The present invention relates to an image forming apparatus such as a copying machine, a facsimile machine, a printer or a multi-function machine of these machines, and particularly relates to a structure for moving a transfer member, for transferring a toner image from an image bearing member onto a recording material, toward and away from the image bearing member.
As the image forming apparatus such as the copying machine, the facsimile machine or the printer, the image forming apparatus of an intermediary transfer type in which a formed image is primary-transferred from a photosensitive drum onto an intermediary transfer belt and then is secondary-transferred from the intermediary transfer belt onto a recording material has been known. In such an image forming apparatus, in order to access to a transfer conveyance portion when paper jam clearance or maintenance of the apparatus is made, a conveyance frame is constituted so as to be capable of being pulled out from an image forming apparatus main assembly. From viewpoints of an inserting and extracting property and a jam clearance property, in the case where the conveyance frame is extracted and inserted or in the case where the jam clearance is made, there is a need to move a secondary transfer roller, contacted to an intermediary transfer belt when the image is transferred onto the recording material, away from the intermediary transfer belt.
Further, in order to stabilize an image quality, an image adjusting sequence such as image density, adjustment or color misregistration adjustment is performed in synchronism with a predetermined print number or a predetermined print time. In this image adjusting sequence, an adjusting toner image (patch) is transferred onto the intermediary transfer belt and is read by a patch sensor and then on the basis of a result of the reading, an image is adjusted. This patch is, after being transferred as a toner image at a primary transfer portion and then being read by the patch sensor, passed through a secondary transfer portion and then is removed from the intermediary transfer belt at a cleaning portion of the intermediary transfer belt.
Such an image adjusting sequence is performed in an interruption manner during rest of image formation between a job and a subsequent job or during an interval (sheet interval) between a normal image and a subsequent normal image during execution of the job. In Japanese Laid-Open Patent Application (JP-A) 2010-117636, a structure for moving (spacing), when a patch passes through the secondary transfer portion, a secondary transfer outer roller away from the intermediary transfer belt in order to avoid contamination of the secondary transfer outer roller with the patch is disclosed.
However, in a conventional structure described in JP-A 2010-117636, in the case where a spacing operation of the secondary transfer outer roller is performed when the image adjusting sequence is performed at the sheet interval during the execution of the job, vibration generated by the spacing operation adversely affects the image formation. For this reason, in the case of the conventional structure, when the image adjusting sequence is performed at the sheet interval, there is a need to take into consideration a convergence time of the vibration generated by the spacing operation.
For example, in a structure in which the secondary transfer outer roller is contacted to the intermediary transfer belt by an urging force of a compression spring, the case where a cam is rotated to space the secondary transfer outer roller against the urging force of the compression spring is considered. In this structure, when the secondary transfer outer roller is spaced from the intermediary transfer belt, the cam has been rotated conventionally, until a patch where a rotational load torque of the cam by the urging force of the compression spring is eliminated, in either case of the jam clearance and the image adjusting sequence. That is, in order to perform the jam clearance or the like, in the case where the image forming apparatus is stopped in a state in which the rotational load torque is exerted on the cam, a motor torque is eliminated when a main power of the apparatus is turned off, so that the cam is rotated by the urging force of the compression spring. Then, there is a possibility that the secondary transfer outer roller is contacted to the intermediary transfer belt. For this reason, in the case where the secondary transfer outer roller is spaced from the intermediary transfer belt, the cam was rotated to the position where the load by the urging force of the compression spring such that the cam was rotated was not exerted on the cam.
In this case, during the spacing operation, the rotational load torque by the urging force of the compression spring acts on the cam, but when the secondary transfer roller (secondary transfer outer roller) is located at a spaced position, the rotational load torque is eliminated. That is, an abrupt torque (load) fluctuation is generated by the spacing operation. When such an abrupt load fluctuation is generated, vibration is generated at a driving portion where the spacing operation is performed, so that the vibration is transmitted to the intermediary transfer belt or an image forming portion. Accordingly, in the case where the spacing operation is performed in the image adjusting sequence, subsequent image formation is effected in a state in which the vibration is generated, so that there is a possibility that the vibration influences the image formation. Accordingly, in the case of the conventional structure, there is a need to effect formation of a subsequent normal image in consideration of a time of convergence of the vibration but correspondingly it takes a time for the image adjusting sequence, thus lowering productivity.
On the other hand, there is a constitution in which the patch is passed through a secondary transfer portion without spacing the secondary transfer roller and then the toner deposited on the secondary transfer roller is removed by a cleaning device for the secondary transfer roller, but correspondingly to the provision of the cleaning device, a cost is increased. Further, there is also a structure in which a bias of an opposite polarity to that during the transfer is applied to the secondary transfer portion without spacing the secondary transfer roller, but bias switching takes much time compared with the spacing operation of the secondary transfer roller and therefore the productivity is also lowered. Further, even under application of the bias of the opposite polarity, contamination of the secondary transfer roller cannot be avoided and therefore there is a need to provide the cleaning device for the secondary transfer roller, so that the cost is increased.
In view of the above-described circumstances, the present invention has been accomplished. A principal object of the present invention is to provide an image forming apparatus capable of realizing a structure capable of performing a spacing operation of a transfer member while suppressing a lowering in productivity.
According to an aspect of the present invention, there is provided an image forming apparatus comprising: an image bearing member for bearing and conveying a toner image; a transfer member for transferring the toner image, formed on the image bearing member, onto another image forming member by being supplied with a transfer bias in a state in which the transfer member is contacted to the image bearing member; and a contact-and-separation means for moving the transfer member toward and away from the image bearing member, wherein the contact-and-separation means includes: an urging member for urging the transfer member toward the image bearing member; a movement driving portion for driving the transfer member against an urging force of the urging member to move the transfer member; and a controller for controlling the movement driving portion so that the transfer member is locatable at a contact position where the transfer member is contacted to the image bearing member, a first spaced position where the transfer member is spaced from the image bearing member in a state in which a load by the urging force is exerted on the movement driving portion, and a second spaced position where the transfer member is spaced from the image bearing member in a state in which the load by the urging force is not exerted on the movement driving portion.
According to the present invention, at the first spaced position, the transfer member is spaced from the image bearing member in the state in which the load by the urging force of the urging member is exerted on the movement driving portion and therefore an abrupt load fluctuation is not generated, so that generation of vibration can be suppressed. For this reason, a lowering in productivity can be suppressed, e.g., when an image adjusting sequence at a sheet interval is performed at the first spaced position.
These and other objects, features and advantages of the present invention will become more apparent upon a consideration of the following description of the preferred embodiments of the present invention taken in conjunction with the accompanying drawings.
Part (A) of
Parts (A), (B) and (C) of
Parts (A) and (B) of
Parts (A), (B) and (C) of
Embodiments of the present invention will be described with reference to
An image forming apparatus 100 is of a tandem type in which image forming portions 1Y, 1M, 1C and 1K for yellow (Y), magenta (M), cyan (C) and black (K), respectively, are juxtaposed along a rotational direction of an intermediary transfer belt 31 as an image bearing member. The image forming portions 1Y, 1M, 1C and 1K have the same constitution except that colors of toners used therein are different from each other. Therefore, in the following, constituent elements of the respective image forming portions will be described by omitting suffixes Y (yellow), M (magenta), C (cyan) and K (black) each for specifying an associated constituent element for the color, except for a necessary case.
The image forming portion 1 includes a photosensitive drum 11, and at a periphery of the photosensitive drum 11, includes a charger 12, a laser scanner 13 as an exposure device, a developing device 14 and a drum cleaning device 15. The charger 12 electrically charges the surface of the photosensitive drum 11 to have uniform electric charges. The surface of the photosensitive drum 11 is irradiated with laser light depending on an image signal for an associated color to neutralize the electric charges, so that an electrostatic latent image is formed on the photosensitive drum 11. The developing device 14 develops the electrostatic latent image with a toner of the associated color into a toner image.
The toner image formed on the photosensitive drum 11 by development is transferred onto the intermediary transfer belt 31, between the photosensitive drum 11 and a primary transfer roller 35 provided opposed to the photosensitive drum 11 via the intermediary transfer belt 31, by applying a primary transfer bias to the primary transfer roller 35. The toner images of the respective colors are successively transferred superposedly onto the intermediary transfer belt 31, so that a full-color toner image is formed on the intermediary transfer belt 31. The full-color toner image is conveyed to a secondary transfer portion 2. Incidentally, a transfer residual toner remaining on the photosensitive drum 11 without being transferred onto the intermediary transfer belt 31 is removed by the drum cleaning device 15.
The intermediary transfer belt 31 is stretched by stretching rollers consisting of a secondary transfer inner roller 32, a driving roller 33 and a steering roller 34. The secondary transfer inner roller 32 is provided at the secondary transfer portion 2. The driving roller 33 is rotationally driven by an unshown motor to rotate the intermediary transfer belt 31. The steering roller 34 is swung by an unshown swinging mechanism to control a position of the intermediary transfer belt 31 with respect to a widthwise direction.
On the other hand, a recording material (another image bearing member) P such as paper or a sheet conveyed from any of sheet-feeding cassettes 61, 62, 63 and 64 is conveyed toward a registration roller 75 by sheet pick-up rollers 71, 72, 73 and 74 and their downstream conveying rollers. Then, by the registration roller 75, the recording material P is conveyed to the secondary transfer portion 2 by being timed to the toner image on the intermediary transfer belt 31.
The toner image on the intermediary transfer belt 31 is transferred onto the recording material P by applying a secondary transfer bias between the intermediary transfer belt 31 and the secondary transfer outer roller 41 as a transfer member (secondary transfer image) provided at the secondary transfer portion 2. A transfer residual toner remaining on the intermediary transfer belt 31 without being transferred on the recording material P is removed by a belt cleaning device 36.
The recording material P on which the toner image is transferred is attracted by a front conveying unit 42 for a fixing device and is conveyed by the front conveying unit 42 from the secondary transfer portion 2 to a fixing device 5. Then, the recording material P is heated and pressed by the fixing device 5, so that the toner image is fixed on the recording material P. Thereafter, the recording material P passes through a sheet discharging conveying path 82 and is discharged to the outside of an apparatus main assembly 101. Here, in the case where the image formation is effected also in a non-image formation side of the recording material P, the recording material P is, after coming out of the fixing device 5, passed through a reversing conveying path 83 and a conveying path 85 for double side printing and there is conveyed to the registration roller 85. A subsequent process is as described above.
Next, a constitution of the secondary transfer portion 2 where the toner image is transferred from the intermediary transfer belt 31 onto the recording material P will be described with reference to
Parts (A) and (B) of
Further, also in this embodiment, in order to stabilize an image quality, an image adjusting sequence such as image density adjustment or color misregistration adjustment is periodically performed depending on a predetermined print number or a predetermined print time. In this case, when a patch transferred on the intermediary transfer belt 31 (image bearing member) passes through the secondary transfer portion 2, in order to avoid toner contamination on the secondary transfer outer roller 41, the secondary transfer outer roller 41 is required to be spaced from the intermediary transfer belt 31.
As described above, depending on each of during the image formation, during the jam clearance or maintenance, and during the image adjustment, the secondary transfer outer roller 41 is required to be contacted (press-contacted) to or spaced (demounted) from the intermediary transfer belt 31. Accordingly, next, a contact-and-separation mechanism 200 as a contact-and-separation means for moving the secondary transfer outer roller 41 toward and away from the intermediary transfer belt 31 will be described with reference to
The roller holder 44 for holding the secondary transfer outer roller 41 at each of ends of the secondary transfer outer roller 41 includes an engaging portion 48 for being engaged with a mounting and demounting arm 45. The mounting and demounting arm 45 is held rotatably, in its end side, about a mounting and demounting rotational movement shaft 47 provided and projected from a secondary transfer outer frame 22 fixed to the conveyance frame 21, and includes a cam receiving portion 49 in its another end side. Further, a mounting and demounting shaft 51 is held rotatably by the secondary transfer outer frame 22, and to the mounting and demounting shaft 51, a cam 43 and a gear 50 are fixed. In a rear side of the image forming apparatus 100, a driving motor 52 is provided, a rotational driving force is transmitted from the driving motor 52 to the gear 50. By rotation of the gear 50, also the mounting and demounting shaft 51 and the cam 43 are rotated.
By the compression spring 46, the roller holder 44 is urged toward the intermediary transfer belt 31 and therefore also the mounting and demounting arm 45 engaged with the roller holder 44 is urged rotationally about the mounting and demounting shaft 47 toward the intermediary transfer belt 31. Then, in another end side of the mounting and demounting arm 45, the cam receiving portion 49 is press-contacted to the cam 43. The cam 43 is arbitrarily changed, depending on its phase, in distance from the mounting and demounting shaft 51 as a rotation center of the cam 43 to an outer diameter surface. Accordingly, by rotating the cam 43 to an arbitrary phase by the driving motor 52, the cam receiving portion 49 can be moved against an urging force of the compression spring 46. As a result, the mounting and demounting arm 45 is rotationally moved about the mounting and demounting shaft 51, so that the roller holder 44 and the secondary transfer outer roller 41 which are engaged at the engaging portion 48 are moved in a direction in which the secondary transfer outer roller 41 is mounted (contacted) to and demounted (spaced) from the intermediary transfer belt 31. That is, the cam 43 is rotated against the urging force of the compression spring 46 to change its phase, so that the position of the secondary transfer outer roller 41 is changeable. The driving motor 52 is, as shown in
In this embodiment, the contact-and-separation mechanism 200 is thus constituted, so that the secondary transfer outer roller 41 is contacted to and spaced from the intermediary transfer belt 31. Further, the cam 43 as a movement driving portion can move the secondary transfer outer roller 41 against the urging force of the compression spring 46 by the driving motor 52, the gear 50 and the mounting and demounting shaft 51. Incidentally, the cam 43, the roller holder 44, the mounting and demounting arm 45 and the compression spring 46 which are described above are disposed in each of front and rear sides of the apparatus main assembly 101.
Such a contact-and-separation mechanism 200 is controlled so that the secondary transfer outer roller 41 is locatable at a contact position, a first spaced position and a second spaced position. Here, the contact position is a position where the secondary transfer outer roller 41 is contacted to the intermediary transfer belt 31. Further, the first spaced position is a position where the secondary transfer outer roller 41 is spaced from the intermediary transfer belt 31 in a load state in which a load by the urging force of the compression spring 46 is exerted on the movement driving portion, i.e., in a state in which a rotational load torque is exerted on the cam 43 as described later. Further, the second spaced position is a position where the secondary transfer outer roller 41 is spaced from the intermediary transfer belt 31 in a non-load state in which the load by the urging force of the compression spring 46 is not exerted on the movement driving portion, i.e., in a state in which the rotational load torque is not exerted on the cam 43. In the following, a positional relationship among these positions will be described with reference to
Part (A) of
For this reason, in this embodiment, the cam 43 for moving the secondary transfer outer roller 41 is constituted as follows. That is, the cam 43 is capable of moving, when its phase is within the predetermined range, the secondary transfer outer roller 41 between the contact position and the first spaced position in the state in which the urging force of the compression spring 46 is exerted on the cam 43. Further, the cam 43 is capable of positioning, when its phase is out of the predetermined range, the secondary transfer outer roller 41 at the second spaced position in the state in which the urging force of the compression spring 46 is not exerted on the cam 43.
Specifically, the cam 43 has an outer diameter shape as shown in
Further, the cam 43 is, when the cam is in a predetermined range from a phase where the cam 43 starts contact with the cam receiving portion 49 of the mounting and demounting arm 45 until a phase upstream of the above-described specific phase with respect to a rotational direction of the cam 43, in a state in which the cam 43 receives the urging force F from the compression spring 46 via the mounting and demounting arm 45. Accordingly, in the phase in which the phase of the cam 43 is within the predetermined range, the first spaced position is set.
Such a position of the secondary transfer outer roller 41 is set as shown in
In the state of the contact position, the secondary transfer outer roller 41 is press-contacted to the intermediary transfer belt 31, so that the cam receiving portion 49 is held at a position where the cam receiving portion 49 does not contact the outer peripheral surface of the cam 43. When the cam 43 is rotated from this state to start the spacing of the secondary transfer outer roller 41, as shown in the graph of (B) of
Thus, the rotational load on the cam 43 at the second spaced position is eliminated, so that when the phase of the cam 43 reaches the second position, as shown in (B) of
Therefore, in this embodiment, in the mounting and demounting during the image adjusting sequence, the secondary transfer outer roller 41 is moved to the first spaced position at the most to be prevented from pass through the switching point a, so that the mounting and demounting with no mounting and demounting vibration is realized. In other words, the cam phase providing the first spaced position is set within a range in which the rotational load torque T is moderately changed. Specifically, the phase of the cam 43 at the distance L1 (=4.5 mm) providing the first spaced position is set at 130 (degrees), and the phase of the cam 43 at the distance L2 (=5.0 mm) providing the second spaced position is set at 155 (degrees).
Here, when L2−L1 is excessively large, a movement amount of the secondary transfer outer roller 41 becomes large, so that there is a need to create a space for such movement and thus upsizing of the apparatus is invited. Further, when the movement amount becomes large, an output of the driving motor 52 is required to be increased correspondingly, thus leading to an increase in cost. Accordingly, L2−L1 may desirably be small to the possible extent. However, when L2−L1 is excessively small, due to an error, there is a possibility that the secondary transfer outer roller 41 intended to reach the first spaced position reaches the second spaced position. Therefore, in this embodiment, in consideration of molding variation of shapes of parts for performing a mounting and demounting operation and control variation of the mounting and demounting operation, L2−L1=0.5 (mm) is set in order to realize L2−L1>0 with reliability.
Next, in the case where the image adjusting sequence such as image density adjustment or color misregistration adjustment is periodically executed depending on a predetermined print number and a predetermined print time in order to stabilize the image quality, the mounting and demounting operation of the secondary transfer outer roller 41 will be described.
During consecutive image formation, normal images are consecutively formed on the intermediary transfer belt 31 (image bearing member). A patch toner image 6 for adjusting the image is formed at an interval between two normal images (hereinafter referred to as a sheet interval). Then, the normal images are transferred from the intermediary transfer belt 31 onto the recording material, and the patch toner image 6 is not transferred onto the recording material. Such a patch toner image 6 is read by a patch sensor 4 provided at a position opposing a surface of the intermediary transfer belt 31 in a downstream side of the image forming portions. A signal of the patch sensor 4 is, as shown in
Further, the controller 103 controls the driving motor 52 in the image adjusting sequence to appropriately move the secondary transfer outer roller 41. That is, when the normal image reaches the secondary transfer portion 2 as a transfer position where the secondary transfer outer roller 41 is located, the secondary transfer outer roller 41 is positioned at the contact position. Further, during passing of the patch toner image 6 through the secondary transfer portion 2, the secondary transfer outer roller 41 is positioned at the first spaced position. Further, during non-image formation, e.g., before the image forming job is started or after the image forming job is ended, the secondary transfer outer roller 41 is positioned at the second spaced position. In the following, description will be made specifically with reference to
The patch toner image 6 passing through the reading position of the patch sensor 4 is further conveyed by the intermediary transfer belt 31 to a position immediately before the secondary transfer outer roller 41 as shown in (A) of
In this embodiment, a length of the sheet interval where the patch toner image 6 is to be formed is 260 mm. This is because the sheet interval corresponds to 747 (msec) when converted into a passing time of the secondary transfer portion o20 and therefore there is a need to space the secondary transfer outer roller 41 from the contact state and then is placed in the contact state again within 747 (msec). At this time, when the secondary transfer outer roller 41 is moved to the second spaced position, the mounting and demounting vibration as described above is generated and therefore there is a possibility that the vibration adversely affects the formation of a subsequent normal image. On the other hand, as in this embodiment, when the secondary transfer outer roller 41 is moved from the contact position to the first spaced position and then is moved from the first spaced position to the contact position, there is no abrupt load fluctuation and thus the mounting and demounting vibration can be suppressed. For this reason, even when the image adjusting sequence is executed in the sheet interval as described above, the influence on the formation of the subsequent normal image can be reduced. Incidentally, the sheet interval length in which the patch toner image 6 is formed is not limited to the above-described length but may also be set appropriately depending on the size and number of the patch toner image, required correction accuracy during the image adjustment, and a demand on productivity of image formation in consideration of an image adjusting time.
Next, a flow from start of image formation to end of the image formation in this embodiment will be described with reference to
When the image adjustment is ended, i.e., when all the patch toner images 6 formed at the sheet intervals pass through the secondary transfer portion (S7), the secondary transfer outer roller 41 is moved to the contact position by the driving motor 52 (S8). Then, the image formation is resumed, so that the normal image is transferred onto the recording material at the secondary transfer nip 20 (S9). When the image formation is ended (S10), the secondary transfer outer roller 41 is moved to the second spaced position by the driving motor 52 (S11), so that the image formation is ended (S12).
The process from the start of the image formation to the end of the image formation is described above, but a flow during main switch on of the image forming apparatus or during return from a sleep state is as shown in
First, when the main switch of the apparatus main assembly is turned on or when the apparatus main assembly is returned from the sleep state (S13), the image adjusting sequence is started (S14). In this state, the secondary transfer outer roller 41 is located at the second spaced position. In this state, the image adjustment such that the patch toner image 6 is read by the patch sensor 4 and a read result is fed back to the controller 103 and then a correction value during image formation is set to the laser scanner 13 is performed (S15). The patch toner image 6 is, after being read by the patch sensor 4, passed through the secondary transfer portion 2 and then is removed from the intermediary transfer belt 31 by the belt cleaning device 36. Such an image adjusting sequence during the turning-on of the main switch or during the return from the sleep state is ended (S16), and then in the case where the image formation is started (S17), the above-described steps S2 to S12 in
Whether or not the image adjusting sequence is performed when the apparatus main assembly is in the state in which the apparatus main assembly is placed in the sleep state for a long term and then is used again is discriminated by measuring a temperature of the fixing device 5. In this embodiment, in the case where the temperature of the fixing device 5 is 100° C. less, the image adjusting sequence is performed. However, a discrimination factor described above is not limited to the fixing device temperature, but e.g., a timer provided to the apparatus main assembly may also be used.
According to this embodiment constituted as described above, at the first spaced position, the secondary transfer outer roller 41 is spaced from the intermediary transfer belt 31 in the state in which the load by the urging force of the urging member is exerted on the cam 43, and therefore an abrupt load fluctuation is not generated, so that the generation of the vibration can be suppressed. For this reason, when the image adjusting sequence at the sheet interval is executed at the first spaced position as described above, a lowering in productivity can be suppressed. That is, when the patch toner image 6 passes through the secondary transfer portion 2, the secondary transfer outer roller 41 is spaced from the intermediary transfer belt 31 for preventing the toner contamination, but this spaced position is set at the first spaced position where the load fluctuation is not generated. For this reason, the mounting and demounting vibration can be suppressed and the influence on the image formation of the normal image can be reduced. As a result, it is possible to realize the image forming apparatus capable of keeping a good image quality while suppressing the lowering in productivity.
Further, when the patch toner image 6 passes through the secondary transfer portion 2, the secondary transfer outer roller 41 is spaced from the intermediary transfer belt and therefore the secondary transfer outer roller 41 can be prevented from being contaminated with the toner. Accordingly, there is no need to provide a device for cleaning the secondary transfer outer roller 41, so that an increase in cost can be suppressed.
Incidentally, the present invention may preferably be applicable to not only the secondary transfer portion of the image forming apparatus of the tandem type and the intermediary transfer type as described above but also a constitution in which the transfer member is contacted to and spaced from the image bearing member at the image transfer portion.
While the invention has been described with reference to the structures disclosed herein, it is not confined to the details set forth and this application is intended to cover such modifications or changes as may come within the purpose of the improvements or the scope of the following claims.
This application claims priority from Japanese Patent Application No. 103006/2012 filed Apr. 27, 2012, which is hereby incorporated by reference.
Number | Date | Country | Kind |
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2012-103006 | Apr 2012 | JP | national |