Drive device and image forming apparatus

By dividing the drive train and using a positioning member to align drive components, the drive device efficiently transmits torque without increasing size, addressing installation challenges and noise issues.

JP7769909B2Active Publication Date: 2025-11-14RICOH CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2022013614
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-31
Publication Date
2025-11-14
Estimated Expiration
2042-01-31

AI Technical Summary

Technical Problem

Conventional drive devices with integrated drive sources and drive trains are unable to fit in narrow spaces within the device body, leading to installation challenges and potential misalignment issues.

Method used

The drive train is divided into two parts, with one part attached to an opposing member and the other supported on a shaft, utilizing a positioning member to ensure accurate alignment and efficient force transmission, and incorporating two speed reduction mechanisms to increase torque without increasing device size.

Benefits of technology

This configuration allows for efficient torque transmission, reduces device size, and minimizes noise, while enabling the use of low-torque motors, thus preventing cost and size increases.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007769909000001
    Figure 0007769909000001
  • Figure 0007769909000002
    Figure 0007769909000002
  • Figure 0007769909000003
    Figure 0007769909000003
Patent Text Reader

Abstract

To provide a driving device that can be arranged in an apparatus main body, and can satisfactorily transmit a driving force from a drive transmission member arranged on one side of an opposite member to a drive transmission member arranged on the other side of the opposite member, and an image forming apparatus.SOLUTION: A pressure motor unit 80 being a unit including a pressure motor 51 being a driving source and some of a plurality of drive transmission members constituting a drive train is attached to one side of a drive bracket 30 being an opposite member opposite to a rear end plate 100a being a main body-side plate of an apparatus main body. The rest of the plurality of drive transmission members constituting the drive train are supported by a stationary shaft 31 provided on the other side of the drive bracket 30. A positioning member for a unit such as an internal tooth housing 73 performing positioning of the unit is supported on the stationary shaft 31.SELECTED DRAWING: Figure 6
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

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

[0002] 2. Description of the Related Art Conventionally, there is known a driving device having a driving source and a drive train made up of a plurality of drive transmission members that transmits the driving force of the driving source to a driven transmission member.

[0003] Patent Document 1 describes a drive unit in which a drive train is provided with two reduction mechanisms, a worm gear and a planetary gear mechanism, and the drive train is housed in a housing that serves as a housing member, and this housing is attached to a motor holding member that holds a drive motor to form a unit.The multiple drive transmission members that make up the drive train are supported by a fixed shaft and a rotating shaft that are supported by the motor holding member. Summary of the Invention [Problem to be solved by the invention]

[0004] However, there are cases where the drive device described in Patent Document 1 cannot be placed in a narrow space perpendicular to the surface of the side panel of the device body. [Means for solving the problem]

[0005] In order to solve the above-mentioned problems, the present invention provides a drive device having a drive source and a drive train consisting of a plurality of drive transmission members that transmits the drive force of the drive source to a driven transmission member, wherein a unit including the drive source and some of the plurality of drive transmission members that make up the drive train is attached to one side of an opposing member that faces the main body side plate of the device main body, the remaining drive transmission members that make up the drive train are supported on a shaft provided on the other side of the opposing member, and a unit positioning member supported on the shaft has a positioning portion that engages with the positioned portion of the unit on the other side or the one side. [Effects of the Invention]

[0006] According to the present invention, the drive device can be arranged in the device main body, and the drive force can be transmitted efficiently from the drive transmission member arranged on one side of the opposing member to the drive transmission member arranged on the other side of the opposing member. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a schematic diagram showing an example of the overall configuration of an image forming apparatus according to an embodiment of the present invention; [Figure 2] FIG. 2 is a perspective view showing the fixing device and a drive unit that drives members around the fixing device. [Figure 3] FIG. 2 is a schematic diagram illustrating a configuration of a main part of a fixing device. [Figure 4] 10A and 10B are diagrams illustrating a state in which the pressure roller is shifted from a depressurized state to a pressurized state. [Figure 5] FIG. 10 is a perspective view showing a conventional pressure driving device together with a fixing device. [Figure 6] FIG. 2 is a schematic configuration diagram of a pressure drive device according to the present embodiment. [Figure 7] FIG. [Figure 8] FIG. [Figure 9] FIG. [Figure 10] FIG. 10 is an exploded perspective view of the downstream drive train disposed in the space between the drive bracket and the rear plate. [Figure 11] FIG. 10 is a perspective view of the drive bracket as seen from the pressure motor unit mounting side. [Figure 12] 5A and 5B are diagrams illustrating insertion and removal of a connector to a fixing paper discharge motor. [Figure 13] FIG. 10 is a schematic configuration diagram of a pressure driving device according to a modified example. DETAILED DESCRIPTION OF THE INVENTION

[0008] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. FIG. 1 is a schematic diagram showing an example of the overall configuration of an image forming apparatus according to one embodiment of the present invention. In FIG. 1, a color printer serving as an image forming apparatus according to this embodiment has process cartridges 13Y, 13M, 13C, and 13K (hereinafter, the suffixes Y, M, C, and K will be omitted as appropriate) arranged side by side in approximately the center of a machine frame. An exposure device 5 for forming a latent image on a photosensitive drum 1 serving as an image carrier is arranged below the process cartridge 13, and below that are arranged a plurality of paper feed units (paper feed trays) 14 and 15 for stacking and storing paper P serving as a recording medium. An intermediate transfer belt 6 serving as an intermediate transfer body is arranged above the process cartridge 13, and a primary transfer roller 9 is arranged inside the intermediate transfer belt 6, facing the photosensitive drum 1 with the intermediate transfer belt 6 sandwiched therebetween. A pair of secondary transfer rollers 4 is arranged at the right end of the intermediate transfer belt 6, which collectively transfers toner images formed on the intermediate transfer belt 6 onto the paper P, and a fixing device 10 is arranged above the secondary transfer rollers 4 as fixing means for fixing the toner image transferred onto the paper P. Further, on the upper left side of the fixing device 10, a pair of paper discharge rollers 12 is arranged as a discharge means for conveying the paper P so as to discharge it outside the apparatus.

[0009] When a print job is input to a color printer configured as described above, paper P loaded in paper feed tray 14 or 15 is fed by paper feed roller 16 and transported in the vertical direction as shown via transport roller pair 17 and registration roller pair 11. During this process, toner images are sequentially transferred (intermediate transfer) from the photosensitive drums 1 of each color to intermediate transfer belt 6, which is transported in the horizontal direction as shown. Then, when the leading edge of paper P reaches secondary transfer roller pair 4, the leading edge of the toner image on intermediate transfer belt 6 also reaches secondary transfer roller pair 4, and the toner images are transferred en bloc (secondary transfer) onto paper P. Because the toner image on paper P is prone to peeling off if left as is, paper P is transported to fixing device 10, where it is fixed by heat and pressure. Paper P with the fixed toner image is then ejected from the printer by ejection roller pair 12.

[0010] In the fixing device 10, when thin paper such as an envelope is passed through the nip N as the paper P, if the pressure applied by the pressure roller 19 is too strong, the paper is likely to wrinkle or crease. In contrast, if thick paper or the like is passed through the nip N with the pressure applied when thin paper is passed, the pressure is too weak and the paper is discharged without the toner image being fixed. Furthermore, if a paper jam occurs while sandwiched in the nip N of the fixing device 10, it is necessary to release the pressure applied by the pressure roller 19, which is a pressure fixing member acting as a second rotating body, in order to remove the jammed paper.

[0011] For this reason, the fixing device 10 of the color printer according to this embodiment is provided with a pressure adjustment mechanism as a pressure adjustment means for adjusting the pressure by adjusting the amount of pressure that the pressure roller 19 presses against the fixing roller 18. The pressure adjustment mechanism adjusts the pressure by changing the position of the pressure roller 19 relative to the fixing roller 18, which is the member to be pressed.

[0012] FIG. 2 is a perspective view showing the fixing device 10 and a drive unit that drives members around the fixing device, and FIG. 3 is a schematic diagram showing the configuration of the main part of the fixing device 10. As shown in FIG. The fixing device 10 has an infrared heater 29 disposed therein and includes a fixing roller 18 as a pressure-receiving member heated by the infrared heater 29, and a pressure roller 19 as a movable member that is in pressure contact with the fixing roller 18 to form a fixing nip portion. The fixing device 10 also has a pressure adjustment mechanism 40 that moves the pressure roller 19 relative to the fixing roller 18 to adjust the pressure of the pressure roller 19 on the fixing roller 18. The pressure adjustment mechanism 40 can adjust the pressure by separating the pressure roller 19 from the fixing roller 18 without applying pressure. The pressure adjustment mechanism 40 has a pair of lever members 41 that adjustably support the pressure of the pressure roller 19 on the fixing roller 18, and a pair of springs 43 as biasing means that bias the pressure roller 19 toward the fixing roller 18 via the lever members 41. The pressure adjustment mechanism 40 also includes a pair of cam members 44 that move the pressure roller 19 away from the fixing roller 18 against the biasing force of the spring 43 via a lever member 41, and a pressure drive device 50 that drives the cam members 44.

[0013] Both axial ends of the fixing roller 18 are rotatably supported by a pair of side plates 47. Both axial ends of the pressure roller 19 are rotatably supported by lever members 41 of the pressure adjustment mechanism 40. As shown in FIG. 3, each lever member 41 has a support shaft 41a at one end and is rotatably supported by the side plate 47. A spring receiver 41b is provided at the other end of each lever member 41, and one end of a spring 43 serving as a biasing means is attached to this spring receiver 41b. The other end of the spring 43 is attached to a spring receiver 47a provided on the side plate 47, as shown in FIG. 2. A cam receiver 42 is formed on the other end of the lever member 41, and a cam member 44 abuts against this cam receiver 42.

[0014] The pair of cam members 44 are attached to the camshaft 44a so as to rotate integrally with the camshaft 44a. A cam gear 55 that meshes with the output gear 54 of the pressure drive device 50 is attached to the rear end of the camshaft 44a (the right end in FIG. 2) so as to rotate integrally with the camshaft 44a.

[0015] A feeler 45 for detecting the rotation angle of the cam member 44 is attached to the front end of the camshaft 44a (the left end in FIG. 2) so as to rotate integrally with the camshaft 44a. The feeler 45 is detected by an optical sensor to detect the rotation angle of the cam member 44. A portion of the feeler 45 is cut out, and the optical sensor is a photointerrupter (transmission optical sensor).

[0016] As the camshaft 44a rotates, when the camshaft 44a reaches a predetermined rotational angle, the filler 45 moves between the light-emitting element and the light-receiving element of the optical sensor, blocking the optical path between them. Then, when the camshaft 44a rotates a predetermined angle from that state, the filler 45 moves out from between the light-emitting element and the light-receiving element of the optical sensor, and the light-receiving element of the optical sensor detects the light emitted from the light-emitting element. When the light-receiving element of the optical sensor receives light from the light-emitting element, it transmits a light-receiving signal to the control unit. The control unit determines the rotational angle position of the convex portion of the cam member 44 fixed to the camshaft 44a based on the timing at which the light-receiving signal from the light-receiving element ceases and the amount of drive of the pressure motor 51 from that timing.

[0017] In addition, a drive bracket 30 is provided at the rear side of the device (the right end in Figure 2), and this drive bracket 30 is provided with a fixing and paper discharge drive device 20 as another drive device that rotates and drives the pressure drive device 50, the fixing roller 18, and the paper discharge drive roller 12a. The fixing paper discharge drive device 20 has a fixing paper discharge motor 21 (see FIG. 11) serving as a drive source, and the fixing paper discharge motor 21 is attached to the surface of the drive bracket 30 opposite the fixing device side (the outer surface in the axial direction) so that the motor shaft 21a passes through the drive bracket 30. A plurality of gears constituting the paper discharge drive train 22 and gears and pulleys constituting the fixing drive train 23 are rotatably supported on the inner surface of the drive bracket 30.

[0018] An input gear of a paper discharge drive train 22 and an input gear of a fixing drive train 23 are engaged with a motor gear directly mounted on the motor shaft 21a. The driving force of the fixing paper discharge motor 21 is transmitted via the paper discharge drive train 22 to a paper discharge gear 25 attached to the rear end of the rotation shaft of the paper discharge drive roller 12a, causing the paper discharge drive roller 12a to rotate. The driving force of the fixing paper discharge motor 21 is also transmitted via the fixing drive train 23 to a drive train 24 of the fixing device 10, which is made up of multiple gears mounted on the side plate on the rear side of the fixing device 10. The driving force of the fixing paper discharge motor 21 is then transmitted to the fixing roller 18 via the drive train 24 of the fixing device 10, causing the fixing roller 18 to rotate.

[0019] In this embodiment, when a paper jam occurs in the fixing device 10, the pressure adjustment mechanism 40 separates the pressure roller 19 from the fixing roller 18, resulting in a depressurized state (no pressure) as shown in FIG. 4. Specifically, the pressure motor 51 of the pressure drive device 50 is driven to rotate the cam member 44. Then, from the state shown in FIG. 3, the cam member 44 presses the cam receiver 42 against the biasing force of the spring 43. This causes the lever member 41 to rotate counterclockwise in the drawing around the support shaft 41a as a fulcrum, and the pressure roller 19, which is a moving member, moves in a direction away from the fixing roller 18, resulting in the pressure roller 19 being separated from the fixing roller 18 as shown in FIG. 4. This makes it easier to remove paper jammed in the fixing nip.

[0020] Furthermore, when the printer transitions from standby mode to sleep mode or when the power is turned off, the pressure adjustment mechanism 40 reduces the pressure applied by the pressure roller 19 to the fixing roller 18, thereby preventing creep at the nip. Also, when passing thick paper such as envelopes, the pressure adjustment mechanism 40 reduces the pressure applied by the pressure roller 19 to the fixing roller 18, allowing the fixing process to be performed without causing wrinkles.

[0021] When pressure roller 19 is moved in a direction away from fuser roller 18 against the biasing force of spring 43, a large load torque is applied to cam member 44. In order to drive cam member 44 to rotate against this load torque, a motor with a large drive torque must be used as the pressure motor. However, a motor with a large drive torque is large and expensive, which leads to the problem of an increase in the size and cost of the device.

[0022] Therefore, the pressure drive device 50 is provided with two speed reduction mechanisms, a planetary gear mechanism and a worm gear, in a drive train for transmitting the driving force of the pressure motor 51 to the cam member 44, to obtain a large reduction ratio and significantly increase the output torque output to the cam member 44. As a result, even if a low-torque motor is used as the pressure motor 51, the output torque output to the cam member 44 can be made larger than the load torque when moving the pressure roller 19 in the direction away from the fuser roller 18 against the biasing force of the spring 43. Therefore, an inexpensive, small, low-torque drive source can be used as the pressure motor 51, which prevents the device from becoming larger and costs from increasing.

[0023] FIG. 5 is a perspective view showing a conventional pressure driving device 150 together with the fixing device 10. As shown in FIG. 5, the conventional pressure drive device 150 houses a drive train equipped with two reduction mechanisms, a planetary gear mechanism and a worm gear, in a housing 165 and a drive holding member 152 that holds the pressure motor 51. In this way, the pressure motor 51 and the drive train are unitized and attached to the printer. In this embodiment, in order to achieve a compact image forming apparatus, the distance between the drive bracket 30, which is an opposing member, and the rear side plate, which is a main body side plate arranged between the drive bracket 30 that holds the drive bracket 30 and the fixing device, is narrowed.

[0024] However, narrowing the gap between the drive bracket 30 and the rear plate resulted in the problem that the conventional unitized pressure drive unit 150 could not be placed in the space between the rear plate and the drive bracket 30. Therefore, in this embodiment, the drive train of the pressure drive unit is divided into two, making it possible to place the pressure drive unit by effectively utilizing the space between the drive bracket 30 and the rear plate and the space between the drive bracket 30 and the exterior cover of the printer. The pressure drive unit 50 of this embodiment will now be described in detail with reference to the drawings.

[0025] Fig. 6 is a schematic diagram of the pressure drive device 50 of this embodiment, and Fig. 7 is a perspective view of the pressure drive device 50 of this embodiment. Fig. 8 is an exploded perspective view of the pressure drive device 50 of this embodiment. Fig. 9 is a perspective view of the pressure motor unit 80, with (a) being an exploded view and (b) being a perspective view. Fig. 10 is an exploded perspective view of the downstream drive train arranged in the space between the drive bracket 30 and the rear side plate 100a.

[0026] The drive train that transmits the driving force of the pressure motor 51 of the pressure drive device 50 to the cam member 44 has two speed reduction mechanisms: a worm gear 60 and a planetary gear mechanism 70. The worm gear 60 is disposed in the pressure motor unit 80, and the planetary gear mechanism 70 is disposed on a fixed shaft 31 provided in the drive bracket 30.

[0027] The pressure motor unit 80 is a unit that integrates the worm gear 60 and the pressure motor 51. As shown in Fig. 9, the pressure motor unit 80 has a motor bracket 81 made of sheet metal and a motor housing 82 made of a resin material that is screwed to the motor bracket 81.

[0028] The pressure applying motor 51 is a brush motor that is less expensive and smaller than a brushless motor, and is held by a motor bracket 81. Specifically, as shown in FIG. 9, the motor bracket 81 has a motor holding surface 81b that is perpendicular to the motor shaft. The motor holding surface 81b has a shaft insertion hole 81c for inserting the motor shaft of the pressure applying motor 51, to which the worm 61 is attached, and a motor shaft engagement hole 81e connected to the shaft insertion hole 81c. The motor holding surface 81b also has two screw through holes 81d, one on either side of the motor shaft engagement hole 81e, through which screws 85 for fastening the pressure applying motor 51 pass. Two screw holes 51c are formed on the surface of the pressure applying motor 51 facing the motor holding surface 81b, with the motor shaft in between.

[0029] The motor shaft of the pressure motor 51, to which the worm 61 of the pressure motor 51 is attached, is inserted into the shaft insertion hole 81c. Then, after the worm 61 has been removed from the shaft insertion hole 81c, the pressure motor 51 is slid toward the back side of FIG. 9(a) so that the motor shaft engages with the motor shaft engagement hole 81e. Then, the screw 85 that has passed through the screw through hole 81d of the motor holding surface 81b is screwed into the screw hole 51c of the pressure motor 51, thereby fastening the pressure motor 51 to the motor bracket 81.

[0030] Furthermore, housing fixing portions 81g, to which the motor housing 82 is fastened, are provided at approximately the center in the vertical direction on both sides of the motor bracket 81 in the direction of the rotational axis of the pressure motor 51 (the left-right direction in FIG. 9). A screw hole 81h is provided in the center of each housing fixing portion 81g. The motor bracket 81 also has three unit fastening portions 81f for fastening the pressure motor unit 80 to the drive bracket 30. A screw through-hole 81j is provided in the center of each unit fastening portion 81f, through which a screw 88 (see FIG. 6) passes. Two of the three unit fastening portions 81f are provided at the bottom of the motor bracket 81 on both sides in the direction of the rotational axis of the pressure motor 51, and the remaining one is provided near the top on the side opposite the motor holding surface 81b in the direction of the rotational axis. The pressure motor unit 80 is fixed to the drive bracket 30 by passing screws 88 through these three unit fastening portions 81f and threading the screws 88 into the screw holes in the drive bracket 30 (see FIG. 6).

[0031] The worm gear 60 is composed of a worm 61 and a worm wheel 62, and the worm 61 is attached to the motor shaft of the pressure motor 51 so as to rotate integrally with the motor shaft. The worm wheel 62, which meshes with the worm 61, is rotatably supported on a support shaft 81a fixed to the motor bracket 81. The worm wheel 62 has a first connection gear 62a that meshes with a second connection gear 71 of the drive train located on the fixing device side of the drive bracket 30 and on the downstream side in the drive transmission direction. This first connection gear 62a passes through the through hole 32 of the drive bracket 30, and its tip side protrudes into the space between the drive bracket 30 and the rear side plate 100a, and this protruding portion meshes with the second connection gear 71 (see FIG. 6).

[0032] The motor housing 82 is made of resin and has a through hole 82c through which the first connecting gear 62a passes. The motor housing 82 also has a positioning protrusion 82b as a positioned portion for positioning the pressure motor unit 80. The positioning protrusion 82b passes through the through hole 33 of the drive bracket 30 and is fitted into a second positioning hole 73c as a positioning portion of the internal gear housing 73 as a unit positioning member. The motor housing 82 also has mounting portions 82d at approximately the center in the vertical direction on both sides of the axial direction of the motor shaft. Each mounting portion 82d has a screw through hole 82e at its center through which a screw 86 passes. The mounting portion 82d on the left side in FIG. 9 has a cover portion 82f formed thereon to cover the housing fixing portion 81g of the motor bracket 81.

[0033] The motor housing 82 is fastened to the motor bracket 81 by passing a screw 86 through the screw through-hole 82e of each mounting portion 82d and screwing the screw 86 into the screw hole 81h of the housing fixing portion 81g of the motor bracket 81. In this way, the worm gear 60 is housed in the motor housing 82 and the motor bracket 81.

[0034] The planetary gear mechanism 70 is made up of a sun gear 72 provided on the second connecting gear 71, a carrier 75, three planetary gears 74 rotatably supported by the carrier 75 and meshing with the sun gear 72, and internal gears 73a provided on an internal gear housing 73 meshing with the planetary gears 74. The sun gear 72 and carrier 75 constituting the planetary gear mechanism 70 are rotatably supported on a fixed shaft 31 provided on the drive bracket 30. The internal gear housing 73, which serves as a positioning member having the internal gears 73a, is supported on the fixed shaft 31 via the planetary gears 74 and the sun gear 72. The output gear 54, to which driving force is transmitted from the planetary gear mechanism 70, is also rotatably supported on the fixed shaft 31. In this way, all of the members arranged between the drive bracket 30 and the rear side plate 100a of the pressure drive device 50 are supported on the fixed shaft 31.

[0035] 8 and 10 , the carrier 75 has a cylindrical supported portion 75a for being supported on the fixed shaft 31, and three drive coupling protrusions 175 are provided at 120° intervals on the outer peripheral surface of the supported portion 75a for driving coupling with the output gear 54. Meanwhile, the output gear 54 has a cylindrical portion 56 into which the supported portion 75a is inserted, and three grooves 156 are provided at 120° intervals on the inner peripheral surface of the cylindrical portion 56 for fitting the drive coupling protrusions 175. By fitting the drive coupling protrusions 175 into the grooves 156, driving force is transmitted from the carrier 75 to the output gear 54.

[0036] In the planetary gear mechanism 70 of this embodiment, the sun gear 72 is the input, the internal teeth 73a is fixed, and the carrier 75 is the output. By using the sun gear 72 as the input, the internal teeth 73a as the fixed, and the carrier 75 as the output, the largest reduction ratio can be obtained among the combinations of the input, fixed, and output of the planetary gear mechanism 70.

[0037] The internal teeth housing 73 having the internal teeth 73a has a plurality of bracket fixing portions 73d for fixing to the drive bracket 30. Each bracket fixing portion 73d has a screw through hole 73e through which a screw 78 passes. The internal teeth housing 73 is screwed to the drive bracket 30 by passing the screw 78 through this screw through hole 73e and screwing the screw 78 into a threaded hole provided in the drive bracket 30. The internal teeth housing 73 is fastened to the drive bracket 30 with the internal teeth 73a of the internal teeth housing 73 meshing with the planetary gear 74 meshing with the sun gear 72, and with the internal teeth housing 73 supported by the fixed shaft 31.

[0038] The internal gear housing 73 also has a first positioning hole 73b and a second positioning hole 73c as positioning portions for positioning the pressure motor unit 80. As shown in Fig. 6, the first positioning hole 73b is provided in a portion of the internal gear housing 73 away from the drive bracket 30. The first positioning hole 73b is a round hole and serves as a primary positioning reference, while the second positioning hole 73c is an elongated hole and serves as a secondary positioning reference.

[0039] The tip of the support shaft 81a, which is the positioned portion of the pressure motor unit 80, is fitted into the first positioning hole 73b, and the tip of the positioning protrusion 82b, which is the positioned portion of the pressure motor unit 80, is fitted into the second positioning hole 73c, thereby positioning the pressure motor unit 80 in the internal gear housing 73. After being positioned in the internal gear housing 73, the pressure motor unit 80 is fastened to the drive bracket 30.

[0040] As described above, in this embodiment, by positioning the pressure motor unit 80 on the internal gear housing 73 supported by the fixed shaft 31, the second connection gear 71 supported by the fixed shaft 31 can be meshed well with the first connection gear 62a of the pressure motor unit 80. This allows the driving force of the pressure drive to be transmitted well to the cam member 44. In particular, in this embodiment, the support shaft 81a that rotatably supports the first connection gear 62a is used as a positioning shaft for positioning the second connection gear 71 on the internal gear housing 73 supported by the fixed shaft 31 that supports the second connection gear 71. This allows the positional relationship between the support shaft 81a and the fixed shaft 31 to be determined with high precision, and the first connection gear 62a supported by the support shaft 81a can be meshed well with the second connection gear 71 supported by the fixed shaft 31.

[0041] Furthermore, in this embodiment, the first positioning hole 73b, which is the main reference for positioning, is located away from the drive bracket 30. This provides the following advantage. When the pressure motor unit 80 is positioned in the internal housing 73, the pressure motor unit 80 can be supported at three points: the first positioning hole 73b, the through hole 32 of the drive bracket 30, and the second positioning hole 73c. ​​This allows the pressure motor unit 80 to be temporarily held by the drive bracket 30 and the internal housing 73. Therefore, when fastening the pressure motor unit 80 to the drive bracket 30 after positioning the pressure motor unit 80 in the internal housing 73, it is no longer necessary to support the pressure motor unit 80 by hand, improving the ease of fastening.

[0042] In the above description, a positioning shaft is provided in the pressure motor unit 80 and a positioning hole is provided in the internal teeth housing 73, but a configuration in which a positioning shaft is provided in the internal teeth housing 73 and a positioning hole is provided in the pressure motor unit 80 and positioning is performed on the pressure motor unit side may also be adopted. Even in this configuration, by providing one of the two positioning holes in the pressure motor unit 80 away from the drive bracket, the pressure motor unit 80 can be temporarily held by the drive bracket 30 and the internal teeth housing 73.

[0043] In this embodiment, the drive train of the pressure drive device 50 is divided and arranged inside and outside the device with the drive bracket 30 as the reference. Specifically, the worm gear 60, which is one of the two speed reduction mechanisms of the drive train, is arranged outside the device with the drive bracket 30 as the reference. This allows the pressure drive device 50 to be arranged by effectively utilizing the space between the drive bracket 30 of the image forming apparatus, where the paper discharge drive train 22 and the fixing drive train 23 of the fixing paper discharge drive device 20 are arranged, and the rear side plate 100a, and the space between the drive bracket 30, where the fixing paper discharge motor 21 (see FIG. 11) is arranged, and the exterior cover of the printer. This makes it possible to arrange the pressure drive device 50, which has multiple speed reduction mechanisms in the drive train, without increasing the size of the image forming apparatus.

[0044] In addition, the pressure motor 51 and the worm gear 60 are unitized as a pressure motor unit 80. This improves the ease of assembly into the device compared to when the pressure motor 51 and the worm gear 60 are individually assembled to the drive bracket 30.

[0045] Furthermore, in this embodiment, noise generated when the drive transmission members of the drive train of the pressure drive device 50 are arranged inside the device relative to the drive bracket 30 is blocked by the drive bracket 30, preventing the noise from leaking outside the device. This has the advantage of reducing the noise level of the image forming device.

[0046] When the pressure motor 51 is driven to rotate, the sun gear 72 of the planetary gear mechanism 70 is driven to rotate after being decelerated by the worm gear 60. When the sun gear 72 is driven to rotate, the planetary gears 74 meshing with the sun gear 72 revolve around the sun gear 72 while rotating on their axes. As the planetary gears 74 revolve around the sun gear 72, the carrier 75 rotates, and the output gear 54 engaged with the carrier 75 rotates together with the carrier 75. Then, a driving force is transmitted to the cam gear 55 meshing with the output gear 54, and the cam member 44 is driven to rotate.

[0047] In this embodiment, by providing two speed reduction mechanisms, the worm gear 60 and the planetary gear mechanism 70, a high reduction ratio can be achieved, significantly reducing the rotational speed of the pressure motor 51. This allows the output torque output to the cam member 44 to be significantly increased relative to the drive torque of the pressure motor 51. As a result, even if a motor with low drive torque is used as the pressure motor 51, the output torque to the cam member 44 can be made greater than the load torque of the cam member 44. Therefore, even if an inexpensive, small-sized brush motor with low drive torque is used as the pressure motor 51, the cam member 44 can be effectively rotated and the pressure force of the pressure roller 19 against the fuser roller 18 can be adjusted. This prevents the device from becoming larger and less expensive, even if a drive motor for driving the cam member 44 is used separately from the motor for driving the fuser roller 18.

[0048] Furthermore, by providing a drive motor for driving the cam member 44 in addition to the motor for driving the fixing roller 18, the following advantage can be obtained. That is, when returning from a sleep mode or the like, the pressure of the pressure roller 19 can be increased and the fixing roller 18 can be rotated and raised to a predetermined temperature at the same time. This has the advantage of shortening the start-up time of the device.

[0049] Furthermore, by using the worm gear 60 and planetary gear mechanism 70 as the reduction mechanism, a large reduction ratio can be obtained without using large-diameter gears, and the device can be made smaller than when a large reduction ratio is obtained using a gear train.

[0050] Furthermore, in this embodiment, a high reduction ratio can be obtained, so that the rotation angle of the cam member 44 can be reduced relative to the drive amount of the pressure motor 51. This allows for fine adjustment of the rotation angle of the cam member 44, and therefore fine adjustment of the pressure.

[0051] Furthermore, by using two reduction mechanisms, the worm gear 60 and the planetary gear mechanism 70, to obtain a high reduction ratio, the following advantage can be obtained. When the cam member 44 is rotated from a state in which the top dead center of the cam member 44, where the distance from the center of the rotation axis of the cam member 44 to the outer circumferential surface of the cam member 44 is longest, is in contact with the cam receiver 42, the biasing force of the spring 43 acts on the cam member 44 in the rotational direction of the cam member 44. As a result, the biasing force of the spring 43 pushes the cam member 44 in the rotational direction, causing the cam member 44 to rotate. However, since this embodiment is configured to obtain a high reduction ratio, a large force is required on the cam member 44 side to rotate the cam member 44. As a result, even if the biasing force of the spring 43 pushes the cam member 44 in the rotational direction, the rotational speed of the cam member 44 does not instantaneously increase. This prevents the cam member 44 and the cam receiver 42 from momentarily separating, thereby reducing the impact noise that would occur if the cam member 44 and the cam receiver 42 were to come into contact again.

[0052] Furthermore, by disposing the worm gear 60 in the pressure motor unit 80, the motor shaft of the pressure motor 51 can be disposed parallel to the drive bracket 30. This prevents the pressure motor 51 from becoming larger in the axial direction compared to when the motor shaft of the pressure motor 51 is perpendicular to the drive bracket 30. Therefore, the motor and part of the drive train can be disposed in the gap between the drive bracket 30 and the exterior cover.

[0053] 11 is a perspective view of the drive bracket 30 as seen from the side where the pressure motor unit 80 is attached, and FIG. 12 is a diagram for explaining insertion and removal of the connector 27a into and from the fixing paper discharge motor 21. As shown in FIG. As shown in Fig. 11, the pressure motor unit 80 is attached to the drive bracket 30 near the fixing / discharging motor 21. The fixing / discharging motor 21 is provided with a connector 21b, into which a connector 27a of a harness 27 that inputs signals to the fixing / discharging motor 21 is inserted. As shown in Fig. 12, the housing fixing portion 81g of the motor bracket 81 of the pressure motor unit 80 faces the connector 21b of the fixing / discharging motor 21 in the direction in which the connector 27a of the harness 27 is inserted and removed.

[0054] During maintenance of the device, connector 27a of harness 27 may be disconnected from connector 21b of fixing / discharging motor 21, as shown by the arrow in Figure 12. If too much force is used when disconnecting connector 27a of harness 27 from connector 21b of fixing / discharging motor 21, there is a risk of your hand hitting housing fixing portion 81g of motor bracket 81. Motor bracket 81 is made of sheet metal and has a thin, edged shape. Therefore, there is a risk of your hand being cut when it hits housing fixing portion 81g.

[0055] For this reason, in this embodiment, a cover portion 82f that covers the housing fixing portion 81g is provided on the mounting portion 82d of the motor housing 82, which is made of a resin material. This prevents the hand from hitting the housing fixing portion 81g of the motor bracket 81 when unplugging the connector 27a of the harness 27. Furthermore, the cover portion 82f is made of a resin material and has an arc-like shape with no edges. Therefore, even if the hand hits the cover portion 82f when unplugging the connector 27a of the harness 27, the hand will not be cut.

[0056] Next, a modified example of the pressure driving device 500 will be described. FIG. 13 is a schematic diagram of a pressure driving device 500 according to a modified example. In this modified pressure drive device 500, the pressure motor unit 80 is disposed between the drive bracket 30 and the rear side plate 100a, and the drive transmission member downstream in the drive transmission direction of the drive train composed of the planetary gear mechanism 70 etc. is disposed between the drive bracket 30 and the exterior cover.

[0057] In this modification, the motor noise of the pressure motor 51 is blocked by the drive bracket 30, and can be prevented from leaking outside the apparatus, thereby reducing the noise of the image forming apparatus.

[0058] The above description is merely an example, and each of the following aspects provides unique effects. (Aspect 1) In a drive device such as a pressure drive device 50 having a drive source such as a pressure motor 51 and a drive train consisting of multiple drive transmission members that transmits the drive force of the drive source to a driven transmission member such as a cam member 44, a unit such as a pressure motor unit 80 having the drive source and some of the multiple drive transmission members that make up the drive train (in this embodiment, worm gear 60 and first connecting gear 62a) is attached to one side of an opposing member such as a drive bracket 30 that faces a main body side plate such as a rear side plate 100a of the device main body, and the remaining drive transmission members that make up the drive train (second connecting gear 71, planetary gear mechanism 70, and output gear 54) are supported on an axis such as a fixed shaft 31 provided on the other side of the opposing member, and is provided with a unit positioning member such as an internal gear housing 73 supported on the axis, which has positioning portions (first positioning hole 73b and second positioning hole 73c) that engage with the positioned portion of the unit (in this embodiment, support shaft 81a and positioning protrusion 82b) on the other side or one side. An image forming apparatus is equipped with multiple drive units, and these drive units are generally configured within the image forming apparatus as follows: A drive source is attached to the surface of a facing member, such as drive bracket 30, disposed opposite a main body side plate, such as rear side plate 100a, of the image forming apparatus, opposite the surface facing the main body side plate. The drive shaft of the drive source passes through the facing member and is positioned in the space between the main body side plate and the facing member. Then, a drive train is arranged in the narrow space between the main body side plate and the facing member, in a direction perpendicular to the surface of the main body side plate. To place the drive unit described in Patent Document 1, which integrates the drive source and drive train into a unit, in an image forming apparatus requires a certain amount of space. As a result, depending on the configuration of the image forming apparatus, a problem arises in which the unitized drive unit described in Patent Document 1 cannot be placed in the space between the opposing side plate and the main body side plate. Therefore, some of the multiple drive transmission members constituting the drive train of this drive device are integrated with a drive source such as pressure motor 51 to form a unit such as pressure motor unit 80, which is attached to one side of an opposing member such as drive bracket 30, and the remaining drive transmission members are attached to a shaft such as fixed shaft 31 provided on the other side of the opposing member, dividing the drive train into two. By locating the drive transmission members of the drive train that protrude from the space between the opposing member and the main body side plate in the direction perpendicular to the surface of the main body side plate on the opposite side of the opposing member from the main body side plate, it becomes possible to install a drive device with multiple reduction mechanisms in the drive train, such as worm gears or planetary gear mechanisms, on the main body. However, a new problem arose: misalignment between the drive transmission members provided in the unit and the drive transmission members supported on the shaft of the opposing member due to assembly errors of the unit to the opposing member, resulting in poor drive transmission. To solve this new problem, in aspect 1, a positioning member such as internal gear housing 73 that positions the unit is provided, and this positioning member is supported on the shaft that supports the remaining drive transmission members. In this way, by supporting the positioning member on the shaft that supports the remaining drive transmission members and positioning the unit on the positioning member supported on this shaft, it is possible to improve the positional accuracy between the remaining drive transmission members supported on the shaft and the drive transmission members provided on the unit. This allows for efficient transmission of driving force from the drive transmission member on the unit side to the drive transmission member supported on the shaft of the drive bracket.

[0059] (Aspect 2) In the first aspect, the drive train has a plurality of speed reduction mechanisms (in this embodiment, a worm gear 60 and a planetary gear mechanism 70) that reduce the rotational speed of a drive source such as the pressure motor 51. As a result, as described in the embodiment, the reduction ratio of the drive train can be significantly increased, and the rotational speed of the drive source such as the pressure motor 51 can be significantly reduced. This allows the output torque output to the drive transmission member such as the cam member 44 to be significantly increased relative to the drive torque of the drive source. As a result, even if a motor with low drive torque is used as the drive source, the desired output torque can be obtained, and even if the torque required to rotate the drive transmission member is high, the rotated member can be favorably driven to rotate.

[0060] (Aspect 3) In the second embodiment, the multiple reduction mechanisms are a worm gear 60 and a planetary gear mechanism 70 . According to this, as explained in the embodiment, a large reduction ratio can be obtained without using a large diameter gear, and the size of the device can be prevented from increasing.

[0061] (Aspect 4) In the third embodiment, a worm gear 60 is provided in a unit such as the pressure motor unit 80 . As a result, as described in the embodiment, the drive source such as the pressure motor 51 can be positioned so that its drive shaft, such as the motor shaft, is parallel to the unit mounting surface of the drive bracket 30, and this prevents the drive source from becoming larger in the axial direction compared to when the drive shaft of the drive source is perpendicular to the unit mounting surface of the drive bracket 30.

[0062] (Aspect 5) In the third or fourth embodiment, a planetary gear mechanism 70 is supported on a shaft such as the fixed shaft 31, and a unit positioning member such as the internal gear housing 73 has internal teeth 73a of the planetary gear mechanism 70. According to this, as described in the embodiment, a positioning member such as the internal gear housing 73 can be supported on a shaft such as the fixed shaft 31 via the planet gear 74 and the sun gear 72 of the planetary gear mechanism 70.

[0063] (Aspect 6) In any of aspects 1 to 5, one of the positioned portion and the positioning portion is a positioning shaft that penetrates an opposing member such as the drive bracket 30, and the other is a positioning hole into which the positioning shaft is fitted, and the positioning hole is located at a position axially spaced from the opposing member. As a result, as described in the embodiment, it is possible to temporarily hold a unit such as the pressure motor unit 80 by using a positioning hole such as the first positioning hole 73b and the drive bracket 30. The unit can be attached to the drive bracket 30 without having to be supported by hand, which improves the workability of attaching the unit.

[0064] (Aspect 7) In any of the first to sixth aspects, the positioned portion is a support shaft that penetrates an opposing member such as the drive bracket 30 and supports a drive transmission member such as the worm wheel 62 and the first connecting gear 62a, and the positioning portion is a positioning hole such as the first positioning hole 73b into which the support shaft is fitted. As a result, as described in the embodiment, the positional relationship between the support shaft 81a and shafts such as the fixed shaft 31 of the drive bracket 30 can be determined with high precision, and drive can be transmitted smoothly from the drive transmission member on the unit side to the drive transmission member arranged in the space between the drive bracket 30 and the rear side plate 100a.

[0065] (Aspect 8) In any of the embodiments 1 to 7, the one side is the outside of the device body relative to an opposing member such as the drive bracket 30. This allows for easy maintenance of the pressure motor, which is the drive source, as described in the embodiment. Also, the drive bracket can block out noise from the drive transmission members supported on shafts such as the fixed shaft 31.

[0066] (Aspect 9) In any of the first to seventh embodiments, the one side is the inside of the device body relative to an opposing member such as the drive bracket 30 . According to this, as explained in the modified example, the noise of the drive source such as the pressure motor 51 can be blocked by the drive bracket 30.

[0067] (Aspect 10) In any of aspects 1 to 9, the driven member is a cam member 44 that switches a pressure member, such as a pressure roller 19 that pressurizes a pressure-receiving member, such as a fixing roller 18, between a pressurized state in which the pressure-receiving member is pressed and a depressurized state in which the pressure is released. This allows the drive device to be positioned without interfering with the drive bracket 30 of other drive devices, such as the fixing paper discharge drive device 20 that rotates and drives a pressure-receiving member such as the fixing roller 18, as described in the embodiment.

[0068] (Aspect 11) The image forming apparatus includes the drive device according to any one of the first to tenth aspects. This makes it possible to prevent the device from becoming too large. [Explanation of symbols]

[0069] 10: Fixing device 12: Paper discharge roller pair 12a: Paper discharge drive roller 18: Fuser roller 19: Pressure roller 20: Fixing paper delivery drive unit 21: Fixing paper discharge motor 21a: Motor shaft 21b: Connector 22: Paper discharge drive train 23: Fixing drive train 25: Paper ejection gear 27: Harness 27a: Connector 30: Drive bracket 31: Fixed axis 32:Through hole 33:Through hole 40: Pressure adjustment mechanism 41: Lever member 41a: Support shaft 41b: Spring holder 42: Cam holder 43: Spring 44: Cam member 44a: Camshaft 45: Filler 47: Side panel 47a: Spring holder 50: Pressure drive device 51: Pressure motor 51c: screw hole 54: Output gear 55: Cam gear 56: Cylindrical part 60: Worm gear 61: Warm 62: Worm wheel 62a: First connecting gear 70: Planetary gear mechanism 71: Second connecting gear 72: Sun gear 73: Internal tooth housing 73a: Internal teeth 73b: First positioning hole 73c: Second positioning hole 73d: Bracket fixing part 73e: Screw through hole 74: Planetary gear 75: Career 75a: Supported part 78: Screw 80: Pressure motor unit 81: Motor bracket 81a: Support shaft 81b: Motor holding surface 81c: Shaft insertion hole 81d: Screw through hole 81e: Motor shaft engagement hole 81f: Unit fastening part 81g: Housing fixing part 81h: screw hole 81j: Screw through hole 82: Motor housing 82b: Positioning protrusion 82c: Through hole 82d: Mounting part 82e: Screw through hole 82f: Cover part 85: Screw 86: Screw 88: Screw 100a: Rear plate 156: Groove 175: Drive connection protrusion [Prior art documents] [Patent documents]

[0070] [Patent Document 1] Japanese Patent Application Publication No. 2018-123951

Claims

1. A driving source; a drive train including a plurality of drive transmission members for transmitting a driving force of the drive source to a driven transmission member, a unit including the drive source and some of the drive transmission members constituting the drive train is attached to one side of an opposing member that faces a main body side plate of the device main body; The remaining drive transmission members constituting the drive train are supported by a shaft provided on the other side of the opposing member, A drive device comprising a unit positioning member supported on the shaft, the unit positioning member having a positioning portion that engages with a positioned portion of the unit on the other side or one side.

2. 2. The drive device according to claim 1, The drive device is characterized in that the drive train has a plurality of reduction mechanisms that reduce the rotational speed of the drive source.

3. 3. The drive device according to claim 2, A drive device characterized in that the plurality of reduction mechanisms are worm gears and planetary gear mechanisms.

4. 4. The drive device according to claim 3, A drive device characterized in that the worm gear is provided in the unit.

5. 5. The drive device according to claim 3, The planetary gear mechanism is supported on the shaft, The drive device is characterized in that the unit positioning member has internal teeth of the planetary gear mechanism.

6. 6. The drive device according to claim 1, one of the positioned portion and the positioning portion is a positioning shaft that penetrates the opposing member, and the other is a positioning hole into which the positioning shaft is fitted, The drive device according to claim 1, wherein the positioning hole is provided at a position axially spaced from the opposing member.

7. 7. The drive device according to claim 1, the positioned portion is a support shaft that penetrates the opposing member and supports a drive transmission member, The drive device, wherein the positioning portion is a positioning hole into which the support shaft is fitted.

8. 8. The drive device according to claim 1, The drive device is characterized in that the one side is located outside the device body relative to the opposing member.

9. 8. The drive device according to claim 1, The drive device is characterized in that the one side is located inside the device body with respect to the opposing member.

10. 10. The drive device according to claim 1, A drive device characterized in that the driven transmission member is a cam member that switches a pressure member that presses a pressure-receiving member between a pressurized state in which the pressure-receiving member is pressed and a depressurized state in which the pressure is released.

11. An image forming apparatus comprising the drive device according to claim 1 .

Citation Information

Patent Citations

  • Planetary gear drive transmission device and image forming apparatus

    JP2013057368A

  • Movement device and image formation device

    JP2018123951A

  • Drive unit and image formation apparatus

    JP2019094982A