Sheet conveying device and image forming apparatus equipped with same
A single detection sensor in the sheet conveying device uses a swingable actuator to differentiate between feeding units, addressing the cost and complexity issues of multiple sensors in existing systems.
Patent Information
- Application Number
- JP2024511940
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-03-30
- Filing Date
- 2023-03-22
- Publication Date
- 2025-11-06
- Estimated Expiration
- 2043-03-22
AI Technical Summary
The existing sheet conveying devices in image forming apparatuses with multiple detection sensors increase manufacturing costs and complicate the control system.
A sheet conveying device with a single detection sensor that uses a swingable actuator to detect the presence of sheets in both feeding units, switching rotation direction to differentiate between feeding from the first and second feeding units.
Reduces the number of sensors required, thereby reducing manufacturing costs while maintaining effective sheet detection from both feeding units.
Smart Images

Figure 0007764951000001 
Figure 0007764951000002 
Figure 0007764951000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a sheet conveying device and an image forming apparatus equipped with the same. [Background technology]
[0002] Conventionally, a sheet conveying device mounted on an image forming apparatus capable of so-called manual printing has two feeding sections (a first feeding section and a second feeding section) (Patent Document 1). The first feeding section has a first sheet stacking section that is detachably attached inside the image forming apparatus. The second feeding section has a second sheet stacking section that is provided on the side of the image forming apparatus. The first sheet stacking section stores sheets such as printing paper of various common sizes. The second sheet stacking section can store sheets including printing paper of non-standard sizes, overhead projectors, envelopes, etc. in addition to printing paper of common sizes. When performing manual printing, sheets are fed from this second sheet stacking section.
[0003] In addition to the two feeding units described above, such a sheet conveying device includes a sheet conveying path, a first detection sensor, and a second detection sensor. The sheet conveying path conveys sheets to the image forming units of the image forming device. The first feeding unit feeds sheets from the first sheet stacking unit along the sheet conveying path. The second feeding unit feeds sheets from the second sheet stacking unit to the first feeding unit.
[0004] The first detection sensor can detect whether or not a sheet is stacked in the first sheet stacking section. The second detection sensor can detect whether or not a sheet stacked in the second sheet stacking section has been fed to the sheet transport path. This image forming apparatus can detect the timing of sheet transport from the second feeding section based on the detection result of the second detection sensor. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-222417 Summary of the Invention [Problem to be solved by the invention]
[0006] However, arranging multiple detection sensors as in the sheet conveying device of Patent Document 1 increases the number of parts and complicates the control system, which may increase manufacturing costs. An object of the present invention is to provide a sheet conveying device that can detect the feeding of a sheet from a second feeding unit while suppressing increases in manufacturing costs, and an image forming apparatus equipped with the same. [Means for solving the problem]
[0007] In order to achieve the above object, a first configuration of the present invention is a sheet conveying device including a sheet conveying path, a first sheet stacking unit, a first feeding unit, a second feeding unit, a sheet detection mechanism, a drive unit, and a control unit. The sheet conveying path is provided within the device body and conveys sheets. The first sheet stacking unit has a bottom surface on which sheets are stacked and a lift plate that is movable relative to the bottom surface and raises and lowers sheets on the bottom surface to place them in a feeding position, and is provided within the device body. The first feeding unit feeds sheets stacked on the first sheet stacking unit to the sheet conveying path. The second feeding unit feeds sheets supplied from the side of the device body toward the first feeding unit. The sheet detection mechanism is provided in the first feeding unit and can detect the presence or absence of sheets stacked on the first sheet stacking unit. The drive unit is capable of switching its rotation direction, driving the first feeding unit during forward rotation and driving the second feeding unit during reverse rotation. The control unit controls sheet conveyance. The sheet detection mechanism has an actuator that comes into contact with a sheet stacked on the first sheet stacking unit or a sheet conveyed by the second feeding unit and can swing along the sheet conveyance direction, and a detection sensor that detects the actuator at a predetermined detection position. When feeding a sheet from the first sheet stacking unit, the control unit rotates the drive unit in the forward direction and feeds the sheet using the first feeding unit when the sheet detection mechanism detects the sheet. When feeding a sheet from the second feeding unit, the control unit rotates the drive unit in the reverse direction and feeds the sheet using the second feeding unit to the first feeding unit, and when the detection sensor detects the actuator that comes into contact with and swings against the sheet conveyed from the second feeding unit at the detection position, the control unit switches the drive unit to the forward rotation and feeds the sheet using the first feeding unit. [Effects of the Invention]
[0008] According to the first configuration of the present invention, by detecting the swing of the actuator with one detection sensor, it is possible to detect whether a sheet is stacked in the first sheet stacking section and the feeding of a sheet from the second feeding section. Therefore, it is possible to detect the feeding of a sheet from the second feeding section while reducing the number of sensors. Therefore, it is possible to provide a sheet conveying device that can detect the feeding of a sheet from the second feeding section while suppressing an increase in manufacturing costs. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a schematic cross-sectional view of an image forming apparatus 100 equipped with a sheet conveying device 19 according to a first embodiment of the present invention; [Figure 2] 2 is an enlarged side cross-sectional view of the lower portion of the device main body 7 in FIG. [Figure 3] FIG. 3 is a plan view of the stacking plate 37 and the sheet detection mechanism 32 viewed from above. [Figure 4] 1 is an enlarged side cross-sectional view of the lower portion of the device main body 7 when the actuator 48 is at the detection position Pt. [Figure 5] 1 is an enlarged side cross-sectional view of the lower portion of the device main body 7 and its surroundings in a state in which the loading plate 37 is raised and the arm portion 56 enters the retraction recess 44 when the actuator 48 is at the first position P1. [Figure 6] 1 is an enlarged side cross-sectional view of the lower portion of the device main body 7 when the actuator 48 is in the second position P2. [Figure 7] FIG. 1 is a block diagram showing an example of a control path of an image forming apparatus 100. [Figure 8] 10 is a flowchart showing an example of a control flow of the sheet conveying device 19. [Figure 9] Flowchart showing the control flow of the main body side feeding mode DETAILED DESCRIPTION OF THE INVENTION
[0010] A first embodiment of the present invention will be described below with reference to the drawings. Fig. 1 is a schematic cross-sectional view of an image forming apparatus 100 equipped with a sheet conveying device 19 according to the first embodiment of the present invention. The image forming apparatus 100 shown in Fig. 1 is a so-called tandem color printer.
[0011] Image forming units Pa to Pd are arranged horizontally inside the main body of image forming apparatus 100 (hereinafter referred to as device main body 7). Image forming units Pa to Pd sequentially form magenta, cyan, yellow, and black images through the processes of charging, exposure, development, and transfer, respectively. Image forming units Pa to Pd are provided corresponding to the images of each color. Only image forming unit Pa will be described below, but image forming units Pb to Pd will not be described as they are basically configured in the same way.
[0012] The image forming unit Pa is provided with a photosensitive drum 1a that carries a visible image (toner image). An exposure device 5 is disposed above the image forming unit Pa. The exposure device 5 emits a light beam toward the surfaces of the photosensitive drums 1a to 1d to draw an electrostatic latent image. Around the photosensitive drum 1a, a charging device 2a, a developing device 3a, and a rubbing roller 23a are disposed in the drum rotation direction (clockwise in FIG. 1).
[0013] The charging device 2a is disposed opposite the photosensitive drum 1a and is capable of charging the surface of the photosensitive drum 1a. The developing device 3a has a developing container 4a, a developing roller 21a, and a supply roller 24a. The developing container 4a is filled with a predetermined amount of toner. The toner filled in the developing containers 4a to 4d for each of the developing devices 3a to 3d is either magenta, cyan, yellow, or black.
[0014] The developing roller 21a is disposed opposite the photosensitive drum 1a. The supply roller 24a supplies the toner in the developer container 4a to the outer peripheral surface of the developing roller 21a. The developing roller 21a is capable of supplying the toner supplied to its outer peripheral surface to the photosensitive drum 1a.
[0015] Below the photosensitive drums 1a to 1d, an intermediate transfer unit 31 is provided. The intermediate transfer unit 31 includes a frame 30, a drive roller 10, a tension roller 11, an intermediate transfer belt 8, and primary transfer rollers 6a to 6d.
[0016] The frame 30 extends in the width direction (the left-right direction in FIG. 1) of the image forming apparatus 100. The drive roller 10 and the tension roller 11 are rotatably supported on both ends of the frame 30 in the longitudinal direction.
[0017] The intermediate transfer belt 8 is an endless belt (preferably a seamless belt having no joints). The intermediate transfer belt 8 is wound around a tension roller 11 and a drive roller 10 so as to be rotatable in the circumferential direction.
[0018] The drive roller 10 is connected to a belt drive motor (not shown). When the drive roller 10 is rotated by the rotational drive force of the belt drive motor, the rotational drive force is transmitted to the intermediate transfer belt 8 by frictional force. As a result, the intermediate transfer belt 8 rotates in the same direction as the rotational direction of the drive roller 10.
[0019] The primary transfer rollers 6a to 6d are rotatably and movably supported by a frame 30 at positions facing the photosensitive drums 1a to 1d with the intermediate transfer belt 8 sandwiched therebetween.
[0020] A secondary transfer roller 9 is provided opposite the drive roller 10 with the intermediate transfer belt 8 sandwiched therebetween. The secondary transfer roller 9 is pressed against the intermediate transfer belt 8 to form a secondary transfer nip N. The secondary transfer roller 9 performs a second transfer of the toner image formed on the intermediate transfer belt 8 onto the sheets S1 and S2 passing through the secondary transfer nip N.
[0021] A sheet conveying device 19 is provided inside the image forming apparatus 100 at a position to the side of the image forming units Pa to Pd and the intermediate transfer belt 8. The sheet conveying device 19 includes a sheet conveying path 20, a pair of registration rollers 12, a sheet cassette 16 (first sheet stacking unit), a sheet feeding unit 25 (first feeding unit), an MPF (Multi Paper Feeder) tray 26 (second sheet stacking unit), a movement mechanism 27, and a sheet detection mechanism 32. The sheet conveying device 19 also includes a control unit 90. The control unit 90 may be provided anywhere in the image forming apparatus 100, or may be provided within the sheet conveying device 19.
[0022] The sheet transport path 20 is configured to include a main transport path 28 and a double-sided transport path 18. The main transport path 28 extends in the vertical direction. A registration roller pair 12, a secondary transfer roller 9, and a fixing device 13 are arranged in a position midway along the main transport path 28. The main transport path 28 transports the sheet S1 or the sheet S2 from an MPF tray 26 and a sheet cassette 16 (described later) so that the sheet S1 or the sheet S2 passes through the registration roller pair 12, the secondary transfer nip N, and the fixing device 13 in this order.
[0023] The pair of registration rollers 12 aligns the conveying direction of the sheets S1 and S2 so that the leading edges (downstream edges in the sheet conveying direction) of the sheets S1 and S2 are perpendicular to the sheet conveying direction, thereby correcting skew.
[0024] A sheet discharge outlet 15 that leads to the outside of the image forming apparatus 100 is provided at the downstream end of the main transport path 28 in the sheet transport direction. A discharge roller pair 22 is provided at the sheet discharge outlet 15. The discharge roller pair 22 discharges the sheets S1 and S2 that have reached the sheet discharge outlet 15 onto a discharge tray 17 formed on the top surface of the main body of the image forming apparatus 100.
[0025] A branching section 14 is provided between the discharge roller pair 22 and the fixing device 13 in the sheet conveying direction. The double-sided conveying path 18 branches off from the main conveying path 28 at a position overlapping with the branching section 14 of the main conveying path 28 in the sheet conveying direction, and merges with the main conveying path 28 at a position upstream of the registration roller pair 12. The branching section 14 can distribute the sheets S1 and S2 that have passed through the fixing device 13 to the sheet discharge outlet 15 or the double-sided conveying path 18.
[0026] The sheet cassette 16 and the MPF tray 26 are provided upstream of the main transport path 28 in the sheet transport direction. The sheet cassette 16 can hold sheets S1, and the MPF tray 26 can hold sheets S2. The sheet feeding unit 25 is disposed between the main transport path 28 and the sheet cassette 16 and MPF tray 26, and feeds the sheets S1 and S2 to the main transport path 28. The feeding of the sheets S1 and S2 will be described in detail later.
[0027] Next, we will explain the image formation procedure in the image forming apparatus 100. When a user inputs a command to start image formation, first, the photosensitive drum 1a is rotated while the charging devices 2a to 2d uniformly charge the surfaces of the photosensitive drums 1a to 1d. Next, the exposure device 5 irradiates the surfaces of the photosensitive drums 1a to 1d with light, and electrostatic latent images corresponding to the image signals are formed on the photosensitive drums 1a to 1d.
[0028] The toner in the developer in the developing devices 3a to 3d is supplied onto the photosensitive drums 1a to 1d by the developing rollers 21a to 21d and electrostatically adheres to the photosensitive drums 1a to 1d, thereby forming toner images on the photosensitive drums 1a to 1d corresponding to the electrostatic latent images.
[0029] In this state, the drive roller 10 is rotated to start the counterclockwise rotation of the intermediate transfer belt 8. Then, the toner images of each color formed on the photosensitive drums 1a to 1d are sequentially transferred (primary transfer) onto the intermediate transfer belt 8.
[0030] Thereafter, at a predetermined timing, sheets S1 and S2 are fed from sheet cassette 16 or MPF tray 26 to main transport path 28, pass through registration roller pair 12, and are transported to secondary transfer nip N. Then, the toner images on intermediate transfer belt 8 are secondarily transferred onto sheets S1 and S2. Then, sheets S1 and S2 are transported to fixing device 13, where they are heated and pressed by fixing roller pair 13a of fixing device 13, and the toner images are fixed to the surfaces of sheets S1 and S2.
[0031] When single-sided printing is performed on sheets S1 and S2, branching unit 14 distributes sheets S1 and S2 that have passed through fixing device 13 to sheet discharge outlet 15. Sheets S1 and S2 that have reached sheet discharge outlet 15 are discharged onto discharge tray 17 by discharge roller pair 22.
[0032] When double-sided printing is performed on sheets S1 and S2, branching unit 14 distributes sheets S1 and S2 that have passed through fixing device 13 to double-sided conveying path 18. Double-sided conveying path 18 conveys sheets S1 and S2 again to registration roller pair 12 while turning them over. Sheets S1 and S2 then pass through secondary transfer nip N and fixing device 13 again, and after the toner image is fixed on the back side, they are distributed by branching unit 14 to sheet discharge outlet 15.
[0033] Next, the feeding of sheets S1 and S2 will be described in detail. Fig. 2 is an enlarged side cross-sectional view of the periphery of the lower part of the device main body 7 in Fig. 1. Fig. 3 is a plan view of the stacking plate 37 and the sheet detection mechanism 32 viewed from above. As shown in Figs. 1 and 2, a cassette storage section 29 that is recessed horizontally is formed in the lower part of the device main body 7. The cassette storage section 29 is a recess that opens to the side of the device main body 7 (not shown) and extends horizontally from the edge of this opening toward the inside of the device main body 7.
[0034] The cassette housing portion 29 houses the sheet cassette 16. The sheet cassette 16 is inserted into the cassette housing portion 29 from an opening on the side of the device main body 7. The sheet cassette 16 is detachably attached to the device main body 7.
[0035] The sheet cassette 16 has a bottom surface portion 33, a pair of first sidewall portions 34a, and a lift plate 35. The bottom surface portion 33 is a rectangular flat plate extending horizontally and forms the bottom of the sheet cassette 16. Sheets S1 (sheets as recording media including printing paper, envelopes, transparencies, etc.) are stacked on the bottom surface portion 33.
[0036] The pair of first side walls 34a are provided so as to be connected to both ends of the bottom surface portion 33 in the sheet width direction (the direction orthogonal to the sheet conveying direction, i.e., the direction perpendicular to the paper surface shown in FIG. 2). The first side walls 34a rise upward (toward the image forming units Pa to Pb) from the bottom surface portion 33.
[0037] The lift plate 35 has a support portion 36, a loading plate 37, and a lift drive motor 43 (see FIG. 7). The support portion 36 is supported by the first side wall portion 34a so as to be able to swing. The loading plate 37 is a plate-like body on whose upper surface the sheets S1 can be loaded.
[0038] The stacking plate 37 is formed integrally with the support portion 36. When the support portion 36 swings, the stacking plate 37 rises and falls relative to the bottom surface portion 33. The stacking plate 37 is located downstream (on the right side in FIG. 1) of the center of the bottom surface portion 33 in the sheet conveying direction. As the stacking plate 37 rises and falls relative to the bottom surface portion 33, the downstream end of the sheet S1 rises and falls.
[0039] 2 and 3, a retraction recess 44 is formed in the stacking plate 37. The retraction recess 44 is cut out from the downstream edge of the stacking plate 37 in the sheet conveying direction toward the upstream side in the sheet conveying direction.
[0040] A pressing portion 53 is provided at the downstream end of the stacking plate 37 in the sheet conveying direction. The pressing portion 53 is made of a material that has a lower elastic modulus than the stacking plate 37 and is relatively easily elastically deformed. The lift drive motor 43 (see FIG. 7) is connected to the support portion 36. The lift drive motor 43 outputs a driving force to swing the support portion 36 and raise and lower the stacking plate 37.
[0041] Returning to FIG. 1 , an inlet 38 is formed on the side of the apparatus main body 7, at a position above the opening of the cassette housing portion 29. Furthermore, as shown in FIGS. 1 and 2 , a bypass transport path 39 is formed inside the apparatus main body 7, at a position between the cassette housing portion 29 and the intermediate transfer unit 31 in the vertical direction. The bottom of the bypass transport path 39 forms the ceiling portion of the cassette housing portion 29. The bypass transport path 39 is connected to the inlet 38 and extends from the inlet 38 to the sheet feeding unit 25. The downstream end of the bypass transport path 39 in the sheet transport direction is connected to the upstream end of the main transport path 28, with the sheet feeding unit 25 interposed therebetween. An opening 41 is formed between the bypass transport path 39 and the main transport path 28 in the sheet transport direction.
[0042] The MPF tray 26 is attached to a side of the device body 7, at a position between the carry-in entrance 38 and the edge of the opening of the cassette storage section 29 in the vertical direction. The MPF tray 26 is a tray that is inclined at a predetermined angle. The MPF tray 26 can hold sheets S2 (sheets serving as recording media, including printing paper, envelopes, transparencies, etc.) on its upper surface.
[0043] An MPF sheet detection sensor 58 and a pair of carry-in rollers 40 (second feeding section) are provided at the carry-in entrance 38. The MPF sheet detection sensor 58 is a sensor that can detect whether or not a sheet S2 is stacked on the MPF tray 26.
[0044] The pair of carry-in rollers 40 contacts the downstream end of the sheet S2 in the sheet conveying direction. The pair of carry-in rollers 40 rotates to carry the sheet S2 into the bypass conveying path 39. The pair of carry-in rollers 40 can carry the sheet S2 in based on the detection result of the MPF sheet detection sensor 58.
[0045] A plurality of transport roller pairs 47 are arranged along the bypass transport path 39 at predetermined intervals in the sheet transport direction. The transport roller pairs 47 are a pair of roller bodies that face each other vertically with the bypass transport path 39 sandwiched therebetween. The transport roller pairs 47 are connected to a main motor 60 (drive unit, see FIG. 7). The sheet S1 transported into the bypass transport path 39 is transported by each transport roller pair 47 toward the sheet feeding unit 25.
[0046] The sheet feeding section 25 includes the opening 41 and the feeding roller 42. The internal space of the cassette storage section 29 is in communication with the main transport path 28 via the opening 41. The dimension of the opening 41 in the sheet width direction is larger than the dimension of the sheets S1 and S2 in the width direction. That is, the sheets S1 and S2 can pass through the opening 41 in an open state.
[0047] The feed roller 42 is positioned so as to overlap the opening 41 in the sheet conveying direction. The feed roller 42 is rotatably supported by the device body 7, connected to a main motor 60 (see FIG. 7), and rotated by the rotational driving force of the main motor 60. The feed roller 42 faces the pressing portion 53 in the direction in which the stacking plate 37 is raised and lowered.
[0048] The movement mechanism 27 is a mechanism that includes a link mechanism, gears, and the like (neither of which are shown), and that presses the feed roller 42 against or away from the pressing portion 53. The movement mechanism 27 is connected to a main motor 60 (see FIG. 7) and a rotation shaft 45 of the feed roller 42. The movement mechanism 27 moves the rotation shaft 45 in a direction that moves the outer circumferential surface of the feed roller 42 toward or away from the pressing portion 53.
[0049] As described above, the main motor 60 (see FIG. 7) is connected to the feed roller 42 and the transport roller pair 47. The main motor 60 is also connected to the carry-in roller pair 40 and the transport roller pair 47 (see FIG. 7).
[0050] The main motor 60 can output rotational drive force in both forward and reverse directions. When the main motor 60 outputs a rotational drive force in the forward direction, the feed roller 42 rotates, and the pair of transport rollers 47 and the pair of carry-in rollers 40 stop rotating. When the main motor 60 outputs a rotational drive force in the reverse direction, the feed roller 42 stops rotating, and the pair of transport rollers 47 and the pair of carry-in rollers 40 rotate. At this time, the movement mechanism 27 moves the feed roller 42 away from the pressing unit 53. Furthermore, when the main motor 60 outputs a rotational drive force in the forward direction, the movement mechanism 27 moves the feed roller 42 so that it approaches the pressing unit 53.
[0051] As shown in FIGS. 2 and 3, the sheet detection mechanism 32 has an actuator detection sensor 46 (detection sensor) and an actuator 48. The actuator detection sensor 46 is an optical sensor such as a photointerrupter having a detection unit 49. The detection unit 49 is composed of a light receiving unit 50 and a light emitting unit 51. The light receiving unit 50 and the light emitting unit 51 face each other in the sheet width direction. The actuator detection sensor 46 transmits the light receiving state of the detection unit 49 (the light receiving state of the light beam emitted from the light emitting unit 51 at the light receiving unit 50) to the control unit 90.
[0052] The actuator 48 is supported by the device body 7 so as to be able to swing. The actuator 48 has a swing shaft 54, a contact portion 55, an arm portion 56, and a light-shielding portion 57. The swing shaft 54 is rotatably supported by the device body 7. The contact portion 55 is located on the bypass conveying path 39, upstream of the feed roller 42 in the sheet conveying direction. The contact portion 55 is connected to the swing shaft 54. The actuator 48 is provided outside the feed roller 42 in the sheet width direction (on the side farther from the center of the stacking plate 37).
[0053] The arm portion 56 is connected to the contact portion 55. The arm portion 56 is located downstream of the contact portion 55 in the sheet conveying direction. The arm portion 56 extends from the contact portion 55 toward the bottom surface portion 33 along the radial direction of the swing shaft 54. The arm portion 56 is located at a position overlapping with the retraction recess 44 in the sheet width direction. The thickness of the arm portion 56 in the sheet width direction is thinner than the width of the retraction recess 44.
[0054] The light-shielding portion 57 is connected to the swing shaft 54. The light-shielding portion 57 is located on the opposite side of the contact portion 55 in the vertical direction, with the swing shaft 54 sandwiched between them. The light-shielding portion 57 is formed in a plate shape with a uniform thickness in the sheet width direction. The detection portion 49 is located inside the circle drawn by the light-shielding portion 57 with the swing shaft 54 as its center. The light-shielding portion 57 is located between the light-receiving portion 50 and the light-emitting portion 51 in the sheet width direction.
[0055] The swing shaft 54, contact portion 55, arm portion 56, and light-shielding portion 57 are integrally formed and swing together in the circumferential direction around the swing shaft 54. When the actuator 48 swings, the arm portion 56 moves in and out of the inside of the retraction recess 44, and the contact portion 55 moves in and out between the light-receiving portion 50 and the light-emitting portion 51.
[0056] Next, the swinging of the actuator 48 will be described in detail. Fig. 4 is a side cross-sectional view showing an enlarged view of the periphery of the lower part of the device main body 7 when the actuator 48 is at the detection position Pt. Fig. 5 is a side cross-sectional view showing an enlarged view of the periphery of the lower part of the device main body 7 in a state in which the loading plate 37 has risen and the arm portion 56 has entered the retraction recess 44 when the actuator 48 is at the first position P1. Fig. 6 is a side cross-sectional view showing an enlarged view of the periphery of the lower part of the device main body 7 when the actuator 48 is at the second position P2.
[0057] Here, the swing direction of the actuator 48 when the arm portion 56 swings toward the bottom surface portion 33 (clockwise direction in FIG. 2) is referred to as the downward direction. Also, the swing direction of the actuator 48 when the arm portion 56 swings away from the bottom surface portion 33 (counterclockwise direction in FIG. 2) is referred to as the upward direction.
[0058] 2, the actuator 48 swings downward under its own weight when it is not in contact with the sheet S2 and the stacking plate 37 is not raised. At this time, the arm portion 56 moves below the lower end of the feed roller 42. The position of the actuator 48 at this time is referred to as a first position P1.
[0059] When the actuator 48 is at the first position P1, the light-blocking portion 57 is located upstream of the detecting portion 49 in the ascending direction. At this time, the light-blocking portion 57 opens the gap between the light-receiving portion 50 and the light-emitting portion 51, and the detecting portion 49 is in a light-transmitting state (a state in which the light beam emitted from the light-emitting portion 51 is received by the light-receiving portion 50).
[0060] When the actuator 48 is at the first position P1 and the stacking plate 37 rises with sheets S1 stacked on the bottom surface portion 33 (the state shown in FIG. 2), the arm portion 56 comes into contact with the sheets S1 and is prevented from entering the retraction recess 44. The arm portion 56 is pressed by the sheets S1 as the stacking plate 37 rises, and the actuator 48 swings upward.
[0061] As the stacking plate 37 rises, the actuator 48 swings upward, and the actuator 48 is detected by the actuator detection sensor 46 at a predetermined position. As the stacking plate 37 rises further, the upper surface of the sheet S1 is pressed against the lower end of the feed roller 42, as shown in FIG. 4, and the lifting of the stacking plate 37 stops. This also stops the swinging of the actuator 48. The position of the actuator 48 at this time is referred to as the detection position Pt. The position of the sheet S1 at this time is also referred to as the feed position.
[0062] When the actuator 48 is at the detection position Pt, the light-blocking portion 57 is positioned so as to overlap the detection portion 49 in the swing direction of the actuator 48. At this time, the light-receiving portion 50 is shielded from light by the light-blocking portion 57, and the detection portion 49 is in a light-blocking state.
[0063] When the actuator 48 is at the first position P1 and the stacking plate 37 rises with no sheets S1 stacked on the bottom surface portion 33 (a state in which the sheets S1 have been removed from the state shown in FIG. 2), the arm portion 56 enters the retraction recess 44, as shown in FIG. 5. At this time, the arm portion 56 does not come into contact with the stacking plate 37, and the actuator 48 does not swing and remains at the first position P1.
[0064] When the actuator 48 is at the first position P1 or the detection position Pt, if a sheet S2 is conveyed from the MPF tray 26, the sheet S2 comes into contact with the contact portion 55. In this state, as the sheet S2 is conveyed downstream in the sheet conveyance direction, the sheet S2 presses the contact portion 55 downstream in the sheet conveyance direction. This causes the actuator 48 to swing upward beyond the detection position Pt.
[0065] As shown in Figure 6, when the actuator 48 swings upward, the contact portion 55 moves upward away from the conveying surface 39a of the bypass conveying path 39 (the lower surface of the inner circumferential surface of the bypass conveying path 39 that faces the sheet S2). The sheet S2 passes between the contact portion 55 and the conveying surface 39a and is conveyed downstream of the actuator 48. At this time, the sheet S2 is conveyed downstream while sliding against the contact portion 55, and the actuator 48 is restricted from swinging downward by the sheet S2. The position of the actuator 48 at this time is referred to as a second position P2.
[0066] When the actuator 48 is in the second position P2, the light-blocking portion 57 is located downstream of the detection portion 49 in the ascending direction. At this time, the light-blocking portion 57 opens the gap between the light-receiving portion 50 and the light-emitting portion 51, and the detection portion 49 is in a light-transmitting state.
[0067] The control unit 90 detects the swing of the actuator 48 from the first position P1 to the detection position Pt or the second position P2 based on the state (light-transmitting state or light-blocking state) of the detection unit 49 of the actuator detection sensor 46. The detection methods for the first position P1, the detection position Pt, and the second position P2 will be described in detail below.
[0068] First, when an image formation instruction (image formation command) including an instruction to feed sheet S2 from MPF tray 26 is input from an input device such as a personal computer, stacking plate 37 rises and pressing section 53 or sheet S1 stacked on pressing section 53 is pressed against feeding roller 42.
[0069] At this time, when the sheet S1 is stacked on the stacking plate 37, the detection unit 49 is in a light-blocking state as described above, and the control unit 90 detects the position of the actuator 48 as the detection position Pt based on the detection result of the actuator detection sensor 46 (see Figure 4).
[0070] On the other hand, if no sheet S1 is loaded on the stacking plate 37 at this time, the detection unit 49 remains in the light-transmitting state even when the stacking plate 37 is raised (see FIG. 5). If the duration of the light-transmitting state at this time (light-transmitting time T1) is equal to or longer than a predetermined duration (reference light-transmitting time T2), the control unit 90 detects that the position of the actuator 48 is at the first position P1 based on the detection result of the actuator detection sensor 46. At this time, the control unit 90 notifies a notification unit (operation unit 80, described later) of the image forming apparatus 100 that no sheet S1 is loaded in the sheet cassette 16.
[0071] Here, when the input image formation command is an instruction to feed sheet S1, the control unit 90 raises the stacking plate 37, and when the actuator detection sensor 46 detects the detection position Pt, it outputs a rotational driving force in the forward direction to the main motor 60. Then, the feed roller 42 rotates, and the sheet S1, which is in pressure contact with the feed roller 42, is fed to the main transport path 28.
[0072] On the other hand, when the input image formation command is an instruction to feed sheet S2, control unit 90 raises stacking plate 37 to the sheet feeding position and causes main motor 60 to output a rotational driving force in the reverse direction. As a result, feeding roller 42 is moved away from pressing unit 53 or sheet S1 by movement mechanism 27, and input roller pair 40 and conveying roller pair 47 rotate, so that sheet S2 is fed to bypass conveying path 39.
[0073] When sheet S2 is conveyed downstream of bypass conveying path 39 and comes into contact with contact portion 55, actuator 48 swings upward. Here, if sheet S2 is being fed to bypass conveying path 39 by input roller pair 40 while actuator 48 is at detection position Pt, detection portion 49 changes from the light-blocking state to the light-transmitting state. On the other hand, if sheet S2 is being fed to bypass conveying path 39 while actuator 48 is at first position P1, actuator 48 moves from first position P1 past detection position Pt to second position P2. Therefore, detection portion 49 changes from the light-transmitting state to the light-blocking state, and then changes back to the light-transmitting state.
[0074] The control unit 90 detects that the state of the detection unit 49 has changed from the light-blocking state to the light-transmitting state, and detects the position of the actuator 48 as the second position P2. Note that when an instruction to feed the sheet S2 is input, the control unit 90 does not detect whether the sheet S1 is stacked in the sheet cassette 16.
[0075] When the actuator detection sensor 46 detects the second position P2, the control unit 90 temporarily stops the main motor 60, i.e., stops the conveyance by the conveyance roller pair 47. Then, as shown in FIG. 6, the leading edge of the sheet S2 (the downstream end in the sheet conveyance direction) is positioned between the feed roller 42 and the pressing unit 53. Then, in order to convey the sheet S2 downstream, the control unit 90 outputs a rotational driving force in the forward direction to the main motor 60, and rotates the feed roller 42 while the movement mechanism 27 presses the feed roller 42 against the sheet S2. This rotation of the feed roller 42 conveys the sheet S2 downstream.
[0076] When the rear end of the sheet S2 (the end on the upstream side in the sheet conveyance direction) separates from the contact portion 55, the actuator 48 swings downward and moves again to the detection position Pt or the first position P1. Here, when the actuator 48 moves from the second position P2 to the detection position Pt, the detection unit 49 changes from the light-transmitting state to the light-blocking state, and then continues in the light-blocking state. On the other hand, when the actuator 48 moves from the second position P2 to the first position P1, the detection unit 49 changes from the light-transmitting state to the light-blocking state once, and then returns to the light-transmitting state again.
[0077] In either case, when the actuator detection sensor 46 detects the actuator 48 when feeding the sheet S2 (= the detection unit 49 changes from a light-transmitting state to a light-blocking state), the control unit 90 determines that the actuator 48 is positioned at the detection position Pt at the time of this detection.
[0078] Thereafter, when the detection unit 49 detects that the detection unit 49 has changed from the light-blocking state to the light-transmitting state again within a predetermined time, the control unit 90 detects that the actuator 48 has moved to the first position P1. In this case, the control unit 90 can determine that the actuator 48 was located at the first position P1 when the sheet S2 was fed by the feed-in roller pair 40.
[0079] Furthermore, if the light-blocking state of the detection unit 49 continues, the control unit 90 detects that the actuator 48 is located at the detection position Pt. In this case, the control unit 90 can determine that the actuator 48 was located at the detection position Pt when the sheet S2 was fed by the feed-in roller pair 40.
[0080] Fig. 7 is a block diagram showing an example of a control path of the image forming apparatus 100. As shown in Fig. 7, the control path of the image forming apparatus 100 includes an input unit 70, an operation unit 80, a control unit 90, and image forming units Pa to Pd.
[0081] The input unit 70 is a receiving unit that receives image data transmitted from a personal computer or the like to the image forming apparatus 100. The image signal input from the input unit 70 is converted into a digital signal and then sent to the temporary storage unit 94. The input unit 70 is included in the configuration of the sheet conveying device 19.
[0082] The operation unit 80 is provided with a liquid crystal display unit 81 and LEDs 82 that indicate various states, and is configured to display the state of the image forming apparatus 100, the image formation status, and the number of copies to be printed. The type and size of the sheets S1 and S2 can also be input from the operation unit 80. Various settings for the image forming apparatus 100 are made using a printer driver on the computer.
[0083] The control unit 90 includes a CPU (Central Processing Unit) 91, a ROM (Read Only Memory) 92, a RAM (Random Access Memory) 93, a temporary storage unit 94, a counter 95, and multiple (here, two) I / Fs (Interfaces) 96. The CPU 91 functions as a central processing unit. The temporary storage unit 94 temporarily stores various information such as image data. The I / F 96 transmits control signals to each device within the image forming apparatus 100 and receives input signals from the operation unit 80.
[0084] The ROM 92 is a read-only storage unit. The RAM 93 is a readable and writable storage unit. The ROM 92 stores data that will not be changed while the image forming apparatus 100 is in use, such as a control program for the image forming apparatus 100 and numerical values necessary for control. The reference light transmission time T2 described above is stored in the ROM 92.
[0085] The temporary storage unit 94 temporarily stores the image signal that is input from the input unit 70 and converted into a digital signal. The position of the actuator 48 (the detection position Pt or the first position P1) is stored in the temporary storage unit 94.
[0086] The counter 95 counts the number of sheets S1 and S2 fed and a predetermined time. For example, the counter 95 counts the light transmission time T1 described above. The value counted by the counter 95 can be stored in the temporary storage unit 94 or the RAM 93.
[0087] Next, an example of control of the sheet conveying device 19 of this embodiment will be described with reference to the flowchart shown in Fig. 8. Fig. 8 is a flowchart showing an example of the control flow of the sheet conveying device 19.
[0088] 8, the control unit 90 determines whether or not an image formation command has been input from a host device such as a personal computer (step S1). If an image formation command has not been input (No in step S1), the control unit 90 continues to wait until an image formation command is input.
[0089] When an image formation command is input (Yes in step S1), the lift drive motor 43 is driven to raise the stacking plate 37 (step S2), and the detection unit 49 detects whether or not the light is blocked (step S3).
[0090] If the detection unit 49 is not in a light-blocking state (No in step S3), it is determined whether the light transmission time T1 is equal to or greater than the reference light transmission time T2 (step S4). If the light transmission time T1 is equal to or greater than the reference light transmission time T2 (Yes in step S4), it is detected that the actuator 48 is at the first position P1 (step S5), and the process proceeds to step S7, which will be described later. If the light transmission time T1 has not reached the reference light transmission time T2 (No in step S4), the process returns to step S3.
[0091] If the detection unit 49 is in a light-transmitting state in step S3 (Yes in step S3), it is detected that the actuator 48 is at the detection position Pt (step S6). Next, based on the input image formation command, it is determined whether or not the sheet S2 is fed from the MPF 27 (step S7).
[0092] If sheet S2 is fed from MPF 27 (Yes in step S7), the main motor 60 outputs a rotational driving force in the reverse direction (step S8). If sheet S1 is fed from sheet cassette 16 (No in step S7), the subsequent steps will be described later.
[0093] After step S8, the detection unit 49 determines whether the state has changed from the light-blocking state to the light-transmitting state (step S9). If the detection unit 49 changes from the light-blocking state to the light-transmitting state (Yes in step S9), it detects that the actuator 48 is at the second position P2 (step S10). Then, the main motor 60 outputs a rotational drive force in the forward direction (step S11).
[0094] If the detection unit 49 has not changed from the light-blocking state to the light-transmitting state (No in step S9), it is determined whether a predetermined time has elapsed (step S12). This predetermined time is the time it takes for the sheet S2 to be fed from the MPF tray 26 to reach the sheet feeding unit 25, and is stored in advance in ROM 92. If the predetermined time has not elapsed (No in step S12), the process returns to step S9. If the predetermined time has elapsed (Yes in step S12), the operation unit 80 is notified that the sheet S2 is not stacked on the MPF tray 26 (out of sheets) (step S13), the stacking plate 37 is lowered (step S16), and control of the sheet conveying device 19 is terminated.
[0095] After step S11, it is determined whether the detection unit 49 has changed to a light-blocking state (step S14). If it has not changed (No in step S14), the main motor 60 continues to output a rotational drive force in the forward direction until the detection unit 49 changes to a light-blocking state.
[0096] If the detection unit 49 changes to a light-blocking state in step S14 (Yes in step S14), it is determined whether the print job has ended (step S15). If the print job has not ended (No in step S15), the process returns to step S7. If the print job has ended (Yes in step S15), the stacking plate 37 is lowered (step S16), and control of the sheet conveying device 19 is terminated.
[0097] In step S7 described above, if it is determined that sheet S2 is not fed from MPF 27 (No in step S7), a main body side feeding mode is executed to feed sheet S1 from sheet cassette 16 (step S17). The main body side feeding mode will be described later.
[0098] After executing the main body side feeding mode, it is determined whether the print job has ended (step S18). If it has ended, the process proceeds to step S16 described above, and if it has not ended (No in step S18), the process returns to step S7.
[0099] Next, the main body side feeding mode will be described with reference to FIG. 9. FIG. 9 is a flowchart showing the control flow of the main body side feeding mode. As shown in FIG. 9, if it is determined in step S7 that sheet S2 is not fed from MPF 27 (No in step S7, see FIG. 8), it is determined whether detection position Pt is detected (step S170). If it is determined that detection position Pt is not detected (No in step S170), a notice is sent to operation unit 80 that sheet S1 is not stacked in sheet cassette 16 (out of sheets) (step S171), stacking plate 37 is lowered (step S172), and control of sheet conveying device 19 is terminated.
[0100] In step S170, if the detection position Pt is detected (Yes in step S170), a rotational driving force in the forward direction is output from the main motor 60 (step S173).
[0101] Next, it is determined whether the detection unit 49 has changed from a light-blocking state to a light-transmitting state (step S174). If the detection unit 49 has changed from a light-blocking state to a light-transmitting state (Yes in step S174), the operation unit 80 is notified that the sheet cassette 16 is out of sheets (out of sheets) (step S176), the main body side feeding mode is ended, and the process proceeds to step S13 (see FIG. 8).
[0102] If it is determined in step S174 that the state has not changed from the light-blocking state to the light-transmitting state (No in step S174), it is determined whether a predetermined time has elapsed (step S176). This predetermined time is the time it takes for the rear end of the sheet S1 to separate from the feed roller 42. If the predetermined time has not elapsed (No in step S176), the process returns to step S173, and if the predetermined time has elapsed (Yes in step S176), the main body side feeding mode is ended and the process proceeds to step S13 (see FIG. 8).
[0103] As described above, by detecting the swing of the actuator 48 with the actuator detection sensor 46, it is possible to detect whether or not sheets S1 are stacked in the sheet cassette 16 and the conveyance of sheets from the MPF tray 26. This makes it possible to reduce the number of sensors, and to provide a sheet conveying device that can detect the feeding of sheets from the MPF tray 26 while suppressing increases in manufacturing costs.
[0104] Furthermore, if the input image formation command is to feed sheet S2 from the MPF tray 26, the remaining number of sheets S1 stacked in the sheet cassette 16 does not change. Therefore, if the detection unit 49 changes from the light-blocking state to the light-transmitting state in this case, the actuator 48 necessarily moves beyond the detection position Pt to the second position P2. Therefore, as described above, if it is determined that the input image formation command is to feed sheet S2 from the MPF tray 26, the actuator detection sensor 46 detects the detection position Pt or the first position P1, and then detects the change from the light-blocking state to the light-transmitting state, thereby detecting that the actuator 48 is located at the second position P2. This allows the control system for determining whether the second position P2 has been detected to have a relatively simple configuration. This makes it possible to more effectively prevent increases in the manufacturing cost of the sheet conveying device 19.
[0105] As described above, the sheet detection mechanism 32 can detect that the sheet S2 fed from the MPF tray 26 has come into contact with the contact portion 55. This allows the feed roller 42 to be retracted from the pressing portion 53 until the sheet S2 reaches the sheet feeding portion 25, and then, when the sheet S2 reaches the sheet feeding portion 25, the feed roller 42 can be brought into pressure contact with the sheet S2.
[0106] With this configuration, when sheet S2 is fed from MPF tray 26, feed roller 42 moves away from sheet S1, preventing sheet S1 from being fed from sheet cassette 16. Furthermore, when sheet S2 fed from MPF tray 26 reaches sheet feeding section 25, feed roller 42 can feed sheet S2 to main transport path 28, eliminating the need to separately provide another roller for feeding sheet S2 to main transport path 28. This simplifies the configuration and prevents an increase in the manufacturing cost of sheet transport device 19.
[0107] The present invention is not limited to the above-described embodiment, and various modifications are possible without departing from the spirit of the present invention. For example, the actuator detection sensor 46 can detect the detection position Pt, the second position P2, and the first position P1 based on the light transmission time T1 and the light blocking time T3 (the duration of the light blocking state of the detection unit 49) of the detection unit 49. In this case, reference times corresponding to the detection of the detection position Pt, the second position P2, and the first position P1 are pre-stored in the ROM 92, respectively, and the position of the actuator 48 is determined by comparing these reference times.
[0108] Furthermore, the present invention is not limited to a tandem color printer such as that shown in FIG. 1, but can be applied to various image forming apparatuses of an intermediate transfer type in which an image forming unit is disposed above an intermediate transfer belt.
[0109] Furthermore, such a sheet conveying device 19 can be installed not only in an image forming device, but also in the device body of a device that has at least two or more sheet stacking sections from which sheets are fed (for example, a large-capacity sheet storage device that is located upstream of the image forming device and can feed sheets to the image forming device). [Industrial Applicability]
[0110] The present invention can be used in devices (such as image forming devices and sheet storage devices) that have at least two or more sheet stacking units that serve as sheet feed sources. By using the present invention, it is possible to provide a sheet conveying device that can detect the presence or absence of a sheet in one sheet stacking unit and the feeding of a sheet from the other sheet stacking unit while suppressing increases in manufacturing costs.
Claims
1. a sheet transport path provided in the apparatus body for transporting sheets; a first sheet stacking section disposed in the device body, the first sheet stacking section having a bottom surface on which the sheets are stacked and a lift plate provided to be able to rise and fall relative to the bottom surface and configured to raise and lower the sheets on the bottom surface to place them in a feeding position; a first feeding section that feeds the sheets stacked on the first sheet stacking section to the sheet transport path; a second feeding unit configured to feed the sheet supplied from an inlet provided on a side surface of the apparatus body toward the first feeding unit; a bypass conveying path extending from the second feeding section to the first feeding section and conveying the sheet fed from the second feeding section to the first feeding section; a sheet detection mechanism provided in the first feeding section and capable of detecting the presence or absence of the sheets stacked in the first sheet stacking section; a drive unit capable of switching a rotation direction, driving the first feeding unit during forward rotation and driving the second feeding unit during reverse rotation; a control unit for controlling the conveyance of the sheet; Equipped with The sheet detection mechanism includes: an actuator that is capable of swinging along a sheet conveyance direction by contacting the sheet that is stacked on the first sheet stacking unit and arranged at the feeding position by the lift plate, or the sheet that has been conveyed to the first feeding unit through the bypass conveyance path by the second feeding unit; a detection sensor that detects the actuator at a predetermined detection position; and The control unit When feeding the sheet from the first sheet stacking unit, the sheet stacked on the first sheet stacking unit is moved to the feeding position by the lift plate, and when the sheet is detected by the sheet detection mechanism, the drive unit is rotated forward to feed the sheet by the first feeding unit; A sheet conveying device characterized in that, when feeding the sheet from the second feeding section, the drive section is rotated in reverse to feed the sheet to the first feeding section by the second feeding section, and when the detection sensor detects the actuator, which is in contact with the sheet conveyed from the second feeding section and oscillates, at the detection position, the drive section is switched to forward rotation to feed the sheet by the first feeding section.
2. The actuator is The lift plate is disposed in a first position in an unraised state; When the lift plate is raised while the sheets are stacked in the first sheet stacking section and the upper surface of the sheet is positioned at the feeding position, the lift plate abuts against the upper surface of the sheet at the feeding position and swings from the first position to the detection position, When the sheet conveyed from the second feeding unit comes into contact with the sheet, the sheet presses the sheet to swing from the first position to the detection position, and further swings beyond the detection position to the second position, The control unit The sheet conveying device according to claim 1, characterized in that when the detection sensor detects the swinging of the actuator from the detection position to the second position, the drive unit is switched to forward rotation and the first feeding unit starts conveying the sheet.
3. the detection sensor is an optical sensor having a detection unit having a light-emitting unit and a light-receiving unit, the actuator has a contact portion that comes into contact with the sheet and a light-blocking portion that blocks or opens a light path between the light-emitting portion and the light-receiving portion, 3. The sheet conveying device according to claim 2, wherein the detection sensor detects the swinging of the actuator from the first position to the detection position or the second position based on the light blocking or light transmission of the detection portion by the light blocking portion.
4. The control unit The sheet conveying device according to claim 3, characterized in that when feeding the sheet from the first sheet stacking section, the lift plate is raised to the feeding position, and when the detection sensor changes from a light-transmitting state to a light-blocking state, it detects that the sheet is loaded in the first sheet stacking section.
5. The first feeding section a pickup roller that feeds the sheet downstream in the sheet conveying direction while being in pressure contact with the sheet; a movement mechanism that presses the pickup roller against the upper surface of the sheet placed at the feeding position or the lift plate when the drive unit rotates forward, and moves the pickup roller away from the upper surface of the sheet placed at the feeding position or the lift plate when the drive unit rotates backward; and The sheet conveying device of claim 2, wherein when the control unit feeds the sheet from the second feeding unit, the control unit raises the lift plate to position the sheet at the feeding position, rotates the drive unit in the reverse direction, and causes the moving mechanism to move the pickup roller upward from the upper surface of the sheet positioned at the feeding position or from the lift plate, transports the sheet from the second feeding unit to above the lift plate, and while the actuator is in the second position, rotates the drive unit in the forward direction, and causes the moving mechanism to press the pickup roller against the lift plate or the sheet on the lift plate, thereby rotating the pickup roller and feeding the sheet to the sheet conveying path.
6. the lift plate has a retraction recess into which the actuator can enter, at a position where the lift plate overlaps the actuator in a sheet width direction perpendicular to the sheet conveying direction; The actuator is The lift plate is disposed in a first position in an unraised state; 2. The sheet conveying device according to claim 1, wherein when the first sheet stacking section has no sheets loaded thereon, the sheet conveying device enters the retraction recess and is positioned at the first position regardless of the lift position of the lift plate.
7. The sheet conveying device according to claim 3, characterized in that the contact portion has a first contact portion that contacts the sheet stacked in the first sheet stacking section, and a second contact portion that bulges from a base end of the first contact portion toward the second feeding section in the sheet conveying direction and contacts the sheet conveyed from the second feeding section.
8. 2. The sheet conveying device according to claim 1, further comprising an input unit that allows input of a selection between feeding the sheet from the first sheet stacking unit and feeding the sheet from the second feeding unit.
9. an image forming unit that forms an image on the sheet; the sheet conveying device according to claim 1 , which conveys the sheet to the image forming unit; An image forming apparatus comprising:
Citation Information
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