Preferred embodiments of the present invention are described below with reference to the accompanying figures.
As shown in
A transportation unit disposed in the paper transportation path Pi for conveying slips includes paper transportation rollers 6, middle transportation rollers 16, second transportation rollers 7, and discharge rollers 8 before the paper exit 4.
The paper transportation rollers 6 include a drive roller 6a on one side of the paper transportation path P1 and a pressure roller 6b disposed on the other side of the paper transportation path P1 opposite the drive roller 6a.
The second transportation rollers 7 include a drive roller 7a on one side of the paper transportation path P1 and a pressure roller 7b disposed on the other side of the paper transportation path P1 opposite the drive roller 7a.
The middle transportation rollers 16 include a bottom pressure roller 16a disposed at the lower part of the paper transportation path P1, an upper pressure roller 16b disposed at the upper part of the paper transportation path P1, and a drive roller 17 opposing the bottom pressure roller 16a and upper pressure roller 16b from the other side of the transportation path.
A slip S fed into the paper transportation path P1 by the ASF 3 is conveyed by the paper transportation rollers 6, the middle transportation rollers 16, and the second transportation rollers 7, and is then discharged in the direction of arrow B from the paper exit 4 by the discharge rollers 8.
Image scanners 11 and 12 for imaging the slips are disposed in the paper transportation path at offset positions along the transportation direction. Both image scanners 11 and 12 are CIS (contact image sensor) scanners.
The image scanners 11 and 12 each expose one side of the slip travelling through the transportation path to light, detect the light reflected from the slip by a photoreceptor array (an array of photoelectric conversion devices), and convert the detected light to electric signals to capture an image of the slip.
A magnetic ink character reading device (MICR) 13 for reading magnetic ink characters is disposed below the drive roller 17. The MICR 13 reads while the surface of the slip S is pressed against the surface of the MICR 13 by a pressure lever disposed opposite the MICR 13 on the other side of the transportation path.
The carriage 14 is disposed in the straight portion of the paper transportation path P1 between the second transportation rollers 7 and the discharge rollers 8 so that the carriage 14 can move linearly along the paper transportation path P1. A print head 19 having a plurality of nozzles for discharging ink is disposed on the carriage 14. Ink is discharged from the plurality of nozzles of the print head 19 in response to commands from the host computer 110 to print. The carriage 14 can move along a guide shaft disposed at this straight portion of the transportation path parallel to the transportation direction of the paper transportation path P1.
Four paper detectors are disposed in the paper transportation path P1, including the ASF detector (paper supply unit detector) 9, TOF (top of form) detector 10, validation slip detector 26, and discharge detector 28. These detectors 9, 10, 26, and 28 are optical paper detectors, for example, rendered to detect the presence of paper in front of the detector.
The ASF detector 9 is disposed near the discharge side end of the ASF 3 to detect a slip delivered from the ASF 3.
The TOF detector 10 is disposed between the ASF 3 and the image scanner 11 for detecting media delivered to the first image scanner 11.
The validation slip detector 26 is disposed in the straight portion on the downstream side of the second transportation rollers 7, and detects if a validation slip is inserted from the validation slip insertion slot 40.
The discharge detector 28 is disposed near the paper exit 4 and detects each slip discharged from the paper exit 4.
The print media processing system 50 includes a host computer 110 and a hybrid processing apparatus 1 that is communicably connected to the host computer 110.
The host computer 110 has a control unit 111 and controls general operation of the print media processing system 50. In this aspect of the invention the control unit 111 interprets magnetic ink character data and image data sent from the hybrid processing apparatus 1 and determines if the MICR 13 and image scanners 11 and 12 are operating normally. The control unit 111 generates a command based on the result of this determination and outputs the command to the print media processing apparatus 1.
The hybrid processing apparatus 1 has a CPU 101, RAM 102, flash ROM 103, a MICR control unit 104, a print control unit 105, a transportation control unit 106, a paper detector control unit 107, a image reading control unit 108, and a communication interface 109 interconnected by a bus 100 to enable data communication.
The CPU 101 is the control center of the hybrid processing apparatus 1 and controls overall operation of the hybrid processing apparatus 1 by running firmware stored in flash ROM 103 in response to commands from the host computer 110.
The RAM 102 is volatile memory provided as temporary storage for the hybrid processing apparatus 1, and functions as a data buffer for CPU 101 operations, a receive buffer for temporarily storing commands sent form the host computer 110, an image data buffer for temporarily storing image data captured by the image scanners 11 and 12 and magnetic ink character data read by the MICR 13, and a print buffer for storing the converted image data for printing.
The flash ROM 103 is rewritable non-volatile memory provided as a data storage area for the hybrid processing apparatus 1, and primarily stores the firmware run by the CPU 101 and settings for the hybrid processing apparatus 1. The CPU 101 controls the hybrid processing apparatus 1 by running the firmware stored in this flash ROM 103 using the settings (parameters) stored in the same flash ROM 103.
The MICR control unit 104 is a driver for controlling driving of the MICR 13. More specifically, the MICR control unit 104 generates a read sampling pulse that is output to the MICR 13 in response to commands from the CPU 101, and sends a digital signal representing the magnetic ink characters read by the MICR 13 to the RAM 102. The magnetic ink character data printed on the slip S is thus stored in RAM 102. The magnetic ink character data is then sequentially output to the host computer 110, and the control unit 111 determines if the data was read correctly.
The print control unit 105 is a driver for controlling driving of the carriage 14 and the print head 19. More specifically, the print control unit 105 drives the print head 19 while driving the carriage 14 according to the print data to discharge ink from the print head 19 onto the slip and form an image on the print medium.
The transportation control unit 106 is a driver for controlling the conveying of slips. To-convey a slip, the transportation control unit 106 drives a stepping motor (not shown in the figure) to drive the ASF 3 and transportation rollers 6, 7, 8 and 16 to carry the slip through the paper transportation path P1. In this embodiment of the invention the transportation control unit 106 also controls the position of the slip that is set to the printing start position according to the type of slip.
As shown in
Note that when magnetic ink character reading or image scanning precede printing, the slip must be conveyed to the position where these reading operations end. The slip must also be conveyed until the leading end of the slip is detected by the discharge detector so that paper jams can also be detected.
The paper detector control unit 107 is a detector driver for driving the ASF detector 9, the TOF detector 10, the validation slip detector 26, and the discharge detector 28. More specifically, the paper detector control unit 107 produces the media detection sampling pulses that are output to the detectors 9, 10, 26, and 28.
The image reading control unit 108 is an image scanner driver for controlling the image scanners 11 and 12. More specifically, the image reading control unit 108 outputs a scanning trigger signal to the image scanners 11 and 12, A/D converts the electric signals output by the photodetectors of the image scanners 11 and 12, and outputs the converted signals to the RAM 102. A two-dimensional image of the slip is thus gradually assembled in RAM 102. The resulting image data is then sent to the host computer 110, and the control unit 111 determines if the image data was correctly read.
The communication interface 109 is the communication control unit for communicating with the host computer 110, and may be implemented using a USB interface or a serial interface, for example. The communication interface 109 passes commands sent from the host computer 110 to RAM 102, and passes status signals (signals indicating the state of the hybrid processing apparatus 1) generated by the CPU 101, the magnetic ink character data, and image data to the host computer 110.
The transportation control unit 106 first determines if the specified length of text can be printed in the printing area of the slip (S101) and advances the slip until the slip is set to the position where the specified text can be printed. If MICR and image scanning operations are not completed at this position (S102), the slip is advanced to the position where MICR and image scanning operations can be completed. If at this position the leading end of the slip has not reached the discharge detector 28 (S103), the slip is advanced until the leading end of the slip reaches the discharge detector 28.
This embodiment of the invention can thus change the position of the slip being set to the printing start position according to the length of text to be printed. As a result, printing can start immediately without moving the carriage to the actual printing start position when printing does not fill the available printing area of the slip, and printer throughput can therefore be increased.
In a hybrid processing apparatus for repeatedly printing by using a print head 9 at a fixed printing position downstream from an MICR 13 and image scanners 11 and 12, and consecutively conveying each of a plurality of slips by a transportation mechanism, the transportation control unit 106 conveys the print medium at a constant speed when feeding a slip through the hybrid processing apparatus to read the image information and magnetic ink information and print on the slip. Referring to
In a hybrid processing apparatus according to another preferred aspect of the invention, the transportation control unit 106 conveys the print medium at a constant speed when feeding a slip through the hybrid processing apparatus to read the image information and magnetic ink information and print on the slip. Referring to
Although the present invention has been described in connection with the preferred embodiments thereof with reference to the accompanying drawings, it is to be noted that various changes and modifications will be apparent to those skilled in the art. Such changes and modifications are to be understood as included within the scope of the present invention as defined by the appended claims, unless they depart therefrom.
Number | Date | Country | Kind |
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2006-112274 | Apr 2006 | JP | national |