The present invention relates to an image forming apparatus configured to form an image on a sheet and to a sheet feeding apparatus configured to feed the sheet.
An image forming apparatus such as a copier and a printer is provided with a sheet feeding apparatus configured to feed a sheet, i.e., a recording medium. The sheet feeding apparatus includes a separation mechanism configured to separate the sheet one by one to prevent a plurality of sheets from being conveyed while overlapped with each other, i.e., to prevent so-called double feeding. The separation mechanism of this sort includes a pad-shaped or a roller-shaped separation member that comes into contact with a sheet feed roller for feeding sheets to form a nip portion and to separate the sheet by applying a frictional force to the sheet at the nip portion.
Normally, a user or a service person is recommended to periodically replace the separation member because separating performance drops if a surface of the separation member is worn by repeatedly feeding sheets. As for a sheet feeding apparatus in which a holder member for holding a separation roller can be attached and detached, Japanese Patent Application Laid-open No. 2016-204150 discloses a configuration of positioning and restricting the holder member from falling by attaching/detaching a stopper member by a vertical slide operation. Japanese Patent Application Laid-open No. 2011-132035 discloses a configuration of utilizing a sheet feed roller as a stopper of a separation pad and of facilitating detachment of the separation pad as the separation pad projects out of a guide surface of a conveyance guide by detaching the sheet feed roller.
Not only the separation mechanism for separating sheets, an image forming apparatus often includes an attachable/detachable unit to replace a component member and to make maintenance. If a procedure for attaching/detaching the unit is lessened, the work for attaching/detaching the unit to be made by the user or the service man becomes easier. In such a case, it is possible to obtain such advantages that a work time is reduced and a downtime of the apparatus is shortened.
The present disclosure provides an image forming apparatus and a sheet feeding apparatus that make attachment/detachment works of a unit easier.
According to one aspect of the invention, an image forming apparatus includes an apparatus body including an image forming unit configured to form an image on a sheet, a unit detachably attached to the apparatus body, a first rotary member provided in the unit, a second rotary member provided in the apparatus body and configured to be coupled with and decoupled from the first rotary member by being moved in a rotation axial direction of the first rotary member, and a restriction member provided in the apparatus body and movable to a first position and a second position, the first position being a position where the restriction member restricts the unit attached to the apparatus body from being detached in a detaching direction intersecting with the rotation axial direction, the second position being a position where the restriction member does not restrict the unit attached to the apparatus body from being detached in the detaching direction, wherein the restriction member includes an engaging portion configured to engage with the second rotary member and is configured to move the second rotary member by the engaging portion so that the second rotary member is decoupled from the first rotary member along with a move of the restriction member from the first position to the second position.
According to another aspect of the invention, a sheet feeding apparatus includes a sheet feed roller configured to feed a sheet, an apparatus body configured to support the sheet feed roller, a unit detachably attached to the apparatus body, a separation roller provided in the unit, arranged to be in contact with the sheet feed roller to form a nip portion between the sheet feed roller and the separation roller, and configured to separate the sheet in contact with sheet feed roller from sheets other than the sheet in contact with the sheet feed roller by exerting a frictional force on the sheets at the nip portion, a roller shaft provided in the apparatus body and configured to be coupled with and decoupled from the separation roller by being moved in a rotation axial direction of the separation roller, and a restriction member provided in the apparatus body and movable to a first position and a second position, the first position being a position where the restriction member restricts the unit attached to the apparatus body from being detached in a detaching direction intersecting with the rotation axial direction, the second position being a position where the restriction member does not restrict the unit attached to the apparatus body from being detached in the detaching direction, wherein the restriction member includes an engaging portion configured to engage with the roller shaft and is configured to move the roller shaft by the engaging portion so that the roller shaft is decoupled from the separation roller along with a move of the restriction member from the first position to the second position.
Further features of the present invention will become apparent from the following description of exemplary embodiments with reference to the attached drawings.
Embodiments of the present disclosure will be described below with reference to the drawings.
The photosensitive drums 101Y, 101M, 101C and 101K function as image bearing members configured to bear electrostatic latent images and toner images in an electrophotographic process. A transfer mechanism composed of the intermediate transfer belt 102, the primary transfer rollers 106Y, 106M, 106C and 106K and the secondary transfer roller 105 functions as a transfer unit configured to transfer the toner images that have been formed onto the image bearing members onto the sheet S. It is noted that as the sheet serving as a recording medium, various sheet members having different sizes and materials can be used. For instance, the sheet may be a sheet of paper such as plain paper and thick paper, plastic film, cloth, sheet material on which a surface treatment has been applied such as coated paper, and a special shaped sheet such as an envelope and an index sheet.
As the image forming unit 100A starts an image forming operation, the photosensitive drums 101Y, 101M, 101C and 101K rotate and charger units homogeneously charge surfaces of the photosensitive drums 101Y, 101M, 101C and 101K. Then, a laser scanner 103 irradiates the surfaces of the photosensitive drums 101Y, 101M, 101C and 101K with beams corresponding to image signals. As a result, electrostatic latent images are formed on the surfaces of the photosensitive drums 101Y, 101M, 101C and 101K, respectively. These electrostatic latent images correspond to component image information that an image information to be printed is decomposed into four monochrome images of yellow, magenta, cyan and black.
Next, the electrostatic latent images are developed by using toner serving as developer stored in developing cartridges 104Y, 104M, 104C and 104K, as toner images, i.e., visible images, formed on the photosensitive drums 101Y, 101M, 101C and 101K. The toner images formed on the surfaces of the photosensitive drums 101Y, 101M, 101C and 101K are primarily transferred onto the intermediate transfer belt 102 by the primary transfer rollers 106Y, 106M, 106C and 106K. At this time, the toner images of the respective colors are superimposed with each other so as to form a full-color toner image on the intermediate transfer belt 102. Then, as the intermediate transfer belt 102 rotates, the toner image formed on the intermediate transfer belt 102 is conveyed to a secondary transfer portion, which is a nip portion formed between the secondary transfer roller 105 and a counter roller 105a.
In parallel with such toner image forming operation, the sheet S is fed one by one from the sheet feeding apparatus 30. The sheet feeding apparatus 30 includes a cassette 35 serving as a sheet stacking portion in which the sheets S are stored in a stacked state and a pickup roller 25 configured to deliver an uppermost sheet S in the cassette 35. The sheet feeding apparatus 30 also includes a sheet feed roller 26 configured to receive and convey the sheet S received from the pickup roller 25 and a separation roller 11 forming a nip portion, i.e., a separation nip, by being in contact with the sheet feed roller 26. The separation roller 11 functions as a separation member for separating a sheet in contact with the sheet feed roller 26 from other sheets by applying a frictional force to the sheets at the separation nip.
A skew of the sheet S fed from the sheet feeding apparatus 30 is corrected by a registration roller pair 110, and the sheet S is then conveyed to the secondary transfer portion. A conveyance speed of the registration roller pair 110 is controlled to adjust a position of the sheet S with the toner image borne on the intermediate transfer belt 102. The toner image borne on the intermediate transfer belt 102 is secondarily transferred onto the sheet S arrived at the secondary transfer portion by applying a transfer voltage to the secondary transfer roller 105.
The sheet S onto which the toner image has been transferred is then conveyed to a fixing unit 111 of a thermal fixing type. The fixing unit 111 fixes the toner image to the sheet S by heating and pressing the toner image on the sheet S while nipping and conveying the sheet S. The sheet S which has passed through the fixing unit 111 is discharged by a sheet discharge roller 112 to a sheet discharge portion 113 at an upper part of the apparatus.
By the way, a waste tonner collecting device 50 is disposed at a position below the image forming unit 100A. In a process of the image forming operation described above, residual toner of the toner image primarily transferred onto the intermediate transfer belt 102 is removed (scraped) by a cleaning blade to clean the intermediate transfer belt 102. This arrangement makes it possible to suppress the sheet S from being soiled by the residual toner adhering to the sheet S after adhering to the secondary transfer roller 105.
The residual toner scraped out of the intermediate transfer belt 102 is conveyed to a collecting unit 51 by a conveyance screw to be collected as waste toner within the collecting unit 51. The collecting unit 51 is configured as a unit that can be attached to and detached from the apparatus body 100 such that an operator can remove and discard the waste toner when the collecting unit 51 is filled up by the waste toner. The printer 1 includes a cover that can be opened and closed with respect to the apparatus body 100, and the collecting unit 51 is exposed by opening the cover. Note that the “apparatus body” described here refers to a part except of parts detachable from the printer 1, i.e., a part including a frame body and components fixed to the frame body. Still further, the “operator” described here is a user or a service person of the printer 1 for example.
The printer 1 also includes a door 115 that can be opened and closed with respect to the apparatus body 100, and the separation unit 10 including the separation roller 11 is exposed by opening the door 115. The separation unit 10 that can be detached from the apparatus body 100 in a Vd-direction in
A configuration for attaching and detaching the collecting unit 51 to and from the waste toner collecting device 50 will be described in detail as a first embodiment with reference to
A rotation axial direction of the drive transmission shaft 52 will be referred to as an “X-direction” hereinafter. A direction intersecting with the X-direction, in which the collecting unit 51 is attached to the apparatus body 100, will be referred to as a “Y-direction” hereinafter. Preferably, the Y-direction is a direction vertical to the X-direction. A direction vertical to the X- and Y-directions will be also referred to as a “Z-direction” hereinafter.
The first and second gears 57 and 56 are rotatably supported by a body frame 58, which is a part of the apparatus body 100, and are engaged with each other. The first gear 57 is rotated by a driving force transmitted from a motor M1, which is a driving source provided in the apparatus body. The second gear 56 is attached to the drive transmission shaft 52 and rotates in a body with the drive transmission shaft 52.
A key 52b is formed on the drive transmission shaft 52. When the key 52b fits with a keyway 55b provided on the drive input portion 55a of the collecting unit 51, the drive transmission shaft 52 and the drive input portion 55a are coupled not to rotate relatively and the driving force supplied from the driving source is transmitted to the screw 55. The screw 55 conveys the waste toner within the container 51b collected from the intermediate transfer belt 102 and other to the container 51b to uniformize the waste toner and to improve a filling efficiency thereof within the container 51b.
The drive transmission shaft 52 is configured to be slidable in the X-direction with respect to the body frame 58 such that the key 52b fits/disengages to/from the keyway 55b. A position of the drive transmission shaft 52 that enables the key 52b to fit with the keyway 55b will be referred to as a “coupling position” and a position of the drive transmission shaft 52 that disengages the key 52b from the keyway 55b will be referred to as a “decoupling position” hereinafter.
The drive transmission shaft 52 is also provided with an annular rib 52a serving as an engaged portion of the present embodiment. The annular rib 52a is a protrusion radially projecting from the drive transmission shaft 52 and is formed as a radially extending disk in the present embodiment. The slide member 53 is provided with an engaging portion 53b that engages with the annular rib 52a. The engaging portion 53b includes a U-shaped groove configured to sandwich the annular rib 52a from both sides in the X-direction. Accordingly, the drive transmission shaft 52 is restricted from moving in the X-direction with respect to the slide member 53 in a state in which the engaging portion 53b engages with the annular rib 52a.
The slide member 53 is movable with respect to the body frame 58 between a restrict position serving as a first position or a lock position for restricting the collecting unit 51 attached to the apparatus body 100 from being detached and a release position serving as a second position or a retracting position for allowing (i.e., not to restrict) the collecting unit 51 to be detached. When the slide member 53 is located at the restrict position as the engaging portion 53b engages with the annular rib 52a, the drive transmission shaft 52 is held at the coupling position. When the slide member 53 is located at the release position, the drive transmission shaft 52 is held at the decoupling position.
The slide member 53 is provided with a tapered surface 53a for moving the slide member 53 in attaching the collecting unit 51. The tapered surface 53a is a pressed portion to be pressed by a boss 51a serving as a press portion provided on the container 51b of the collecting unit 51. The slide member 53 is also provided with a handling portion 53c for enabling the operator to manually operate the detaching operation of the collecting unit 51. The handling portion 53c is provided at a position exposed when the cover described above of the apparatus body 100 is opened. The move of the slide member 53 caused by the operation for attaching the collecting unit 51 or by the operation of the operator will be described later.
An urging member 54 serving as an urging portion of the present embodiment urges the slide member 53 toward the first position, i.e., in a direction opposite from the X-direction. An elastic member such as a torsion coil spring or rubber may be used as the urging member 54 provided between the body frame 58 and the slide member 53. The body frame 58 is provided with an abutment rib 58a facing the slide member 53 from an opposite side of the X-direction. The abutment rib 58a is disposed such that the slide member 53 is positioned as the slide member 53 abuts with the abutment rib 58a by an urging force of the urging member 54.
Attaching Collecting Unit
An operation in attaching the collecting unit 51 to the apparatus body 100 will be described with reference to
As illustrated in
In a case where the operator performs the operation for attaching the collecting unit 51, the operator holds the collecting unit 51 at a position and an orientation as illustrated in
Along with the insertion of the collecting unit 51, the boss 51a of the collecting unit 51 abuts with the tapered surface 53a of the slide member 53 as illustrated in
It is noted that shapes of the tapered surface 53a and the boss 51a are set such that a clearance X0 in the X-direction is assured between the tip of the drive transmission shaft 52 and the drive input portion 55a in a state in which the slide member 53 is moved furthest as the tapered surface 53a is pressed as illustrated in
Still further, while the press portion of the collecting unit 51 is composed of the cylindrical boss 51a and the pressed portion of the slide member 53 is composed of the tapered surface 53a inclined with respect to the attaching direction, the press portion may be formed into a shape inclined with respect to the attaching direction. That is, at least one of the press portion of the collecting unit 51 and the pressed portion of the slide member 53 may be configured to be inclined with respect to the attaching direction such that a force in the X-direction acts on the slide member 53 along with the move of the collecting unit 51 in the attaching direction.
When the insertion of the collecting unit 51 into the attaching position is completed, the force in the X-direction that has been generated at the contact portion of the tapered surface 53a and the boss 51a no longer act on the slide member 53 as the boss 51a passes through an end portion of the tapered surface 53a as illustrated in
It is noted that a space for storing the boss 51a indicated by a dot line in
Along with the move of the slide member 53, the drive transmission shaft 52 also moves from the decoupling position to the coupling position as indicated by an arrow X4 in the direction opposite to the X-direction. Thereby, the key 52b of the drive input portion 55a fits into the keyway 55b of the drive input portion 55a and the drive transmission shaft 52 is coupled with the drive input portion 55a, so that the driving force can be transmitted to the screw 55.
Detaching Collecting Unit
Meanwhile, the operator operates the handling portion 53c provided on the slide member 53 in detaching the collecting unit 51 out of the apparatus body 100. Specifically, the operator pinches the handling portion 53c by fingers in the state in
In other words, the coupling of the drive transmission shaft 52 with the drive input portion 55a is released and the overlap state of the slide member 53 with the boss 51a of the collecting unit 51 in the attached state is eliminated. In this state, a move of the collecting unit 51 in the detaching direction, i.e., in the direction opposite to the Y-direction, is not hampered. Accordingly, the operator can detach the collecting unit 51 out of the apparatus body 100 by pulling the collecting unit 51 in the direction opposite to the Y-direction by another hand while handling the handling portion 53c by one hand for example. After discharging the waste toner by opening a cover or a plug of the container 51b of the collecting unit 51, or after preparing a new collecting unit 51, the operator attaches the collecting unit 51 again to the apparatus body 100 to finish the operation.
Thus, the coupling of the drive transmission shaft 52 with the drive input portion 55a and the overlap state of the slide member 53 with the part, i.e., the boss 51a, of the collecting unit 51 are kept unless the handling portion 53c is operated in the direction against the urging force of the urging member 54 as described above. Therefore, the collecting unit 51 is restricted from being detached in the state in which the drive transmission shaft 52 provided in the apparatus body 100 is coupled with the drive input portion 55a provided on the collecting unit 51. That is, according to the present embodiment, it is possible to prevent the drive transmission shaft 52 or the drive input portion 55a from being damaged otherwise caused by forcible detachment of the collecting unit 51, without complicating the work for attaching and detaching the collecting unit 51.
As described above, according to the present embodiment, the drive transmission shaft 52 moves in linkage with the slide member 53 that restricts the attaching and detaching operation of the collecting unit 51 in the configuration in which the drive transmission shaft 52 is coupled with and decoupled from the drive input portion 55a of the collecting unit 51 by the move in the rotation axial direction of the drive transmission shaft 52. This arrangement makes it possible to easily attach and detach the collecting unit 51 as compared to a configuration in which the slide member 53 and the drive transmission shaft 52 need to be moved independently because the drive transmission shaft 52 is decoupled from the drive input portion 55a along with the operation of moving the slide member 53 from the restrict position to the release position.
In attaching the collecting unit 51, the boss 51a, i.e., the press portion, provided on the collecting unit 51 presses the slide member 53 by resisting against the urging force of the urging member 54 to move from the restrict position to the release position. Therefore, the work for attaching the collecting unit 51 is completed just by one operation of moving the collecting unit 51 in the Y-direction which is the attaching direction.
In detaching the collecting unit 51, the operator can easily detach the collecting unit 51 because the drive transmission shaft 52 is decoupled from the drive input portion 55a just by the operation of pinching the handling portion 53c to move the slide member 53.
A configuration for attaching and detaching the separation unit 10 in the sheet feeding apparatus 30 in
The cassette 35 is detachably attached to an apparatus body of the sheet feeding apparatus 30 which is a part of the apparatus body 100 of the printer 1 in the present embodiment. The cassette 35 includes a cassette body 36 serving as a sheet accommodating portion and a stacking plate 37 serving as a stacking portion on which sheets S are stacked. The stacking plate 37 is liftable with respect to a bottom surface of the cassette body 36.
The sheet feed unit 20 is provided in the apparatus body 100 in the present embodiment and includes a roller unit 21 attachable to and detachable from a frame body of the sheet feed unit 20, and further includes a pressure spring 28 and a pressure arm 27. The roller unit 21 includes a roller holder 22 supported by the apparatus body 100, a pickup roller 25 and a sheet feed roller 26 each held rotatably by the roller holder 22. The roller unit 21 is pivotably supported by the sheet feed unit 20 centering on a rotation shaft of the sheet feed roller 26 in a state in which the roller unit 21 is attached to the sheet feed unit 20. The roller unit 21 is also configured such that the pickup roller 25 comes into pressure contact with an upper surface of an uppermost sheet S on the stacking plate 37 by receiving an urging force of the pressure spring 28 in a direction of an arrow P through the pressure arm 27.
The separation unit 10 is provided at a position facing the sheet feed unit 20. The separation unit 10 can be detachably attached to the apparatus body 100 of the sheet feeding apparatus 30. A configuration related to attaching and detaching of the separation unit 10 and an attaching and detaching operation thereof will be described later. The separation unit 10 includes a separation roller 11 serving as a separation rotary member, a roller holder 12 serving as a first holding member and a base member 13 serving as a second holding member. The separation unit 10 also includes a spring member 15 serving as an urging member, a nip guide 61 and a cover member 14.
A small torque limiter 11a is installed in the separation roller 11, and the separation roller 11 is supported by a roller shaft 60 (see
The roller holder 12 rotatably holds the separation roller 11 and is held by the base member 13 swingably centering on a swing center 12a. That is, the base member 13 serves as a holding member configured to hold the roller holder 12. The separation roller 11 is movable in directions of coming into contact with and separating from the sheet feed roller 26 as the roller holder 12 swings. The spring member 15 is fixed to the base member 13 and exerts an urging force on the roller holder 12. The separation unit 10 is attached to the sheet feeding apparatus 30 such that the separation roller 11 comes to a position facing the sheet feed roller 26, and the separation roller 11 is pressed against the sheet feed roller 26 by the urging force of the spring member 15.
A rotation axial direction of the roller shaft 60 will be referred to as a “U-direction” hereinafter. A direction intersecting with the U-direction and in attaching the separation unit 10 to the apparatus body 100 will be referred as a “V-direction”. Preferably, the V-direction is a direction vertical to the U-direction. A direction also vertical to the U-direction and the V-direction will be referred to as a “W-direction”.
An opening portion through which a part of an outer peripheral surface of the separation roller 11 is exposed is formed by a concave part provided in the cover member 14 and a nip guide 61 (see
Next, a sheet feeding operation of the sheet feeding apparatus 30 will be described. When the cassette 35 is inserted into the sheet feeding apparatus 30, the stacking plate 37 is lifted up and the uppermost sheet S comes into contact with the pickup roller 25 (see
As the pickup roller 25 starts to rotate, the sheet S starts to move toward a right side in
The separation roller 11 includes the torque limiter 11a as described above and is applied with a torque as a resistance force in a direction inverse to a conveyance direction of the sheet S. The torque value of the torque limiter 11a is set such that the separation roller 11 is permitted to rotate following the sheet feed roller 26 only when one sheet S passes through the separation nip. The torque value of the torque limiter 11a is also set such that the separation roller 11 stops by overcoming a friction between the sheets S when two or more sheets S enter the separation nip. Accordingly, only the uppermost sheet S in contact with the sheet feed roller 26 is conveyed and the sheet other than the uppermost sheet S is blocked even if the two sheets or more enter the separation nip, the sheet S is separated one by one at the separation nip and is conveyed downstream. The sheet that has passed through the separation nip is conveyed by the pickup roller 25 and the sheet feed roller 26 to a registration roller pair 110 (see
Separation Unit
The configuration and a retaining method of the separation unit 10 will be described in detail with reference to
The base member 13 is provided with pairs of the projections 13a and 13b serving as first positioning portions for positioning to the sheet feeding apparatus 30 on both sides thereof. The projections 13a and 13b on one side in the U-direction illustrated in
As illustrated in
As illustrated in
The respective shutter members 31 are urged by shutter springs 32 in directions indicated by arrows in
Position of the shutter members 31 in
The projections 13a and 13b on one side in the U-direction project to one side in the U-direction from a side surface on one side in the U-direction of the separation unit 10 and are arrayed in the W-direction intersecting with the U-direction, i.e., in the rotation axial direction of the separation roller 11, and in the detaching direction Vd of the separation unit 10. In the same manner, the projections 13a and 13b on the other side in the U-direction also project to the other side in the U-direction from a side surface on the other side in the U-direction of the separation unit 10 and are arrayed in the W-direction. Accordingly, the separation unit 10 in the attached state is positioned by the two shutter members 31, i.e., the first restriction member and the second restriction member, that abut with the projections 13a and 13b on both sides in the U-direction. Specifically, the separation unit 10 is positioned steadily by the two shutter members 31 that abut with the four projections 13a and 13b in the present embodiment.
The shutter members 31 can be moved in the U-direction and an opposite direction thereto from the restrict positions as illustrated in
The present embodiment is configured such the separation roller 11 is separated from the sheet feed roller 26 and the separation nip is released when the cassette 35 is drawn out of the sheet feeding apparatus 30. This arrangement is made to prevent the sheet S from being left in the separation nip in drawing the cassette 35 out of the sheet feeding apparatus 30. That is, the separation roller 11 is configured to be contactable with and separable from the sheet feed roller 26 by a nip releasing mechanism.
Configuration for Coupling Roller Shaft
The configuration of the separation unit 10 will be described further with reference to
The roller shaft 60 serving as a first rotary member of the present embodiment is configured to be coupled with and decoupled from the separation roller 11 serving as a second rotary member of the present embodiment by sliding in the U-direction, i.e., in the rotation axial direction of the roller shaft 60. As illustrated in
The roller shaft 60 is also provided with an annular rib 60a serving as an engaged portion of the present embodiment. The annular rib 60a is a projection protruding radially from the roller shaft 60 and formed into a radially extending disk. One shutter member 31 (on the left side in
The shutter members 31 are provided with pressed portions pressed by the cam portions 14a serving as press portions provided in the separation unit 10. The shutter members 31 are also provided with handling portions 31c (see
As illustrated in
Attaching Separation Unit
Next, moves of the roller shaft 60 and the shutter members 31 in attaching the separation unit 10 will be described with reference to
As illustrated in
In a case where the operator performs the operation for attaching the separation unit 10, the operator holds the separation unit 10 at the position and orientation illustrated in
Along with the insertion of the separation unit 10, the cam portions 14a of the separation unit 10 abut with the pressed portions of the shutter members 31 as illustrated in
It is noted that shapes of the cam portions 14a and the shutter member 31 are set such that a predetermined clearance in the U-direction is assured between the tip of the roller shaft 60 and the separation roller 11 in
Still further, while each cam portion 14a of the separation unit 10 functions as the inclined portion that generates the component of force for sliding the shutter member 31, the shutter members 31 may be provided with inclined portions like the taper surface 53a of the first embodiment.
When the separation unit 10 arrives at the attaching position, the force that has been generated at the contact portions of the cam portions 14a and the shutter members 31 do not act any longer on the shutter members 31 because the cam portions 14a have passed through the pressed portions of the shutter members 31 as illustrated in
Along with the move of the shutter members 31, the roller shaft 60 also moves from the decoupling position to the coupling position toward a direction opposite from the U-direction as indicated by an arrow U6. Thereby, because the key 60b of the roller shaft 60 fits with the keyway of the coupling portion 11b of the separation roller 11, the rotary disk 62 of the rotary encoder (see
Still further, as the shutter members 31 take the restrict positions indicated in
Detaching Separation Unit
Meanwhile, in a case of detaching the separation unit 10 out of the apparatus body 100, the operator operates the handling portions 31c provided on the shutter members 31. Specifically, the operator pinches the handling portions 53c by fingers in a state of
In other words, as the coupling of the roller shaft 60 with the separation roller 11 is released, the overlap state of the shutter members 31 with the cam portions 14a and the projections 13a and 13b of the separation unit 10 in the attached state is eliminated. In this state, the move of the separation unit 10 in the detaching direction, i.e., in the Vd-direction, is not hampered. Accordingly, the operator can draw the separation unit 10 out of the apparatus body 100 by pulling out the separation unit 10 in the Vd-direction in a state in which the shutter members 31 are moved to the release positions by handling the handling portions 31c. Then, the roller replacement work is completed by detaching the separation roller 11 from the roller holder 12, by attaching a new separation roller 11 and by attaching a new separation unit 10 again to the apparatus body 100.
As described above, the coupling of the roller shaft 60 with the separation roller 11 and the partial overlap state of the shutter members 31 with the separation unit 10 are kept unless the handling portions 31c are operated in a direction resisting against the urging force of the shutter spring 32. Therefore, the separation unit 10 is restricted from being detached in the state in which the roller shaft 60 provided in the apparatus body 100 is coupled with the separation roller 11 provided in the separation unit 10. That is, the present embodiment makes it possible to prevent the roller shaft 60 or the separation roller 11 from been damaged otherwise caused by forcible detachment of the separation unit 10 without complicating the attaching and detaching works of the separation unit 10.
It is noted that while the separation unit 10 having the separation roller 11 has been described as an example of the unit to be attached to and detached from the apparatus body 100 of the sheet feeding apparatus 30 in the present embodiment, the technology of the present disclosure is also applicable to a configuration for attaching and detaching the roller unit 21 having the sheet feed roller 26. In this case, the roller unit 21 is configured to be coupled with and decoupled from the sheet feeding roller 26 by sliding the roller shaft of the sheet feed roller 26 in the rotation axial direction. Then, a restriction member that is movable to a restrict position where the roller unit 21 located at an attaching position is restricted from being detached and to a release position where the roller unit 21 is allowed to be detached may be provided such that the roller shaft of the sheet feed roller 26 slides in linkage with the restriction member.
While the form of the key and the keyway has been used as the configuration for coupling the roller shaft 60 with the separation roller 11 to minimize a transmission error, the present disclosure is not limited to such configuration and a parallel pin, magnet or the like may be used.
Still further, while the shutter members 31 serving as the restriction members are provided on both sides of the separation unit 10 in the U-direction in the present embodiment, only the shutter member 31 that engages with the annular rib 60a of the roller shaft 60 may be disposed for example.
A case where the present technology is applied to a separation unit provided with a retard driving roller member will be described as a third embodiment. Components of the present embodiment denoted by the common reference signs with those of the second embodiment have substantially same configuration and operations with the second embodiment, and parts different from the second embodiment will be mainly described.
A torque limiter is installed in the separation roller 11. Therefore, the separation roller 11 is driven with a torque value of the torque limiter in a direction opposite to the rotation of the sheet feed roller 26, i.e., in a retard direction or counterclockwise in
Here, the roller shaft 60 moves to the coupling position and the decoupling position in linkage with the shutter members 31 serving as the restriction members. Therefore, even in a case where the roller shaft 60 plays a role of transmitting the driving force to the separation roller 11, it is possible to prevent the roller shaft 60 or the separation roller 11 from being damaged otherwise caused by forcible detachment of the separation unit 10 without complicating the work for attaching and detaching the separation unit 10.
While the printer 1 described in the first through third embodiments are an electrophotographic image forming apparatus, the technology of the present disclosure is also applicable to an image forming apparatus adopting another image forming system such as an inkjet system. The image forming apparatus described here also refers to an apparatus in general configured to form an image onto a recording medium and includes, not only a printer configured to print based on image information inputted from outside, but also a copier, a multi-function printer and the like. The sheet feeding apparatus is not also limited to what is a part of the image forming apparatus and includes an apparatus used in linkage with the image forming apparatus, i.e., a so-called option feeder and an automatic document feeder feeding a document sheet to an image sensor.
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2020-131919, filed on Aug. 3, 2020, which is hereby incorporated by reference herein in its entirety.
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2020-131919 | Aug 2020 | JP | national |
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