This patent application is based on and claims priority pursuant to 35 U.S.C. § 119(a) to Japanese Patent Application No. 2017-053758, filed on Mar. 17, 2017, in the Japan Patent Office, the entire disclosure of which is hereby incorporated by reference herein.
This disclosure generally relates to a belt device, an intermediate transfer device, and an image forming apparatus, such as a copier, a printer, a facsimile machine, or a multifunction peripheral having at least two of copying, printing, facsimile transmission, plotting, and scanning capabilities.
There is a belt device that includes an endlessly moving belt looped around a plurality of rollers. One of the plurality of rollers is inclined relative to the other roller.
According to an embodiment of this disclosure, an improved belt device includes a plurality of support rotators, a belt, a rotator inclination unit, a belt tension adjuster, and a descent stopper. The belt is looped around the plurality of support rotators and is rotated by the plurality support rotators. The rotator inclination unit inclines a rotation axis of a first support rotator of the plurality of support rotators relative to a rotation axis of another support rotator of the plurality of support rotators that is different from the first support rotator. The belt tension adjuster adjusts tension of the belt, and the descent stopper prevents the first support rotator from descending.
A more complete appreciation of the disclosure and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
The accompanying drawings are intended to depict embodiments of the present disclosure and should not be interpreted to limit the scope thereof. The accompanying drawings are not to be considered as drawn to scale unless explicitly noted. In addition, identical or similar reference numerals designate identical or similar components throughout the several views.
In describing embodiments illustrated in the drawings, specific terminology is employed for the sake of clarity. However, the disclosure of this patent specification is not intended to be limited to the specific terminology so selected, and it is to be understood that each specific element includes all technical equivalents that have the same function, operate in a similar manner, and achieve a similar result.
As used herein, the singular forms “a”, “an”, and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
It is to be noted that the suffixes Y, M, C, and K attached to each reference numeral indicate only that components indicated thereby are used for forming yellow, magenta, cyan, and black images, respectively, and hereinafter may be omitted when color discrimination is not necessary.
Descriptions are given below of an electrophotographic color printer (hereinafter, simply referred to as “printer”) as an example of an image forming apparatus according to an embodiment of the present disclosure. A basic configuration of a printer 100 is described below.
Toner images of different colors are formed on the four photoconductors 1a, 1b, 1c, and 1d, respectively. More specifically, black toner images, magenta toner images, cyan toner images, and yellow toner images are formed on the photoconductors 1a, 1b, 1c, and 1d, respectively. As illustrated in
In the intermediate transfer device 60, the intermediate transfer belt 3 as an intermediate transferor is disposed so as to face the photoconductors 1a, 1b, 1c, and 1d. In a state illustrated in
The intermediate transfer belt 3 is either a multi-layer belt or a single-layer belt. In the case of the multi-layer belt, the intermediate transfer belt 3 preferably includes a base layer formed of a material, such as fluoroplastic, polyvinylidene fluoride (PVDF) sheet, or polyimide resin, that is less stretchy, and a smooth coat layer formed of, for example, fluoroplastic covers the surface of the intermediate transfer belt 3. In the case of the single-layer belt, the intermediate transfer belt 3 is preferably made of, for example, polyvinylidene fluoride (PVDF), polycarbonate (PC), polyimide (PI), or the like.
Regardless of the color of toner, the configuration and operation to form toner images on the photoconductors 1a, 1b, 1c, and 1d are similar. Similarly, the configuration and operation to transfer the toner images onto the intermediate transfer belt 3 are similar regardless of the color of toner. Accordingly, a description is given of the configuration and operation to form black toner images on the photoconductor 1a disposed most downstream of the intermediate transfer belt 3 in a direction of movement of the intermediate transfer belt 3 (hereinafter, referred to as “belt moving direction”) and transfer black toner images onto the intermediate transfer belt 3 as representative. Descriptions of the configuration and operation regarding other colors are omitted to avoid redundancy.
The photoconductor 1a for black rotates clockwise indicated by arrow C in
When the electrostatic latent image on the photoconductor 1a passes a developing device 10a for black, the electrostatic latent image is developed with black toner into a visible image. Primary transfer roller 11a for black is disposed inside the looped intermediate transfer belt 3, facing the photoconductor 1a via the intermediate transfer belt 3. The primary transfer roller 11a contacts a back surface of the intermediate transfer belt 3 to form a primary transfer nip between the photoconductor 1a and the intermediate transfer belt 3.
A primary transfer voltage opposite to charging polarity of the toner image on the photoconductor 1a is applied to the primary transfer roller 11a. In the present embodiment, the primary transfer voltage has a plus (positive) polarity. Thus, a transfer electric field is generated between the photoconductor 1a and the intermediate transfer belt 3, and the black toner image on the photoconductor 1a is electrostatically transferred onto the intermediate transfer belt 3 that rotates in synchronization with the photoconductor 1a. After the black toner image is transferred onto the intermediate transfer belt 3, a cleaner 12a for black toner removes transfer residual toner remaining on the surface of the photoconductor 1a.
Similarly, magenta toner images, cyan toner images, and yellow toner images are formed on the photoconductors 1b, 1c, and 1d, respectively. The yellow toner images, the cyan toner images, the magenta toner images, and the black toner images are sequentially transferred and superimposed one on another onto the intermediate transfer belt 3.
The printer 100 has two drive modes: a full-color mode using at least two of four toners of different colors and a monochrome mode using only black toner. In the full-color mode, the intermediate transfer belt 3 contacts the four photoconductors 1a, 1b, 1c, and 1d, and the toner images of four colors are transferred onto the intermediate transfer belt 3 one on another. By contrast, in the monochrome mode, the intermediate transfer belt 3 contacts only the photoconductor 1a for black, and only the black toner images are transferred onto the intermediate transfer belt 3. In the monochrome mode, primary transfer rollers 11b, 11c, and 11d are moved away from the photoconductors 1b, 1c, and 1d by a belt contact-separation mechanism 80 to be described later, and the intermediate transfer belt 3 is separated from the photoconductors 1b, 1c, and 1d for the colors of magenta, cyan, and yellow.
As illustrated in
A secondary transfer roller 17 contacts a portion of the intermediate transfer belt 3 wound around the secondary transfer backup roller 4, thereby forming a secondary transfer nip. The recording sheet P that has struck the registration roller pair 16 is fed towards the secondary transfer nip with predetermined timing. At that time, the secondary transfer roller 17 is supplied with a predetermined secondary transfer voltage to secondarily transfer the toner images superimposed on the intermediate transfer belt 3 onto the recording sheet P.
The recording sheet P on which the toner images are secondarily transferred is further conveyed upward in the apparatus body housing 101 and passes through a fixing device 18. At that time, the fixing device 18 fixes the toner images on the recording sheet P with heat and pressure. After the recording sheet P passes through the fixing device 18, the recording sheet P is ejected outside the printer 100 through a sheet ejection roller pair 19 of a discharge section.
A belt cleaner 20 removes transfer residual toner adhering to the surface of the intermediate transfer belt 3 after the toner images are secondarily transferred to the recording sheet P. In the present embodiment, the belt cleaner 20 includes a cleaning blade 21 made of suitable material, such as urethane, held against the belt moving direction of the intermediate transfer belt 3 to mechanically remove transfer residual toner. The belt cleaner 20 is not limited to the structure described above but can be selected from various cleaning types. For example, a belt cleaner to electrostatically clean the intermediate transfer belt 3 can be used.
The transfer residual toner removed from the intermediate transfer belt 3 by the cleaning blade 21 is sent to the rear side in the longitudinal direction by a waste toner coil in a cleaning case and passes through a waste toner path provided in the apparatus body housing 101 of the printer 100, and conveyed to a waste toner container. Side seals are disposed on both ends of the cleaning blade 21 so as not to allow the removed transfer residual toner to leak around, and are affixed to the cleaning case. The side seal has a two-layer structure including a low sliding member and a foam member. In the present embodiment, the material of the low sliding member on the side in contact with the intermediate transfer belt 3 is GF0471 manufactured by AMBIC Co., Ltd., and the material of the foam member is SM55#60.
Belt devices included in comparative image forming apparatuses are described below.
The comparative image forming apparatuses include various endless belts, such as an image bearer, an intermediate transferor, a recording sheet conveyor, image fixing member, or the like. This kind of endless belt is looped and stretched taut around at least two support rotators to travel in a constant direction. The endless belt is drawn to one side in a direction perpendicular to the belt moving direction (i.e., belt deviation or belt walk occurs) due to physical materials of the endless belt, tolerances of relevant components, or deterioration of relevant components. The belt deviation causes deviation or misalignment of a transferred image on the recording medium or damage to the belt by coming off the support rotator. Therefore, it is necessary to minimize or correct the belt deviation.
There is a method for minimizing or correcting the belt deviation as follows. A detector detects movement of the belt toward one side, and a roller displacement member displaces the support rotator around which the belt is stretched taut based on the detected results. Thus, the belt deviation can be corrected.
For example, in a belt walk correction unit, an end portion of one of the support rotators (i.e., belt walk correction roller) is movable to correct belt walk in a direction perpendicular to a direction in which the belt is pressed. In this configuration, the belt walk correction unit includes a rotator disposed on at least one end portion of the belt walk correction roller. The rotator is movable along an axial direction of the belt walk correction roller and includes a contact face in contact with an end portion of the belt and an inclined face whose outer diameter changes along the axial direction of the belt walk correction roller. The belt walk correction unit further includes an immobile guide member disposed so as to abut against an outer surface of the rotator. In the belt walk correction unit having such a configuration, the end portion of the belt that is drawn to one side is contact with the rotator, the rotator moves due to movement of the belt, and the belt walk correction roller is inclined, thereby correcting the belt walk.
Next, descriptions are given below of an example of the configuration of the tension roller 5 and the intermediate transfer belt 3 according to the present disclosure.
Tension roller
Outer diameter: 26.18 mm
Material: aluminum
Intermediate transfer belt
Material: polyamideimide
Young's modulus: 3400 MPa
Folding endurance (number of times) measured in Massachusetts Institute of Technology (MIT) folding endurance test: 500 times or more
Thickness: 80 μm
Linear velocity: 256 mm/s
Belt tension at the time of image formation: 1.3 N/cm
The measuring method of the MIT folding endurance test conforms to Japanese Industrial Standard (JIS)-P8115. More specifically, a sample having a width of 15 mm is measured under conditions of a testing load of 1 kgf, a flexion angle of 135 degrees, and a flexion speed of 175 times per minute.
Next, descriptions are given below of the belt alignment unit 50 to minimize the belt deviation employed in the intermediate transfer device 60 including the intermediate transfer belt 3.
As illustrated in
In the belt alignment unit 50, the belt deviation follower 30 and the shaft inclining member 31 are freely movable in the axial direction relative to the tension roller shaft 5a. In the direction perpendicular to the axis of the tension roller shaft 5a, the belt deviation follower 30 and the shaft inclining member 31 move with the tension roller shaft 5a.
The intermediate transfer device 60 includes a frame 35 made of sheet metal or the like. In a state in which the intermediate transfer device 60 is mounted in the apparatus body of the printer 100, the frame 35 is secured to the apparatus body housing 101 and is stationary even when the tension roller shaft 5a, the belt deviation follower 30, and the shaft inclining member 31 move. The frame 35 includes a spring secured portion 35a and a support rotation shaft 36 that protrude outward from an outer surface of the frame 35 in the axial direction. In addition, the frame 35 has a frame opening 35f that is penetrated by the tension roller shaft 5a and a rotation stopper 47 to be described later. The tension roller shaft 5a and the rotation stopper 47 receive a pressing force of a tension spring 52 and a force thereagainst (belt tension) and a tensile force of a support spring 40 and a force thereagainst (downward force due to its own weight and the belt deviation). Due to variations of these forces, the tension roller shaft 5a is displaced in a direction perpendicular to the rotation axis of the tension roller 5. The frame opening 35f is shaped so that the tension roller shaft 5a and the rotation stopper 47 do not interfere with the frame 35 regardless of the displacement thereof.
The roller shaft support 34 is pivotable about the support rotation shaft 36 in the direction indicated by arrow Gin
The support springs 40 pull the roller shaft supports 34 disposed at both ends of the tension roller shaft 5a, respectively, so that the roller shaft support 34 pivots clockwise in
As the roller shaft support 34 pivots around the support rotation shaft 36, the end of the tension roller shaft 5a supported by the roller shaft support 34 via the tension roller bearing 33 is displaced in the vertical direction.
The roller shaft supports 34 have bearing slide slots 34b and support the tension roller bearings 33. The tension roller bearing 33 is slidable in a radial direction of rotation of the roller shaft support 34 indicated by arrow H in
As illustrated in
Next, descriptions are given of the belt alignment unit 50 of the intermediate transfer device 60 according to the present embodiment.
As the secondary transfer backup roller 4 as a driving roller starts rotating, the tension roller 5 as a driven roller starts rotating. Around the secondary transfer backup roller 4 and the tension roller 5, the intermediate transfer belt 3 is looped. At that time, in the case in which the end face of the intermediate transfer belt 3 is in contact with the belt deviation follower 30, the belt deviation follower 30 also starts rotating.
In this state, if the intermediate transfer belt 3 is drawn to the right in
The upper side of the shaft inclining member 31 in
The shaft inclining member 31 includes a stopped face 31b that is continuous with a lower end of the inclined face 31f and extending in the axial direction of the tension roller shaft 5a. In a state in which the edge of the intermediate transfer belt 3 is not in contact with the flange 30a, the stopped face 31b of the shaft inclining member 31 is urged upward by the support spring 40 and contacts the stopper face 35d of the frame 35. Accordingly, at the position at which the stopped face 31b of the shaft inclining member 31 contacts the stopper face 35d of the frame 35, the position at which the inclined face 31f of the shaft inclining member 31 abuts against the contact portion 35c of the frame 35 is determined. That is, in the state, as illustrated in
From this state, when the intermediate transfer belt 3 is urged to move to the right in
At that time, the contact portion 35c of the frame 35 relatively moves along the inclined face 31f of the shaft inclining member 31. The contact position at which the inclined face 31f of the shaft inclining member 31 contacts the contact portion 35c of the frame 35 moves up towards the upper portion of the inclined face 31f of the shaft inclining member 31. Since the contact portion 35c is a part of the frame 35 and is secured to the apparatus body housing 101 of the printer 100, the contact portion 35c is not displaced and the shaft inclining member 31 having the inclined face 31f is displaced downward due to the reaction force received from the contact portion 35c.
As a result, the end portion of the tension roller shaft 5a on the side to which the intermediate transfer belt 3 is drawn (i.e., “belt drawing side”) is pushed down against the upward biasing force exerted by the support spring 40.
At that time, on the side (left side in
Accordingly, the end portion of the tension roller shaft 5a on the belt drawing side (right side in
As the tension roller shaft 5a thus inclines, the speed at which the intermediate transfer belt 3 deviates in the belt width direction gradually slows down, and, eventually, the intermediate transfer belt 3 moves in the direction opposite to the belt drawing direction. As a result, the position of the intermediate transfer belt 3 in the belt width direction returns gradually, thereby running the intermediate transfer belt 3 on track and enabling the intermediate transfer belt 3 to travel reliably. The same is true for the case where the intermediate transfer belt 3 is drawn to the opposite side to the case described above.
Descriptions are provided of a principle of correction of deviation of the intermediate transfer belt 3 by inclining the tension roller shaft 5a.
As illustrated in
Arrow A1 in
The secondary transfer backup roller 4 is one of the support rotators that stretches taut the intermediate transfer belt 3 at the upstream from the tension roller 5.
As the intermediate transfer belt 3 rotates, the tension roller 5 is rotated by friction between an inner surface of the intermediate transfer belt 3 and an outer surface of the tension roller 5. At that time, a force along the direction of surface movement of the tension roller 5 act on the portion of the intermediate transfer belt 3 looped around the tension roller 5.
An arbitrary point on the intermediate transfer belt 3 upstream in the belt moving direction from the contact portion winding around the tension roller 5 is observed. Then, an arbitrary point on the end face of the intermediate transfer belt 3 immediately before advancing to the tension roller 5 is referred to as a point E, and a point corresponding to the point E immediately after leaving the tension roller 5 is referred to as a point E′.
In a state in which two rotation axes of the secondary transfer backup roller 4 and the tension roller 5 are parallel as illustrated in
Then, the belt moving direction (arrow A2) after leaving the tension roller 5 is parallel and opposite to the belt moving direction (arrow A1) before advancing to the tension roller 5 as viewed from the top. Accordingly, as illustrated in
As described above, the rotation axis of the tension roller 5 is inclined at an inclination angle a relative to the rotation axis of the secondary transfer backup roller 4 in
When viewed from the top, the larger the slope of the direction (arrow R) of surface movement of the tension roller 5 relative to the belt moving direction (arrow A1) before advancing to the tension roller 5 is, the larger the angle β is. Additionally, the larger the inclination angle a of the rotation axis 5d of the tension roller 5 relative to the rotation axis 4d of the secondary transfer backup roller 4 is, the larger the angle β is. Accordingly, the larger the inclination angle α is, the larger the amount of the belt deviation of the intermediate transfer belt 3 (moving speed in the width direction of the belt) is.
That is, the amount of deviation to one side of the intermediate transfer belt 3 increases as the inclination angle α increases, and the amount of deviation decreases as the inclination angle α decreases. Therefore, for example, as illustrated in
Then, the belt deviation can be corrected and the intermediate transfer belt 3 is adjusted at the position where the initial deviation (i.e., to the right in
As described above, according to the present embodiment, the belt alignment unit 50 of the intermediate transfer device 60 inclines the tension roller shaft 5a by the inclination angle corresponding to the amount of deviation of the intermediate transfer belt 3 in the belt width direction, thereby promptly correcting the deviation of the intermediate transfer belt 3. Further, the force of the intermediate transfer belt 3 moving in the belt width direction is used to incline the tension roller shaft 5a. Accordingly, belt deviation can be corrected with a simple structure, and use of an additional drive source such as a motor is obviated.
In a configuration that does not incline the axis of the support rotator such as the tension roller and does not control the belt deviation by the inclination of the shaft, a belt abutting member pushes back an end face of the belt to control the deviation of the belt. With such a configuration, stress is constantly applied to the end face of the belt. The end face of the belt is weakest point of the belt. Therefore, if the end face receives the stress, the end portion of the belt may be broken. By contrast, in the intermediate transfer device 60 according to the present embodiment, the tension roller 5 is inclined, and a force to move the intermediate transfer belt 3 in the direction opposite to the belt deviation acts on the intermediate transfer belt 3, thereby reducing the load on the end face of the intermediate transfer belt 3 and controlling the belt deviation.
Next, descriptions are provided of the shaft inclining member 31.
The shaft inclining member 31 includes the inclined face 31f and the stopped face 31b. Inclined face 31f is curved such that, when the shaft inclining member 31 is attached to the tension roller 5, the inclined face 31f conforms to the surface of a conical shape coaxial with a virtual axis that coincides with the rotation axis 5d of the tension roller 5. The stopped face 31b is curved to conform to the surface of a cylindrical shape coaxial with the virtual axis.
There are two reasons for forming the inclined face 31f with a curved surface.
The first reason is that even when the shaft inclining member 31 rotates slightly around the tension roller shaft 5a, the angle of inclination of the rotation axis 5d of the tension roller 5 relative to the rotation axis 4d of the secondary transfer backup roller 4 does not change.
The second reason is that the curved surface of the inclined face 31f reduces contact between the inclined face 31f and the contact portion 35c of the frame 35 to a point contact, thereby reducing friction at the contact place. Accordingly, the belt deviation follower 30 and the shaft inclining member 31 are smoothly movable when a force along the tension roller shaft 5a acts on the belt deviation follower 30 and the shaft inclining member 31. With this configuration, the contact pressure at the end face of the intermediate transfer belt 3 contacting the flange 30a of the belt deviation follower 30 is reduced, thereby reducing deterioration of the edge portion of the intermediate transfer belt 3 and hence achieving extended belt life expectancy.
Although not limited thereto, in the present embodiment, the inclination angle γ in
The stopped face 31b of the shaft inclining member 31 can be also used for positioning. As illustrated in
If the shaft inclining member 31 does not include the stopped face 31b and the inclined face 31f extends to a right end of the shaft inclining member 31 in the axial direction in
The stopped face 31b of the shaft inclining member 31 preferably contacts the stopper face 35d at both front and back sides of the printer 100 (right and left sides in
A lower part of the guide portion 35e is the contact portion 35c having a linear corner that extends in the front-back direction in
The roller shaft support 34 is described in further detail below.
An imaginary line which is a bisector of the angle formed by a portion of the intermediate transfer belt 3 before advancing to the tension roller 5 and a portion of the intermediate transfer belt 3 after leaving the tension roller 5 illustrated in
In the intermediate transfer device 60 of the present embodiment, the contact position between the contact portion 35c of the guide portion 35e and the inclined face 31f is located above the belt bisector 39, and the support rotation shaft 36 is located below the belt bisector 39 as illustrated in
A force toward the inside of the intermediate transfer belt 3 acts on each of the support rotators by tension of the intermediate transfer belt 3 (hereinafter, referred to as “belt tension”) stretched around the plurality of support rotators. Thus, a force directed toward the right side in
Torque to revolve the tension roller 5 clockwise in
This torque moves the shaft inclining member 31 upward and urges the inclined face 31f of the shaft inclining member 31 to move toward the contact portion 35c of the guide portion 35e. Thus, the shaft inclining member 31 and the guide portion 35e contact with each other and the tension roller 5 is inclined when the belt deviation occurs. If the support rotation shaft 36 can be disposed so that the torque due to the force acting by the belt tension maintains the contact state between the shaft inclining member 31 and the guide portion 35e, the support spring 40 is not required.
In the intermediate transfer device 60 according to the present embodiment, an outward movement of the shaft inclining member 31 in the axial direction is restricted to a certain range. More specifically, an outer end face 31c of the shaft inclining member 31 in the axial direction contacts a second stopper surface 35g of the frame 35, thereby preventing the shaft inclining member 31 from moving further outside in the axial direction. In the present embodiment, the second stopper surface 35g of the frame 35 restricts the outward movement of the shaft inclining member 31 in the axial direction. Alternatively, an inside face of the roller shaft support 34 or the tension roller bearing 33 in the axial direction can restrict the outward movement of the shaft inclining member 31.
Next, descriptions are provided of the rotation stopper 47 that prevents the shaft inclining member 31 from rotating around the tension roller shaft 5a.
As illustrated in
As the tension roller shaft 5a rotates together with tension roller 5, a force that rotates the shaft inclining member 31 in an x-z plain in a direction indicated by arrow I in
The rotation stopper 47 does not include a portion that contacts both end faces of the shaft inclining member 31 in the axial direction (direction perpendicular to the surface of the paper on which
Since the rotation stopper 47 is joined with the tension roller bearing 33, the rotation stopper 47 moves together with the tension roller shaft 5a in a direction of the sliding of the tension roller bearing 33 indicated by arrow H in
The tension roller bearing 33 joined with the rotation stopper 47 is supported by the roller shaft support 34. Thus, when the roller shaft support 34 pivots in the direction indicated by arrow G in
As long as the rotation stopper 47 allows the shaft inclining member 31 to move in the axial direction and prevents the shaft inclining member 31 from rotating, the shape of the rotation stopper 47 is not limited to the shape illustrated in
The rotation stopper 47 may be joined with other member that moves in conjunction with the tension roller shaft 5a and is not limited to the rotation stopper 47 joined with the tension roller bearing 33. For example, in the above-described embodiment, the belt deviation follower 30 rotates according to the movement of intermediate transfer belt 3. In a configuration in which the belt deviation follower 30 slides along the tension roller shaft 5a and not rotate, the rotation stopper 47 may be joined with the belt deviation follower 30.
Next, a belt tension relaxation mechanism (curling prevention mechanism) is described.
According to the present embodiment, the intermediate transfer device 60 includes the belt tension relaxation mechanism that moves the entry roller 7 toward the inside of the looped intermediate transfer belt 3 to relax the belt tension of the intermediate transfer belt 3.
In the printer 100, certain belt tension is applied to the intermediate transfer belt 3 at the time of image formation so that the intermediate transfer belt 3 appropriately rotates in accordance with the rotation of the driving roller.
If the intermediate transfer belt 3 is kept tensed for a long period of time, plastic deformation called curling can occur in a portion where a winding diameter of the support rotator is small. Especially, when the intermediate transfer belt 3 is left for a long time in a high temperature and high humidity environment, the degree of curling deteriorates. If an image forming operation is performed with the intermediate transfer belt 3 with the curling, an appropriate transfer nip is not formed at the time of transfer from the photoconductor 1 to the intermediate transfer belt 3, and an abnormal image due to transfer failure occurs. In recent years, reduction in the cost of intermediate transfer belts has been advanced due to demands for low cost, but many intermediate transfer belts made of low cost materials are likely to be curled.
The intermediate transfer belt 3 is often left for a long time in high temperature and high humidity environments in the period from manufacturing to delivery to customers.
Therefore, it is preferable to keep the belt tension relaxed or keep the winding portion of a support rotator small during such a period. Therefore, in the intermediate transfer device 60 of the present embodiment, the entry roller 7 having a small winding diameter (outer diameter of 13 mm) is moved to decrease the winding angle, and the belt tension is weakened to prevent the curling.
Specifically, the position of the entry roller 7 can be set at two positions, i.e., a tension applied position and a tension relaxed position, and a lever with the cam for moving the entry roller 7 is manually switched to change the position of the entry roller 7. When the entry roller 7 is moved to the tension relaxed position, the belt tension becomes relaxed and the winding angle of the intermediate transfer belt 3 with respect to the entry roller 7 decreases. With this configuration, the curling of the intermediate transfer belt 3 can be minimized.
In the intermediate transfer device 60 of the present embodiment, with such a configuration in which the tension roller 5 is inclined with respect to the other support rotators when the belt deviation occurs, when the belt tension is relaxed, the force acting on the tension roller 5 changes. As a result, the tension roller 5 and components moving together with the tension roller 5 may descend and interfere with the peripheral components.
In the tensioned state illustrated in
N1=F1×W1,
where N1 represents the torque around the support rotation shaft 36 acting on the roller shaft support 34 by the belt tension, F1 represents a force received by the tension roller 5 from the intermediate transfer belt 3, W1 represents the distance from the belt bisector 39 to the support rotation shaft 36.
In the relaxed state illustrated in
N2=F2×W2,
where N2 represents the torque around the support rotation shaft 36 acting on the roller shaft support 34 by the belt tension, F2 represents a force received by the tension roller 5 from the intermediate transfer belt 3, W2 represents the distance from the belt bisector 39 to the support rotation shaft 36.
In the relaxed state, since the force received by the tension roller 5 from the intermediate transfer belt 3 is reduced, the force F1 is greater than the force F2 (F1>F2). When the force received by the tension roller 5 from the intermediate transfer belt 3 decreases, the force in the direction to compress the tension spring 52 decreases, and the length of the tension spring 52 increases so as to approach its natural length. Therefore, the tension roller 5 moves to the left side in
As a result, the torque acting in the direction of lifting the tension roller 5 is reduced by the amount expressed as N1−N2, that is, F1×W1−F2×W2.
The tension roller 5 is supported by the roller shaft support 34. As the roller shaft support 34 rotates counterclockwise in
In the intermediate transfer device 60, the torque acts so that the roller shaft support 34 is rotated clockwise in
In the tensioned state illustrated in
On the other hand, in the relaxed state illustrated in
Further, as the tension roller 5 moves downward, the distance W2 in
On the other hand, as illustrated in
As illustrated in
As illustrated in
In order to prevent the tension roller 5 from descending, it is conceivable to use a support spring 40 having a large spring constant and a strong tensile force.
However, if the support spring 40 is strong, the tension roller 5 is hardly inclined to correct the belt deviation when the intermediate transfer belt 3 moves toward one side in the axial direction, and the end portion in the width direction of the intermediate transfer belt 3 is likely to be damaged from the following reasons.
As described above, the torque to rotate the roller shaft support 34 clockwise in
When the belt deviation occurs, the end portion of the tension roller 5, to which the intermediate transfer belt 3 is drawn, is lowered, and the tension roller 5 is inclined, so that a force to correct the belt deviation is applied. When the intermediate transfer belt is drawn to one side, the force with which the end portion in the width direction of the intermediate transfer belt 3 presses the belt deviation follower 30 is converted to a force that lowers the end portion of the tension roller 5 in the axial direction by the inclined face 31f of the shaft inclining member 31. The force for lowering the end portion of the tension roller 5 at that time contributes to the torque for rotating the roller shaft support 34 in the counterclockwise direction in
If the support spring 40 is strong, the torque for rotating the roller shaft support 34 in the clockwise direction in
In a state in which the axial end portion of the tension roller 5 does not descend, a force for correcting the belt deviation does not act. Similarly to the configuration in which the end face of the belt member is pushed back by the above-described belt abutting member, the end face of the intermediate transfer belt 3 remains receiving the stress. Even when the axial end portion of the tension roller 5 descends, the end face of the intermediate transfer belt 3 is pressed against the flange 30a with a strong contact pressure as the lowering force greater than the above-described lifting force acts. In this state as well, the end face of the intermediate transfer belt 3 remains receiving the stress. If the end face of the intermediate transfer belt 3 remains receiving the stress, damage such as cracks are likely to occur, and the durability life of the intermediate transfer belt 3 may decrease.
On the other hand, the intermediate transfer device 60 of the present embodiment includes the descent stopper 42 and can prevent a problem caused by descent of the tension roller 5 without using the support spring 40 having a strong tensile force. Therefore, it is also possible to prevent a problem caused by using the above-mentioned support spring 40 having a strong tensile force.
In the intermediate transfer device 60 of the present embodiment, the rotation stopper 47 abuts against the descent stopper 42 and stops descending. Alternatively, a member that abuts against the descent stopper 42 is not limited the rotation stopper 47. When the descent stopper 42 is disposed to stop such a member that moves in the vertical direction together with the tension roller 5, such as the belt deviation follower 30 or the shaft inclining member 31, the tension roller 5 is inhibited from descending. Further, in the intermediate transfer device 60 of the present embodiment, the descent stopper 42 is disposed so as to protrude inward from the frame 35. Alternatively, the descent stopper 42 may be disposed so as to protrude outward from the frame 35. In this case, as the tension roller 5 descends, the roller shaft support 34 abuts against the descent stopper 42, and the tension roller 5 can be prevented from descending.
As described above, the intermediate transfer device 60 as the belt device includes the intermediate transfer belt 3 as an endless belt. The intermediate transfer device 60 further includes the tension roller 5 as a first support rotator and the entry roller 7 as a second support rotator. The tension roller 5 around which the intermediate transfer belt 3 is looped and stretched is movable with respect to the body of the intermediate transfer device 60 and can be inclined with respect to the secondary transfer backup roller 4. The entry roller 7 is movable with respect to the body of the intermediate transfer device 60. The intermediate transfer device 60 yet further includes the secondary transfer backup roller 4 as a non-movable support rotator that is rotatable but does not change the position thereof with respect to the body of the intermediate transfer device 60.
The intermediate transfer device 60 yet further includes a retraction mechanism 70 illustrated in
Furthermore, the intermediate transfer device 60 includes the descent stopper 42 that prevents the tension roller 5 from descending and falling when the entry roller 7 is moved by the retraction mechanism 70.
In the intermediate transfer device 60, the retraction mechanism 70 functions as the curling prevention mechanism, and the belt alignment unit 50 functions as a belt walk correction mechanism.
In order to prevent the curling, as the entry roller 7 is moved to the tension relaxed position, the tension spring 52 expands by the amount of decrease in the belt tension, and the tension roller 5 is moved to the left. Since the tension spring 52 expands, the belt tension decreases, and the force received by the tension roller 5 from the intermediate transfer belt 3 decreases. As a result, the torque for lifting the tension roller 5 decreases, and the tension roller 5 descends. At that time, the rotation stopper 47 that moves in the vertical direction together with the tension roller 5 abuts against the descent stopper 42. Therefore, the tension roller 5 stops descending.
In this way, in the intermediate transfer device 60, the descent stopper 42 prevents the problem that the tension roller 5 descends as the force for lifting the tension roller 5 decreases when the belt tension is relaxed. This configuration can correct belt walk with the curling inhibited while minimizing interference with peripheral devices or breakage of the intermediate transfer device 60 caused by descent of the tension roller 5.
Next, the retraction mechanism 70 for retracting the entry roller 7 from the tension applied position to the tension relaxed position is described.
The intermediate transfer device 60 removable from the apparatus body housing 101 of the printer 100 is removably installed in the apparatus body housing 101 in a state indicated by a solid line in
As the retraction lever 51 is manually rotated in the counterclockwise direction in
In this state illustrated in
The primary transfer roller 11a for black is rotatably supported around a bracket rotation shaft 46a by the primary transfer bracket 46 for black. A primary transfer spring 57 for black urges the primary transfer roller 11a for black to abut against the photoconductor 1a for black via the intermediate transfer belt 3. In the state illustrated in
As the retraction lever 51 rotates from the state illustrated in
In order to hold the position of the entry roller 7 and the primary transfer roller 11a for black in the retracted state or the non-retracted (normal) state, respectively, the second retraction cam 48 and the cam stopper 63 are disposed at the center portion in the width direction of the intermediate transfer device 60.
Next, the belt contact-separation mechanism 80 of the primary transfer roller 11 is described.
The primary transfer roller 11a for black of the four primary transfer rollers 11a, 11b, 11c, and 11d, used for black image transfer, is supported by the retraction mechanism 70 so as to contact and separate from the photoconductor 1a for black. The other primary transfer rollers 11b, 11c, and 11d are rotatably supported by a transfer roller holder 55. One end of the transfer roller holder 55 is pivotably supported around a contact-separation shaft 58 with respect to the body of the intermediate transfer device 60. The transfer roller holder 55 is pivoted as a contact-separation motor 53 rotates a contact-separation cam 56.
A controller 54 controls the contact-separation motor 53 to control the rotational position of the contact-separation cam 56, thereby switching between the contact state illustrated in
In the contact state illustrated in
In the configuration illustrated in
A detection piece 61 is secured to the other end of the transfer roller holder 55, and a light transmission contact-separation sensor 62 is disposed on the movement path of the detection piece 61 that is pivoted together with the transfer roller holder 55. When the transfer roller holder 55 is at the contact position, the detection piece 61 blocks light transmission of the contact-separation sensor 62, thereby setting the contact-separation sensor 62 to “OFF” state. When the transfer roller holder 55 is at the separated position, the contact-separation sensor 62 detects light transmission, thereby setting the contact-separation sensor 62 to “ON” state.
In the monochrome mode, the transfer roller holder 55 is positioned at the separated position by the belt contact-separation mechanism 80, and only the photoconductor 1a for black among the four photoconductors 1 rotates to form a toner image. In the full-color mode, the transfer roller holder 55 is positioned at the contact position by the belt contact-separation mechanism 80, and the four photoconductors 1a, 1b, 1c, and 1d rotate, respectively, to form the toner image as described above. At the standby time of the printer 100, the transfer roller holder 55 is at the separated position, and the contact-separation sensor 62 is in the “ON” state.
Next, installation and removal of the intermediate transfer device 60 from the apparatus body of the printer 100 are described.
A direction in which the intermediate transfer device 60 is installed in and removed from the apparatus body of the printer 100 is the front-rear direction of the printer 100 (direction perpendicular to the surface of the paper on which
As described above, primary-transfer roller contact-separation mechanisms are provided so that the intermediate transfer belt 3 and the photoconductors 1 do not contact when the intermediate transfer device 60 is installed or removed.
There are two types of contact-separation mechanisms for the primary transfer rollers 11a, 11b, 11c, and 11d: one for yellow, magenta, and cyan; and one for black. The contact-separation for the primary transfer rollers 11b, 11c, and 11d for magenta, cyan, and yellow is performed by the belt contact-separation mechanism 80 using the contact-separation sensor 62 described with reference to
When the image formation has finished or the front opening 90 is opened, in the belt contact-separation mechanism 80, the controller 54 drives the contact-separation motor 53 and rotates a contact-separation cam 56, thereby separating three primary transfer rollers 11b, 11c, and 11d from the intermediate transfer belt 3. As a result, the intermediate transfer belt 3 separates from the photoconductors 1b, 1c, and 1d for magenta, cyan, and yellow.
As described with reference to
As illustrated in
As described above, the contact-separation operation of the primary transfer roller 11a for black and the tension relaxation operation of the entry roller 7 are performed at the same time by a common mechanism (i.e., retraction mechanism 70), and the state of the intermediate transfer device 60 in transportation is same as the state for the installation and removal to the apparatus body of the printer 100. This configuration can improve an operability of installation and removal of the intermediate transfer device 60.
Further, it is desirable that the belt tension adjuster such as the retraction mechanism 70 maintain at least some tension on the belt when the entry roller 7 moves to the tension relaxed position.
Therefore, the tension relaxed position of the entry roller 7 is set so that, even in the relaxed state, the length of the tension spring 52 is shorter than the natural length and the compressed state is maintained. As a result, it is possible to prevent problems caused by loosening of the intermediate transfer belt 3. The position of the entry roller 7 is appropriately set by the shape of the first retraction cam 43.
The position of the descent stopper 42 is set so that the intermediate transfer device 60 does not interfere with the apparatus body of the printer 100 at the time of installation and removal from the apparatus body of the printer 100. Specifically, the front opening 90 of the apparatus body is larger than the intermediate transfer device 60 including the descent stopper 42. Therefore, with this configuration, the intermediate transfer device 60 does not contact the apparatus body of the printer 100 at the time of installation and removal.
In the above-described embodiment, the belt alignment unit 50 that corrects the belt deviation, that is, the intermediate transfer belt 3 moves to one side in the width direction, has been described. Note that the belt, deviation of which is corrected by the belt alignment unit 50 of the present embodiment, is not limited to the intermediate transfer belt 3. For example, the present disclosure is also applicable to a configuration for correcting belt deviation of a transfer conveyance belt of a transfer device. The transfer conveyance belt conveys a recording medium through a conveyance path including a transfer position where an image is transferred onto a recording medium such as transfer paper in an image forming apparatus. Furthermore, the belt device according to the present disclosure is adaptable for various belt devices such as a conveyor belt that convey materials or products in a factory as well as the belt device in the image forming apparatus.
The exemplary embodiments described above are examples and aspects of this disclosure attain advantages below, respectively.
Aspect A
A belt device such as the intermediate transfer device 60 includes a plurality of support rotators such as the secondary transfer backup roller 4 and the tension roller 5, a belt such as the intermediate transfer belt 3, a rotator inclination unit such as the belt alignment unit 50, a belt tension adjuster such as the retraction mechanism 70, and a descent stopper such as the descent stopper 42. The belt is looped around the plurality of support rotators and moves in accordance with rotation of the plurality support rotators. The rotator inclination unit inclines a rotation axis of a first support rotator such as the tension roller 5 that is one of the plurality support rotators with respect to a rotation axis of another support rotator such as the secondary transfer backup roller 4. The belt tension adjuster adjusts tension of the belt. The descent stopper such as the descent stopper 42 prevents the first support rotator from descending.
With this configuration, as described in the above embodiment, for example, when the tension adjuster relaxes the tension of the belt for the purpose of preventing the curling and the force acting on the first support rotator varies, even if a force for lowering the first support rotator occurs, the descent stopper such as the descent stopper 42 can prevent the first support rotator from descending. Accordingly, it is possible to prevent problems caused by descent of the first support rotator in a configuration in which the first support rotator is inclined with respect to another support rotator.
Aspect B
In the belt device according to the aspect A, when the belt is drawn to one side of the first support rotator in the axial direction, the rotator inclination unit such as the belt alignment unit 50 is configured to incline the first support rotator to move the belt in a direction opposite to the one side of the first support rotator.
With this configuration, as described in the above embodiment, the rotator inclination unit inclines the first support rotator, thereby eliminating the belt deviation and correcting belt walk.
Aspect C
In the belt device according to Aspect A, the belt tension adjuster such as the retraction mechanism 70 moves a second support rotator such as the entry roller 7, which is another of the plurality of support rotators, in a direction perpendicular to the rotation axis of the second support rotator to adjust tension of the belt.
With this configuration, as described in the above embodiment, the belt tension adjuster moves the second support rotator to reduce the belt tension at timing other than the time of image formation. Therefore, the curling of the belt can be prevented.
Aspect D
In the belt device according to Aspect C, the belt tension adjuster keeps at least some tension on the belt even when the second support rotator is moved to a position where the belt tension adjuster weakens the tension of the belt.
With this configuration, as described in the above embodiment, it is possible to prevent the belt such as the intermediate transfer belt 3 from loosening and interfering with surrounding components.
Aspect E
An intermediate transfer device such as the intermediate transfer device 60 includes the belt device according to the Aspect A. The belt such as the intermediate transfer belt 3 is configured to bear a visible image such as a toner image transferred from an image bearer and transfer the visible image onto a recording medium P.
With this configuration, as described in the above embodiment, the intermediate transfer device prevents damage to the belt such as the intermediate transfer belt 3 caused by descent of the support rotator.
Aspect F
An image forming apparatus such as the printer 100 includes the belt device according to the aspect A.
With this configuration, as described in the above embodiment, the image forming apparatus prevents damage to the belt or surrounding components.
Aspect G
In the image forming apparatus according to Aspect F, the descent stopper such as the descent stopper 42 is configured to prevent a component of the belt device from contacting another device around the belt device.
With this configuration, as described in the above embodiment, the image forming apparatus prevents damage to the component of the belt device or surrounding components around the belt device.
Aspect H
In the image forming apparatus according to Aspect F, the belt device is configured to removably installed in an apparatus body of the image forming apparatus. The belt is an intermediate transfer belt such as the intermediate transfer belt 3 configured to bear a visible image transferred from an image bearer and transfer the visible image onto a recording medium. The belt device is installed in and removed from the apparatus body in a state in which the intermediate transfer belt such as the intermediate transfer belt 3 separates from the image bearer and the belt tension adjuster weakens the tension of the belt.
With this configuration, as described in the above embodiment, the state of the belt device in transportation is same as the state for the installation and removal to the apparatus body, and operability of the installation and removal can be improved.
The above-described embodiments are illustrative and do not limit the present disclosure. Thus, numerous additional modifications and variations are possible in light of the above teachings. For example, elements and/or features of different illustrative embodiments may be combined with each other and/or substituted for each other within the scope of the present disclosure.
Number | Date | Country | Kind |
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2017-053758 | Mar 2017 | JP | national |