Embodiments described herein relate generally to a post-processing apparatus and a control method thereof.
In the related art, a paper discharge tray of a post-processing apparatus has an inclined surface to receive a sheet. After the sheet discharged to the paper discharge tray lands on the paper discharge tray, the sheet slides down the incline and comes into contact with a wall surface, and thereby sheets are aligned. However, if the sheet arrives farther than the target landing location or arrives nearer than the target landing location when discharged, there is a problem that accuracy of the alignment is lowered.
A post-processing apparatus of an embodiment includes a discharge tray, a sheet conveyor configured to convey a sheet onto the discharge tray, a drive unit configured to drive the sheet conveyor, a sensor configured to detect a position of the sheet discharged onto the discharge tray, and a control unit configured to determine a parameter to control the drive unit based on an output of the sensor, and to control the drive unit based on the determined parameter.
Hereinafter, the post-processing apparatus of an embodiment will be described with reference to the drawings.
The image forming apparatus 100 is, for example, a multi-function peripheral. The image forming apparatus 100 includes a display 110, a control panel 120, a printer unit 130, a sheet housing unit 140, and an image reading unit 200. The image forming apparatus 100 forms an image on a sheet using a developer such as toner. The sheet is, for example, paper or label paper. The sheet may be any material as long as the image forming apparatus 100 can form an image on a surface thereof.
The post-processing apparatus 300 is connected to the image forming apparatus 100. The post-processing apparatus 300 performs a post-processing with respect to the sheet on which an image is formed by the image forming apparatus 100. As a specific example of the post-processing executed by the post-processing apparatus 300, there is a processing such as sort processing, punch processing, staple processing, and binding processing.
The drive unit 10 is a driving device such as a motor. The drive unit 10 drives a discharging mechanism provided in the post-processing apparatus 300. The discharging mechanism is a mechanism that conveys the sheet to discharge the sheet from the post-processing apparatus 300. The drive unit 10 rotates, for example, a predetermined shaft. Rotational motion generated by the drive unit 10 is transmitted to the second conveying roller 12 via a drive belt, for example. Moreover, the drive unit 10 provided in the post-processing apparatus 300 is not required to be one, as illustrated in
The first conveying roller 11 rotates to apply a force to the sheet to be discharged so that it is moved toward a direction of the discharge tray 20 (hereinafter, referred to as “discharge direction”). The first conveying roller 11 rotates according to the drive signal from the drive unit 10. Moreover, the discharge direction is a direction indicated by an arrow 90 of
The second conveying roller 12 rotates to apply a force to the sheet to be discharged so that it is moved in the discharge direction. The second conveying roller 12 rotates according to the drive signal from the drive unit 10. The operation (for example, rotation) of the drive unit 10 is controlled to control the rotational speed of the second conveying roller 12.
The discharge belt 13 is a belt which is mounted around the first conveying roller 11 and the second conveying roller 12. The first conveying roller 11 and the second conveying roller 12 rotate at the same peripheral speed by the discharge belt 13. Moreover, each of the first conveying roller 11 and the second conveying roller 12 may have a mechanism that is rotated at an independent speed. If each of the belt and the roller can be independently driven, a formula determining a parameter is individually established.
The discharge claw 14 moves along a path through which the sheet passes when the sheet is discharged. The discharge claw 14 moves and pushes the sheet in the discharging direction.
The discharge tray 20 is a tray on which the sheets, which are discharged by the discharging mechanism such as the first conveying roller 11, are stacked. The sheets are stacked on the discharge tray 20 in the order of its being discharged.
The sensor 21 detects the sheet discharged to the discharge tray 20. The sensor 21 maybe a sensor for detecting the light and darkness of light such as a Charge Coupled Device (CCD). In this case, the brightness that is obtained by the sensor 21 is changed based on the number of the sheets stacked on the discharge tray 20. The sensor 21 may detect the sheet according to the change.
The memory unit 30 is a storage device such as cache or memory. The memory unit 30 functions as a parameter memory unit 31. The parameter memory unit 31 stores parameters that the control unit 40 uses for controlling the drive unit 10. Specific examples of the parameters stored in the parameter memory unit 31 include a rotational speed, a rotation time, the number of rotations of a motor of the drive unit 10, and the like.
The control unit 40 is implemented as a CPU that executes a program to function as a drive control unit 41 and a parameter determination unit 42.
The drive control unit 41 controls the operation of the drive unit 10. The drive control unit 41 controls the drive unit 10, for example, when the post-processing apparatus 300 discharges the sheet. The drive control unit 41 controls the drive unit 10 based on the parameters stored in the parameter memory unit 31 when controlling the drive unit 10.
The parameter determination unit 42 determines parameters about the operation of the drive unit 10 based on a detection result of the sensor 21. The parameter determination unit 42 estimates an actual behavior of the discharged sheet, for example, based on the detection result of the sensor 21 and may determine the parameters based on an estimation result. The actual behavior of the discharged sheet is obtained, for example, as an output result of the sensor 21. That is, the parameter determination unit 42 determines the parameters about the operation of the drive unit 10 based on the output result of the sensor 21. The parameter determination unit 42 stores the determined parameters in the parameter memory unit 31.
Details of processing of the parameter determination unit 42 will be described. The parameter determination unit 42 determines parameters based on which the discharged sheet will reach a predetermined position (hereinafter, referred to as a “reference position”) that is determined in advance. For example, the parameters are determined so as to cause an arrival position of the discharged sheet to be nearer to the sheet conveyor if the sensor output indicating that the arrival position of the discharged sheet is farther from the sheet conveyor than the reference position is obtained. In this case, the parameter determination unit 42 changes the rotational speed, the rotation time, or the number of rotations to be smaller value. For example, the parameters are determined so as to cause an arrival position of the discharged sheet to be farther from the sheet conveyor if the sensor output indicating that the arrival position of the discharged sheet is nearer to the sheet conveyor than the reference position is obtained. In this case, the parameter determination unit 42 changes the rotational speed, the rotation time, or the number of rotations to be greater value.
Formulas 1 to 4 are the specific examples of the formulas for determining the parameters.
Vr=dVrt1(t1−t1i)+dVrt2(t2−t2i)+Vrset (Formula 1)
Tr=dTrt1(t1−t1i)+dTrt2(t2−t2i)+Trset (Formula 2)
Ve=dVet1(t1−t1i)+dVet2(t2−t2i)+Veset (Formula 3)
Le=dLet1(t1−t1i)+dLet2(t2−t2i)+Leset (Formula 4)
Each value of Formulas described above is as follows.
Among the values described above, Vr, Tr, Ve, and Le are the parameters controlled by the control unit 40. Among the values described above, two ideal values (t1i and t2i) are values that are set such that the leading end of the sheet arrives at the reference position. The two ideal values may be set in advance according to the type of the sheet. Each value may be obtained in addition, by an experiment and the like. The parameter determination unit 42 may determine the parameters based on the following Formulas 5 to 8.
Vr=dVrt1(t1−t1i)+dVrx1(x1−x1i)+dVrt2(t2−t2i)+dVrx2(x2−x2i)+Vrset (Formula 5)
Tr=dTrt1(t1−t1i)+dTrx1(x1−x1i)+dTrt2(t2−t2i)+dTrx2(x2−x2i)+Trset (Formula 6)
Ve=dVet1(t1−t1i)+dVex1(x1−x1i)+dVet2(t2−t2i)+dVex2(x2−x2i)+Veset (Formula 7)
Le=dLet1(t1−t1i)+dLex1(x1−x1i)+dLet2(t2−t2i)+dLex2(x2−x2i)+Leset (Formula 8)
Each value of Formulas 5 to 8 described above is as follows. Moreover, in Formulas 5 to 8, values common to Formulas 1 to 4 are the same as those of Formulas 1 to 4.
The four ideal values may be set in advance according to the type of the sheet. Each value may be obtained in advance by an experiment or the like. The parameter determination unit 42 may determine the parameters based on Formulas 5 to 8 described above.
The drive control unit 41 may control each of the left and right first conveying rollers 11 and second conveying rollers 12 such that the rotational speeds thereof are different from each other. It is possible to control the skew of the discharged sheet by controlling the first conveying roller 11 and the second conveying roller 12 as described above. For example, if a right end of the sheet discharged to the discharge tray 20 is landed on near the front (discharge direction) than a left end thereof, the rotational speeds of the first left conveying roller 11-1 and the second left conveying roller 12-1 may be controlled to be faster.
According to at least one embodiment described above, the drive unit is controlled such that the sheet arrives at the reference position for aligning the sheet using the drive control unit. Specifically, the parameters of the drive unit are updated based on the actual measured values such as the arrival position and the arrival time of the sheet. Therefore, it is possible to align the arrival position of the sheet to the reference position that is set in advance to maintain the accuracy of the alignment. As a result, it is possible to prevent the accuracy of the alignment from being lowered.
While certain embodiments have been described these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms: furthermore various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and there equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the invention.