The present application claims priority to and incorporates by reference the entire contents of Japanese priority document 2008-189672 filed in Japan on Jul. 23, 2008.
1. Field of the Invention
The present invention relates to a technology for conveying a sheet discharged from an upper-level apparatus to a predetermined position for performing a post processing of the sheet.
2. Description of the Related Art
A typical sheet processing apparatus is configured such that it conveys a sheet received from an image forming apparatus, such as a copier or a printer, to an intermediate processing tray one by one; then performs post processing (for example, a stapling process) set in advance by a user through an operation screen of the image forming apparatus on a stack of sheets stacked in the intermediate processing tray; then discharges the stack of sheets out of the intermediate processing tray after the post processing is completed; and then receives a next sheet from the image forming apparatus.
In such a sheet processing apparatus, it is necessary to assure a processing time for performing a process on the stack of sheets in the intermediate processing tray. Therefore, feeding of a next sheet from the image forming apparatus is sometimes suspended until the process is finished, which leads to degradation in productivity.
In consideration of the fact that an interval between sheets fed by the image forming apparatus is usually constant, Japanese Patent Application Laid-open No. 2001-97631 discloses a sheet processing apparatus having a sheet buffering mechanism that can temporarily stacks therein sheets so that a processing time for performing post processing or sheet-stack discharge processing can be assured.
However, to arrange the sheet buffering mechanism in the sheet processing apparatus, a space for the sheet buffering mechanism needs to be assured inside the sheet processing apparatus. Therefore, the size of the sheet processing apparatus increases or necessary cost increases.
Japanese Patent No. 3980834 discloses a sheet processing apparatus that controls a sheet conveying speed such that an interval between sheets (time interval) can be increased so that an operational time necessary for performing a sorting process, a sheet feed back process, or an alignment process on sheets can be assured.
A sheet processing apparatus that controls a sheet conveying speed is also disclosed in, for example, Japanese Patent No. 3886135. Specifically, the sheet processing apparatus is configured to accelerate the sheet conveying speed from a first speed to a second speed at a first timing so that a distance between a sheet being conveyed by a conveying unit and a sheet to be conveyed next can be increased. When a sheet being conveyed is the last sheet in a preceding stack of sheets, the sheet conveying speed is accelerated from the first speed to the second speed at a second timing that is delayed from the first timing.
However, in such a sheet processing apparatus, when the sheet conveying speed is accelerated at the second timing, a distance for which the sheet is conveyed at the second speed becomes extremely short. Therefore, the sheet conveying speed needs to be rapidly accelerated and then rapidly decelerated. As a result, the sheet may be damaged such that the sheet is torn or dirtied, or performance of the conveying unit such as a stepper motor may be degraded.
As described above, when arranging a mechanism for temporarily stacking therein a sheet so that a time for performing post processing or sheet-stack discharge processing can be assured in the sheet processing apparatus, a space for the mechanism needs to be assured in the sheet processing apparatus. Therefore, the size of the sheet processing apparatus increases.
Furthermore, when the sheet processing apparatus is provided with a control unit that controls the sheet conveying speed, because the sheet conveying speed is sometimes changed rapidly, loads applied to various components including sheets increase. Therefore, the sheet may be torn or dirtied, or performance of the components such as a feed drive source may be degraded.
It is an object of the present invention to at least partially solve the problems in the conventional technology.
According to one aspect of the present invention, there is provided a sheet processing apparatus including a conveying unit that conveys a sheet from an upper-level apparatus; a conveyance control unit that changes a conveying speed of the sheet from a first conveying speed to a second conveying speed to extend an interval between a current sheet and a next sheet from the upper-level device increases; a first tray unit that stacks therein the sheet conveyed by the conveying unit; an aligning unit that aligns sheets stacked in the first tray unit; a second tray unit that stacks therein a stack of sheets discharged from the first tray unit; a discharging unit that discharges the stack of sheets from the first tray unit to the second tray unit; and a holding unit that holds a trailing end of the stack of sheets stacked in the second tray unit. When a sheet is conveyed to an acceleration position where the conveying speed can be changed from the first conveying speed to the second conveying speed while the discharging unit is discharging a preceding stack of sheets, the conveyance control unit calculates a third conveying speed for conveying the sheet based on a first conveyance time to be taken until a leading end of the stack of sheets reaches the second tray unit and a second conveyance time to be taken until a current discharging operation of the stack of sheets is completed from a start of the current discharging operation, and changes the conveying speed from the first conveying speed to the third conveying speed.
Furthermore, according to another aspect of the present invention, there is provided a sheet processing method including conveying a sheet from an upper-level apparatus to a first tray unit; controlling including changing a conveying speed of the sheet from a first conveying speed to a second conveying speed to extend an interval between a current sheet and a next sheet from the upper-level device increases; aligning sheets stacked in the first tray unit; discharging a stack of sheets from the first tray unit to a second tray unit; and holding a trailing end of the stack of sheets stacked in the second tray unit. When a sheet is conveyed to an acceleration position where the conveying speed can be changed from the first conveying speed to the second conveying speed while a preceding stack of sheets is discharged at the discharging, the controlling includes calculating a third conveying speed for conveying the sheet based on a first conveyance time to be taken until a leading end of the stack of sheets reaches the second tray unit and a second conveyance time to be taken until a current discharging operation of the stack of sheets is completed from a start of the current discharging operation and changing the conveying speed from the first conveying speed to the third conveying speed.
Moreover, according to still another aspect of the present invention, there is provided an image forming apparatus including a sheet processing device. The sheet processing device includes a conveying unit that conveys a sheet from an upper-level apparatus; a conveyance control unit that changes a conveying speed of the sheet from a first conveying speed to a second conveying speed to extend an interval between a current sheet and a next sheet from the upper-level device increases; a first tray unit that stacks therein the sheet conveyed by the conveying unit; an aligning unit that aligns sheets stacked in the first tray unit; a second tray unit that stacks therein a stack of sheets discharged from the first tray unit; a discharging unit that discharges the stack of sheets from the first tray unit to the second tray unit; and a holding unit that holds a trailing end of the stack of sheets stacked in the second tray unit. When a sheet is conveyed to an acceleration position where the conveying speed can be changed from the first conveying speed to the second conveying speed while the discharging unit is discharging a preceding stack of sheets, the conveyance control unit calculates a third conveying speed for conveying the sheet based on a first conveyance time to be taken until a leading end of the stack of sheets reaches the second tray unit and a second conveyance time to be taken until a current discharging operation of the stack of sheets is completed from a start of the current discharging operation, and changes the conveying speed from the first conveying speed to the third conveying speed.
The above and other objects, features, advantages and technical and industrial significance of this invention will be better understood by reading the following detailed description of presently preferred embodiments of the invention, when considered in connection with the accompanying drawings.
Exemplary embodiments of the present invention are explained in detail below with reference to the accompanying drawings.
A feed entrance 205 is opened between the conveying guide plate 201 and the open-close guide plate 202 in the most upstream area of the conveying path 204 in a sheet conveying direction. The feed entrance 205 is connected to a conveying path 3 of an upper-level device 2, such as an image forming apparatus, via a relay unit 4 that includes a plurality of discharge rollers 4a.
An entrance sensor 206 that detects a position of a sheet is arranged near the feed entrance 205 and inside the sheet post-processing apparatus 1. A pair of conveyor rollers 207 is arranged near and downstream of the entrance sensor 206 in the sheet conveying direction. A pair of discharge rollers 208 is arranged in the downstream area of the conveying path 204.
As shown in
The swing arm 213 is always biased by gravity or a spring (not shown) towards a staple tray 401 (a first tray unit) shown in
In the example shown in
In the example shown in
A configuration of a sheet aligning unit according to the embodiment is described below.
As shown in
A home sensor 408 that detects a standby position of the jogger fence 402, and a home sensor 409 that detects a standby position of the jogger fence 403 are mounted on the staple tray 401. Base fences 410 and 411 to which a trailing end of a sheet abuts when the sheet is aligned are also mounted on the staple tray 401.
Assuming that a sheet P in an N-th stack of sheets is aligned in the shift mode shown in
After a predetermined number of sheets are aligned as one stack of sheets, and the stack of sheets is output to a sheet output tray 301 (a second tray unit) shown in
Operation timings of the jogger fences 402 and 403 are controlled by the CPU 100 based on the number of driving steps of the stepper motor 212, which is a conveyor drive motor, from when the entrance sensor 206 detects passage of the trailing end of the sheet. In other words, the CPU 100 controls the operation timings based on a conveyed distance of the sheet.
Assuming that the sheet P in the N-th stack of sheets is aligned in the staple mode shown in
After a predetermined number of sheets are aligned as one stack of sheets ((f) of
Similar to the process in the shift mode, operation timings of the jogger fences 402 and 403 are controlled by the CPU 100 based on the number of driving steps of the stepper motor 212, which is a conveyor drive motor, from when the entrance sensor 206 detects passage of the trailing end of the sheet. In other words, the CPU 100 controls the operation timings based on a conveyed distance of the sheet.
A timing of conveying a sheet (a sheet in the N-th stack of sheets) in a sheet conveying operation according to the embodiment, which starts from sheet receiving and ends with sheet alignment, is described below with reference to
A sheet in the N-th stack of sheets is fed from the image forming apparatus at a receiving line speed V1 (first conveying speed), and enters the feed entrance 205 at the same speed. When the sheet is conveyed for a predetermined distance after the entrance sensor 206 detects passage of a leading end of the sheet, that is, when the leading end of the sheet reaches the conveyor rollers 207 (a acceleration allowed timing T1), rotation speed of the stepper motor 212 that is a conveyor drive motor is accelerated from the receiving line speed V1 to a conveyor line speed V2 (second conveying speed). Accordingly, a conveying speed of the sheet is accelerated to the conveyor line speed V2.
When the sheet is continuously conveyed at the conveyor line speed V2 along the conveying path 204 for a predetermined distance after a trailing end of the sheet passes through the entrance sensor 206 (i.e., when the trailing end of the sheet reaches a position upstream of the discharge rollers 208 by 30 millimeters), the rotation speed of the stepper motor 212 is decelerated, so that the conveying speed of the sheet is also decelerated. Specifically, the conveying speed is decelerated to a discharge line speed V4 (fourth conveying speed), which depends on a sheet size, and the sheet is discharged onto the staple tray 401 by the discharge rollers 208 at the discharge line speed V4.
When the sheet is conveyed for a predetermined distance after the trailing end of the sheet passes through the entrance sensor 206 and the discharge rollers 208 (i.e., when the sheet is conveyed for about 5 millimeters after the trailing end of the sheet passes through the discharge rollers 208), the DC/SOL 223 shown in
In this manner, by accelerating the conveying speed of the sheet in the N-th stack of sheets from the receiving line speed V1 to the conveyor line speed V2 at the acceleration allowed timing T1, an interval between the sheet and a next sheet can be increased by ΔT1. Accordingly, the sheet alignment operation can be performed during the increased interval, so that interference between sequentially-conveyed sheets can be prevented.
A configuration of the sheet output tray 301 is described in detail below.
The sheet output tray 301 is fixedly mounted on holding members 302 and 303. The holding members 302 and 303 are connected to a drive shaft 306 via a timing belt 304, a timing belt 305, and pulleys 307. The drive shaft 306 is engaged with a gear 308 such that the drive shaft 306 is connected to a DC motor 309 via the gear 308. The sheet output tray 301 is moved up and down due to rotation of the DC motor 309.
As shown in
A DC/SOL 315 is fixedly mounted on a portion around one end of the rotation shaft 312. Due to operation of the DC/SOL 315, the rotation shaft 312 rotates in a reciprocating manner at a predetermined angle, so that the levers 313 rotate, rotating the sheet holding members 311.
The sheet holding members 311 are normally stopped due to the pressurizing spring such that the end portions 311a are protruded from a sheet alignment surface of the end fence 310. When the DC/SOL 315 performs a pulling operation, the sheet holding members 311 are rotated until the end portions 311a are placed completely behind the sheet alignment surface of the end fence 310.
A height of sheets stacked on the sheet output tray 301 is detected such that when the top surface of the sheets stacked on the sheet output tray 301 pushes up the end portions 311a protruded from the end fence 310, a sheet-height detection sensor 314 detects a detection portion arranged on the sheet holding members 311.
Operations performed by a sheet-stack discharging unit (e.g., the discharge rollers 208) and a sheet output tray (e.g., the sheet output tray 301) when discharging (outputting) a sheet is described below with reference to
A standby position of the sheet output tray 301 at the time when the discharge rollers 208 discharge a sheet to the sheet aligning unit corresponds to either one of followings: one is a position at which the sheet-height detection sensor 314 detects the detection portion of the sheet holding members 311 after the sheet output tray 301 pushes up the end portions 311a of the sheet holding members 311; and the other is a position moved up for a predetermined height from the position detected by the sheet-height detection sensor 314. A sheet alignment operation and a sheet stapling operation are performed on a stack of sheets at the standby position (discharge operation in
A stack of sheets that has been aligned by the jogger fences 402 and 403 and sorted or stapled is then discharged onto the sheet output tray 301 by moving the discharge claw 430 to a sheet receiving position. At this time, the sheet output tray 301 is moved down for a predetermined time so that the sheet output tray 301 can receive the stack of sheets (discharge operation in
When the discharge claw 430 moves to a predetermined position, the discharge claw 430 temporarily stops while the DC/SOL 315 performs the pulling operation so that the sheet holding members 311 are rotated until they are placed completely behind the end fence 310. Then, the stack of sheets is fallen on the sheet output tray 301 (discharge operation in
Then, after a predetermined time elapses, the DC/SOL 315 is turned off, so that the sheet holding members 311 return to positions where they are protruded from the end fence 310. The sheet output tray 301 is then moved up and stopped at a position to which the top surface of the stack of sheets stacked on the sheet output tray 301 pushes up the sheet holding members 311 so that the sheet-height detection sensor 314 can detect a height of the stack of sheets, or is stopped after the sheet output tray 301 is moved up for a predetermined height from the position where the sheet-height detection sensor 314 detects the height of the stack of sheets. Then, the end portions 311a of the sheet holding members 311 hold around the trailing end of the stack of sheets, and the discharge claw 430 moves to the sheet receiving position, making them ready to receive a next discharged sheet (discharge operation in
The sheet post-processing apparatus 1 having the structure as shown in
However, when the sheet discharge operations described with reference to
An exemplary situation when the sheet discharge operation or the sheet receiving operation is not performed normally is described with reference to
For the stack of sheets being discharged, the DC/SOL 315 performs the pulling operation such that the sheet holding members 311 are rotated until they are placed completely behind the end fence 310 so that the end portions 311a can hold around the trailing end of the stack of sheets.
However, if the stack of sheets stacked on the sheet output tray 301 is not stapled and when a sheet Pu at the top of the stack of sheets is not held by the sheet holding members 311, the sheet Pu can move freely. Therefore, when a leading end “a” of a next sheet Pa comes into contact with the sheet output tray 301 before the sheet holding members 311 hold the stack of sheets on the sheet output tray 301, the sheet Pu may be pushed out in a sheet discharge direction as shown in
To prevent the above situations, a sheet conveyor control as shown in
In
Accordingly, an interval between the last sheet in the N-th stack of sheets and the first sheet in the N+1-th stack of sheets can be increased by a time difference between a time when the last sheet in the N-th stack of sheets is conveyed at the conveyor line speed V2 and a time when the first sheet in the N+1-th stack of sheets is conveyed at the conveyor line speed V3, which is more increased compared with a time interval between sheets (Δ0+ΔT1) obtained by controlling the conveying speed in the example shown in
While an interval between the first sheet in the N+1-th stack of sheets and the second sheet in the N+1-th stack of sheets is shortened because of the above control, the conveyor line speed V2 and the conveyor line speed V3 are controlled so that interference between the sheets can hardly occur.
A process procedure for receiving and conveying a sheet according to the embodiment, and a method of determining the conveyor line speed V3 are described below with reference to
The sheet post-processing apparatus 1 receives a sheet fed from the image forming apparatus at the receiving line speed V1 (Step S20-1), and conveys the sheet until the acceleration allowed timing T1 that is counted by the number of driving pulses of the stepper motor 212 (Step S20-2). At the acceleration allowed timing T1, the sheet post-processing apparatus 1 determines whether a preceding stack of sheets is being discharged onto the sheet output tray 301 by the sheet-stack discharging unit (whether a sheet discharge operation is performed) (Step S20-3). When the sheet discharge operation is not performed, the conveying speed of the sheet is accelerated to the conveyor line speed V2 (Step S20-4). On the other hand, when the sheet discharge operation is being performed, the sheet post-processing apparatus 1 calculates a time Tp necessary for conveying the sheet at the conveyor line speed V2 from a position corresponding to the acceleration allowed timing T1 to a position where the leading end of the sheet reaches the sheet output tray 301 (Step S20-5).
The acceleration allowed timing T1 corresponds to a timing when the leading end of the sheet reaches the conveyor rollers 207. Therefore, as shown in
Then, the sheet post-processing apparatus 1 calculates a time Ts necessary for the sheet discharge operation, that is, a time taken from a current discharge step of the sheet discharge operation performed by the sheet-stack discharging unit and the sheet output tray until the sheet holding members 311 hold the stack of sheets on the sheet output tray 301 (Step S20-6)
The time Ts necessary for the sheet discharge operation is determined depending on at what step among steps (a) to (d) of a flowchart in
In
For example, when the current discharge step corresponds to the discharge step (b), Ts=Ts2+Ts3+Ts4.
The sheet post-processing apparatus 1 compares the time Tp obtained at Step S20-5 with the time Ts obtained at Step S20-6 (Step S20-7). If Tp>Ts, the sheet post-processing apparatus 1 determines that, even when the sheet conveying speed is accelerated to the conveyor line speed V2, the sheet holding members 311 can hold the stack of sheets on the sheet output tray 301 before the leading end of a subsequent sheet comes into contact with the sheet output tray 301 so that a sheet in the stack of sheets on the sheet output tray 301 can hardly be pushed out. Therefore, the sheet post-processing apparatus 1 accelerates the conveying speed to the conveyor line speed V2 (Step S20-4).
On the other hand, if Tp<Ts, the sheet post-processing apparatus 1 calculates the conveyor line speed V3 at which a sheet in the stack of sheets on the sheet output tray 301 can hardly be pushed out (Step S20-8), and accelerates the conveying speed to the conveyor line speed V3 (Step S20-9).
The conveyor line speed V3 can be obtained by the following calculation equation: V3=a/Ts, where “a” is a conveyor distance for conveying the sheet from where the leading end of the sheet reaches the conveyor rollers 207 to where the leading end of the sheet reaches the sheet output tray 301.
The conveying speed accelerated to either the conveyor line speed V2 or the conveyor line speed V3 is decelerated to a discharge line speed V4 (fourth conveying speed) when the sheet is conveyed by P1 pulse (Steps S20-10 and S20-11). After the sheet is conveyed by P2 pulse, the conveying speed is decelerated to the receiving line speed V1 (Steps S20-12 and S20-13). If there is a next sheet, the next sheet is sequentially conveyed. If there are no next sheets, a process for conveying the sheet is finished, and the sheet discharge process is started (Steps S20-14 and S20-15).
According to one aspect of the present invention, the sheet processing apparatus can assure a sheet-stack processing time even when a sheet conveying path is short. Therefore, a processing performance on a sheet conveyed at a predetermined time interval can be assured. As a result, it is possible to prevent a sheet or a sheet conveying unit from being damaged, and post processing on the sheet can be performed effectively.
Although the invention has been described with respect to specific embodiments for a complete and clear disclosure, the appended claims are not to be thus limited but are to be construed as embodying all modifications and alternative constructions that may occur to one skilled in the art that fairly fall within the basic teaching herein set forth.
Number | Date | Country | Kind |
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2008-189672 | Jul 2008 | JP | national |