream end in the second transport direction D2. The reverse transport blade 73d is coiled in a direction opposite to the coiling direction of the forward transport blade 73b. The reverse transport blade 73d transports the developer 8 in a direction opposite to the second transport direction D2.
The first screw auger 72 and the second screw auger 73 are rotatably attached to the left and right side walls 62c and 62d of the containing portion 62 or to the support frame (not illustrated). The rotational power to be transmitted to the developing sleeve 71a of the developing roller 71 is distributed to the first screw auger 72 and the second screw auger 73 via a gear train mechanism (not illustrated). Therefore, the first screw auger 72 and the second screw auger 73 rotate at appropriate speeds in appropriate directions such as arrow directions in
As illustrated in
The plate-shaped trimmer 74 is an example of a second adjusting member that finally adjusts the amount (layer thickness) of the developer 8 to be carried on the developing roller 71 before the developer 8 reaches the developing region Ed.
As illustrated in
The plate-shaped trimmer 74 is arranged near the opening 61 in the upper portion 60b of the housing 60. As illustrated in
The movement assist member 75 is a non-magnetic member arranged between the developing roller 71 and the first screw auger 72, and having a slope 75a that receives the developer 8 from the first screw auger 72 and moves the developer 8 to the developing roller 71.
As illustrated in
The movement assist member 75 has the slope 75a at the upper end. The slope 75a has a downward gradient toward the developing sleeve 71a at an inclination angle at which the developer 8 is slidable by the self-weight. In the movement assist member 75, a side surface 75b near the first screw auger 72 is a wall extending from the upper end to the vicinity of the upper portion of the second screw auger 73 substantially along the gravity direction, and a side surface 75c near the developing roller 71 is a wall extending from the upper end to a position reaching the lower portion of the developing roller 71 substantially along the gravity direction.
For example, the slope 75a of the movement assist member 75 is positioned above an imaginary line connecting a rotational center point of the developing roller 71 and a rotational center point of the first screw auger 72. As illustrated in
The first adjusting member 76A is a non-magnetic member that adjusts a movement amount of the developer 8 from the movement assist member 75 to the developing roller 71 and a carrying amount of the developer 8 on the surface of the developing roller 71, and has a facing surface 76a that faces, with distances, the slope 75a of the movement assist member 75 and the surface of the developing roller 71 at a part passing over the movement assist member 75.
In this exemplary embodiment, the first adjusting member 76A is obtained by cutting out a part of a columnar bar member along a plane. Therefore, the first adjusting member 76A except longitudinal end surfaces has a curved surface corresponding to the outer peripheral surface of the column, and a flat surface 76b other than the curved surface.
The curved surface of the first adjusting member 76A is the curved facing surface 76a projecting toward the slope 75a of the movement assist member 75 and the surface of the developing roller 71. As illustrated in
As illustrated in
The developing device 6A has a fourth clearance E4 between the facing surface 76a of the first adjusting member 76A and the guide surface 74b of the plate-shaped trimmer 74, and a fifth clearance E5 between the first screw auger 72 and the side surface 75b of the movement assist member 75. The fifth clearance E5 substantially corresponds to a clearance between the first screw auger 72 and the first transport path 63.
The developing device 6A operates as follows.
At a timing of the developing operation, the developing sleeve 71a of the developing roller 71 of the developing device 6A illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
Thus, the movement amount of the developer 8a to the developing roller 71 is adjusted.
As illustrated in
The developer 8c carried on the outer peripheral surface of the developing sleeve 71a and passing over the first adjusting member 76A passes through the third clearance E3 between the plate-shaped trimmer 74 and the developing sleeve 71a. At this time, the developer 8c whose carrying amount is once adjusted moves with its passing amount limited again by the third clearance E3. Thus, the carrying amount of a developer 8d on the outer peripheral surface of the developing sleeve 71a is finally adjusted.
The developer 8d whose carrying amount is finally adjusted by passing under the trimmer 74 reaches and is transported through the developing region Ed of the photoconductor drum 21 by the rotation of the developing sleeve 71a in the arrow B direction.
In the developing region Ed, the toner of the developer 8d is used for developing a latent image on the photoconductor drum 21 by reciprocally moving with a developing field formed between the photoconductor drum 21 and the developing sleeve 71a by the developing bias and partially adhering to the latent image by an electrostatic force.
A partial developer 8e that is not used for the development passes through the developing region Ed and then returns to the second transport path 64 by being separated from the developing sleeve 71a with a magnetic force of a repulsive magnetic field generated by the separation poles S3 and N3 in the containing portion 62.
In the developer 8c that has passed over the first adjusting member 76A, a surplus developer 8f that has not passed through the third clearance E3 between the outer peripheral surface of the developing sleeve 71a and the plate-shaped trimmer 74 is transported to the fourth clearance E4 between the facing surface 76a of the first adjusting member 76A and the guide surface 74b of the plate-shaped trimmer 74 as illustrated in
At this time, the developer 8f returns toward the first screw auger 72 by the guide surface 74b of the trimmer 74. A part of the developer 8f slides along the flat surface 76b of the first adjusting member 76A having a downward gradient toward the first screw auger 72, and returns to a space between the first adjusting member 76A and the first screw auger 72.
For example, in a case where the developing device 6A does not have the first adjusting member 76A, the developer 8 is supplied from the first screw auger 72 to the developing roller 71, but the amount of the developer 8 supplied to an upstream part of the developing roller 71 in the arrow B rotational direction of the developing sleeve 71a relative to the plate-shaped trimmer 74 may become unstable, and more developer 8 may stagnate in the upstream part.
Due to the unstable amount of the developer 8 supplied to the developing region Ed and the stagnation of the developer 8, the developer 8 is likely to have stress, thereby causing image quality degradation such as white streaks on the developed toner image along the transport direction of the recording paper 9.
<Detailed Structure of Developing Device>
As illustrated in
For example, the relationship among the three minimum distances J1, J2, and J3 (J1>J2>J3) may be established by setting the minimum distance J3 first and then setting the remaining minimum distances J1 and J2.
For example, when the minimum distance J3 is set to K, the relationship among the three minimum distances J1, J2, and J3 (J1>J2>J3) may be established by setting the minimum distance J2 within a range of 2K to 5K and setting the minimum distance J1 within a range of 5K to 12K.
In the developing device 6A, the minimum distance J5 between the first adjusting member 76A and the first screw auger 72 is set larger than the minimum distance J1 between the slope 75a of the movement assist member 75 and the facing surface 76a of the first adjusting member 76A (J5>J1). The minimum distance J6 between the movement assist member 75 and the first screw auger 72 is set smaller than the minimum distance J5 (J6<J5). The minimum distance J7 between the side surface 75c of the movement assist member 75 and the developing roller 71 is set smaller than the minimum distance J2 between the facing surface 76a of the first adjusting member 76A and the surface of the developing roller 71 (J7<J2).
In the developing device 6A, the developer 8a transported from the first screw auger 72 first passes through the first clearance E1 between the slope 75a of the movement assist member 75 and the facing surface 76a of the first adjusting member 76A, thereby adjusting the amount of the developer 8a to be supplied to the outer peripheral surface of the developing roller 71.
In the developing device 6A, the developer 8 then passes through the second clearance E2 between the facing surface 76a of the first adjusting member 76A and the outer peripheral surface of the developing roller 71. The second clearance E2 has the minimum distance J2 smaller than the minimum distance J1 of the first clearance E1.
When the developer 8 sent out from the first screw auger 72 and then carried on the outer peripheral surface of the developing roller 71 reaches the trimmer 74, the carrying amount is adjusted.
In the developing device 6A illustrated in
In the developing device 6A illustrated in
In the developing device 6A illustrated in
In the developing device 6A illustrated in
As illustrated in
In the slope 75a of the movement assist member 75 of the developing device 6A illustrated in
The developer 8a reaching the second slope 75a2 from the first slope 75a1 does not slide forcefully due to the gentler inclination. Since the second slope 75a2 is near the developing roller 71, the developer 8a moves toward the developing roller 71 by being attracted by the magnetic force from the magnet roller 71b.
The developing device 6B according to the second exemplary embodiment differs from the developing device 6A according to the first exemplary embodiment in that the first screw auger 72 and the second screw auger 73 are arrayed substantially horizontally, the first adjusting member 76A is changed to a first adjusting member 76B, and a relay transport roller 77, a second trimmer 78, and a third screw auger 79 are added. The other structure is identical to that of the first exemplary embodiment.
In the following description, common components are represented by the reference symbols used in the first exemplary embodiment to omit their description unless otherwise needed.
In the developing device 6B illustrated in
In the developing device 6B illustrated in
Similarly to the first adjusting member 76A of the first exemplary embodiment, the first adjusting member 76B is attached to a predetermined part of the lower portion 60a or the upper portion 60b of the housing 60 or the support frame (not illustrated) in a state in which the minimum distance J1 between the facing surface 76a that is the outer peripheral surface of the first adjusting member 76B and the slope 75a of the movement assist member 75B and the minimum distance J2 between the facing surface 76a and the developing roller 71 are predetermined values. The first adjusting member 76B is arranged in a state in which the minimum distance J5 from the relay transport roller 77 is a predetermined value.
As illustrated in
The relay transport roller 77 is similar to the developing roller 71, and includes a cylindrical transport sleeve 77a that rotates while carrying the developer 8, and a magnet roller 77b fixed in an internal space of the transport sleeve 77a.
The transport sleeve 77a is made of a non-magnetic material. The transport sleeve 77a is driven to rotate in the arrow C direction by distributing rotational power to be transmitted to the developing roller 71 or the first screw auger 72. The magnet roller 77b has a plurality of magnetic poles (not illustrated) that generate magnetic forces for exerting functions of attracting (picking up), carrying, and separating the developer 8 on the surface of the transport sleeve 77a. A separation pole is arranged on the magnet roller 77b at a part slightly above a position where the magnet roller 77b faces the slope 75a of the movement assist member 75B.
The plate-shaped second trimmer 78 is provided near a downstream part of the transport sleeve 77a of the relay transport roller 77 in the rotational direction C relative to the first screw auger 72. The second trimmer 78 is an example of a member that adjusts the amount (layer thickness) of the developer 8 to be carried on the transport sleeve 77a.
The second trimmer 78 is attached in a state in which a tapered tip 78a faces the outer peripheral surface of the relay transport roller 77 (transport sleeve 77a) with an appropriate distance parallel to a direction of a rotational axis of the transport sleeve 77a.
Similarly to the movement assist member 75 of the first exemplary embodiment, the movement assist member 75B is a non-magnetic member arranged between the relay transport roller 77 and an upstream part of the developing roller 71 in the rotational direction B relative to the trimmer 74 and having the slope 75a that receives the developer 8 from the relay transport roller 77 and moves the developer 8 to the developing roller 71.
The movement assist member 75B of the second exemplary embodiment has a lower side portion 75d below the side surface 75b that faces the relay transport roller 77. The lower side portion 75d is recessed by cutting out the movement assist member 75B toward the developing roller 71 to secure an arrangement space for the first screw auger 72. In the movement assist member 75B, the side surface 75c that faces the developing roller 71 serves as a part of a partition wall by extending to the vicinity of an upper portion of the third screw auger 79.
As illustrated in
The third screw auger 79 is arranged in a third transport path 66 provided below the developing roller 71 in the lower portion 60a of the housing 60 parallel to the rotational axis of the developing roller 71. The developer 8e separated from the developing roller 71 is transported to the third transport path 66. As illustrated in
In the third screw auger 79, a forward transport blade 79b is helically coiled around a round rotational shaft 79a at a predetermined height, a predetermined inclination angle, and a predetermined pitch. The rotational shaft 79a rotates in the third transport path 66. The forward transport blade 79b transports the separated developer 8e forward in a third transport direction D5.
In the third screw auger 79, a plurality of plate-shaped transport blades 79c are provided upright from the rotational shaft 79a at a part adjacent to the third connection portion 69. The plate-shaped transport blades 79c transport the developer 8e to the first transport path 63 adjacent to the first connection portion 67. In the third screw auger 79, a reverse transport blade 79d is helically coiled around the rotational shaft 79a at a downstream part in the third transport direction relative to the plate-shaped transport blades 79c. The reverse transport blade 79d transports the developer 8e in a direction opposite to the third transport direction D5.
In the developing device 6B illustrated in
In the developing device 6B, the minimum distance J5 between the first adjusting member 76B and the relay transport roller 77 is set larger than the minimum distance J1 between the slope 75a of the movement assist member 75B and the facing surface 76a of the first adjusting member 76B (J5>J1). The minimum distance J6 between the movement assist member 75B and the relay transport roller 77 is set smaller than the minimum distance J5 (J6<J5). The minimum distance J7 between the side surface 75c of the movement assist member 75B and the developing roller 71 is set smaller than the minimum distance J2 between the facing surface 76a of the first adjusting member 76B and the surface of the developing roller 71 (J7<J2).
The developing device 6B operates as follows.
At a timing of the developing operation, the developing sleeve 71a of the developing roller 71 of the developing device 6B illustrated in
As illustrated in
The developer 8 in the first transport path 63 is transported forward in the first transport direction D1 while being stirred by the helical forward transport blade 72b of the rotating first screw auger 72.
Above the first transport path 63, a part of the developer 8 transported forward by the first screw auger 72 is carried on the outer peripheral surface of the transport sleeve 77a of the relay transport roller 77 by a magnetic force, and then transported by the rotation of the transport sleeve 77a in the arrow C direction.
As indicated by a broken arrow D4 in
When the developer 8 carried on the transport sleeve 77a of the relay transport roller 77 passes over the second trimmer 78, the carrying amount is adjusted by restricting passage of a surplus by the second trimmer 78. The surplus developer 8 drops back to the first transport path 63 and is transported forward in the first transport direction by the first screw auger 72, but may partially be carried on the relay transport roller 77 again.
As illustrated in
As illustrated in
As illustrated in
Thus, the movement amount of the developer 8a to the developing roller 71 is adjusted.
As illustrated in
On the developing roller 71, the developer 8 passing through the second clearance E2 is transported in the arrow B direction and passes over the trimmer 74. At this time, passage of a surplus of the developer 8 carried on the outer peripheral surface of the developing sleeve 71a is restricted by the trimmer 74 to adjust the carrying amount, and then the developer 8 passes through the developing region Ed of the photoconductor drum 21.
In the developing region Ed, a part of the toner of the developer 8 carried on the outer peripheral surface of the developing sleeve 71a of the developing roller 71 is used for developing a latent image on the photoconductor drum 21 by adhering to the latent image by an electrostatic force. The developer 8e that is not used for the development passes through the developing region Ed and then drops into the third transport path 66 by being separated from the developing sleeve 71a with the magnetic force of the repulsive magnetic field of the separation poles of the magnet roller 71b in the containing portion 62.
As illustrated in
The developer 8e transported forward to the downstream side of the third transport path 66 in the third transport direction D5 is transported to the first transport path 63 by the plate-shaped transport blades 79c at the part adjacent to the third connection portion 69. As indicated by an arrow D6 in
In the developing device 6B, the developer 8a transported from the relay transport roller 77 first passes through the first clearance E1 between the slope 75a of the movement assist member 75B and the facing surface 76a of the first adjusting member 76B, thereby adjusting the amount of the developer 8a to be supplied to the outer peripheral surface of the developing roller 71.
In the developing device 6B, the developer 8 then passes through the second clearance E2 between the facing surface 76a of the first adjusting member 76B and the outer peripheral surface of the developing roller 71. The second clearance E2 has the minimum distance J2 smaller than the minimum distance J1 of the first clearance E1.
When the developer 8 sent out from the relay transport roller 77 and then carried on the outer peripheral surface of the developing roller 71 reaches the trimmer 74, the carrying amount is adjusted.
In the slope 75a of the movement assist member 75B of the developing device 6B, the inclination of the second slope 75a2 near the developing roller 71 may be gentler than the inclination of the first slope 75a1 that is the remaining portion leading to the second slope 75a2 similarly to the developing device 6A according to the first exemplary embodiment (see
The developing device 6C according to the third exemplary embodiment differs from the developing device 6B according to the second exemplary embodiment in that the fixed first adjusting member 76B is changed to a first adjusting member 76C to be driven to rotate. The other structure is identical to that of the second exemplary embodiment.
In the following description, common components are represented by the reference symbols used in the first and second exemplary embodiments to omit their description unless otherwise needed.
As illustrated in
The first adjusting member 76C rotates in the arrow D direction at an appropriate speed by distributing, via a gear train mechanism (not illustrated), rotational power to be transmitted to the developing sleeve 71a of the developing roller 71.
The developing device 6C basically operates similarly to the developing device 6B according to the second exemplary embodiment.
Since the first adjusting member 76C of the developing device 6C is driven to rotate in the arrow D direction, a transport force is obtained by the movement of the facing surface 76a that is the outer peripheral surface of the first adjusting member 76C as illustrated in
For example, the third screw auger 79 of the developing device 6B according to the second exemplary embodiment (including the structure of the third transport path 66 or the like related to the third screw auger 79) may be added to the developing device 6A according to the first exemplary embodiment.
As indicated by two-dot chain lines in
Even if the injection port 82 is provided and a part of the developer 8 injected into the second transport path 64 through the injection port 82 enters a part of the first transport path 63 adjacent to the first connection portion 67, the developer 8 returns to the second transport path 64 by the reverse transport blade 72c of the first screw auger 72. Thus, the injected developer 8 is appropriately transported to the second transport path 64 and transported forward in the second transport direction D2 while being stirred by the second screw auger 73.
The image forming apparatus is not limited to the image forming apparatus 1 having the structure exemplified in the first exemplary embodiment. The image forming apparatus may have any structure as long as the developing device 6A, 6B, or 6C exemplified in each exemplary embodiment of the present disclosure is applicable.
For example, the image former 2 of the image forming apparatus may use an intermediate transfer system. The image former may form a multicolor image instead of a monochrome image. The developing rotator of the developing device is not limited to the developing roller 71, and may be a belt or any other form than the roller.
The foregoing description of the exemplary embodiments of the present disclosure has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Obviously, many modifications and variations will be apparent to practitioners skilled in the art. The embodiments were chosen and described in order to best explain the principles of the disclosure and its practical applications, thereby enabling others skilled in the art to understand the disclosure for various embodiments and with the various modifications as are suited to the particular use contemplated. It is intended that the scope of the disclosure be defined by the following claims and their equivalents.
Number | Date | Country | Kind |
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JP2021-085904 | May 2021 | JP | national |
Number | Name | Date | Kind |
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5758241 | Oyama | May 1998 | A |
5805965 | Tsuda | Sep 1998 | A |
6337957 | Tamaki | Jan 2002 | B1 |
7003250 | Sano | Feb 2006 | B2 |
8942602 | Onoda | Jan 2015 | B2 |
9207568 | Lee | Dec 2015 | B2 |
20080298848 | Lee | Dec 2008 | A1 |
Number | Date | Country |
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2007-057896 | Mar 2007 | JP |
4344202 | Oct 2009 | JP |
5994405 | Sep 2016 | JP |