Rotating device, conveying device, and image forming apparatus

A single drive unit with a transmission mechanism using one-way clutches allows independent forward and reverse rotation of rotating bodies, addressing size and complexity issues in rotating devices.

JP7753786B2Active Publication Date: 2025-10-15FUJIFILM BUSINESS INNOVATION CORP
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Patent Information

Application Number
JP2021171825
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-20
Publication Date
2025-10-15
Estimated Expiration
2041-10-20

AI Technical Summary

Technical Problem

Existing rotating devices require multiple driving units to achieve forward and reverse rotation of rotating bodies, leading to increased size and complexity.

Method used

A single drive unit with a transmission mechanism that utilizes one-way clutches to transmit driving force in forward and reverse directions to separate rotating bodies, allowing them to rotate independently without increasing size or complexity.

Benefits of technology

The configuration suppresses the size and complexity of the rotating device by enabling independent rotation of multiple bodies with a single drive unit, optimizing space utilization and control.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To suppress the increase in size of a rotation device in comparison to a case where the driving force of a first driving unit is transmitted to normally rotate a first rotor and a second rotor and the driving force of a second driving unit different from the first driving unit is transmitted to normally rotate the first rotor and reversely rotate the second rotor.SOLUTION: A rotation device comprises: a first rotor which can normally rotate; a second rotor which can normally and reversely rotate; a driving unit which outputs the driving force in a normal rotation direction and a reverse rotation direction; and a transmission mechanism which transmits the driving force in the normal rotation direction output from the driving unit to the first rotor and the second rotor to normally rotate the first rotor and the second rotor, and transmits the driving force in the reverse rotation direction output from the driving unit to the first rotor and the second rotor to normally rotate the first rotor and reversely rotate the second rotor.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a rotation device, a conveyance device, and an image forming apparatus. [Background technology]

[0002] Patent Document 1 discloses an image forming apparatus that includes an image forming apparatus main body, a main transport path provided within the image forming apparatus main body for transporting sheets on which images are formed, a discharge path connected to the main transport path for discharging sheets, a switchback transport path connected above the main transport path for switching back sheets, and a resupply path provided within the image forming apparatus main body, connected to the switchback transport path, for resupplying sheets that have been switched back. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-197105 Summary of the Invention [Problem to be solved by the invention]

[0004] In a rotating device having a first rotating body and a second rotating body, if the driving force of a first driving unit is transmitted to rotate the first rotating body and the second rotating body forward, and the driving force of a second driving unit separate from the first driving unit is transmitted to rotate the first rotating body forward and the second rotating body reversely, multiple driving units are required, which makes the rotating device larger.

[0005] The present invention aims to prevent the size of the rotating device from increasing compared to when the driving force of a first driving unit is transmitted to rotate the first rotating body and the second rotating body forward, and the driving force of a second driving unit separate from the first driving unit is transmitted to rotate the first rotating body forward and the second rotating body reversely. [Means for solving the problem]

[0006] The first aspect includes a first rotating body capable of forward rotation, a second rotating body capable of forward and reverse rotation, a drive unit that outputs driving forces in forward and reverse directions, and a transmission mechanism that transmits the driving force in the forward direction output from the drive unit to the first rotating body and the second rotating body, causing the first rotating body and the second rotating body to rotate forward, and transmits the driving force in the reverse direction output from the drive unit to the first rotating body and the second rotating body, causing the first rotating body to rotate forward and the second rotating body to rotate reversely.

[0007] In a second aspect, the transmission mechanism has a first transmission path that transmits the driving force in the forward direction output from the drive unit to the first rotor and the second rotor, causing the first rotor and the second rotor to rotate forward, and does not transmit the driving force in the reverse direction output from the drive unit to the first rotor, and a second transmission path that transmits the driving force in the reverse direction output from the drive unit to the first rotor and the second rotor, causing the first rotor to rotate forward and the second rotor to rotate reverse, and does not transmit the driving force in the forward direction output from the drive unit to the first rotor.

[0008] In a third aspect, the first transmission path is arranged on one axial end side of the first rotor and includes a first transmission member that transmits the driving force in the forward direction output from the drive unit to the first rotor, and the second transmission path is arranged on the other axial end side of the first rotor and includes a second transmission member that transmits the driving force in the reverse direction output from the drive unit to the first rotor.

[0009] A fourth aspect includes a support body that supports the first rotating body, the second rotating body, the drive unit, and the transmission mechanism, and an opening / closing unit that moves relative to the support body including the first rotating body, the second rotating body, the drive unit, and the transmission mechanism to open and close.

[0010] In a fifth aspect, the first rotating body is a first conveying member that conveys the material by rotating forward, and the second rotating body is a second conveying member that conveys the material by rotating forward and backward.

[0011] In a sixth aspect, the second conveying member conveys the material to be conveyed together with a third conveying member by rotating forward, and conveys the material to be conveyed together with a fourth conveying member arranged on the opposite side of the third conveying member relative to the second conveying member by rotating reverse.

[0012] The seventh aspect includes an image forming unit that forms an image on a recording medium as the material to be transported, and the transport device of the fifth or sixth aspect that transports the recording medium on which the image has been formed by the image forming unit.

[0013] In an eighth aspect, the conveying device is the conveying device of the sixth aspect, and the second conveying member ejects the recording medium together with the third conveying member by rotating forward, and then inverts the recording medium together with the fourth conveying member by rotating backward and then forward. [Effects of the Invention]

[0014] According to the configuration of the first aspect, the size of the rotating device is suppressed compared to when the driving force of a first driving unit is transmitted to rotate the first rotating body and the second rotating body forward, and the driving force of a second driving unit separate from the first driving unit is transmitted to rotate the first rotating body forward and the second rotating body reversely.

[0015] According to the configuration of the second aspect, the configuration and / or control of the rotation device is prevented from becoming complicated compared to when the rotation directions of the first rotating body and the second rotating body are controlled by only a single transmission path.

[0016] According to the configuration of the third aspect, the space required for the rotating device can be saved compared to when both the first transmission member and the second transmission member are disposed on one end side of the first rotor in the axial direction.

[0017] According to the configuration of the fourth aspect, changes in the positional relationship between the first rotating body, the second rotating body, the drive unit, and part of the transmission mechanism are suppressed compared to when the first rotating body, the second rotating body, the drive unit, and part of the transmission mechanism move relative to the support together with the opening / closing unit.

[0018] According to the configuration of the fifth aspect, the size of the conveying device is suppressed compared to when the driving force of a first drive unit is transmitted to rotate the first conveying member and the second conveying member forward, and the driving force of a second drive unit separate from the first drive unit is transmitted to rotate the first conveying member forward and the second conveying member reversely.

[0019] According to the configuration of the sixth aspect, the size of the conveying device is suppressed compared to when the fourth conveying member conveys the material to be conveyed by a conveying member other than the second conveying member.

[0020] According to the configuration of the seventh aspect, the size of the image forming apparatus is suppressed compared to when the driving force of the first driving unit is transmitted to rotate the first rotating body and the second rotating body forward, and the driving force of the second driving unit, which is separate from the first driving unit, is transmitted to rotate the first rotating body forward and the second rotating body reversely.

[0021] According to the configuration of the eighth aspect, the size of the image forming apparatus is suppressed compared to when the fourth conveying member reverses the recording medium with a conveying member other than the second conveying member. [Brief explanation of the drawings]

[0022] [Figure 1] 1 is a schematic diagram illustrating a configuration of an image forming apparatus according to an embodiment of the present invention. [Figure 2] FIG. 2 is a front cross-sectional view of a second conveying device according to the embodiment. [Figure 3] FIG. 10 is a front view showing a part of a transmission mechanism in the second conveying device according to the embodiment. [Figure 4] FIG. 10 is a front view showing a transmission mechanism in the second conveying device according to the embodiment. [Figure 5] FIG. 2 is a plan view of a second conveyance device according to the embodiment. [Figure 6] FIG. 2 is a front cross-sectional view of a second conveying device according to the embodiment. [Figure 7] FIG. 10 is a front view showing a part of a transmission mechanism in the second conveying device according to the embodiment. [Figure 8] FIG. 10 is a front view showing a transmission mechanism in the second conveying device according to the embodiment. [Figure 9]FIG. 2 is a plan view of a second conveyance device according to the embodiment. [Figure 10] FIG. 10 is a front cross-sectional view showing a state in which an opening / closing body of the second conveying device according to the embodiment is open. DETAILED DESCRIPTION OF THE INVENTION

[0023] An example of an embodiment of the present invention will be described below with reference to the drawings. (Image forming apparatus 10) The configuration of an image forming apparatus 10 according to this embodiment will be described below. Fig. 1 is a schematic diagram showing the configuration of an image forming apparatus 10 according to this embodiment.

[0024] Note that the arrow UP shown in the figure indicates the top of the device (specifically, vertically upward), and the arrow DO indicates the bottom of the device (specifically, vertically downward). Also, the arrow LH shown in the figure indicates the left side of the device, and the arrow RH indicates the right side of the device. Also, the arrow FR shown in the figure indicates the front of the device, and the arrow RR indicates the rear of the device. These directions are defined for the convenience of explanation, and the device configuration is not limited to these directions. Note that in each direction of the device, the word "device" may be omitted. That is, for example, "above the device" may be simply referred to as "above."

[0025] The up-down direction, left-right direction, and front-back direction are directions that intersect with each other (specifically, directions that intersect at right angles). The up-down direction can also be called the vertical direction. The left-right direction and front-back direction can also be called the horizontal direction. In addition, a symbol with an "x" inside a "circle" in a figure means an arrow pointing from the front to the back of the page. In addition, a symbol with a "·" inside a "circle" in a figure means an arrow pointing from the back to the front of the page.

[0026] The image forming apparatus 10 shown in Fig. 1 is an apparatus for forming an image. Specifically, as shown in Fig. 1, the image forming apparatus 10 includes an image forming apparatus main body 11, a storage section 12, a discharge section 18, a first conveying device 13, an image forming section 14, a second conveying device 40, and a third conveying device 19. Each section of the image forming apparatus 10 will be described below.

[0027] (Image forming apparatus main body 11) 1, the image forming apparatus main body 11 is a portion in which each component of the image forming apparatus 10 is provided. Specifically, for example, the storage section 12, the first conveying device 13, the image forming section 14, the second conveying device 40, and the third conveying device 19 are arranged inside the image forming apparatus main body 11.

[0028] (Storage section 12) The storage section 12 is a portion of the image forming apparatus 10 that stores the recording medium P. The recording medium P stored in this storage section 12 is supplied to the image forming section 14. The recording medium P stored in the storage section 12 is an example of a material to be conveyed, and is the object on which an image is formed by the image forming section 14. Examples of the recording medium P include paper and film. Examples of the film include a resin film and a metal film. Note that the recording medium P is not limited to those described above, and various recording media can be used.

[0029] (Discharge section 18) The discharge section 18 is a portion of the image forming apparatus 10 where the recording medium P is discharged. The recording medium P on which an image has been formed by the image forming section 14 is discharged to this discharge section 18.

[0030] (First conveying device 13) The first conveying device 13 is a device that conveys the recording medium P stored in the storage unit 12 toward the image forming unit 14. Specifically, as shown in FIG. 1, the first conveying device 13 has conveying members 13A such as a plurality of conveying rolls, and conveys the recording medium P by the conveying members 13A.

[0031] (Image forming unit 14) The image forming unit 14 has a function of forming an image on the recording medium P conveyed by the first conveying device 13. Specifically, the image forming unit 14 forms a toner image (an example of an image) on the recording medium P by an electrophotographic method. More specifically, as shown in FIG. 1, the image forming unit 14 has toner image forming units 20Y, 20M, 20C, and 20K (hereinafter referred to as 20Y to 20K), a transfer body 24, and a fixing unit 26.

[0032] In the image forming unit 14, each of the toner image forming units 20Y to 20K performs the steps of charging, exposing, developing, and transferring to form a toner image of each color, yellow (Y), magenta (M), cyan (C), and black (K), on the transfer body 24. Furthermore, in the image forming unit 14, the toner image of each color formed on the transfer body 24 is transferred to the recording medium P, and the toner image is fixed to the recording medium P by the fixing unit 26. In this way, the image forming unit 14 uses an intermediate transfer method in which the image is transferred to the recording medium P via the transfer body 24.

[0033] (Second conveying device 40) The second conveying device 40 is an example of a rotation device and a conveying device, and is a device that conveys the recording medium P on which an image is formed by the image forming unit 14. Specifically, the second conveying device 40 discharges the recording medium P on which an image is formed by the image forming unit 14 to the discharge unit 18, or inverts the recording medium P on which an image is formed by the image forming unit 14. That is, the second conveying device 40 selectively conveys the recording medium P on which an image is formed by the image forming unit 14 along one of a discharge path that discharges the recording medium P to the discharge unit 18 and a reversal path that reverses the recording medium P. The discharge paths are the paths indicated by arrows A1, A2, and A3 in FIG. 2. The reversal path is composed of a first reversal path indicated by arrows B1 and B2 and a second reversal path indicated by arrow B3 in FIG. 6. That is, in the second conveying device 40, the recording medium P conveyed along the first reversal path is conveyed along the first reversal path, then switches back and is conveyed along the second reversal path. The specific configuration of the second conveying device 40 will be described later.

[0034] (Third conveying device 19) The third conveying device 19 is a device that conveys the recording medium P that has been inverted by the second conveying device 40 toward the image forming unit 14. That is, the recording medium P that has been inverted by the second conveying device 40 is conveyed again to the image forming unit 14. Specifically, as shown in FIG. 1 , the third conveying device 19 has conveying members 19A such as a plurality of conveying rolls, and conveys the recording medium P by the conveying members 19A.

[0035] (Specific Configuration of Second Conveyor Device 40) The specific configuration of the second conveying device 40 will be described. Figs. 2 and 6 are front cross-sectional views of the second conveying device 40. Figs. 3 and 7 are front views showing a part of a transmission mechanism 50 (described later) in the second conveying device 40. Figs. 4 and 8 are front views showing a transmission mechanism 50 (described later) in the second conveying device 40. Figs. 5 and 9 are plan views of the second conveying device 40.

[0036] 2, 3, 4, and 5 show the second conveying device 40 when discharging the recording medium P to the discharge section 18. Meanwhile, Figs. 6, 7, 8, and 9 show the second conveying device 40 when inverting the recording medium P. Also, Fig. 10 is a front cross-sectional view showing the second conveying device 40 with opening / closing bodies 81 and 82, which will be described later, opened.

[0037] As shown in Figures 2, 3, 4 and 5, the second conveying device 40 includes support frames 47, 48, drive rolls 41A, 42A, 43A, driven rolls 41B, 42B, 42C, 43B, a drive motor 45, a transmission mechanism 50, guides 71, 72, 74, and opening / closing bodies 81, 82.

[0038] (Support frames 47, 48) 5 and the like are an example of a support, and have a function of supporting each component of the second conveying device 40, including the drive rolls 41A, 42A, the drive motor 45, and the transmission mechanism 50. As shown in Fig. 5, the support frames 47, 48 are formed, for example, in the shape of a plate with a thickness direction extending in the front-rear direction.

[0039] The support frame 47 constitutes the front portion of the second conveying device 40 and is disposed in front of the support frame 48. The support frame 48 constitutes the rear portion of the second conveying device 40 and is disposed in rear of the support frame 47.

[0040] (Driving rolls 41A, 42A, 43A, driven rolls 41B, 42B, 42C, 43B) The drive rolls 41A, 42A, and 43A shown in FIG. 2 and the like are transport rolls serving as driven parts that are rotationally driven by a drive motor 45 (see FIG. 5). Specifically, as shown in FIG. 2, the drive rolls 41A and 42A have shaft portions 411 and 421 and roll portions 412 and 422 provided on the outer peripheries of the shaft portions 411 and 421. As shown in FIG. 5, one end (specifically, the front end) and the other end (specifically, the rear end) of the drive rolls 41A and 42A are rotatably supported by the support frames 47 and 48, respectively, via the shaft portions 411 and 421. Note that FIG. 5 illustrates the drive rolls 41A and 42A without showing the roll portions 412 and 422.

[0041] The drive roll 41A is an example of a first rotating body and is capable of forward rotation (rotation in the direction of arrow 41X). The drive roll 41A is also an example of a first conveying member and has the function of conveying the recording medium P by forward rotation. Note that, as will be described later, the drive roll 41A is rotated forward by the driving force of the drive motor 45 transmitted by a transmission mechanism 50.

[0042] As shown in FIG. 2, the outer peripheral surface of the drive roll 41A is in contact with the outer peripheral surface of the driven roll 41B, and has a contact region 41S in contact with the driven roll 41B. The driven roll 41B is a transport roll that rotates driven by the drive roll 41A by contacting the drive roll 41A at the contact region 41S. The drive roll 41A and the driven roll 41B are disposed downstream in the transport direction from the image forming unit 14 (specifically, the fixing unit 26) shown in FIG. 1. The drive roll 41A and the driven roll 41B sandwich the recording medium P transported from the image forming unit 14 (specifically, the fixing unit 26) between them in the contact region 41S and transport the recording medium P toward the downstream side in the transport direction (specifically, the drive roll 42A). The driven roll 41B is rotatably supported by the opening / closing body 81.

[0043] The drive roll 42A is an example of a second rotating body, and is capable of rotating forward (in the direction of arrow 42X) and reverse (in the direction of arrow 42Y). The drive roll 42A is also an example of a second conveying member, and has the function of conveying the recording medium P by rotating forward and reverse. As will be described later, the drive roll 42A receives the driving force of a drive motor 45 transmitted by a transmission mechanism 50, and rotates forward and reverse.

[0044] The driven roll 42B is an example of a third conveying member and is disposed on one side (specifically, the lower side) of the driving roll 42A. The driven roll 42C is an example of a fourth conveying member and is disposed on the opposite side (specifically, the upper side) of the driving roll 42A from the driven roll 42B side.

[0045] The outer peripheral surface of the drive roll 42A is in contact with the outer peripheral surfaces of the driven rolls 42B and 42C, and has contact areas 42S and 42T in contact with the driven rolls 42B and 42C. The driven rolls 42B and 42C are transport rolls that rotate following the drive roll 42A by contacting the drive roll 42A at the contact areas 42S and 42T. The drive roll 42A and the driven rolls 42B and 42C are disposed downstream in the transport direction relative to the drive roll 41A and the driven roll 41B. When the recording medium P transported from the drive roll 41A and the driven roll 41B is to be discharged to the discharge section 18, the drive roll 42A rotates forward to transport the recording medium P together with the driven roll 42B. Specifically, as the driving roll 42A rotates forward, the driving roll 42A and the driven roll 42B sandwich the recording medium P in the contact area 42S and discharge the recording medium P along the discharge path (see arrows A2 and A3) to the discharge section 18. At this time, the guide 74 is located at the discharge position (the position indicated by the solid line in FIG. 2).

[0046] 6, when the recording medium P transported from the drive roll 41A and the driven roll 41B is reversed, the drive roll 42A rotates in the reverse direction and transports the recording medium P together with the driven roll 42C. Specifically, when the drive roll 42A rotates in the reverse direction, the drive roll 42A and the driven roll 42C transport the recording medium P along a first reversal path (see arrow B2) while sandwiching the recording medium P in the contact region 42T. At this time, the guide 74 is located at the reversal position (the position indicated by the solid line in FIG. 6).

[0047] Thereafter, the driving roll 42A rotates forward, causing the driving roll 42A and the driven roll 42C to transport the recording medium P along a second reversing path (see arrow B3). At this time, the guide 74 is located at the discharge position (the position indicated by the two-dot chain line in FIG. 6). In this way, the driving roll 42A rotates forward after rotating in the reverse direction, causing the driving roll 42A and the driven roll 42C to reverse the recording medium P.

[0048] The driven roll 42B is rotatably supported by the support frames 47 and 48. The driven roll 42C is rotatably supported by the opening / closing body 82.

[0049] The drive roll 43A is capable of forward rotation (rotation in the direction of arrow 43X in FIG. 2) and reverse rotation (rotation in the direction of arrow 43Y in FIG. 6). The outer circumferential surface of the drive roll 43A is in contact with the outer circumferential surface of the driven roll 43B, and has a contact region 43S in contact with the driven roll 43B. The driven roll 43B comes into contact with the drive roll 43A at the contact region 43S, and thereby rotates in accordance with the drive roll 43A. The drive roll 43A and the driven roll 43B are disposed downstream in the transport direction relative to the drive roll 42A and the driven roll 42C.

[0050] The driving roll 43A and the driven roll 43B then sandwich the recording medium P conveyed from the driving roll 42A and the driven roll 42C in the contact area 43S and convey the recording medium P toward the downstream side in the conveying direction (specifically, the image forming unit 14). The driving roll 43A and the driven roll 43B are rotatably supported by the opening / closing body 82.

[0051] (Drive motor 45 and transmission mechanism 50) The drive motor 45 shown in Fig. 5 and other figures is an example of a drive unit, and outputs drive force in a forward direction (the direction of arrow 45X in Fig. 3 and other figures) and a reverse direction (the direction of arrow 45Y in Fig. 7 and other figures). As shown in Fig. 5, the drive motor 45 has a main body 451 and a drive shaft 452. The main body 451 is fixed to the support frame 48 on the rear side relative to the support frame 48. The drive shaft 452 extends from the main body 451 to the front side relative to the support frame 48. Note that, for example, a stepping motor, a DC motor (i.e., a direct current motor), or the like can be used as the drive motor 45.

[0052] 5 and other drawings, the transmission mechanism 50 transmits the driving force of the drive motor 45 to the drive rolls 41A, 42A, and 43A. In this embodiment, the transmission mechanism 50 transmits the driving force in the forward direction (direction of arrow 45X) output from the drive motor 45 to the drive rolls 41A and 42A, causing the drive rolls 41A and 42A to rotate forward. The transmission mechanism 50 also transmits the driving force in the reverse direction (direction of arrow 45Y) output from the drive motor 45 to the drive rolls 41A and 42A, causing the drive roll 41A to rotate forward and the drive roll 42A to rotate reversely.

[0053] In this embodiment, as shown in FIGS. 3, 4 and 5, the transmission mechanism 50 has gears 51, 52, 53, 54, and 55, pulleys 61 and 62, a timing belt 66, and one-way clutches 521 and 611 as components.

[0054] The gear 51 is fixed to a drive shaft 452 of the drive motor 45. The gear 52 is an example of a first transmission member, and is engaged with the gear 51, and is fixed to the rear end of the shaft portion 411 of the drive roll 41A via a one-way clutch 521. The gear 52 is a transmission member that transmits the driving force in the forward rotation direction output from the drive motor 45 to the drive roll 41A.

[0055] The one-way clutch 521 functions as a transmission part that transmits the rotational force of the gear 52 in the forward rotation direction (the direction of the arrow 52X in FIG. 3, etc.) to the shaft 411 of the drive roll 41A, but does not transmit the rotational force of the gear 52 in the reverse direction (the direction of the arrow 52Y in FIG. 7, etc.) to the shaft 411 of the drive roll 41A. The one-way clutch 521 may be understood as an example of a first transmission member.

[0056] The gear 53 meshes with the gear 52 and is rotatably supported by the support frame 48. The gear 54 meshes with the gear 53 and is rotatably supported by the support frame 48. The gear 55 meshes with the gear 54 and is fixed to the rear end of the shaft portion 421 of the drive roll 42A.

[0057] The pulley 61 is an example of a second transmission member, and is fixed to the front end of the shaft portion 411 of the drive roll 41A via a one-way clutch 611. The pulley 61 is a transmission member that transmits the driving force in the reverse direction output from the drive motor 45 to the drive roll 41A.

[0058] The one-way clutch 611 functions as a transmission part that transmits the rotational force of the pulley 61 in the reverse direction (the direction of arrow 61Y in FIGS. 8 and 9, etc.) to the shaft part 411 of the drive roll 41A, but does not transmit the rotational force of the pulley 61 in the forward direction (the direction of arrow 61X in FIGS. 4 and 5, etc.) to the shaft part 411 of the drive roll 41A. The one-way clutch 611 may be understood as an example of a second transmission member.

[0059] The pulley 62 is fixed to the front end of the shaft portion 421 of the drive roll 42A. The pulley 62 is rotatable integrally with the drive roll 42A in the forward direction (direction of arrow 62X) and the reverse direction (direction of arrow 62Y). The timing belt 66 is formed in an annular shape and is wound around the pulleys 61 and 62. Teeth formed on the inner periphery of the timing belt 66 mesh with teeth formed on the outer periphery of the pulleys 61 and 62.

[0060] Thus, in the transmission mechanism 50, the gears 51, 52, 53, 54, 55 and the one-way clutch 521 are arranged at one axial end side (specifically, the rear end side) of the drive rolls 41A, 42A, and the pulleys 61, 62, the timing belt 66 and the one-way clutch 611 are arranged at the other axial end side (specifically, the front end side) of the drive rolls 41A, 42A.

[0061] The transmission mechanism 50 has a first transmission path 50A and a second transmission path 50B formed by the above-mentioned components. The first transmission path 50A is a path that transmits the driving force in the forward rotation direction (direction of arrow 45X) output from the drive motor 45 to the drive rolls 41A, 42A to rotate the drive rolls 41A, 42A in the forward direction, but does not transmit the driving force in the reverse direction (direction of arrow 45Y) output from the drive motor 45 to the drive roll 41A.

[0062] The second transmission path 50B is a path that transmits the driving force in the reverse direction (direction of arrow 45Y) output from the drive motor 45 to the drive rolls 41A and 42A, causing the drive roll 41A to rotate forward and the drive roll 42A to rotate reversely, and does not transmit the driving force in the forward direction (direction of arrow 45X) output from the drive motor 45 to the drive roll 41A.

[0063] 3, 4, and 5, in the first transmission path 50A, the driving force in the forward rotation direction (arrow 45X direction) from the drive motor 45 is transmitted to gears 51, 52, 53, 54, and 55 in this order, causing the gears 51, 52, 53, 54, and 55 to rotate in the forward rotation direction (arrow 45X direction, arrow 52X direction, arrow 53X direction, arrow 54X direction, and arrow 55X direction). Furthermore, the rotational force of the gear 52 in the forward rotation direction (arrow 52X direction) is transmitted to the shaft 411 of the drive roll 41A via the one-way clutch 521, causing the drive roll 41A to rotate in the forward direction. Furthermore, the rotational force of the gear 55 in the forward rotation direction (arrow 55X direction) is transmitted to the shaft 421 of the drive roll 42A, causing the drive roll 42A to rotate in the forward direction. In this way, the first transmission path 50A is a path that transmits the driving force from one end side (specifically, the rear end side) to the drive roll 41 A. The first transmission path 50A is also a path formed by gears 51, 52, 53, 54, 55 and a one-way clutch 521.

[0064] When the drive roll 42A rotates forward, the rotational force of the shaft 421 of the drive roll 42A in the forward direction is also transmitted to the pulley 62, the timing belt 66, and the pulley 61. However, due to the action of the one-way clutch 611, the force is not transmitted to the drive roll 41A via the path from the pulley 61 to the shaft 411 of the drive roll 41A (i.e., the second transmission path 50B).

[0065] 7, 8, and 9, in the second transmission path 50B, the driving force in the reverse direction (arrow 45Y direction) from the drive motor 45 is transmitted to gears 51, 52, 53, 54, and 55 in this order, causing the gears 51, 52, 53, 54, and 55 to rotate in the reverse direction (arrow 45Y direction, arrow 52Y direction, arrow 53Y direction, arrow 54Y direction, and arrow 55Y direction). Furthermore, the rotational force of the gear 55 in the reverse direction (arrow 55Y direction) is transmitted to the shaft 421 of the drive roll 42A, causing the drive roll 42A to rotate in the reverse direction. Furthermore, the rotational force of the shaft 421 of the drive roll 42A in the reverse direction is transmitted to the shaft 411 of the drive roll 41A via the pulley 62, the timing belt 66, the pulley 61, and the one-way clutch 611, causing the drive roll 42A to rotate in the forward direction. In this way, the second transmission path 50B is a path that transmits the driving force from the other end side (specifically, the front end side) to the drive roll 41 A. The second transmission path 50B is also a path formed by the gears 51, 52, 53, 54, 55, the pulleys 61, 62, the timing belt 66, and the one-way clutch 611.

[0066] Furthermore, due to the action of the one-way clutch 521, the driving force in the reverse direction (direction of arrow 45Y) from the driving motor 45 is not transmitted to the driving roll 41A via the path from the gear 52 to the shaft portion 411 of the driving roll 41A (i.e., the first transmission path 50A).

[0067] As described above, the transmission mechanism 50 transmits the driving force in the forward direction (arrow 45X direction) from the drive motor 45 via a path (i.e., first transmission path 50A) from the gear 52 to the shaft 411 of the drive roll 41A, and transmits the driving force in the reverse direction (arrow 45Y direction) from the drive motor 45 via a path (i.e., second transmission path 50B) from the pulley 61 to the shaft 411 of the drive roll 41A, thereby rotating the drive roll 41A forward. In other words, the transmission mechanism 50 rotates the drive roll 41A forward regardless of whether the driving force output from the drive motor 45 is in the forward direction (arrow 45X direction) or the reverse direction (arrow 45Y direction).

[0068] The transmission mechanism 50 transmits the driving force in the forward direction (direction of arrow 45X) from the drive motor 45 to the drive roll 43A using transmission members (gears, belts, etc.) not shown, causing the drive roll 43A to rotate forward, and transmits the driving force in the reverse direction (direction of arrow 45Y) from the drive motor 45, causing the drive roll 43A to rotate in reverse.

[0069] (Guide 71, 72) Guides 71 and 72 shown in Fig. 2 are guide sections that guide the recording medium P. As shown in Fig. 2, this guide 71 is disposed upstream of the drive roll 41A in the transport direction and downstream of the fixing section 26 in the transport direction. Specifically, the guide 71 is disposed below the drive roll 41A. In the guide 71, the recording medium P comes into contact with a guide surface 71A facing left in Fig. 2, thereby guiding the recording medium P toward the downstream side in the transport direction (specifically, the contact area 41S of the drive roll 41A).

[0070] The guide 72 is disposed downstream in the transport direction relative to the drive roll 41A and upstream in the transport direction relative to the drive roll 42A. Specifically, the guide 72 is disposed diagonally above right relative to the drive roll 41A and diagonally below left relative to the drive roll 42A in Fig. 2. The guide 72 guides the recording medium P downstream in the transport direction (specifically, toward the contact area 42S of the drive roll 42A) by bringing the recording medium P into contact with a guide surface 72A facing upward in Fig. 2.

[0071] (Guide 74) 2 is a guide portion that guides the recording medium P. As shown in FIG. 2, this guide 74 is disposed downstream in the transport direction relative to the drive roll 41A and upstream in the transport direction relative to the drive roll 42A.

[0072] Guide 74 is rotatable between a discharge position (position indicated by a solid line in FIG. 2) where it forms a discharge path, and a reversal position (position indicated by a two-dot chain line in FIG. 2) where it forms a reversal path. At the discharge position, guide 74 forms a discharge path (specifically, a path from contact area 41S to contact area 42S (see arrow A2)) between guide 74 and guide 72. At the discharge position, guide 74 guides the recording medium P with a guide surface 74A facing downward.

[0073] At the reversal position, the guide 74 forms a first reversal path (specifically, a path from the contact area 41S to the contact area 42T (see arrow B2 in FIG. 6)) between the opening / closing bodies 81 and 82. At the reversal position, the guide 74 guides the recording medium P with a guide surface 74B facing leftward.

[0074] The guide 74 is configured to be rotated between the discharge position and the reverse position by using the driving force of the drive motor 45, for example.

[0075] (Opening and closing bodies 81, 82) The opening / closing bodies 81, 82 are an example of an opening / closing section, and are supported so as to be openable and closable relative to the support frames 47, 48. The opening / closing bodies 81, 82 are opened and closed by moving relatively to the support frames 47, 48, which include the drive rolls 41A, 42A, the drive motor 45, and the transmission mechanism 50.

[0076] Specifically, the opening / closing bodies 81 and 82 are opened and closed between the open position shown in Fig. 2 and the closed position shown in Fig. 10 by integrally rotating the other end (specifically, the left end) around one end (specifically, the right end of the opening / closing body 82) as a fulcrum. In Figs. 2, 6 and 10, the rotation axis (fulcrum) of the opening / closing bodies 81 and 82 is indicated by the reference symbol 82S.

[0077] Furthermore, the opening / closing bodies 81 and 82 have the function of guiding the recording medium P. The opening / closing body 81 is disposed on the left side of the drive roll 41A. The opening / closing body 81 has a guide surface 81A that faces the guide 71 and a guide surface 81B that faces the opening / closing body 82 (diagonally upward left in FIG. 2). When the recording medium P comes into contact with the guide surface 81A of the opening / closing body 81, the recording medium P is guided toward the downstream side in the transport direction (specifically, the contact area 41S of the drive roll 41A). When the recording medium P comes into contact with the guide surface 81B of the opening / closing body 81, the recording medium P is guided toward the downstream side in the transport direction (specifically, the contact area 43S of the drive roll 43A).

[0078] Furthermore, the opening / closing body 81 rotatably supports the driven roll 41B as described above, and the driven roll 41B moves integrally with the opening / closing body 81.

[0079] The opening / closing body 82 is disposed above the opening / closing body 81, the guide 74, and the drive roll 42A. The opening / closing body 82 has a guide surface 82A that faces the guide surface 81B of the opening / closing body 81. When the recording medium P comes into contact with the guide surface 82A, the opening / closing body 82 guides the recording medium P toward the downstream side in the transport direction (specifically, the contact area 43S of the drive roll 43A). Furthermore, a driven roll 42C is rotatably supported at one end (specifically, the right end) of the opening / closing body 82, and the driven roll 42C moves integrally with the opening / closing body 82. Furthermore, a drive roll 43A and a driven roll 43B are rotatably supported at the other end (specifically, the left end) of the opening / closing body 82, and the drive roll 43A and the driven roll 43B move integrally with the opening / closing body 82.

[0080] The opening / closing bodies 81 and 82 are opened and closed to clear a jam of the recording medium P, for example, in the discharge path (see arrows A1 and A2 in FIG. 2) and the reversal path (see arrows B1, B2, and B3 in FIG. 6). The opening and closing of the opening / closing bodies 81 and 82 is performed, for example, when an exterior cover (not shown) that is provided on the image forming apparatus main body 11 and covers the opening / closing bodies 81 and 82 is open.

[0081] (Action according to this embodiment) In this embodiment, the transmission mechanism 50 transmits the driving force in the forward rotation direction (direction of arrow 45X) output from the drive motor 45 to the drive rolls 41A, 42A, causing the drive rolls 41A, 42A to rotate in the forward direction. The transmission mechanism 50 also transmits the driving force in the reverse direction (direction of arrow 45Y) output from the drive motor 45 to the drive rolls 41A, 42A, causing the drive roll 41A to rotate in the forward direction and the drive roll 42A to rotate in the reverse direction.

[0082] Therefore, compared to when the transmission mechanism 50 transmits the driving force of the drive motor 45 to rotate the drive rolls 41A and 42A forward, and transmits the driving force of a drive motor other than the drive motor 45 to rotate the drive roll 41A forward and the drive roll 42A reversely, the number of drive motors is reduced, and the size of the second conveying device 40 and the image forming device 10 is prevented from increasing.

[0083] In this embodiment, the transmission mechanism 50 has a first transmission path 50A and a second transmission path 50B. The first transmission path 50A is a path that transmits the driving force in the forward rotation direction (direction of arrow 45X) output from the drive motor 45 to the drive rolls 41A, 42A, causing the drive rolls 41A, 42A to rotate forward, but does not transmit the driving force in the reverse direction (direction of arrow 45Y) output from the drive motor 45 to the drive rolls 41A. The second transmission path 50B is a path that transmits the driving force in the reverse direction (direction of arrow 45Y) output from the drive motor 45 to the drive rolls 41A, 42A, causing the drive roll 41A to rotate forward and the drive roll 42A to rotate reverse, but does not transmit the driving force in the forward rotation direction (direction of arrow 45X) output from the drive motor 45 to the drive roll 41A.

[0084] As described above, since the transmission mechanism 50 has the first transmission path 50A and the second transmission path 50B, the configuration and / or control of the transmission paths is not complicated compared to when the rotation direction of the drive rolls 41A, 42A is controlled by only a single transmission path, and the configuration and / or control of the second conveying device 40 and the image forming device 10 are prevented from becoming complicated.

[0085] In addition, in the transmission mechanism 50, gears 51, 52, 53, 54, 55 and one-way clutch 521 are arranged at one axial end side (specifically, the rear end side) of the drive rolls 41A, 42A, and pulleys 61, 62, timing belt 66 and one-way clutch 611 are arranged at the other axial end side (specifically, the front end side) of the drive rolls 41A, 42A.

[0086] Therefore, the second conveying device 40 requires less space than when the gears 51, 52, 53, 54, 55, the one-way clutches 521, 611, the pulleys 61, 62, and the timing belt 66 are arranged at one end (specifically, the rear end or the front end) of the drive rolls 41A, 42A in the axial direction.

[0087] In this embodiment, the opening / closing bodies 81 and 82 move relatively to the support frames 47 and 48, which include the drive rolls 41A and 42A, the drive motor 45, and the transmission mechanism 50, to be opened and closed.

[0088] Therefore, changes in the positional relationship between the drive rolls 41A, 42A, the drive motor 45, and part of the transmission mechanism 50 are suppressed compared to when the drive rolls 41A, 42A, the drive motor 45, and part of the transmission mechanism 50 move relative to the support frames 47, 48 together with the opening / closing bodies 81, 82.

[0089] Furthermore, in this embodiment, the drive roll 42A transports the recording medium P together with the driven roll 42B when rotated forward, and transports the recording medium P together with the driven roll 42C when rotated reversely. Therefore, compared to when the driven roll 42C transports the recording medium P using a transport member separate from the drive roll 42A, the number of parts is reduced, and the second transport device 40 and the image forming apparatus 10 are prevented from becoming larger.

[0090] (Modification of image forming unit 14) In this embodiment, the image forming unit 14 employs an intermediate transfer system as an example of the image forming unit, but is not limited to this. As an example of the image forming unit, for example, a direct transfer system may be used in which each of the toner image forming units 20Y to 20K forms a toner image directly on the recording medium P without using the transfer body 24. Also, as an example of the image forming unit, an image forming unit that ejects ink onto the recording medium P to form an image may be used, as long as it has the function of forming an image on the recording medium P.

[0091] (Modification of the second conveying device 40) In the present embodiment, the second conveying device 40 is provided in the image forming apparatus 10 as an example of a conveying device and a rotating device, but is not limited to this. As an example of a conveying device, the second conveying device 40 may be provided in an apparatus having functions other than the function of forming an image (for example, image reading, heating, and cutting), or may be used as a conveying device alone.

[0092] Furthermore, as an example of a rotating device, it may be configured as a device that is not intended for transportation, and may be a device that has a first rotating body that can rotate forward and a second rotating body that can rotate forward and backward.

[0093] (Modification of Recording Medium P) In this embodiment, a recording medium P is used as an example of a material to be conveyed, but this is not limiting. For example, an example of a material to be conveyed may be a material that is conveyed for purposes other than forming an image (for example, reading an image, heating, or cutting), or may be a material that is conveyed only for the purpose of being conveyed.

[0094] (Modifications of drive rolls 41A and 42A) In the present embodiment, the drive roll 41A is used as an example of the first conveying member and the first rotating body, but this is not limiting. An example of the first conveying member may be a conveying member such as a conveying drum or a conveying belt. An example of the first rotating body may be a drum other than a conveying drum, a circular belt other than a conveying belt, or the like, as long as it is capable of forward rotation.

[0095] In this embodiment, the drive roll 42A is used as an example of the second conveying member and the second rotating body, but this is not limited thereto. An example of the second conveying member may be a conveying member such as a conveying drum or a conveying belt. An example of the second rotating body may be a drum other than a conveying drum, a circular belt other than a conveying belt, or the like, as long as it is capable of forward and reverse rotation.

[0096] (Modifications of the driven rolls 42B and 42C) In the present embodiment, the driven roll 42B is used as an example of the third conveying member, and the driven roll 42C is used as an example of the fourth conveying member, but the present invention is not limited thereto. Examples of the third conveying member and the fourth conveying member may be conveying members such as a conveying drum or a conveying belt.

[0097] (Modification of the transmission mechanism 50) In the present embodiment, the transmission mechanism 50 transmits the driving force of the drive motor 45 to the drive rolls 41A, 42A, and 43A, but is not limited to this and may be a mechanism that transmits the driving force of the drive motor 45 to at least the drive rolls 41A and 42A. Note that the transmission mechanism 50 may be configured to transmit the driving force of the drive motor 45 to components other than the drive rolls 41A, 42A, and 43A.

[0098] In the transmission mechanism 50, gears 51, 52, 53, 54, and 55 are used, but all or part of these may be replaced with transmission members such as pulleys and belts. Therefore, an example of the first transmission member is not limited to the gear 52, and transmission members such as pulleys and belts may also be used.

[0099] In the transmission mechanism 50, the pulleys 61 and 62 and the timing belt 66 are used, but instead, transmission members such as gears may be used. Therefore, an example of the second transmission member is not limited to the pulley 61, and transmission members such as gears may also be used.

[0100] (Modifications of the support frames 47 and 48) In the present embodiment, the support frames 47, 48, which are an example of supports, are formed in a plate shape with the thickness direction in the front-rear direction, but are not limited to this. For example, the support frames 47, 48 may be formed in a block shape (e.g., a cube or a rectangular parallelepiped) or a box shape, and various shapes can be used for the support frames 47, 48. An example of a support may be one that can support each component of the second conveyance device 40, including the drive rolls 41A, 42A, the drive motor 45, and the transmission mechanism 50.

[0101] (Modifications of opening / closing bodies 81, 82) In the present embodiment, the opening / closing bodies 81, 82 as an example of an opening / closing section have a function of guiding the recording medium P, and are opened and closed to, for example, clear a jam of the recording medium P, but are not limited to this. For example, an example of an opening / closing section may be a cover (i.e., a lid) that solely covers the components of the device, and may be opened and closed relative to a support such as the support frames 47, 48.

[0102] The present invention is not limited to the above-described embodiment, and various modifications, changes, and improvements are possible without departing from the spirit of the present invention. For example, the above-described modified examples may be appropriately combined to form a configuration. [Explanation of symbols]

[0103] 10 Image forming device 11 Image forming device main body 12 Storage section 13 First conveying device 13A Conveying member 14 Image forming unit 18 Discharge section 19 Third conveying device 19A Conveying member 20Y to 20K toner image forming unit 24 Transcript 26 Fixing section 40 Second conveying device (an example of a rotating device and a conveying device) 41A drive roll (an example of the first rotating body and the first conveying member) 41B Follower roll 41S contact area 42A drive roll (an example of a second rotating body and a second conveying member) 42B driven roll (an example of a third conveying member) 42C: driven roll (an example of the fourth conveying member) 42S contact area 42T contact area 43A Drive Roll 43B Follower roll 43S contact area 45 Drive motor (an example of a drive unit) 47 Support frame (an example of a support) 48 Support frame (an example of a support) 50 Transmission Mechanism 50A First Transmission Path 50B Secondary Transmission Pathway 51 Gear 52 Gear (an example of a first transmission member) 53 Gear 54 Gear 55 gears 61 Pulley (an example of a second transmission member) 62 Pulley 66 Timing belt 71 Guide 71A Guideway 72 Guide 72A Guideway 74 Guide 74A Guideway 74B Guide surface 81 Opening and closing body (an example of an opening and closing part) 81A Guideway 81B Guide surface 82 Opening and closing body (an example of an opening and closing part) 82A Guideway 411 Shaft 412 Roll section 421 Shaft 451 Main Unit 452 drive shaft 521 One-way clutch 611 One-way clutch P Recording medium (an example of a material to be transported)

Claims

1. a first rotating body capable of normal rotation; a second rotating body capable of forward and reverse rotation; a drive unit that outputs drive forces in the forward and reverse directions; a transmission mechanism; Equipped with The transmission mechanism includes: a first transmission path that transmits a driving force in a forward rotation direction output from the drive unit to the first rotor and the second rotor, thereby rotating the first rotor and the second rotor in the forward direction, and does not transmit a driving force in a reverse rotation direction output from the drive unit to the first rotor; a second transmission path that transmits the driving force in the reverse direction output from the drive unit to the first rotor and the second rotor to rotate the first rotor in the normal direction and the second rotor in the reverse direction, and does not transmit the driving force in the normal direction output from the drive unit to the first rotor; and The first transmission pathway is a first transmission member disposed on one axial end side of the first rotor and configured to transmit a driving force in a normal rotation direction output from the drive unit to the first rotor; The second transmission pathway is a second transmission member disposed on the other axial end side of the first rotor and configured to transmit the reverse driving force output from the drive unit to the first rotor; A rotating device used in an image forming apparatus.

2. A support supporting the first rotating body, the second rotating body, the drive unit, and the transmission mechanism; an opening / closing unit that moves relative to the support body and is opened and closed, the opening / closing unit including the first rotating body, the second rotating body, the driving unit, and the transmission mechanism; The rotation device of claim 1 .

3. The first rotating body is a first conveying member that conveys a material to be conveyed by rotating in a forward direction, The second rotating body is a second conveying member that conveys the material to be conveyed by rotating forward and backward.

3. A conveying device as a rotating device according to claim 1 or 2.

4. A first conveying member that conveys a conveyed material by normal rotation; a second conveying member that conveys the material to be conveyed by rotating forward and backward; a drive unit that outputs drive forces in the forward and reverse directions; a transmission mechanism that transmits a driving force in a forward rotation direction output from the drive unit to the first conveying member and the second conveying member, thereby rotating the first conveying member and the second conveying member in the forward direction, and transmits a driving force in a reverse rotation direction output from the drive unit to the first conveying member and the second conveying member, thereby rotating the first conveying member in the forward direction and the second conveying member in the reverse direction; Equipped with The second conveying member is By rotating forward, the material to be conveyed is conveyed by the third conveying member, By the reverse rotation, the material to be conveyed is conveyed by a fourth conveying member disposed on the opposite side of the third conveying member relative to the second conveying member. A conveying device used in an image forming apparatus.

5. An image forming unit that forms an image on a recording medium as the transported material; a conveying device according to claim 3 or 4, which conveys a recording medium on which an image has been formed by the image forming unit; An image forming apparatus comprising:

6. The conveying device is the conveying device according to claim 4, The second conveying member is By rotating forward, the recording medium is discharged by the third conveying member, and rotating forward after the reverse rotation, thereby inverting the recording medium together with the fourth conveying member. The image forming apparatus according to claim 5 .

Citation Information

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