Image forming apparatus
The image forming apparatus addresses image defects by using a movable pressing member and control mechanism to maintain the shape of the intermediate transfer belt, optimizing contact length and reducing gaps, thereby ensuring stable toner transfer and high-quality imaging despite deformation or wear.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-15
- Publication Date
- 2026-04-13
AI Technical Summary
Existing image forming apparatuses using intermediate transfer belts face issues with image defects due to changes over time, such as creep deformation and wear in the pressing member, which affect the contact length and gap between the belt and recording material, leading to discharge and friction-related defects.
The apparatus incorporates a movable pressing member and a moving mechanism controlled by a control unit to adjust the position of the pressing member, maintaining the shape of the intermediate transfer belt upstream of the transfer section, even with deformation or wear, by elastically biasing the belt and optimizing the contact length.
This configuration effectively suppresses image defects by maintaining the appropriate contact length and reducing gaps between the belt and recording material, ensuring stable toner transfer and high-quality imaging even with varying materials and conditions.
Smart Images

Figure 0007844179000001 
Figure 0007844179000002 
Figure 0007844179000003
Abstract
Description
Technical Field
[0001] The present invention relates to an image forming apparatus such as a printer, a printing machine, a copying machine, a facsimile apparatus, or a multifunction machine having a plurality of functions among these, which uses an electrophotographic method or an electrostatic recording method.
Background Art
[0002] Conventionally, some image forming apparatuses using an electrophotographic method or the like have a rotatable endless belt (hereinafter also simply referred to as "belt") as an image carrier for carrying and transporting a toner image. As such a belt, for example, there is an intermediate transfer belt as a second image carrier that transports a toner image primarily transferred from a photosensitive member as a first image carrier to a sheet-like recording material such as paper for secondary transfer. Hereinafter, an image forming apparatus adopting an intermediate transfer method mainly having an intermediate transfer belt will be described as an example.
[0003] In an image forming apparatus using an intermediate transfer belt, a toner image formed on a photoreceptor or the like in the image forming section is first transferred to the intermediate transfer belt in the primary transfer section. The toner image first transferred to the intermediate transfer belt is then secondarily transferred to a recording material in the secondary transfer section. The secondary transfer section, which is the contact area between the intermediate transfer belt and the outer member, is formed by an inner member (secondary transfer inner member) provided on the inner circumferential surface side of the intermediate transfer belt and an outer member (secondary transfer outer member) provided on the outer circumferential surface side of the intermediate transfer belt. As the inner member, a secondary transfer inner roller, which is one of several tension rollers that tension the intermediate transfer belt, is often used. As the outer member, a secondary transfer outer roller is often used, which is positioned opposite the secondary transfer inner roller with the intermediate transfer belt in between and is pressed toward the secondary transfer inner roller. Then, a voltage with the opposite polarity to the charge polarity of the toner is applied to the secondary transfer outer roller (or a voltage with the same polarity as the charge polarity of the toner is applied to the secondary transfer inner roller), and the toner image on the intermediate transfer belt is transferred to the recording material in the secondary transfer section. With respect to the recording material, "leading end" and "rear end" refer to the leading and rear ends of the recording material in the direction of transport, respectively. The upstream of the secondary transfer section in the direction of rotation of the intermediate transfer belt is also simply called "upstream of the secondary transfer section."
[0004] To transfer the toner image formed on the intermediate transfer belt to the recording material with high precision, the contact length between the intermediate transfer belt and the recording material in relation to the rotation direction of the intermediate transfer belt upstream of the secondary transfer section is important. If the contact length is long, image defects may occur due to friction between the toner and the recording material caused by the speed difference between the intermediate transfer belt and the recording material. On the other hand, if the contact length is short, image defects may occur due to discharge occurring in the gap between the recording material and the intermediate transfer belt. Therefore, the transport posture of the recording material and the tension layout of the intermediate transfer belt are determined in consideration of the contact position of the leading edge of the recording material with respect to the intermediate transfer belt upstream of the secondary transfer section.
[0005] Patent Document 1 proposes a configuration in which a planar straightening member is provided upstream of the contact position (tacking position) of the leading edge of the recording material with respect to the intermediate transfer belt in the rotational direction of the intermediate transfer belt, and which contacts the inner circumferential surface of the intermediate transfer belt and presses the intermediate transfer belt. In Patent Document 1, a flexible baffle plate or an elastic roll is used as the planar straightening member. [Prior art documents] [Patent Documents]
[0006] [Patent Document 1] Japanese Patent Application Publication No. 9-80926 [Overview of the project] [Problems that the invention aims to solve]
[0007] As described above, by bringing a pressing member (backup member) into contact with the inner circumferential surface of the intermediate transfer belt upstream of the secondary transfer section, the shape (position) of the intermediate transfer belt upstream of the secondary transfer section can be set to a desired shape (position). In such a configuration, for example, a flexible resin material is used as the material of the pressing member. Then, in order to make the contact length between the intermediate transfer belt and the recording material appropriate, the inner circumferential surface of the intermediate transfer belt upstream of the secondary transfer section is pressed down with the pressing member, deforming the intermediate transfer belt and forming an appropriate shape (position) of the intermediate transfer belt.
[0008] However, in the above configuration, the inner surface of the intermediate transfer belt and the pressing member remain in contact and rubbing state. As a result, the pressing member is subjected to a load due to the reaction force against the pressing force of the pressing member, which can cause changes over time such as creep deformation and wear. When changes over time such as creep deformation and wear occur in the pressing member, the contact position of the pressing member with the intermediate transfer belt changes, the force with which the pressing member presses the inner surface of the intermediate transfer belt decreases, and the amount of deformation of the intermediate transfer belt due to the pressing of the pressing member upstream of the secondary transfer section decreases. This shortens the contact length between the intermediate transfer belt and the recording material upstream of the secondary transfer section, increases the gap between the intermediate transfer belt and the recording material, and may cause image defects due to discharge.
[0009] In the above, we have described the conventional problems using the secondary transfer section, which is the part where the toner image is transferred from the intermediate transfer belt to the recording material, as an example. However, similar problems may arise in the transfer section of the toner image from other belt-shaped image carriers, such as photoreceptors, to the recording material.
[0010] Therefore, the objective of the present invention is to maintain the shape of the belt upstream of the transfer section in an appropriate shape, even when changes such as deformation or wear occur over time in the pressing member, thereby suppressing the occurrence of image defects. [Means for solving the problem]
[0011] The above objective is achieved by the image forming apparatus according to the present invention. In summary, according to one aspect of the present invention, an intermediate transfer belt on which a toner image is transferred, and a plurality of tension rollers that tension the intermediate transfer belt, , within A plurality of tension rollers, including a roller and an upstream roller provided adjacent to the inner roller upstream of the inner roller with respect to the rotational direction of the intermediate transfer belt, An outer member is positioned opposite the inner roller and contacts the outer circumferential surface of the intermediate transfer belt to form a transfer portion where the toner image is transferred from the intermediate transfer belt to the recording material.A pressing member is provided that can contact the inner circumferential surface of the intermediate transfer belt at a position upstream of the inner roller and downstream of the upstream roller with respect to the rotational direction of the intermediate transfer belt, and can press the intermediate transfer belt from the inner circumferential surface side to the outer circumferential surface side by elastically biasing the intermediate transfer belt; a support member is provided that is movable and supports the pressing member; and a moving mechanism moves the support member. ,before It has a control unit that controls the movement mechanism, The control unit, The aforementioned The pressing member presses against the intermediate transfer belt while transferring the toner image from the intermediate transfer belt to the recording material. When the operation is performed on a predetermined type of recording material under predetermined environmental conditions, the pressing member is in a new condition before recording When the sum of the time each operation takes is the first time, recording When the position of the support member during the execution of the operation is the first position, and the total is a second time that is longer than the first time, recording The position of the support member during the operation is a second position in which the pressing member is moved in a direction that presses the intermediate transfer belt more than the first position. like , Controlling the aforementioned moving mechanism An image forming apparatus characterized by the above is provided. According to another aspect of the present invention, an intermediate transfer belt onto which a toner image is transferred, and a plurality of tensioners that support the intermediate transfer belt. rack It's Laura , within A plurality of tension rollers, including a roller and an upstream roller provided adjacent to the inner roller upstream of the inner roller with respect to the rotational direction of the intermediate transfer belt, An outer member is positioned opposite the inner roller and contacts the outer circumferential surface of the intermediate transfer belt to form a transfer portion where the toner image is transferred from the intermediate transfer belt to the recording material. A pressing member is provided that can contact the inner circumferential surface of the intermediate transfer belt at a position upstream of the inner roller and downstream of the upstream roller with respect to the rotational direction of the intermediate transfer belt, and can press the intermediate transfer belt from the inner circumferential surface side to the outer circumferential surface side by elastically biasing the intermediate transfer belt; a support member is provided that is movable and supports the pressing member; and a moving mechanism moves the support member. ,before It has a control unit that controls the movement mechanism, The control unit, The aforementioned The pressing member presses against the intermediate transfer belt while transferring the toner image from the intermediate transfer belt to the recording material. When the operation is performed on a predetermined type of recording material under predetermined environmental conditions, the pressing member is in a new condition before recording When the total number of sheets of each recording material output in the job is the first number, before recording During the execution of the job, the position of the support member is the first position, and when the total is a second number greater than the first number, before recording During the execution of the job, the position of the support member is a second position in which the pressing member has been moved in a direction in which the pressing member presses the intermediate transfer belt from the first position like , Controlling the aforementioned moving mechanism An image forming apparatus is provided, characterized in that.
Advantages of the Invention
[0012] According to the present invention, even when changes over time such as deformation and wear occur in the pressing member, the shape of the belt upstream of the transfer unit can be maintained in an appropriate shape, and the occurrence of image defects can be suppressed.
Brief Description of the Drawings
[0013] [Figure 1] It is a schematic cross-sectional view of an image forming apparatus. [Figure 2] It is a schematic cross-sectional view near the secondary transfer unit. [Figure 3] It is a schematic perspective view of the moving mechanism. [Figure 4] It is a schematic side view for explaining the operation of the moving mechanism. [Figure 5] It is a schematic cross-sectional view for explaining the intrusion amount of the pressing member. [Figure 6] It is a schematic block diagram showing the control mode of the moving mechanism. [Figure 7] It is a graph showing an overview of the relationship between the intrusion amount and the number of input pulses. [Figure 8] It is a graph showing an overview of the relationship between the contact time and the intrusion amount. [Figure 9] It is a schematic cross-sectional view for explaining the change in the intrusion amount. [Figure 10] It is a flowchart diagram of an example of the operation of a job. [Figure 11]This is a schematic cross-sectional view illustrating the state after changing the position of the pressing member. [Figure 12] This graph shows a schematic relationship between contact time, penetration amount, and the number of input pulses. [Modes for carrying out the invention]
[0014] The image forming apparatus according to the present invention will be described in more detail below with reference to the drawings.
[0015] [Example 1] 1. Overall configuration and operation of the image forming apparatus Figure 1 is a schematic cross-sectional view of the image forming apparatus 100 of this embodiment. The image forming apparatus 100 of this embodiment is a tandem type printer employing an intermediate transfer method. The image forming apparatus 100 can form a full-color image on a sheet-like recording material (transfer material, sheet, recording medium, media) P such as paper using an electrophotographic method in response to an image signal transmitted from an external device such as a personal computer.
[0016] The image forming apparatus 100 has four image forming units 10Y, 10M, 10C, and 10K, each forming images of yellow (Y), magenta (M), cyan (C), and black (K), respectively. These image forming units 10Y, 10M, 10C, and 10K are arranged in a line along the direction of movement of the image transfer surface, which is positioned approximately horizontally on the intermediate transfer belt 31, which will be described later. Elements in each image forming unit 10Y, 10M, 10C, and 10K that have the same or corresponding function or configuration may be described collectively by omitting the Y, M, C, and K at the end of the symbols indicating that they are elements for one of the colors. In this embodiment, the image forming unit 10 is composed of a photosensitive drum 11 (11Y, 11M, 11C, 11K), a charger 12 (12Y, 12M, 12C, 12K), an exposure device 13 (13Y, 13M, 13C, 13K), a developer 14 (14Y, 14M, 14C, 14K), a primary transfer roller 15 (15Y, 15M, 15C, 15K), a cleaning device 16 (16Y, 16M, 16C, 16K), and the like, which will be described later.
[0017] The image forming apparatus 100 has a photosensitive drum 11, which is a rotatable drum-shaped (cylindrical) photoreceptor (electrophotographic photoreceptor) that serves as a first image carrier for holding a toner image. The photosensitive drum 11 is driven to rotate at a predetermined peripheral speed (process speed) in the direction of arrow R1 (counterclockwise direction) in Figure 1 by a driving force transmitted from a drum drive motor (not shown) as a driving source. The surface of the rotating photosensitive drum 11 is uniformly charged to a predetermined potential with a predetermined polarity (negative polarity in this embodiment) by a charger 12 as a charging means. During the charging process, a predetermined charging voltage (charging bias) is applied to the charger 12 by a charging power supply (not shown). The surface of the charged photosensitive drum 11 is scanned and exposed according to an image signal by an exposure apparatus 13 as an exposure means, and an electrostatic image (electrostatic latent image) is formed on the photosensitive drum 11. In this embodiment, the exposure apparatus 13 is composed of a laser scanner device that irradiates the photosensitive drum 11 with laser light modulated according to an image signal (image information). The electrostatic image formed on the photosensitive drum 11 is developed (visualized) by the developer 14, which is a developing means, when toner is supplied as a developer, and a toner image (toner image, developer image) is formed on the photosensitive drum 11. In this embodiment, toner charged with the same polarity as the charging polarity of the photosensitive drum 11 (negative polarity in this embodiment) adheres to the exposed area (image area) on the photosensitive drum 11, where the absolute value of the potential has decreased after uniform charging treatment and exposure (reverse development method). During development, a predetermined development voltage (development bias) is applied to the developing roller, which is a developer carrier of the developer 14, by a development power supply (not shown). In this embodiment, the normal charging polarity of the toner, which is the main charging polarity of the toner during development, is negative polarity.
[0018] Opposite the four photosensitive drums 11Y, 11M, 11C, and 11K is an intermediate transfer belt 31, a rotatable intermediate transfer body composed of an endless belt, which serves as a second image carrier for holding the toner image. The intermediate transfer belt 31 is wrapped around a plurality of tension rollers (support rollers), namely a drive roller 33, a tension roller 34, a pre-secondary transfer roller 35, and a secondary transfer inner roller 32, and is stretched at a predetermined tension. The drive roller 33 transmits driving force to the intermediate transfer belt 31. The drive roller 33 is rotationally driven by driving force transmitted from a belt drive motor (not shown) as a drive source. As a result, the intermediate transfer belt 31 receives drive input from the drive roller 33 and rotates (circumferentially moves) in the direction of arrow R2 (clockwise direction) in Figure 1 at a peripheral speed (process speed) corresponding to the peripheral speed of the photosensitive drum 11. The tension roller 34 applies a predetermined tension to the intermediate transfer belt 31 and controls the tension of the intermediate transfer belt 31 to be constant. The tension roller 34 is biased at both ends in the direction of its rotation axis by tension springs 36, which are biasing members composed of compression coil springs that act as tension-applying means (biasing means), from the inner circumferential surface side to the outer circumferential surface side of the intermediate transfer belt 31. The secondary transfer roller 35 forms the surface of the intermediate transfer belt 31 near the upstream of the secondary transfer section N2 (described later) with respect to the rotational direction (direction of surface movement) of the intermediate transfer belt 31. In this embodiment, the secondary transfer inner roller (inner member) 32 functions as a secondary transfer member as a secondary transfer means. Also, on the inner circumferential surface side of the intermediate transfer belt 31, primary transfer rollers 15Y, 15M, 15C, and 15K, which are roller-shaped primary transfer members as primary transfer means, are arranged corresponding to each photosensitive drum 11Y, 11M, 11C, and 11K. In this embodiment, the primary transfer roller 15 is positioned opposite the photosensitive drum 11 via the intermediate transfer belt 31. The primary transfer roller 15 presses the intermediate transfer belt 31 toward the photosensitive drum 11, forming a primary transfer portion (primary transfer nip) N1, which is the contact area between the photosensitive drum 11 and the intermediate transfer belt 31. The tension rollers other than the drive roller 33 among the multiple tension rollers, and each primary transfer roller 15, rotate in accordance with the rotation of the intermediate transfer belt 31.Furthermore, on the inner circumferential surface side of the intermediate transfer belt 31, a pressing member 70 is provided upstream of the secondary transfer inner roller 32 and downstream of the secondary transfer pre-roller 35 in the rotational direction of the intermediate transfer belt 31. The pressing member 70 and the moving mechanism 71 (Figure 3) for changing the position of the pressing member 70 will be described in detail later.
[0019] As described above, the toner image formed on the photosensitive drum 11 is primary transferred to the rotating intermediate transfer belt 31 in the primary transfer section N1. During primary transfer, a primary transfer voltage (primary transfer bias), which is a DC voltage with the opposite polarity (positive polarity in this embodiment) to the normal charging polarity of the toner, is applied to the primary transfer roller 15 by a primary transfer power supply (not shown). For example, when forming a full-color image, the toner images of yellow, magenta, cyan, and black formed on each photosensitive drum 11 are sequentially primary transferred so that they are superimposed on the same image forming region on the intermediate transfer belt 31. In this embodiment, the primary transfer section N1 is the image forming position where the toner image is formed on the intermediate transfer belt 31. The intermediate transfer belt 31 is an example of a rotatable endless belt that transports the toner image carried at the image forming position.
[0020] On the outer circumferential surface of the intermediate transfer belt 31, a secondary transfer outer roller (outer member) 41 is positioned opposite the secondary transfer inner roller 32. In this embodiment, the secondary transfer outer roller 41 functions as an opposing member (counter electrode) of the secondary transfer inner roller 32. The secondary transfer outer roller 41 is pressed toward the secondary transfer inner roller 32 via the intermediate transfer belt 31, forming a secondary transfer section (secondary transfer nip) N2, which is the contact area between the intermediate transfer belt 31 and the secondary transfer outer roller 41. As described above, the toner image formed on the intermediate transfer belt 31 is secondary transferred in the secondary transfer section N2 onto the recording material P, which is being transported while being held between the intermediate transfer belt 31 and the secondary transfer outer roller 41. In this embodiment, during secondary transfer, a secondary transfer voltage (secondary transfer bias), which is a DC voltage with the same polarity (negative polarity in this embodiment) as the normal charging polarity of the toner, is applied to the secondary transfer inner roller 32 by a secondary transfer power supply (not shown). In this embodiment, the secondary transfer outer roller 41 is electrically grounded (connected to ground). Alternatively, the secondary transfer outer roller 41 may be used as a secondary transfer member, and a secondary transfer voltage with the opposite polarity to the normal charging polarity of the toner may be applied to it, while the secondary transfer inner roller 32 may be used as a counter electrode and electrically grounded.
[0021] The recording material P is stored in recording material cassettes 61a to 61c, which serve as recording material storage units. The recording material P stored in the recording material cassettes 61a to 61c is sent to the feeding transport path 63 when one of the feeding rollers 62a to 62c, which are feeding members, is rotated. This recording material P is then transported to a pair of registration rollers 21, which are also transport members, by a pair of transport rollers 64, which are also transport members, and is temporarily stopped. When the pair of registration rollers 21 is rotated, the recording material P is sent to the secondary transfer unit N2 in timing with the toner image on the intermediate transfer belt 31.
[0022] Downstream of the pair of resist rollers 21 and upstream of the secondary transfer section N2 in the transport direction of the recording material P, a transport guide (pre-transfer guide) 22 is provided to guide the recording material P to the secondary transfer section N2. The transport guide 22 is composed of a first guide member 22a that can contact the front surface of the recording material P (the surface on which the toner image is transferred immediately after passing through the transport guide 22), and a second guide member 22b that can contact the back surface of the recording material P (the surface opposite to the front surface). The first guide member 22a and the second guide member 22b are arranged opposite each other, and the recording material P passes between these two members. The first guide member 22a restricts the movement of the recording material P toward the intermediate transfer belt 31. The second guide member 22b restricts the movement of the recording material P toward the intermediate transfer belt 31.
[0023] The recording material P onto which the toner image has been transferred is transported by a transport belt (pre-fixing transport device) 23 to a fixing device 50, which serves as a fixing means. The fixing device 50 heats and pressurizes the recording material P, which is carrying the unfixed toner image, by clamping it with a pair of fixing rotating bodies and transporting it, thereby fixing (melting and solidifying) the toner image onto the surface of the recording material P. The recording material P with the fixed toner image is then discharged (output) through the discharge transport path 91 to a discharge tray 92 located outside the main body 110 of the image forming apparatus 100.
[0024] On the other hand, any toner or other deposits remaining on the photosensitive drum 11 after the primary transfer (primary transfer residue toner) are removed from the photosensitive drum 11 and recovered by the cleaning device 16, which serves as a cleaning means. In addition, any toner or other deposits remaining on the intermediate transfer belt 31 after the secondary transfer (secondary transfer residue toner) are removed from the intermediate transfer belt 31 and recovered by the belt cleaning device 37, which serves as an intermediate transfer body cleaning means.
[0025] In this embodiment, the intermediate transfer belt unit 30, which serves as a belt conveying device, comprises an intermediate transfer belt 31, tension rollers 32-35, primary transfer rollers 15, a belt cleaning device 37, and a frame (not shown) that supports these components. In this embodiment, the intermediate transfer belt unit 30 is further provided with a pressing member 70 and a moving mechanism 71 (Figure 3) for changing the position of the pressing member 70. The intermediate transfer belt unit 30 is detachable (or pullable) from the main body 110 of the image forming apparatus 100 for maintenance or replacement.
[0026] Here, the intermediate transfer belt 31 can be made of a single-layer or multi-layer resin-based material, or a multi-layer structure comprising a resin layer made of resin material and an elastic layer made of elastic material. In this embodiment, the secondary transfer inner roller 32 is constructed by providing an elastic layer of electronically conductive rubber on the outer circumference of a metal core. In this embodiment, the secondary transfer pre-roller 35 is made of metal. In this embodiment, the secondary transfer outer roller 41 is constructed by providing an elastic layer of ionically conductive foamed rubber on the outer circumference of a metal core. In this embodiment, bearing members (not shown) that support both ends of the secondary transfer outer roller 41 in the direction of the rotation axis are slidable in the direction toward the secondary transfer inner roller 32 and in the opposite direction. These bearing members are pressed toward the secondary transfer inner roller 32 by a compression spring 42 (Figure 2), which is a biasing member (elastic member) that acts as a biasing means. As a result, the secondary transfer outer roller 41 contacts the secondary transfer inner roller 32 with a predetermined pressure, with the intermediate transfer belt 31 in between, to form the secondary transfer section N2. The rotational axes of the tension rollers of the intermediate transfer belt 31, including the secondary transfer inner roller 32, and the secondary transfer outer roller 41 are approximately parallel to each other.
[0027] 2.2 Secondary Transfer Section Figure 2 is a schematic cross-sectional view (a cross-section approximately perpendicular to the rotation axis direction of the secondary transfer roller 32) for explaining the shape (orientation) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 in the image forming apparatus 100 of this embodiment. Figure 2(a) shows the state before the recording material P moves to the secondary transfer section N2, Figure 2(b) shows the state after the recording material P moves to the secondary transfer section N2, and Figure 2(c) shows a magnified view of the vicinity of the secondary transfer section N2 in Figure 2(b).
[0028] As shown in Figure 2, in this embodiment, the shape of the intermediate transfer belt 31, which is formed by tensioning the secondary transfer inner roller 32 and the secondary transfer pre-roller 35, is elastically biased by the secondary transfer outer roller 41 toward the secondary transfer inner roller 32 by the pressure spring 42. As a result, the intermediate transfer belt 31 is sandwiched between the secondary transfer inner roller 32 and the secondary transfer outer roller 41, forming the secondary transfer portion N2.
[0029] Furthermore, in this embodiment, a pressing member 70 is provided upstream of the secondary transfer section N2, close to the secondary transfer inner roller 32. In this embodiment, during image formation (secondary transfer), the inner circumferential surface of the intermediate transfer belt 31 and the tip of the pressing member 70 are in contact. The pressing member 70 contacts the inner circumferential surface of the intermediate transfer belt 31 and can press the intermediate transfer belt 31 from the inner circumferential surface side to the outer circumferential surface side. As a result, the pressing member 70 can cause the tensioned surface of the intermediate transfer belt 31, formed between the secondary transfer inner roller 32 and the secondary transfer pre-roller 35, to protrude from the inner circumferential surface side to the outer circumferential surface side. In this embodiment, the pressing member 70 is formed of a flexible resin plate-shaped member, and the pressing member 70 elastically biases the intermediate transfer belt 31 by utilizing its bending elasticity. Therefore, the shape (amount of deflection, amount of deformation) or position of the pressing member 70 is determined to be the shape (or position) in which the biasing force of the pressing member 70 that biases the intermediate transfer belt 31 balances the resistance force generated by the tension of the intermediate transfer belt 31. Here, the shape (or position) of the pressing member 70 determined in this way is also called the "statically determined shape (or statically determined position)". The shape (position) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 is then determined by this statically determined shape (statically determined position) of the pressing member 70.
[0030] Furthermore, in this embodiment, the image forming apparatus 100 is configured to change the position of the pressing member 70 by the action of the moving mechanism 71 (Figure 3). As a result, in this embodiment, the image forming apparatus 100 is configured to control the static shape (static position) of the pressing member 70, that is, the shape (posture) of the intermediate transfer belt 31 upstream of the secondary transfer section N2.
[0031] In this embodiment, a bias of the same polarity as the charge polarity of the toner constituting the toner image on the intermediate transfer belt 31 is applied to the secondary transfer inner roller 32, and the secondary transfer outer roller 41 is connected to earth. This creates a transfer electric field in the secondary transfer section N2. The recording material P is transported to the secondary transfer section N2, where the transfer electric field has been formed, guided by the transport guide 22 (Figure 1). As shown in Figure 2(a), the recording material P is transported toward the secondary transfer section N2 with its leading edge in contact with the intermediate transfer belt 31 upstream of the secondary transfer section N2, and further in contact with the toner image formed on the surface of the intermediate transfer belt 31. Then, as shown in Figure 2(b), when the recording material P is transported to the secondary transfer section N2, the toner image is transferred from the intermediate transfer belt 31 to the recording material P by the pressurizing action between the secondary transfer inner roller 32 and the secondary transfer outer roller 41, and the electrical action of the transfer electric field.
[0032] Here, for high-precision secondary transfer, the length of contact between the intermediate transfer belt 31 and the recording material P in the direction of rotation of the intermediate transfer belt 31 upstream of the secondary transfer section N2, when the recording material P is transported to the secondary transfer section N2 (also referred to here as the "contact length"), is important. If the contact length is long, image defects may occur due to friction between the toner image formed on the surface of the intermediate transfer belt 31 and the recording material P. On the other hand, if the contact length is short, the gap G (Figure 2(c)) between the intermediate transfer belt 31 and the recording material P becomes large, and image defects may occur due to discharge phenomena occurring in the gap G. Furthermore, when a recording material P with high rigidity, such as cardboard or coated paper, is used, the intermediate transfer belt 31 is more likely to deform when the recording material P enters the contact position of the leading edge of the recording material P against the intermediate transfer belt 31 upstream of the secondary transfer section N2. This makes it easier for the above-mentioned gap G to occur, and image defects due to discharge in the gap G may occur.
[0033] As in this embodiment, by providing the pressing member 70, it becomes easier to appropriately set the contact length between the intermediate transfer belt 31 and the recording material P upstream of the secondary transfer section N2. In particular, in this embodiment, the shape (position) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 can be controlled by variably controlling the position of the pressing member 70 with the moving mechanism 71. As a result, by optimizing the contact length between the intermediate transfer belt 31 and the recording material P upstream of the secondary transfer section N2, the toner image can be stably transferred to the secondary material. Furthermore, even when a recording material P with high rigidity, such as cardboard or coated paper, is used, the deformation of the intermediate transfer belt 31 when it comes into contact with the recording material P can be suppressed by the effect of the elastic biasing of the pressing member 70. As a result, it is possible to suppress the increase in the gap G between the intermediate transfer belt 31 and the recording material P.
[0034] In this embodiment, the image forming apparatus 100 is designed to achieve high productivity, and the intermediate transfer belt 31 is transported at a speed of 400 mm / s. In this embodiment, the toner has negative polarity. In this embodiment, to ensure appropriate transfer performance even at the transport speed of the intermediate transfer belt 31, a high-voltage bias of -10 kV is applied to the secondary transfer roller 32. However, the transport speed of the intermediate transfer belt 31, the polarity of the toner, and the value of the secondary transfer voltage are not limited to these.
[0035] 3. Pressing member and moving mechanism Next, the pressing member 70 and the moving mechanism 71 for changing the position of the pressing member 70 in this embodiment will be described. Figure 3 is a schematic perspective view showing the pressing member 70 and the moving mechanism 71 in this embodiment. Figure 4 is a schematic side view of the vicinity of the pressing member 70, taken from one end side (the front side of the paper in Figure 1) in the direction of the rotation axis of the secondary transfer internal roller 32, and approximately parallel to the direction of the rotation axis, for the purpose of explaining the operation of the moving mechanism 71 in this embodiment. Figure 4 shows the state in which the intermediate transfer belt 31 is not provided for illustrative purposes.
[0036] <Pressing member> In this embodiment, the image forming apparatus 100 has a pressing member (backup member) 70 on the inner circumferential surface side of the intermediate transfer belt 31, near the upstream side of the secondary transfer section N2. The pressing member 70 can press the inner circumferential surface of the intermediate transfer belt 31 near the entrance of the secondary transfer section N2, causing the intermediate transfer belt 31 to protrude outwards. The pressing member 70 is positioned to be able to contact the inner circumferential surface of the intermediate transfer belt 31 upstream of the secondary transfer inner roller 32 and downstream of the secondary transfer pre-roller 35 with respect to the rotational direction of the intermediate transfer belt 31. In particular, in this embodiment, the pressing member 70 is positioned to be able to contact the inner circumferential surface of the intermediate transfer belt 31 upstream of the secondary transfer inner roller 32 and downstream of the downstream end of the transport guide 22 (first guide member 22a) with respect to the transport direction of the recording material P.
[0037] In this embodiment, the pressing member 70 is composed of a plate-like (sheet-like) member that is approximately rectangular in plan view, having a predetermined length in the longitudinal direction which is approximately parallel to the width direction of the intermediate transfer belt 31, and a predetermined thickness in the short direction which is approximately perpendicular to the longitudinal direction. The width direction of the intermediate transfer belt 31 is approximately perpendicular to the direction of movement of the surface of the intermediate transfer belt 31 and is approximately parallel to the rotation axis direction of the secondary transfer inner roller 32. The length of the pressing member 70 in the longitudinal direction is equivalent to the length of the intermediate transfer belt 31 in the width direction. The free end (tip) 70a of the pressing member 70, which is one end in the short direction (the downstream end with respect to the rotation direction of the intermediate transfer belt 31), can contact the inner circumferential surface of the intermediate transfer belt 31 over approximately the entire width of the intermediate transfer belt 31, and can press the intermediate transfer belt 31. In this embodiment, the pressing member 70 has a fixed end (base end) 70b side, which is the other end in the shorter direction (the upstream end with respect to the rotational direction of the intermediate transfer belt 31), fixed to the mounting portion 70c by adhesive or the like. In this embodiment, the mounting portion 70c is made of sheet metal having a plate-like portion that extends along the width direction of the intermediate transfer belt 31 (the longitudinal direction of the pressing member 70), and is used to attach the pressing member 70 to the moving mechanism 71, which will be described later.
[0038] In this embodiment, the pressing member 70 is formed using a resin material. In this embodiment, the pressing member 70 is made of 0.5 mm thick PPS (polyphenylene sulfide), and the pressing member 70 elastically biases the intermediate transfer belt 31 by utilizing its flexibility. Note that the pressing member 70 is not limited to the configuration of this embodiment, and any material that can elastically bias the intermediate transfer belt 31 is acceptable. For example, the thickness of the pressing member 70 is not limited to 0.5 mm, but is preferably around 0.4 to 1.5 mm, and may be 1.0 mm, for example. Also, the material of the pressing member 70 is not limited to PPS, but may be PEEK (polyetheretherketone), PET (polyethylene terephthalate), etc.
[0039] Here, it is desirable that the pressing member 70, more specifically the end on the side of the free end (tip) 70a in the short direction of the pressing member 70 (here, also simply referred to as the "tip"), be positioned as close as possible to the secondary transfer internal roller 32. However, the pressing member 70 is positioned so as not to come into contact with the secondary transfer internal roller 32. For example, the pressing member 70 is positioned to contact the inner circumferential surface of the intermediate transfer belt 31 at a position, for example, about 2 mm or more, typically about 10 mm or more, upstream of the intermediate transfer belt 31 in the rotational direction from the position where the secondary transfer internal roller 32 and the intermediate transfer belt 31 come into contact. Alternatively, the pressing member 70 is positioned to contact the inner circumferential surface of the intermediate transfer belt 31 at a position, for example, about 40 mm or less, typically about 25 mm or less, upstream of the intermediate transfer belt 31 in the rotational direction from the position where the secondary transfer internal roller 32 and the intermediate transfer belt 31 come into contact.
[0040] <Movement mechanism> In this embodiment, the image forming apparatus 100 has a moving mechanism 71 that changes the position of the pressing member 70. By changing the position of the pressing member 70, the moving mechanism 71 can control the static shape (static position) of the pressing member 70, that is, the shape (attitude) of the intermediate transfer belt 31 upstream of the secondary transfer section N2. This allows the moving mechanism 71 to optimize the contact length between the intermediate transfer belt 31 and the recording material P upstream of the secondary transfer section N2. In other words, by changing the position of the pressing member 70, the moving mechanism 71 can control the amount of pressure (penetration amount, described later) applied by the pressing member 70 to the intermediate transfer belt 31. Furthermore, by changing the position of the pressing member 70, the moving mechanism 71 may be configured to change the state of contact or separation of the pressing member 70 from the intermediate transfer belt 31.
[0041] The moving mechanism 71 has a support member 72 that extends along the width direction of the intermediate transfer belt 31. The pressing member 70 is fixed to the support member 72. In this embodiment, a portion of the fixed end 70b side of the pressing member 70 in the short direction is fixed to a mounting portion 70c by adhesive or the like over substantially the entire width in the longitudinal direction, and this mounting portion 70c is fixed to the support member 72 by screws or the like. Both ends of the support member 72 in the longitudinal direction are provided with support holes 72a, which are cylindrical holes. The support member 72 is supported by the frame (not shown) of the intermediate transfer belt unit 30 so as to be able to rotate around a pivot axis that is substantially parallel to the width direction of the intermediate transfer belt 31, with respect to the support holes 72a. In this way, by rotating the support member 72 around a pivot axis that is substantially parallel to the width direction of the intermediate transfer belt 31, the pressing member 70 can be rotated around the pivot axis and its position can be changed.
[0042] The moving mechanism 71 also has a camshaft 74, which is a cylindrical member extending along the width direction of the intermediate transfer belt 31. The camshaft 74 is supported by the frame (not shown) of the intermediate transfer belt unit 30 so as to be able to rotate around a rotation axis substantially parallel to the width direction of the intermediate transfer belt 31. The moving mechanism 71 also has a cam 73, a transmission gear 76, and a detection flag (cam position flag) 77. These cam 73, transmission gear 76, and detection flag 77 are each fixed to the camshaft 74. The cam 73 is provided at both ends of the camshaft 74 in the direction of the rotation axis. The moving mechanism 71 also has a cam drive motor 75, which is a stepping motor, as a drive source. The cam drive motor 75 is fixed to the frame (not shown) of the intermediate transfer belt unit 30 so as to the frame (not shown) of the intermediate transfer belt unit 30 so as to have a drive gear 75a fixed to its output shaft mesh with a transmission gear 76 fixed to the camshaft 74. When the cam drive motor 75 rotates, the drive is transmitted to the camshaft 74 via the transmission gear 76, and the cam 73, transmission gear 76, and detection flag 77 rotate together with the camshaft 74 around a rotation axis that is substantially parallel to the width direction of the intermediate transfer belt 31.
[0043] The cam 73, acting as an operating part, is in contact with a cam follower 72b provided on the support member 72, which acts as a movable part. The cam 73 forms a stepless surface whose radius from the center of rotation changes uniformly according to its rotation angle. Therefore, when the cam 73 rotates due to the rotation of the cam drive motor 75, the support member 72 rotates around the support hole 72a. This allows the moving mechanism 71 to move the pressing member 70 and change its position. In this embodiment, changing the position of the pressing member 70 means, more specifically, changing the position of the tip of the pressing member 70 (hereinafter also simply referred to as the "tip position") assuming that the intermediate transfer belt 31 is absent. Specifically, in this embodiment, changing the position of the pressing member 70 means changing the position of the support member 72, which acts as a movable part of the moving mechanism 71.
[0044] Furthermore, the moving mechanism 71 has a detection sensor (cam position sensor, cam HP sensor) 78 as a detection means (detection unit) for detecting the rotational position of the cam 73, in particular, the home position (HP) in the rotational direction in this embodiment. The detection sensor 78 and the detection flag 77, which is fixed to the cam shaft 74 as an indicator means (indication unit), constitute an optical position detection mechanism. The moving mechanism 71 can be set to a preset neutral state by the action of the detection sensor 78 and the detection flag 77.
[0045] As shown in Figure 4(a), when the pressing member 70 is moved in the direction that presses the intermediate transfer belt 31, the cam 73 is driven by the cam drive motor 75 and rotates clockwise. As a result, the support member 72 rotates counterclockwise around the support hole 72a, and the position of the pressing member 70 (more specifically, the tip position) moves toward the outer circumferential surface of the intermediate transfer belt 31. Also, as shown in Figure 4(b), when the pressing member 70 is moved in the opposite direction, that is, away from the intermediate transfer belt 31, the cam 73 is driven by the cam drive motor 75 and rotates counterclockwise. As a result, the support member 72 rotates clockwise around the support hole 72, and the position of the pressing member 70 (more specifically, the tip position) moves toward the inner circumferential surface of the intermediate transfer belt 31.
[0046] In this embodiment, the support member 72 is biased to rotate in a direction that engages the cam follower 72b with the cam 73. The support member 72 is biased by the tension of the intermediate transfer belt 31 via the pressing member 70, and may also be provided with a spring or other biasing member as a biasing means for biasing the support member 72. This allows the pressing member 70 to be separated from the intermediate transfer belt 31.
[0047] Figure 5 is a schematic cross-sectional view (a cross-section approximately perpendicular to the rotation axis direction of the secondary transfer roller 32) for explaining the amount of penetration of the pressing member 70 into the intermediate transfer belt 31. The amount of pressure applied by the pressing member 70 to the intermediate transfer belt 31 can be expressed as the amount of penetration of the pressing member 70 into the intermediate transfer belt 31. This amount of penetration of the pressing member 70 is roughly the amount by which the pressing member 70 causes the intermediate transfer belt 31 to protrude outward relative to the tensioned surface of the intermediate transfer belt 31 formed by tensioning the secondary transfer roller 32 and the secondary transfer roller 35. The secondary transfer roller 35 is an example of an upstream roller among a plurality of tensioning rollers, which is positioned upstream of the secondary transfer roller 32 in the rotation direction of the intermediate transfer belt 31 and adjacent to the secondary transfer roller 32. In other words, in the cross-section shown in Figure 5, the common tangent line between the secondary transfer roller 32 and the secondary transfer roller 37 on the side in contact with the intermediate transfer belt 31 is called the common tangent line 31a. In this case, the penetration amount D of the pressing member 70 can be defined as the normal distance from the common tangent 31a to the tip of the pressing member 70 (the distance between the common tangent 31a and a line passing through the tip of the pressing member 70 and parallel to the common tangent 31a). Depending on the relative positions of the secondary transfer inner roller 32 and the secondary transfer outer roller 41 with respect to the rotational direction of the intermediate transfer belt 31, the pressing member may be stretched between the secondary transfer outer roller 41 and the secondary transfer pre-roller 35 to form a tensioned surface of the intermediate transfer belt 31 upstream of the secondary transfer section N2. In this case, the penetration amount can be defined in the same manner as above with respect to the common tangent between the secondary transfer outer roller 41 and the secondary transfer pre-roller 37 on the side in contact with the intermediate transfer belt 31. Furthermore, in this embodiment, we assume that the penetration amount D of the pressing member 70 necessary to form an appropriate shape (position) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 is D1.
[0048] Figure 6 is a schematic block diagram showing the control configuration for setting (adjusting) the position of the pressing member 70 in this embodiment. Figure 7 is a schematic graph showing the relationship between the penetration amount D of the pressing member 70 and the number of pulses (input pulses) P input to the cam drive motor 75. In this embodiment, the image forming apparatus 100 is provided with a storage unit 79 and a control unit 80. The control unit 80 can control the position of the pressing member 70 (more specifically, the tip position) by controlling the rotation angle of the cam 73, thereby controlling the position of the support member 72 in relation to the rotation direction of the support member 72. In other words, the control unit 80 can detect the neutral state of the moving mechanism 71 (home position of the cam 73) based on the signal (information) from the detection sensor 78. The control unit 80 can also pulse control the cam drive motor 75. Then, from the neutral state, the control unit 80 can move the support member 72 to an arbitrary position and move the pressing member 70 to an arbitrary position by inputting an arbitrary number of pulses P to the cam drive motor 75. This allows for variable control of the penetration amount D of the pressing member 70 (Figure 7). In particular, in this embodiment, the control unit 80 can input an arbitrary number of pulses P to the cam drive motor 75, thereby moving the pressing member 70 by the action of the moving mechanism 71 so that the penetration amount D of the pressing member 70 approaches a predetermined penetration amount D1.
[0049] While not limited to this, the penetration depth D of the pressing member 70 is preferably about 1.0 mm to 3.5 mm or less. This stabilizes the shape of the intermediate transfer belt 31 upstream of the secondary transfer section N2 and reduces the possibility that the smooth rotation of the intermediate transfer belt 31 may be hindered by an excessive increase in the load on the contact surface between the pressing member 70 and the intermediate transfer belt 31. Furthermore, the amount of pressure D of the pressing member 70 should be at a desired value when the recording material P is near the entrance of the secondary transfer section N2 and when it is passing through the secondary transfer section N2. More specifically, the area near the entrance of the secondary transfer section N2 corresponds to the region of the intermediate transfer belt 31 from the position where the pressing member 70 contacts the intermediate transfer belt 31 to the secondary transfer section N2, with respect to the transport direction of the recording material P. Furthermore, for example, in the standby state of the image forming apparatus 100 (power ON and waiting for job input), or in the power OFF state or sleep state, the pressing member 70 can be positioned at a distance from (or simply in contact with) the intermediate transfer belt 31. This suppresses deformation of the pressing member 70 when the image forming apparatus 100 is left unattended. In this embodiment, the neutral state of the moving mechanism 71 is set to a state in which the pressing member 70 is distanced from the intermediate transfer belt 31. In this embodiment, the moving mechanism 71 is in the neutral state when the image forming apparatus 100 is in the standby state, or in the power OFF state or sleep state.
[0050] 4. Control Modes The main body 110 of the image forming apparatus 100 is equipped with a control unit 80, a storage unit 79, and a signal input / output unit (not shown) for the control unit 80, as described above (Figure 6). The control unit 80 is composed of a CPU, which is an arithmetic control means that performs arithmetic processing. The storage unit 79 is composed of a storage means (storage medium) such as ROM (including rewritable type) and RAM. The control unit 80 can comprehensively control each part of the image forming apparatus 100 based on input signals from various sensors equipped in the image forming apparatus 100, using the RAM as a working area according to a control program stored in the ROM. The image forming apparatus 100 is also equipped with an operation unit (operation panel) 120 (Figure 1). The operation unit 120 has a display unit (display means) that displays information controlled by the control unit 80, and an input unit (input means) that inputs information to the control unit 80 through operation by an operator such as a user or service person. The operation unit 120 may be configured to have a touch panel that has the functions of a display means and an input means. Furthermore, the image forming apparatus 100 may be connected to external devices such as a personal computer and an image reading device.
[0051] The control unit 80 controls each part of the image forming apparatus 100 to execute image forming operations based on job information input from external devices and the operation unit 120. The job information includes a start instruction (start signal), information on image forming conditions such as information on the recording material P (command signal), and image information (image signal). The information on the recording material P (recording material information) includes any information that can distinguish the recording material P, such as attributes based on general characteristics such as plain paper, fine paper, glossy paper, coated paper, embossed paper, cardboard, thin paper, and paper quality (so-called paper type category), numerical values or numerical ranges such as basis weight, thickness, and rigidity, or brand name (including manufacturer, product name, part number, etc.). Each recording material P distinguished by the information on the recording material P can be considered to constitute a type of recording material P. Furthermore, the information on the recording material P may be included in the print mode information that specifies the operation settings of the image forming apparatus 100, such as "plain paper mode" or "cardboard mode," or may be replaced by the print mode information.
[0052] The image forming apparatus 100 executes a job (print job), which is a series of operations that form and output an image on one or more recording materials P, initiated by a single start instruction. A job generally includes an image forming process (image forming operation), a pre-rotation process, a paper-to-paper process when forming an image on multiple recording materials P, and a post-rotation process. The image forming process is the period during which the electrostatic image, toner image, primary transfer, and secondary transfer of the toner image are performed for the image to be actually formed and output on the recording material P, and this period is referred to as the image forming time (image forming period). More specifically, the timing of the image forming time differs depending on the position where each of these processes—electrostatic image formation, toner image formation, primary transfer, and secondary transfer of the toner image—is performed. The pre-rotation process is the period during which preparatory operations are performed before the image forming process, from when a start instruction is input until the image is actually formed. The paper-to-paper process is the period corresponding to the space between recording materials P when image forming is performed continuously on multiple recording materials P (continuous image forming). The post-rotation process is the period during which tidying operations (preparation operations) are performed after the image forming process. The non-image forming period (non-image forming period) is the period other than the image forming period, and includes the following periods: the standby state, the pre-rotation process, the inter-paper process, the post-rotation process, and also the pre-multi-rotation process, which is the preparation operation when the image forming apparatus 100 is powered on or wakes up from sleep state, as well as the period from the standby state until the start of the pre-rotation process or pre-multi-rotation process. In this embodiment, as will be described later, the image forming apparatus 100 can perform an operation to set (adjust) the position of the pressing member 70 during the non-image forming period.
[0053] 5. Setting (adjusting) the position of the pressing member Figure 8 is a schematic graph showing the relationship between the time (also referred to here as "contact time") T during which the intermediate transfer belt 31 and the pressing member 70 are in contact, and the amount of penetration D of the pressing member 70. Figure 9 is a schematic cross-sectional view (a cross-section approximately perpendicular to the rotation axis direction of the secondary transfer roller 32) to explain the change in the amount of penetration D of the pressing member 70.
[0054] As described above, the shape (posture) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 is determined by the static shape (static position) of the pressing member 70 when the biasing force of the pressing member 70 and the resistance force due to the tension of the intermediate transfer belt 31 are balanced. The pressing member 70 receives the resistance force due to the tension of the intermediate transfer belt 31 and is deformed according to the resistance force. That is, when the biasing force of the pressing member 70 fluctuates, the static shape (static position) of the pressing member 70 fluctuates, and the shape (posture) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 also fluctuates.
[0055] When the inner peripheral surface of the intermediate transfer belt 31 and the pressing member 70 are in contact, the pressing member 70 slides against the intermediate transfer belt 31 while receiving the resistance force due to the tension of the intermediate transfer belt 31. When the contact time T between the intermediate transfer belt 31 and the pressing member 70 becomes longer, the pressing member 70 undergoes time-dependent changes such as creep deformation (also simply referred to as "deformation" here) and wear according to the contact time T. When such time-dependent changes such as deformation and wear occur in the pressing member 70, as shown in FIGS. 8 and 9, the intrusion amount D of the pressing member 70, which was an appropriate intrusion amount D1, changes to, for example, an intrusion amount D2 (<D1). The dashed line in FIG. 9 represents the state of the pressing member 70 in which time-dependent changes such as deformation and wear have occurred. In this case, the elastic deformation amount of the pressing member 70 decreases, and the resistance force due to the tension of the intermediate transfer belt 31 decreases, that is, the deformation amount of the intermediate transfer belt 31 becomes smaller. That is, when time-dependent changes such as deformation and wear occur in the pressing member 70, the intermediate transfer belt 31 moves away from the recording material P, and the contact length between the recording material P and the intermediate transfer belt 31 becomes shorter. As a result, image defects due to discharge may occur in the secondary transfer section N2.
[0056] Here, if a hard material such as metal is used as the material for the pressing member 70, it is thought that wear of the pressing member 70 can be suppressed. However, in this case, the inner circumferential surface of the intermediate transfer belt 31 is prone to wear and the formation of an uneven shape. If an uneven shape is formed on the inner circumferential surface of the intermediate transfer belt 31 in this way, a stable current may not be applied to the secondary transfer section N2, potentially causing image defects. Also, since a high-voltage current is applied to the secondary transfer section N2, if the pressing member 70 is made of metal, current is more likely to leak into the pressing member 70, and an appropriate current may not flow to the secondary transfer section N2, potentially causing image defects. If the pressing member 70 is moved to a position where no leakage of transfer current occurs, the surface of the intermediate transfer belt 31 formed between the pressing member 70 and the secondary transfer inner roller 32 or secondary transfer outer roller 41 becomes prone to deformation, and the effect of providing the pressing member 70 may become insufficient. For this reason, it is preferable to form the pressing member 70 from a flexible resin material. However, as will be described later, the material of the pressing member 70 is not limited to resin material.
[0057] In order to maintain the intermediate transfer belt 31 upstream of the secondary transfer section N2 in an appropriate shape (position), it is necessary to maintain the penetration amount D (biasing force) of the pressing member 70 in an appropriate state. Therefore, in this embodiment, the control unit 80 operates the moving mechanism 71 based on information (here also referred to as "contact history information") regarding the contact history (contact state, contact condition) between the intermediate transfer belt 31 and the pressing member 70. As a result, the control unit 80 controls the pressing member 70 to move to an appropriate position so that the penetration amount D of the pressing member 70 becomes (approaches) an appropriate penetration amount D1, based on the contact history information between the intermediate transfer belt 31 and the pressing member 70. In this embodiment, the contact history information between the intermediate transfer belt 31 and the pressing member 70 is stored in the storage unit 79. In this embodiment, the contact time T between the intermediate transfer belt 31 and the pressing member 70 is recorded in the storage unit 79 as contact history information between the intermediate transfer belt 31 and the pressing member 70. In other words, in this embodiment, the control unit 80 measures the contact time when the pressing member 70 comes into contact with the intermediate transfer belt 31 and sequentially updates and stores this information in the storage unit 79. The storage unit 79 also stores information showing the relationship between the contact time T and the number of pulses P input to the cam drive motor 75 to make the penetration amount D of the pressing member 70 an appropriate penetration amount D1 (information for correcting the initial number of pulses P according to the contact time T). In this embodiment, the information for correcting the initial number of pulses P according to the contact time T is specifically the information of values A and B, which will be described later. When the control unit 80 performs the operation of pressing the intermediate transfer belt 31 with the pressing member 70, it controls the operation of the moving mechanism 71 so that the penetration amount D of the pressing member 70 becomes an appropriate penetration amount D1 according to the contact time T stored in the storage unit 79. In other words, the control unit 80 controls the input of an appropriate number of pulses P to the cam drive motor 75 according to the contact time T.
[0058] Figure 10 is a flowchart illustrating an example of a job operation, including the operation of setting (adjusting) the position of the pressing member 70 in this embodiment. The series of operations of the moving mechanism 71 during image formation will be explained using the flowchart in Figure 10. For the sake of simplicity, the example will be that an image is formed on a single recording material P. Furthermore, the image formation operation will be performed when the intermediate transfer belt 31 is pressed by the pressing member 70 (penetration amount D > 0).
[0059] When job information is input from an external device such as a personal computer (S101), the control unit 80 controls the moving mechanism 71 to a neutral state based on the signal from the detection sensor 78 (S102). In S102, if the moving mechanism 71 is already in a neutral state, the control unit 80 maintains that state; if it is not in a neutral state, it drives the cam drive motor 75 to bring it into a neutral state. As mentioned above, in this embodiment, when the moving mechanism 71 is in a neutral state, the pressing member 70 is separated from the intermediate transfer belt 31.
[0060] Next, the control unit 80 refers to the contact time T between the intermediate transfer belt 31 and the pressing member 70 stored in the memory unit 79 and determines whether the contact time T is greater than or equal to a predetermined time (threshold) T1 (S103). If the control unit 80 determines in S103 that the contact time T is less than time T1 ("No"), it determines the number of pulses P to be input to the cam drive motor 75 to be P1 (S104). The number of pulses P1 is an arbitrary number of pulses P set so that the penetration amount D of the pressing member 70 is an appropriate penetration amount D1 when the pressing member 70 is in a state where no changes over time such as deformation or wear have occurred (initial state).
[0061] Furthermore, if the control unit 80 determines in S103 that the contact time T is greater than time T1 ("Yes"), it makes a determination of the magnitude of the contact time T and a predetermined time (threshold) T2 (>T1) (S105). If the control unit 80 determines in S105 that the contact time T is less than time T2 ("No"), it determines the number of pulses P to be input to the cam drive motor 75 to be P2 (S106). This number of pulses P2 is obtained by adding an additional number of pulses A to the above number of pulses P1 (initial number of pulses P), and is an arbitrary value. For example, when the contact time T is T2, if the deformation and wear amount of the pressing member 70 is assumed to be 0.5 mm, the penetration amount D of the pressing member 70 decreases by 0.5 mm. In this case, in order to maintain the penetration amount D of the pressing member 70 in an appropriate state, it is necessary to increase the penetration amount D by 0.5 mm. Thus, the number of pulses required to increase the penetration amount D by 0.5 mm is "number of pulses A". Furthermore, if the control unit 80 determines in S105 that the contact time T is greater than time T2 ("Yes"), it determines the number of pulses P to be input to the cam drive motor 75 to be P3 (S107). This number of pulses P3 is the number of pulses P1 (initial number of pulses P) plus an additional number of pulses B (>A), and is an arbitrary value. Then, after determining the number of pulses P to be input to the cam drive motor 75 in S104, S106, or S107, the control unit 80 inputs that number of pulses P to the cam drive motor 75 and executes the operation to move the pressing member 70 with the moving mechanism 71 (S108).
[0062] The control unit 80 executes the image forming operation after the movement of the pressing member 70 by the moving mechanism 71 is completed (S109). After the image forming operation is completed, the control unit 80 moves the moving mechanism 71 to the neutral position as soon as the predetermined back-rotation operation is completed (S110). The control unit 80 also updates the value of the contact time T in the storage unit 79 by adding the newly generated contact time between the intermediate transfer belt 31 and the pressing member 70 during the image forming operation (S111), and puts the image forming apparatus 100 into standby mode.
[0063] As explained using Figure 4(a), when the cam drive motor 75 operates and the cam 73 rotates, the support member 72 that contacts the cam 73 rotates counterclockwise around the support hole 72a, and the pressing member 70 moves so that the penetration amount D increases. Figure 11 is a schematic cross-sectional view illustrating the state in which the position of the pressing member 70 has been changed due to changes over time such as deformation or wear. Figure 12 is a graph showing the schematic relationship between the contact time T, the penetration amount D, and the number of pulses P input to the cam drive motor 75 in this embodiment. In this embodiment, even if the contact time T becomes longer than time T1 or time T2 and changes over time such as deformation or wear occur in the pressing member 70, the position of the pressing member 70 is controlled by the series of operations described above. As a result, in this embodiment, even if the amount of repeated use of the image forming apparatus 100 increases, an appropriate penetration amount D1 of the pressing member 70 (more specifically, a penetration amount within a predetermined range for a predetermined penetration amount D1) can be maintained (Figures 11 and 12). The dashed lines in Figure 11 indicate the state of the moving mechanism 71 and the pressing member 70 when deformation or wear occurs in the pressing member 70 over time, and pulse numbers P2 and P3 are input to the cam drive motor 75. Furthermore, as shown in Figure 12, the number of pulses P input to the cam drive motor 75 is changed to increase as the contact time T increases.
[0064] Furthermore, the pressing member 70 can be replaced with a new one during periodic maintenance of the image forming apparatus 100 or when unintended deformation occurs in the pressing member 70. In such cases, a service worker or other operator can instruct the control unit 80 from the operation unit 120 of the image forming apparatus 100 to initialize (reset) the contact time T value stored in the memory unit 79 to an initial value (e.g., 0). A similar operation may be performed from an external device that is communicatively connected to the image forming apparatus 100. This ensures that even when the pressing member 70 is replaced with a new one, the number of pulses P input to the cam drive motor 75 can be set at the appropriate timing, maintaining the penetration amount D1. The same applies when a unit including the pressing member 70 is replaced, such as a unit in which the pressing member 70 and at least a part of the components of the moving mechanism 71 are integrally replaceable, or an intermediate belt unit 30.
[0065] Furthermore, if the contact time T exceeds a threshold during the execution of a continuous image formation job on multiple recording materials P, the position of the pressing member 70 may be changed in the inter-paper process.
[0066] 6. Variations In this embodiment, the intermediate transfer belt 31 and the pressing member 70 are always in contact when performing the image forming operation, but the present invention is not limited to this configuration. For example, when transferring a toner image to a recording material P with high rigidity such as cardboard or coated paper, the intermediate transfer belt 31 and the pressing member 70 are in contact, and when transferring a toner image to other recording materials P, the pressing member 70 is retracted from the intermediate transfer belt 31. In other words, the image forming apparatus 100 can be configured such that the pressing member 70 and the intermediate transfer belt 31 are in contact during image forming in at least one predetermined mode (secondary transfer). This at least one predetermined mode of image forming is the mode in which a recording material P with high rigidity such as cardboard or coated paper is used. In this case, typically, during image forming in this at least one predetermined mode, the intermediate transfer belt 31 is pressed by the pressing member 70 (penetration amount D>0). In this case, when image formation is performed in a mode other than the predetermined mode described above, where ordinary paper or the like is used as the recording material P, the pressing member 70 is retracted so as not to come into contact with the intermediate transfer belt 31.
[0067] Furthermore, the image forming apparatus 100 may be capable of performing multiple modes in which the pressing member 70 and the intermediate transfer belt 31 come into contact. In this case, the predetermined penetration amount D of the pressing member 70 may differ in some or all of the multiple modes. In this case, control similar to that in this embodiment can be performed so that an appropriate penetration amount D is obtained in each mode according to the contact time T.
[0068] Furthermore, the moving mechanism 71 is not limited to the configuration described above in this embodiment, and any configuration can be used that allows the position (more specifically, the tip position) of the pressing member 70 to be moved arbitrarily. In this embodiment, the moving mechanism 71 was configured to rotate the pressing member 70, but the moving mechanism 71 may be configured to have a movable part that can move the pressing member 70 in the direction of pressing the intermediate transfer belt 31 and in the opposite direction. For example, the moving mechanism 71 may be configured to change the position (more specifically, the tip position) of the pressing member 70 by linearly reciprocating (sliding) the pressing member 70. Also, the moving mechanism 71 is not limited to one that uses an actuator that operates a movable part with a cam, but may use, for example, an actuator that operates a movable part with a solenoid.
[0069] Furthermore, although the pressing member 70 has been described in this embodiment as being composed of a flexible, planar sheet material, the present invention is not limited to such a configuration. The pressing member 70 may, for example, have a contact member that contacts the intermediate transfer belt 31 upstream of the secondary transfer section N2, and an elastic member such as a spring, thereby elastically biasing the intermediate transfer belt 31. For example, the intermediate transfer belt 31 may be elastically biased by biasing a contact member made of relatively rigid sheet metal with an elastic member (biasing member) composed of a compression coil spring or a tension spring. In this case, the moving mechanism 71 can be configured to move the pressing member, which is composed of a contact member and an elastic member (for example, by moving the elastic member). As the contact member, for example, a roller made of an elastic body such as sponge or rubber, or a roller made of a rigid body such as resin or metal may be used. However, it is preferable that the pressing member 70 be made of a planar sheet material so that it is easy to position the pressing member 70 sufficiently close to the secondary transfer section N2. Furthermore, while the pressing member 70 can be made of a thin metal plate or the like, it is preferable that the pressing member 70 be made of a resin material, from the viewpoint of suppressing wear of the intermediate transfer belt 31 and leakage of the transfer current, as mentioned above.
[0070] Furthermore, in this embodiment, information for correcting the number of pulses P1 to set the penetration amount D to an appropriate penetration amount D1 in the initial state (new state) of the pressing member 70 according to the contact time T is obtained in advance and stored in the storage unit 79. However, the present invention is not limited to this configuration. For example, information (such as table data) showing the relationship between the number of pulses P and the penetration amount D (the relationship between the rotation angle of the cam 73 and the rotation angle of the support member 72), as shown in Figure 7, may be set in advance for each contact time T. This makes it possible to change the position of the pressing member 70 to set an arbitrary penetration amount D according to the current contact time T.
[0071] Furthermore, although this embodiment describes the use of contact time T as contact history information between the intermediate transfer belt 31 and the pressing member 70, the present invention is not limited to this configuration. Any information that allows for an approximate estimation of the contact time between the intermediate transfer belt 31 and the pressing member 70 can be used as contact history information between the intermediate transfer belt 31 and the pressing member 70. For example, it may be the number of images formed (the number of recording material P output during the image forming operation), the rotation time or number of rotations of the intermediate transfer belt 31, etc. In configurations where the pressing member 70 is substantially always in contact with the intermediate transfer belt 31 during image forming, these number of images formed, the rotation time or number of rotations of the intermediate transfer belt 31, etc., can be suitably used. In addition, the contact history information may be stored separately for each type of recording material P. For example, from the viewpoint of the rigidity of the recording material P, an acceleration coefficient set in advance according to the type of recording material P may be added to the contact history information. Furthermore, if the image forming operation can be performed with multiple different penetration amount D settings, the contact history information may be stored separately for each penetration amount D setting. For example, a preset acceleration coefficient may be added to the contact history information according to the setting of the intrusion amount D. Furthermore, the detection results of an environmental sensor, which acts as an environmental detection means for detecting the environment of the image forming apparatus 100 (at least one of the temperature or humidity inside or outside the image forming apparatus 100), may be used in conjunction. For example, the environmental conditions of temperature and humidity when the intermediate transfer belt 31 and the pressing member 70 come into contact may be stored together, and a preset acceleration coefficient may be added to the contact history information according to the temperature and humidity.
[0072] Furthermore, in this embodiment, the contact time T and the number of pulses P input to the cam drive motor 75 were set to three levels, but the present invention is not limited to such a configuration. Any configuration that changes the position of the pressing member 70 when a predetermined threshold is exceeded by a predefined contact history information is acceptable. For example, in this embodiment, the position of the pressing member 70 (the number of pulses P input to the cam drive motor 75) was changed in steps in response to changes in the contact history information, but the present invention is not limited to such an embodiment. For example, the position of the pressing member 70 (the number of pulses P input to the cam drive motor 75) may be changed substantially continuously (linearly) in response to changes in the contact history information, and the amount of penetration D of the pressing member 70 may be controlled to be substantially constant.
[0073] Furthermore, in configurations where, for example, the pressing member 70 is substantially always in contact with the intermediate transfer belt 31, the moving mechanism 71 may be configured to move the pressing member 70 only in the direction that presses the intermediate transfer belt 31. Even with such a configuration, if the pressing member 70 undergoes changes over time such as deformation or wear, the position of the pressing member 70 can be changed so that the amount of penetration D of the pressing member 70 becomes a predetermined amount of penetration D1.
[0074] Furthermore, in this embodiment, the storage unit 79 and the control unit 80 were provided in the main body 110 of the image forming apparatus 100, but the present invention is not limited to this configuration. The storage unit 79 and the control unit 80 may be provided in any part of the image forming apparatus 100 as long as it is possible to set (adjust) the position of the pressing member 70 in the same manner as in this embodiment. For example, at least one of the storage unit 79 or the control unit 80 may be provided in the intermediate transfer belt unit 30.
[0075] 7. Effects As described above, in this embodiment, the image forming apparatus 100 includes a rotatable endless belt 31 that carries a toner image, a plurality of tension rollers that tension the belt 31, including an inner roller 32 and a plurality of tension rollers including an upstream roller 35 that is positioned upstream of the inner roller 32 and adjacent to the inner roller 32 with respect to the rotational direction of the belt 31, and an outer member 4 that is positioned opposite the inner roller 32 and forms a transfer section N2 that contacts the outer circumferential surface of the belt 31 to transfer the toner image from the belt 31 to the recording material P. The image forming apparatus 100 includes a pressing member 70 that can contact the inner surface of the belt 31 upstream of the inner roller 32 and downstream of the upstream roller 35 in the rotational direction of the belt 31, and can elastically bias the belt 31 to press it from the inner surface side to the outer surface side, and a moving mechanism 71 that has a moving part 72 that can move the pressing member 70 in the direction of pressing the belt 31, and is capable of executing a mode in which a toner image is transferred from the belt 31 to the recording material P while the belt 31 is pressed by the pressing member 70. In this embodiment, the image forming apparatus 100 includes a storage unit 79 that stores contact history information correlated with the time the belt 31 and the pressing member 70 are in contact, and a control unit 80 that sets the position of the moving part 72 when executing the above mode based on the contact history information.
[0076] In this embodiment, the control unit 80 sets the position of the moving unit 72 when executing the above mode such that the amount by which the moving unit 72 moves the pressing member 70 in the direction of pressing the belt 31 is greater when the time of contact between the belt 31 and the pressing member 70, as indicated by the contact history information, is a second time which is longer than the first time. In addition, in this embodiment, the control unit 80 sets the position of the moving unit 72 when executing the above mode such that the amount of pressure applied to the belt 31 by the pressing member 70 is a predetermined amount, based on the contact history information. In addition, in this embodiment, the moving unit 72 is rotatable around a rotation axis substantially parallel to the width direction of the belt 31, and the control unit 80 sets the position of the moving unit 72 in relation to the rotation direction when executing the above mode. In addition, in this embodiment, the moving mechanism 71 has a motor 75 that rotates the moving unit 72, and the control unit 80 controls the position of the moving unit 72 in relation to the rotation direction by controlling the amount of drive of the motor 75.
[0077] In this embodiment, the pressing member 70 is positioned with its longitudinal direction substantially parallel to the width direction of the belt 31, its upstream end in the short direction relative to the rotation direction of the belt 31 is connected to the moving part 72, and its downstream end in the short direction relative to the rotation direction of the belt 31 is made of a plate-like member that can contact the inner circumferential surface of the belt 31. In this embodiment, at least the portion of the pressing member 70 that contacts the belt 31 is made of a resin material. The contact history information may be information about the time the belt 31 and the pressing member 70 were in contact. The contact history information may also be information about the rotation time or number of rotations of the belt 31. The contact history information may also be information about the number of recording materials that formed and output images.
[0078] Furthermore, according to this embodiment, even if deformation or wear occurs in the pressing member 70 over time, the shape (position) of the intermediate transfer belt 31 upstream of the secondary transfer section N2 can be maintained in an appropriate shape (position). Therefore, changes in the contact length between the intermediate transfer belt 31 and the recording material P can be suppressed. This makes it possible to suppress the occurrence of image defects.
[0079] [others] Although the present invention has been described above with reference to specific embodiments, the present invention is not limited to the embodiments described above.
[0080] In the above-described embodiment, an outer roller that directly contacts the outer circumferential surface of the intermediate transfer belt was used as an outer member that forms a secondary transfer portion together with an inner roller as an inner member. In contrast, the configuration may use an outer roller and a secondary transfer belt stretched between the outer roller and other rollers as the outer member. For example, the outer roller can be configured to contact the outer circumferential surface of the intermediate transfer belt via the secondary transfer belt. In such a configuration, the intermediate transfer belt and the secondary transfer belt are sandwiched between an inner roller that contacts the inner circumferential surface of the intermediate transfer belt and an outer roller that contacts the inner circumferential surface of the secondary transfer belt, thereby forming a secondary transfer portion. In this case, the contact portion between the intermediate transfer belt and the secondary transfer belt is the secondary transfer portion (secondary transfer nip).
[0081] Furthermore, although the above-described embodiment described a case where the belt-shaped image carrier is an intermediate transfer belt, the present invention can be applied to any image carrier composed of an endless belt that transports the toner image carried at the image formation position. Examples of such belt-shaped image carriers include, in addition to the intermediate transfer belt in the above-described embodiment, a photoreceptor belt and an electrostatic recording dielectric belt.
[0082] Furthermore, the present invention can also be implemented in other embodiments in which some or all of the configurations of the above-described embodiments are replaced with alternative configurations. Therefore, as long as the image forming apparatus uses a belt-shaped image carrier, it can be implemented regardless of whether it is a tandem type / single-drum type, a charging method, an electrostatic image forming method, a developing method, a transfer method, or a fixing method. In the above-described embodiments, the main parts related to the formation / transfer of toner images have been explained, but the present invention can be implemented in various applications such as printers, various printing machines, copiers, fax machines, and multifunction devices by adding the necessary equipment, equipment, and housing structures. [Explanation of symbols]
[0083] 30 Intermediate Transfer Belt Unit 31 Intermediate transfer belt 32 Secondary transfer inner roller 41 Secondary transfer outer roller 70 Pressing member 71 Moving mechanism 75 Cam drive motor (stepping motor) 79 Memory section 80 Control Unit 100 Image forming apparatus P recording material
Claims
1. An intermediate transfer belt onto which the toner image is transferred, A plurality of tension rollers for tensioning the intermediate transfer belt, each comprising an inner roller and an upstream roller provided adjacent to the inner roller upstream of the inner roller with respect to the rotational direction of the intermediate transfer belt, An outer member is positioned opposite the inner roller and contacts the outer circumferential surface of the intermediate transfer belt to form a transfer portion where the toner image is transferred from the intermediate transfer belt to the recording material. A pressing member is provided which can contact the inner circumferential surface of the intermediate transfer belt at a position upstream of the inner roller and downstream of the upstream roller with respect to the rotational direction of the intermediate transfer belt, and which can press the intermediate transfer belt from the inner circumferential surface side to the outer circumferential surface side by elastically biasing the intermediate transfer belt, A support member is provided to be movable and to support the pressing member, A moving mechanism for moving the support member, A control unit that controls the aforementioned moving mechanism, It has, The control unit, When the operation of transferring a toner image from the intermediate transfer belt to the recording material is performed on a predetermined type of recording material under predetermined environmental conditions while the pressing member is pressing the intermediate transfer belt, When the sum of the times during which each operation is performed from the new state of the pressing member is a first time, the position of the support member during the execution of the operation is the first position. When the sum is a second time that is longer than the first time, the position of the support member during the execution of the operation is such that the pressing member is moved from the first position to a second position in which the pressing member presses the intermediate transfer belt. An image forming apparatus characterized by controlling the aforementioned moving mechanism.
2. The image forming apparatus according to claim 1, wherein the support member is rotatable about a pivot axis substantially parallel to the width direction of the intermediate transfer belt, and the control unit controls the position of the support member with respect to the rotation direction of the support member during the execution of the operation.
3. The image forming apparatus according to claim 1, wherein the moving mechanism has a motor for rotating the support member, and the control unit controls the position of the support member in relation to the rotation direction of the support member by controlling the amount of drive of the motor.
4. The image forming apparatus according to claim 1, characterized in that the pressing member is arranged such that its longitudinal direction is substantially parallel to the width direction of the intermediate transfer belt, the upstream end of the intermediate transfer belt in the short direction in the rotational direction is connected to the support member, and the downstream end of the intermediate transfer belt in the short direction in the rotational direction is made of a plate-like member that can contact the inner circumferential surface of the intermediate transfer belt.
5. The image forming apparatus according to claim 1, characterized in that at least the portion of the pressing member that contacts the intermediate transfer belt is made of a resin material.
6. The image forming apparatus according to claim 1, characterized in that the first time is the time during which the number of recording materials on which an image is formed and output in the operation is a first number, and the second time is the time during which the number is a second number greater than the first number.
7. An intermediate transfer belt onto which the toner image is transferred, A plurality of tension rollers for tensioning the intermediate transfer belt, each comprising an inner roller and an upstream roller provided adjacent to the inner roller upstream of the inner roller with respect to the rotational direction of the intermediate transfer belt, An outer member is positioned opposite the inner roller and contacts the outer circumferential surface of the intermediate transfer belt to form a transfer portion where the toner image is transferred from the intermediate transfer belt to the recording material. A pressing member is provided which can contact the inner circumferential surface of the intermediate transfer belt at a position upstream of the inner roller and downstream of the upstream roller with respect to the rotational direction of the intermediate transfer belt, and which can press the intermediate transfer belt from the inner circumferential surface side to the outer circumferential surface side by elastically biasing the intermediate transfer belt, A support member is provided to be movable and to support the pressing member, A moving mechanism for moving the support member, A control unit that controls the aforementioned moving mechanism, It has, The control unit, When the operation of transferring a toner image from the intermediate transfer belt to the recording material is performed on a predetermined type of recording material under predetermined environmental conditions while the pressing member is pressing the intermediate transfer belt, When the sum of the number of recording materials output during the operation from the new state of the pressing member is a first number, the position of the support member during the execution of the operation is the first position, When the sum is a second number greater than the first number, the position of the support member during the execution of the operation is such that the pressing member is moved to a second position in a direction in which the pressing member presses the intermediate transfer belt, compared to the first position. An image forming apparatus characterized by controlling the aforementioned moving mechanism.
8. The image forming apparatus according to claim 7, wherein the support member is rotatable about a pivot axis substantially parallel to the width direction of the intermediate transfer belt, and the control unit controls the position of the support member with respect to the rotation direction of the support member during the execution of the operation.
9. The image forming apparatus according to claim 7, wherein the moving mechanism has a motor for rotating the support member, and the control unit controls the position of the support member in relation to the rotation direction of the support member by controlling the amount of drive of the motor.
10. The image forming apparatus according to claim 7, characterized in that the pressing member is arranged such that its longitudinal direction is substantially parallel to the width direction of the intermediate transfer belt, the upstream end of the intermediate transfer belt in the short direction in the rotational direction is connected to the support member, and the downstream end of the intermediate transfer belt in the short direction in the rotational direction is made of a plate-shaped member that can contact the inner circumferential surface of the intermediate transfer belt.
11. The image forming apparatus according to claim 7, characterized in that at least the portion of the pressing member that contacts the intermediate transfer belt is made of a resin material.
Citation Information
Patent Citations
Image forming device
JP1997080926A
Image forming apparatus
JP2003316088A
Image forming apparatus
JP2014134620A
Image forming apparatus
JP2021135377A
Image forming apparatus
KR1020030065084A