The present invention relates to a mechanism to remove a paper jam in a sheet finisher that finishes a sheet having an image formed thereon by an image forming apparatus such as a copier or MFP (multi-functional peripheral).
There is a sheet finisher which performs finishing such as stapling and sorting of a sheet discharged from an image forming apparatus. In the sheet finisher, a sheet discharged from the image forming apparatus may cause a paper jam while the sheet is carried to a finishing unit or a paper discharge tray. Depending on a location where the paper jam occurs, the paper jam may be hard to remove and it may take a long time to remove the jam.
Thus, it is desired that a paper jam removal mechanism for a sheet finisher that reduces the operation at the time of removing a paper jam and improves maintenance performance should be developed.
According to an embodiment, a sheet finishing process device includes: a housing unit which houses a sheet discharged from an image forming unit; a carrying unit which is driven in a first direction toward the housing unit from the image forming unit or in a second direction that is opposite to the first direction, and carries the sheet discharged from the image forming unit; a detection unit which detects a paper jam of the sheet in the carrying unit; and a control unit which controls the carrying unit to be driven in the second direction if the detection unit detects the paper jam of the sheet.
Hereinafter, a first embodiment will be described.
The finisher 20 has, for example, a stapler 21 which staples sheets as finishing, as shown in
In the finisher 20, a connection lever 28 is hung on a boss 13 formed on the printer unit 11, and a frame 20a is connected and fixed to the main frame 10a. The connection lever 28 which is attached to the frame 20a is energized in the direction of arrow A by a spring 30 provided on a shaft 28a.
In the finisher 20, the carrying roller pairs 23 and 24 and the connection lever 28 are driven by a first motor 50. In the finisher 20, the paper discharge tray 22 is slid by a second motor 51. A control circuit 18 as a control unit is controlled by a finisher CPU 17 that controls the finisher 20. The finisher CPU 17 is connected to an MFP-CPU 40 that controls the MFP 10. The control circuit 18 controls the first motor 50 and the second motor 51. The control circuit 18 controls the direction of rotation of the first motor 50 in accordance with the result of detection by the sheet sensor 27.
At the time of carrying the sheet P, the first motor 50 rotates forward and rotates an upper roller 23a of the carrying roller pair 23 forward at a print speed as a first speed to a first direction, that is, the direction of arrow G. For example, a timing belt 26 is laid between the upper roller 23a of the carrying roller 23 and an upper roller 24a of the carrying roller pair 24, and the upper rollers 23a and 24a are rotated forward in the same timing. The carrying roller pairs 23 and 24 rotate forward and discharge and carry the sheet P in the direction of arrow R. At the time of removing a paper jam, the first motor 50 rotates backward and rotates the upper rollers 23a and 24a backward at a removal speed as a second speed that is lower than the print speed to a second direction, that is, the direction of arrow H. At the time of paper jam removal, the carrying roller pairs 23 and 24 rotate backward and remove and carry the sheet P in the direction of arrow T as a fourth direction.
At the time of backward rotation, the first motor 50 rotates the connection lever 28 in the direction of arrow B. The first motor 50 releases the connection lever 28 by using a release mechanism 60 as a release unit shown in
The control circuit 18 rotates the first motor 50 backward and turns on the electromagnetic clutch 62. As the electromagnetic clutch 62 is turned on, the backward rotation of the first motor 50 in the direction of arrow D is transmitted to the release gear 61, the electromagnetic clutch 62 and the belt 63 and thus rotates the connection lever 28 in the direction of arrow B. When the connection lever 28 is rotated in the direction of arrow B and the connection with the boss 13 is released, a separation spring 16 that stands between the frame 20a and the main frame 10a causes the frame 20a to slide in the direction of arrow N away from the main frame 10a. As the frame 20a slides, a space S is formed between the frame 20a and the main frame 10a.
When the first motor 50 rotates forward in the direction of arrow C, the first motor 50 rotates the upper carrying roller pair 23a and 24a forward in the direction of arrow G via a first gear array 70 as a first link unit shown in
When the first motor 50 rotates backward in the direction of arrow D, the first motor 50 drives the upper carrying roller pair 23a and 24a in the direction of arrow H via a second gear array 80 as a second link unit shown in
When the first motor 50 rotates forward, the planetary gear 74 attached to a planetary lever 77 energized in the direction of arrow E by the carrying gear 72 meshes with the driving gear 76. Therefore, the first motor 50, by its forward rotation, rotates the driving gear 76 and the upper carrying rollers 23a and 24a forward in the direction of arrow G. When the first motor 50 rotates backward, the planetary gear 74 energized in the direction of arrow F via the planetary gear 77 meshes with the removal gear 81. Therefore, the first motor 50, by its backward rotation, rotates the driving gear 76 and the upper carrying rollers 23a and 24a backward in the direction of arrow H via the removal gears 81 to 84.
As the backward rotation of the first motor 50 is transmitted via the removal gears 81 to 84, the backward rotation is significantly decelerated with respect to the rotation speed of the first motor 50 and then transmitted to the driving gear 76. Therefore, the backward rotation of the driving gear 76 and the upper carrying rollers 23a and 24a in the direction of arrow H is at a lower speed than the forward rotation in the direction of arrow G. As the upper carrying rollers 23a and 24a are rotated backward at a low speed, the upper carrying rollers 23a and 24a can provide a high torque. Thus, even if there are some creases on the sheet P at the time of paper jam removal, the upper carrying rollers 23a and 24a can securely carry the sheet P in the direction of removal.
As shown in
Next, the process of removing the sheet P when a paper jam is occurred will be described with reference to the flowchart of
When a paper jam of the sheet P occurs and the sheet sensor 27 detects the paper jam (Yes in ACT 101) as shown in
As shown in
The solenoid 33 rotates the striking lever 32 in the direction of arrow J, changes the flexure of the sheet P in the space S downward, and then returns the striking lever 32 to the housing position. The sheet P flexes on a relatively broad side below the carrying roller pair 23 in the space S. As the sheet P flexes on the upper side in the space S, the sheet P may hit the top side of the hollow body part 10b be torn and make it difficult to remove the paper jam. As the striking lever 32 changes the flexure downward, it becomes easier to remove the paper jam.
When the sheet P is removed and carried in the direction of arrow T by the carrying roller pairs 23 and 24 and the sheet P exits the carrying roller pair 23 as shown in
The operator removes the sheet P hanging down in the space S in accordance with the message on the display panel 14a. After removing the paper jam, the operator slides the frame 20a in the direction of arrow K, hangs the connection lever 28 on the boss 13 and thus connects the frame 20a to the main frame 10a. When it is detected that the frame 20a is connected to the main frame 10a, the MFP-CPU 40 detects the restoration of the finisher 20 and resumes printing.
According to the first embodiment, when a paper jam occurs, the finisher 20 rotates the first motor 50 backward, thus automatically removes and carries the sheet P existing in the carrying roller pairs 23 and 24 to the space S between the frame 20 and the main frame 10a, and then discharges the sheet P outside of the finisher 20. The operator can remove the paper jam simply by removing the sheet P that is automatically discharged outside of the finisher 20, without carrying out any operation to remove the sheet P existing within the finisher 20. The operation by the operator at the time of occurrence of a paper jam can be significantly reduced and maintenance performance can be improved.
Next, a second embodiment will be described. In the second embodiment, the sheet finisher of the first embodiment is arranged on the lateral side of the MFP and thus connected to the MFP. In the second embodiment, the same components of the configuration as those described in the first embodiment are denoted by the same reference numerals and will not be described further in detail.
The finisher 200 has a fall prevention sheet 202 as a supporting unit which connects the finisher 200 and the printer unit 11 and which prevents the sheet P removed and carried from the finisher 200 from falling and thus supports the sheet P. One side of the fall prevention sheet 202 is attached to the frame 200a of the finisher 200 and the other side is attached to the relay unit 210. At the time of attaching the fall prevention sheet 202 to the frame 200a and the relay unit 210, the fall prevention sheet 202 is arranged in a manner that its front side is lowered.
When the finisher 200 is connected to the printer unit 11, the fall prevention sheet 202 is folded and housed between the frame 200a and the main frame 10a. When the connection between the finisher 200 and the printer unit 11 is released and the finisher 200 is separated from the printer unit 11, the fall prevention sheet 202 is spread and receives the sheet P removed and carried outward from the finisher 200.
As shown in
Therefore, even if the rear end of the sheet P exits the relay rollers 212 of the relay unit 210 and the sheet P is free when the removal and carrying by the carrying roller pairs 23 and 24 is finished, the sheet P removed and carried toward the space S between the frame 200a and the main frame 10a is loaded on the fall prevention sheet 202, as shown in
As the sheet sensor 27 detects the end of the paper jam removal and the MFP-CPU 40 displays a message requesting for a removed processing of a paper jam on the display panel 14a, the operator removes the sheet P on the fall prevention sheet 202. After removing the sheet P from the fall prevention sheet 202, as the operator slides the finisher 200 in the direction of arrow L and connects the finisher 200 to the main frame 10a, the MFP-CPU 40 detects the restoration of the finisher 200 and resumes printing.
According to the second embodiment, the finisher 200 automatically removes and carries the sheet P causing a paper jam, onto the fall prevention sheet 202 in the space S between the finisher 200 and the main frame 10a. Therefore, the operator can easily remove the paper jam simply by removing the sheet P on the fall prevention sheet 202. The operation by the operator at the time of occurrence of a paper jam can be significantly reduced and maintenance performance can be improved. Also, since the fall prevention sheet 202 supports the sheet P, the sheet P can be prevented from falling onto the floor.
The invention is not limited to the above embodiments and various changes and modifications can be made without departing from the scope of the invention. For example, the finishing carried out by the sheet finishing process device is not limited to stapling. The finishing can include punching, Z-folding and so on. The structure of the link unit or the release unit that drives the carrying unit is not limited, either. The second speed of the carrying unit in the fourth direction with respect to the first speed in the third direction is arbitrary. When the second speed is made lower than the first speed, the torque of the carrying unit when carrying the sheet in the second direction can be increased and the sheet can be removed and carried more securely irrespective of certain deformation. Also, the image forming unit may be arbitrary, such as a color image forming apparatus or a monochrome image forming apparatus.
This application is based upon and claims the benefit of priority from Provisional U.S. Applications 61/150,266 filed on Feb. 5, 2009 and 61/178,385 filed on May 14, 2009, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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61150266 | Feb 2009 | US | |
61178385 | May 2009 | US |