This application is based upon and claims the benefit of priority from the corresponding Japanese Patent Application No. 2016-253027 filed on Dec. 27, 2016, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a sheet discharge device including a discharge tray that can be lifted and lowered, and to an image forming apparatus.
There is known a paper sheet discharge device that, after a paper sheet is discharged onto a paper sheet discharge tray, lowers the paper sheet discharge tray once, and then lifts the paper sheet discharge tray to a position where an upper surface portion of paper sheets stacked on the paper sheet discharge tray is detected by an upper surface detection sensor.
A sheet discharge device according to an aspect of the present disclosure includes a sheet conveying portion, a discharge port, a sheet storage portion, a sheet discharge portion, a discharge tray, a tray lifting/lowering mechanism, an upper-surface detection sensor, a lowering control portion, and a lifting control portion. The sheet conveying portion conveys sheets one by one. The sheets are discharged through the discharge port. The sheet storage portion stores in a stack a plurality of sheets that have been conveyed by the sheet conveying portion, in a state where front ends of the plurality of sheets protrude from the discharge port. The sheet discharge portion discharges, as a sheet bundle, a predetermined number of sheets from the sheet storage portion through the discharge port. On the discharge tray, sheet bundles discharged through the discharge port are stacked. The tray lifting/lowering mechanism supports the discharge tray in such a way as to lift and lower the discharge tray. The upper-surface detection sensor detects whether or not an upper surface of the sheet bundles stacked on the discharge tray has reached a predetermined height. The lowering control portion, upon a discharge of a sheet bundle onto the discharge tray, controls the tray lifting/lowering mechanism to lower the discharge tray by a predetermined lowering distance. The lifting control portion, after the discharge tray is lowered by the lowering control portion, waits until a front end of an initial sheet of a next sheet bundle becomes in a state of protruding from the discharge port, and then lifts the discharge tray until the upper-surface detection sensor detects that the upper surface of the sheet bundles has reached the predetermined height.
An image forming apparatus according to another aspect of the present disclosure includes an image forming portion and the sheet discharge device. The image forming portion forms an image on a sheet. The sheet discharge device discharges the sheet on which the image has been formed by the image forming portion.
This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description with reference where appropriate to the accompanying drawings. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter. Furthermore, the claimed subject matter is not limited to implementations that solve any or all disadvantages noted in any part of this disclosure.
The following describes an embodiment of the present disclosure with reference to the accompanying drawings. It should be noted that the following embodiment is an example of a specific embodiment of the present disclosure and should not limit the technical scope of the present disclosure.
An image forming apparatus 1 according to the embodiment of the present disclosure is a multifunction peripheral having a plurality of functions such as a printer function, a scanner function, and a facsimile function. It is noted that the image forming apparatus 1 is not limited to a multifunction peripheral, but may be a printer, a facsimile, a copier or the like.
As shown in
As shown in
The sheet feed portion 21 feeds a sheet P stored in a sheet feed cassette toward the image forming portion 22. The image forming portion 22 includes a photoconductor drum, a charging portion, a developing portion, an exposure portion, a transfer portion, and a cleaning portion, and forms an image on the sheet P by an electrophotographic system. The fixing portion 23 includes a heating roller and a pressure roller, and by using the heating roller and the pressure roller, fuses toner that forms a toner image, and fixes the toner to the sheet P.
The sheet P that has passed through the fixing portion 23 is conveyed to the post-processing device 3 by conveyance rollers included in the conveyance portion 24. The post-processing device 3 performs post-processing such as punching, stapling, or sorting of sheets P on which images have been formed by the image forming portion 22, and then discharges the sheets P.
As shown in
The conveyance rollers 31 receive a driving force from a motor (not shown) and convey, one by one, sheets P discharged from the apparatus main body 2. A sheet P discharged from the apparatus main body 2 passes through an entry port provided in a housing of the post-processing device 3 so as to be guided into the post-processing device 3 and is conveyed to the punching portion 32 by the conveyance rollers 31. The punching portion 32 is configured to punch the sheet P as specified.
The sheet P that has passed through the punching portion 32 is conveyed to the stack tray 33 by the conveyance rollers 31. The stack tray 33 has a sheet placing surface that extends diagonally downward from a vicinity of the discharge port 36. The stack tray 33 is used to temporarily hold sheets P for the stapling or the sorting.
When the sheet P is conveyed to the stack tray 33 by the conveyance rollers 31, a front end (an end on the downstream side in the conveyance direction) of the sheet P proceeds to the discharge port 36 along the sheet placing surface of the stack tray 33, and protrudes from the discharge port 36 to outside of the housing of the post-processing device 3. Subsequently, after a rear end (an end on the upstream side in the conveyance direction) of the sheet P passes through the conveyance rollers 31, the sheet P slides, by its own weight, diagonally downward along the sheet placing surface of the stack tray 33 and moves to the stapling unit 34 side. The sheet P stops at a position where the rear end of the sheet P abuts on a stopper (not shown). In this way, the stack tray 33 holds, in a stack, a plurality of sheets P that have been conveyed by the conveyance rollers 31, in a state where the front ends of the sheets P protrude from the discharge port 36 (see
When the stapling is executed by the post-processing device 3, the stapling unit 34 performs the stapling on the plurality of sheets P that are held by the stack tray 33 as described above.
The discharge roller 35 is provided in a vicinity of the discharge port 36. The discharge roller 35 discharges a predetermined number of sheets P as a sheet bundle B from the stack tray 33 through the discharge port 36. The sheet bundle B discharged through the discharge port 36 is stacked on the discharge tray 37 (see
The discharge tray 37 is supported by the tray lifting/lowering mechanism 38 so as to be lifted and lowered. The tray lifting/lowering mechanism 38 includes, for example, two pulleys and a belt which is stretched between the two pulleys, receives a driving force from a motor (not shown) and lifts and lowers the discharge tray 37.
The upper-surface detection sensor 39 is provided below the discharge port 36, and detects whether or not an upper surface of the sheet bundles B stacked on the discharge tray 37 has reached a predetermined height. The upper-surface detection sensor 39 may be a mechanical sensor or an optical sensor. The height of the discharge tray 37 is controlled based on the detection result of the upper-surface detection sensor 39. Specifically, in a case where the sheet bundle B is not stacked on the discharge tray 37, the height of the discharge tray 37 is controlled so that an upper surface (a sheet placing surface) of the discharge tray 37 is at the predetermined height. In addition, in a case where one or more sheet bundles B are stacked on the discharge tray 37, the height of the discharge tray 37 is controlled so that an upper surface of a top sheet bundle B of the stacked sheet bundles B is at the predetermined height. In this way, the height of the discharge tray 37 is controlled in accordance with the height of the upper surface of the sheet bundles B stacked on the discharge tray 37. As a result, the sheet bundles B stacked on the discharge tray 37 are prevented from colliding with a sheet bundle B discharged from the discharge port 36.
As shown in
The main control portion 20 is a microcomputer configured to control the image forming apparatus 1 comprehensively.
The sub control portion 30 includes control equipment such as a CPU, a ROM, and a RAM. The CPU is a processor that executes various calculation processes. The ROM is a nonvolatile storage portion in which various information such as control programs for causing the CPU to execute various processes are stored in advance. The RAM is a volatile or nonvolatile storage portion that is used as a temporary storage memory (working area) for the various processes executed by the CPU. The main control portion 20 and the sub control portion 30 can communicate with each other.
Specifically, the sub control portion 30 includes a lowering control portion 301, a lifting control portion 302, a shift detection processing portion 303, a re-lowering control portion 304, and a sheet length acquiring portion 305. It is noted that the sub control portion 30 functions as processing portions by executing various processes in accordance with the control programs. In addition, the sub control portion 30 may include an electronic circuit that realizes one or more processing functions of the processing portions.
The lowering control portion 301, upon a discharge of a sheet bundle B onto the discharge tray 37, controls the tray lifting/lowering mechanism 38 to lower the discharge tray 37 by a predetermined lowering distance Dd (see
The lifting control portion 302, after the discharge tray 37 is lowered by the lowering control portion 301, controls the tray lifting/lowering mechanism 38 to lift the discharge tray 37 until the upper-surface detection sensor 39 detects that the upper surface of the sheet bundles B has reached the predetermined height (see
Meanwhile, in the post-processing device 3, the sheet bundles B stacked on the discharge tray 37 may be positionally shifted, and the upper surface of the sheet bundles B may be shifted from a detectable range of the upper-surface detection sensor 39. For example, in a comparative example shown in
Specifically, the lifting control portion 302 is configured to, after the discharge tray 37 is lowered by the lowering control portion 301, wait until the front end of the initial sheet P of the next sheet bundle B becomes in a state of protruding from the discharge port 36, and then lift the discharge tray 37 until the upper-surface detection sensor 39 detects that the upper surface of the sheet bundles B has reached the predetermined height. For example, as shown in
The shift detection processing portion 303 detects whether or not the upper surface of the sheet bundles B is shifted from the detectable range of the upper-surface detection sensor 39. Specifically, the shift detection processing portion 303 calculates a lifting distance Du by which the discharge tray 37 was lifted by the lifting control portion 302. The lifting distance Du of the discharge tray 37 is calculated by multiplying the lifting speed by the lifting time period. The shift detection processing portion 303 then detects whether or not the upper surface of the sheet bundles B is shifted from the detectable range of the upper-surface detection sensor 39, based on a result of comparison between the lowering distance Dd by which the discharge tray 37 was lowered by the lowering control portion 301 and the lifting distance Du by which the discharge tray 37 was lifted by the lifting control portion 302. For example, in a case where a sheet bundle B discharged from the discharge port 36 is stacked at a correct position on the discharge tray 37 as shown in
It is noted that when the shift detection processing portion 303 has detected a shift of sheet bundles B, the lifting control portion 302 may wait until the front end of the initial sheet P of a sheet bundle B discharged next becomes in a state of protruding from the discharge port 36, and then lift the discharge tray 37. On the other hand, when the shift detection processing portion 303 has not detected a shift of sheet bundles B, the lifting control portion 302 may lift the discharge tray 37 without waiting until the front end of the initial sheet P of the sheet bundle B discharged next becomes in a state of protruding from the discharge port 36. This is because in a state where a shift of sheet bundles B has not been detected by the shift detection processing portion 303, there is a low possibility that the upper surface of the sheet bundles B stacked on the discharge tray 37 becomes higher than the discharge port 36. In addition, when a length (length in the conveyance direction) of the sheet P is large, if the height of the discharge tray 37 is too low, the front end of the sheet P protruding from the discharge port 36 may hang down low from the discharge port 36, be curled, and not be discharged correctly. Accordingly, to prevent occurrence of such a problem, in a case where the shift detection processing portion 303 has not detected a shift of sheet bundles B, the lifting control portion 302 may lift the discharge tray 37 without waiting until the front end of the initial sheet P of the sheet bundle B discharged next becomes in a state of protruding from the discharge port 36.
In a case where the shift detection processing portion 303 has detected a shift of sheet bundles B, after the lifting control portion 302 lifts the discharge tray 37, the re-lowering control portion 304 lowers the discharge tray 37 again by a predetermined re-lowering distance Dr (see
It is noted that even in a case where the re-lowering control portion 304 performs a re-lowering of the discharge tray 37, there may be a case where the height of the upper surface of the sheet bundles B is temporarily higher than the discharge port 36 during a time period after the discharge tray 37 is lifted by the lifting control portion 302 and before the discharge tray 37 is lowered by the re-lowering control portion 304. However, even in this case, the lifting control portion 302 waits until the front end of the initial sheet P of the next sheet bundle B becomes in a state of protruding from the discharge port 36, and lifts the discharge tray 37. It is thus possible to prevent a sheet P coming out of the discharge port 36 from colliding with the sheet bundles B stacked on the discharge tray 37.
The sheet length acquiring portion 305 acquires a length of the sheet P in the conveyance direction thereof as a sheet length. For example, the sheet length acquiring portion 305 acquires the sheet length from the main control portion 20. Alternatively, the sheet length acquiring portion 305 may calculate the sheet length based on signals from a plurality of sheet sensors (not shown) provided along the conveyance direction of the sheet P. In a case where the sheet length of the initial sheet P of the sheet bundle B that is discharged next, is smaller than a predetermined threshold, the lifting control portion 302 may always wait until the front end of the initial sheet P of the next sheet bundle B becomes in a state of protruding from the discharge port 36 and then lift the discharge tray 37 regardless of the detection result of the shift detection processing portion 303. On the other hand, in a case where the sheet length of the initial sheet P of the sheet bundle B that is discharged next, is equal to or larger than the threshold, the lifting control portion 302 may wait until the front end of the initial sheet P of the next sheet bundle B becomes in a state of protruding from the discharge port 36 and then lift the discharge tray 37 only if the shift detection processing portion 303 detects a shift of the sheet bundles B. With this configuration, in a case where the sheet length is small, it is possible to prevent, in a reliable manner, a sheet P coming out of the discharge port 36 from colliding with the sheet bundles B stacked on the discharge tray 37. In addition, in a case where the sheet length is large, the discharge tray 37 is lifted without waiting until the front end of the initial sheet P of the sheet bundle B discharged next becomes in a state of protruding from the discharge port 36, while a shift of the sheet bundles B has not been detected by the shift detection processing portion 303. This makes it possible to suppress the sheet bundle B that is discharged next, from not being discharged appropriately.
In the following, an example of the procedure of a tray lifting/lowering process executed by the sub control portion 30 is described with reference to
<Step S1>
First, in step S1, the sub control portion 30 determines whether or not a sheet bundle B has been discharged from the discharge port 36. For example, the sub control portion 30 determines whether or not a sheet bundle B has been discharged from the discharge port 36 based on signals from sheet sensors (not shown) provided in the vicinity of the discharge port 36. When it is determined that a sheet bundle B has been discharged (S1: Yes), the process moves to step S2. On the other hand, when it is determined that a sheet bundle B has not been discharged (S1: No), the process of step S1 is repeated until it is determined that a sheet bundle B has been discharged.
<Step S2>
In step S2, the sub control portion 30 (the lowering control portion 301) lowers the discharge tray 37 by the predetermined lowering distance Dd. With this configuration, even in a case where the rear end of the sheet bundle B is hooked on the discharge port 36, the rear end of the sheet bundle B is separated from the discharge port 36, and the sheet bundle B is stacked on the discharge tray 37 correctly.
<Step S3>
In step S3, the sub control portion 30 determines whether or not an abnormality flag is on. It is noted that the abnormality flag indicates whether or not the upper surface of the sheet bundles B is shifted from the detectable range of the upper-surface detection sensor 39, and is set on in step S9 and set off in step S7 described below. When it is determined that the abnormality flag is on (S3: Yes), the process moves to step S4. On the other hand, when it is determined that the abnormality flag is off (S3: No), the process moves to step S5.
<Step S4>
In step S4, the sub control portion 30 (the lifting control portion 302) determines whether or not the front end of the initial sheet P of the next sheet bundle B is in a state of protruding from the discharge port 36. For example, the sub control portion 30 determines whether or not the front end of the initial sheet P of the next sheet bundle B is in a state of protruding from the discharge port 36, based on signals from sheet sensors (not shown) provided in the vicinity of the discharge port 36. When it is determined that the front end of the sheet P is in a state of protruding from the discharge port 36 (S4: Yes), the process moves to step S5. On the other hand, when it is determined that the front end of the sheet P is not in a state of protruding from the discharge port 36 (S4: No), the process of step S4 is repeated until it is determined that the front end of the sheet P is in a state of protruding from the discharge port 36.
<Step S5>
In step S5, the sub control portion 30 (the lifting control portion 302) lifts the discharge tray 37 until the upper-surface detection sensor 39 detects that the upper surface of the sheet bundles B has reached the predetermined height.
<Step S6>
In step S6, the sub control portion 30 (the shift detection processing portion 303) determines whether or not the lifting distance Du of the discharge tray 37 in the step S5 is abnormal. Specifically, the sub control portion 30 determines whether or not the lifting distance Du is abnormal based on a result of comparison between the lowering distance Dd by which the discharge tray 37 was lowered in in the step S2, and the lifting distance Du by which the discharge tray 37 was lifted in the step S5. When it is determined that the lifting distance Du is abnormal (S6: Yes), the process moves to step S9. On the other hand, when it is determined that the lifting distance Du is not abnormal (S6: No), the process moves to step S7.
<Step S7>
In step S7, upon determining that the upper surface of the sheet bundles B is not shifted from the detectable range of the upper-surface detection sensor 39, the sub control portion 30 sets off the abnormality flag.
<Step S8>
In step S8, the sub control portion 30 resets an abnormality counter to 0 (zero). It is noted that the abnormality counter is used to count the number of times that it has been determined in step S6 that the lifting distance Du is abnormal. After step S8, the process moves to step S12.
<Step S9>
In step S9, upon determining that the upper surface of the sheet bundles B is shifted from the detectable range of the upper-surface detection sensor 39, the sub control portion 30 sets on the abnormality flag.
<Step S10>
In step S10, the sub control portion 30 increments the abnormality counter.
<Step S11>
In step S11, the sub control portion 30 (the re-lowering control portion 304) lowers the discharge tray 37 again by the re-lowering distance Dr. The process then moves to step S12.
<Step S12>
In step S12, the sub control portion 30 determines whether or not the count value of the abnormality counter is 3. When it is determined that the count value of the abnormality counter is 3 (S12: Yes), the process moves to step S14. On the other hand, when it is determined that the count value of the abnormality counter is not 3 (namely, the count value is any of values 0 to 2) (S12: No), the process moves to step S13.
<Step S13>
In step S13, the sub control portion 30 determines whether or not all of the sheet bundles B have been discharged to the discharge tray 37. When it is determined that all of the sheet bundles B have been discharged to the discharge tray 37 (S13: Yes), the discharge tray 37 is returned to the initial position (
<Step S14>
When the count value of the abnormality counter is 3, it means that the upper surfaces of three sheet bundles B continuously discharged from the discharge port 36 are shifted from the detectable range of the upper-surface detection sensor 39. Thus, in step S14, the sub control portion 30 executes a predetermined error process to prevent a sheet P that comes out of the discharge port 36, from colliding with the sheet bundles B stacked on the discharge tray 37. For example, the sub control portion 30 temporarily stops the operation of the post-processing device 3, and displays, on the operation/display portion 25, a message that urges the user to remove the sheet bundles B from the discharge tray 37 (or to arrange the sheet bundles B to correct positions). Thereafter, the discharge tray 37 is returned to the initial position (
As described above, according to the present embodiment, after the discharge tray 37 is lowered by the lowering control portion 301, it is waited until the front end of the initial sheet P of the next sheet bundle B becomes in a state of protruding from the discharge port 36, and then the discharge tray 37 is lifted. With this configuration, it is possible to suppress a sheet P coming out of the discharge port 36 from colliding with the sheet bundles B stacked on the discharge tray 37.
It is noted that in the flowchart shown in
It is to be understood that the embodiments herein are illustrative and not restrictive, since the scope of the disclosure is defined by the appended claims rather than by the description preceding them, and all changes that fall within metes and bounds of the claims, or equivalence of such metes and bounds thereof are therefore intended to be embraced by the claims.
Number | Date | Country | Kind |
---|---|---|---|
2016-253027 | Dec 2016 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
6375181 | Kawano | Apr 2002 | B1 |
20010050459 | Tamura | Dec 2001 | A1 |
20090200736 | Seki | Aug 2009 | A1 |
20090267290 | Kotani | Oct 2009 | A1 |
20130193637 | Taguchi | Aug 2013 | A1 |
20150353314 | Wada | Dec 2015 | A1 |
20170305701 | Kotani | Oct 2017 | A1 |
Number | Date | Country |
---|---|---|
2000219409 | Aug 2000 | JP |
2013155034 | Aug 2013 | JP |
Number | Date | Country | |
---|---|---|---|
20180179011 A1 | Jun 2018 | US |