This application claims priority from Japanese Patent Application No. 2021-013955 filed Jan. 29, 2021. The entire content of the priority application is incorporated herein by reference.
A conventional inkjet printer has a control board provided in the body of the printer. Ejection control data for controlling the ejection of ink from nozzles is transmitted from the control board to the inkjet head via wiring, such as flexible flat cables (FFCs).
The conventional inkjet printer, for example, has one FFC for transmitting signals representing ejection control data from the control board to the inkjet head, and another FFC for supplying power from the circuit board to the inkjet head. The inkjet printer is also provided with tubes for supplying ink to the inkjet head. The tubes are disposed between the two FFCs to prevent noise emitted from the signal transmission FFC from adversely affecting the other FFC and the like.
However, when the conventional inkjet printer attempts to transmit a large volume of ejection control data from the control board to the inkjet head at a high rate of speed, the signal transmission FFC generates a large amount of noise that could interfere with communication.
In view of the foregoing, it is an object of the present disclosure to provide an inkjet printer that prevents communication interference due to noise produced from signal transmission wiring.
In view of the foregoing, it is an object of the disclosure to provide an inkjet printer including: a casing; a first control board; a carriage; a head; a transmission antenna; and a reception antenna. The first control board is provided in the casing. The carriage is configured to reciprocate in a scanning direction crossing a conveying direction of a recording medium. The head is mounted in the carriage and has a plurality of nozzles. The transmission antenna is connected to the first control board. The transmission antenna is configured to transmit, through near field communication, an ejection signal for controlling ejection of ink from the plurality of nozzles. The reception antenna is provided in the carriage. The reception antenna is configured to receive the ejection signal from the transmission antenna. The near filed communication has a communication range smaller than a size of the casing.
With the inkjet printer according to the configuration described above, the transmission antenna connected to the first control board transmits an ejection signal to the reception antenna provided in the carriage through near field communication. This process enables the first control board to control the ejection of ink from the plurality of nozzles. Hence, the inkjet printer need not be provided with dedicated wiring for transmitting the ejection signal. The above configuration can prevent noise generated in such signal transmission wiring from interfering with communication. Further, power consumption is less when using a transmission antenna that has a communication range smaller than the size of the casing rather than when using a wide-range antenna.
The inkjet printer according to one embodiment of the present disclosure can prevent noise generated in signal transmission wiring from interfering with communication.
The particular features and advantages of the disclosure as well as other objects will become apparent from the following description taken in connection with the accompanying drawings, in which:
Next, an inkjet printer 1 according to a first embodiment of the present disclosure will be described with reference to
The inkjet printer 1 is a multifunction peripheral (MFP) having a plurality of functions, such as a scan function, a print function, a copy function, and a facsimile function. The print function of the inkjet printer 1 employs an inkjet printing system for recording images based on print data on sheets P of paper by ejecting ink. The sheets P are examples of the recording medium of the present disclosure. Note that the sheets P are not limited to a paper medium but may be a resin medium, such as transparency sheets. Additionally, the inkjet printer 1 may be a printer having only a printing function.
As shown in
The feed tray 21 is a box-shaped tray that is open on the top. The feed tray 21 is disposed so as to be movable in the front-rear direction through an opening formed in the front surface of the inkjet printer 1. The feed tray 21 accommodates sheets P therein. The sheets P are of a standardized size, such as the A4 size. The discharge tray 22 is disposed above the feed tray 21. The discharge tray 22 supports sheets P discharged from the casing 10 by the conveying roller 62.
The feed roller 23 is a member provided for feeding sheets P accommodated in the feed tray 21 onto the conveying path R. The feed roller 23 is rotatably supported on the distal end of a feed arm 24. The feed arm 24 is pivotably supported on a shaft 25, which in turn is supported in a frame of the inkjet printer 1. The feed arm 24 is urged to pivot toward the feed tray 21 by its own weight or an elastic force generated through a spring or the like.
The conveying path R refers to space formed by a guide member 51, a guide member 52, the image-recording unit 3, a guide member 53, a guide member 54, and the like. The conveying path R extends upward from the rear end of the feed tray 21, curving in the region defined by the guide members 51 and 52, and then extends straight past the position of the image-recording unit 3 and through the region defined by the guide members 53 and 54 until reaching the discharge tray 22.
The conveying roller 60 is disposed along the conveying path R upstream of the image-recording unit 3 in the conveying direction. A pinch roller 61 is disposed at a position below and opposing the conveying roller 60. A conveying motor 108 (see
As shown in
A rotary encoder 111 (see
As shown in
As shown in
The head 32 is supported in the carriage 31. The nozzles 33 are formed in the bottom surface of the head 32. The head 32 ejects ink droplets from the nozzles 33 by vibrating piezoelectric elements or other vibration elements. The platen 34 is a rectangular plate-shaped member that supports sheets P. The image-recording unit 3 controls the head 32 to record an image on a sheet P supported on the platen 34 by selectively ejecting ink droplets from nozzles 33 based on image data.
As shown in
The holding position HP is a position at which the carriage 31 is held in an idle state. During an idle state, ink is not ejected from nozzles 33 onto sheets P. In the first embodiment, the holding position HP is outside the region through which the sheet P passes, and specifically to the left of this region (pass-through region) along the scanning direction. The ejection terminating position EP refers to the position at which image recording is completed for one pass (described later).
A linear encoder 121 is disposed on the carriage 31. The linear encoder 121 outputs an encoder signal to the first control board 100 based on displacement of the carriage 31 in the width direction of the sheet P.
While not shown in the drawings, the linear encoder 121 is provided with a linear scale and an optical sensor. The scale is arranged on the top surfaces of the guide rails 13 and 14 and extends along the scanning direction over the entire reciprocating range of the carriage 31. The scale is provided with a plurality each of transmissive areas and non-transmissive areas that alternate along the scanning direction. The optical sensor is supported on the carriage 31. The optical sensor is mounted on the carriage 31. The optical sensor includes a light-emitting element and a light-receiving element arranged on opposite sides of the scale. The light-emitting element irradiates light toward the light-receiving element, and the light-receiving element receives light emitted from the light-emitting element. Light emitted by the light-emitting element passes through the transmissive areas but is blocked by the non-transmissive areas. By detecting light passing through transmissive areas and blocked by non-transmissive areas, the linear encoder 121 can detect the position of the carriage 31 in the scanning direction.
The inkjet printer 1 is also provided with four cartridge holders 15 disposed in the right side of the casing 10. The cartridge holders 15 are juxtaposed in the scanning direction. Four ink cartridges 16 are detachably mounted in the respective cartridge holders 15. The ink cartridges 16 hold ink in the colors black, yellow, cyan, and magenta, beginning in order from the ink cartridge 16 mounted in the rightmost cartridge holder 15.
Four tubes 43 connect the four ink cartridges 16 to the head 32. Ink in the ink cartridges 16 can be supplied to the head 32 through the tubes 43.
The first control board 100 described later is disposed in the left-front region of the casing 10. The first control board 100 is connected to a flexible flat cable (FFC) 40, a wiring harness 41, cables 42, a wiring harness 44, and the like.
The FFC 40 is a flexible belt-like member that connects the first control board 100 to a second control board 200 (see
The wiring harness 41 and cables 42 are led out rightward in the scanning direction from the first control board 100 and are arranged so as not to overlap the FFC 40 in a plan view when the carriage 31 moves along the scanning direction. The wiring harness 41 is provided for connecting the first control board 100 of the inkjet printer 1 to a scanner 11 (see
As shown in
The reception antenna 30 is disposed on the top surface of the carriage 31 at the front end thereof. The reception antenna 30 has a rectangular plate-like external shape and is provided for receiving ejection signals from the transmission antenna 110. Note that the external shapes of the transmission antenna 110 and the reception antenna 30 are not limited to flat plate-like shapes but may be cylindrical shapes, for example.
The transmission antenna 110 is disposed in a position opposing the reception antenna 30 when the carriage 31 is in the holding position HP. Here, the position in which the reception antenna 30 faces the transmission antenna 110 is said to be a position in which a surface of the transmission antenna 110 extending along the longitudinal direction of the same faces a surface of the reception antenna 30 extending along the longitudinal direction of the same. Therefore, the transmission antenna 110 and the reception antenna 30 in the first embodiment extend in the same direction.
<Electrical Structure of the Inkjet Printer>
The ROM 102 stores programs and the like with which the CPU 101 controls the various operations of the inkjet printer 1. The RAM 103 is used as a storage area for temporarily storing data, signals, and the like used when the CPU 101 executes the programs described above or as a work area for data processing. The EEPROM 104 stores settings information that must be preserved after power to the inkjet printer 1 is turned off. The first control board 100 controls the head 32, conveying motor 108, and carriage motor 109 based on a control program read from the ROM 102.
The ASIC 105 is connected to the conveying motor 108, carriage motor 109, transmission antenna 110, rotary encoder 111, and registration sensor 120 described above, as well as a communication interface 122 and a setting unit 123.
The ASIC 105 supplies a drive current to the conveying motor 108 and carriage motor 109 via a drive circuit (not shown). The conveying motor 108 and carriage motor 109 are DC motors that rotate at a faster speed when the supplied drive current is larger and at a slower speed when the supplied current is smaller. The first control board 100 controls the rotations of the conveying motor 108 and carriage motor 109 through pulse width modulation (PWM) control, for example.
The first control board 100 also has a communication circuit 107. The communication circuit 107 outputs ejection signals to the transmission antenna 110. The reception antenna 30 receives ejection signals from the transmission antenna 110 and outputs those ejection signals to the second control board 200.
The second control board 200 is disposed on the top surface of the carriage 31. The second control board 200 has a flat plate-like external shape that follows the top surface of the carriage 31. In other words, the second control board 200 occupies a plane extending in the conveying direction and the scanning direction. The second control board 200 controls the drive voltages applied to piezoelectric elements in the head 32 based on the ejection signals in order to eject ink droplets from the nozzles 33 for recording an image on the sheet P. The image data may be stored in a memory provided in the second control board 200.
The first control board 100 detects the state of the inkjet printer 1 based on signals outputted from the registration sensor 120, rotary encoder 111, and linear encoder 121. Specifically, the first control board 100 infers the position of a sheet P along the conveying path R based on pulse signals outputted from the rotary encoder 111 after an ON signal has been outputted from the registration sensor 120. The first control board 100 also detects the position of the carriage 31 in the width direction of the sheet P based on encoder signals inputted from the linear encoder 121.
The communication interface 122 is connected to a network, such as a LAN and is capable of connecting to external devices having a driver for the inkjet printer 1 installed. The first control board 100 can receive print jobs via the communication interface 122.
The setting unit 123 is disposed on the front surface of the inkjet printer 1. The setting unit 123 has a display screen that includes a touch panel, for example. Through touch operations on the setting unit 123, the user can perform various settings related to printing on the inkjet printer 1 and the like. Various information set by the setting unit 123 is inputted into the first control board 100.
<Detailed Structure of the Transmission Antenna and Reception Antenna>
On the inkjet printer 1 according to the first embodiment, ejection signals are exchanged between the transmission antenna 110 and the reception antenna 30 using TransferJet, a near field communication technology. “TransferJet” is a Japanese registered mark of TransferJet Consortium Incorporated Association. Through communication with TransferJet, one device is capable of finding other devices that have entered the communication range of the one device. Communication with TransferJet also enables the one-on-one exchange of signals between two devices in close proximity.
The schematic diagram of
On the other hand, when the carriage 31 separates from the holding position HP so that the reception antenna 30 no longer overlaps the transmission antenna 110 in the scanning direction, the reception antenna 30 cannot receive ejection signals transmitted from the transmission antenna 110.
Note that the transmission antenna 110 can transmit image data at a maximum speed of about 560 Mbps using TransferJet. The transmission antenna 110 may use TransferJet X instead of TransferJet. With TransferJet X, the transmission antenna 110 can transmit a larger volume of image data than with TransferJet.
<Control Steps with the First Control Board>
Next, steps in a control process performed using the first control board 100 in the inkjet printer 1 of the first embodiment will be described with reference to
When power to the inkjet printer 1 is turned on (when time t=T0 in
If a print job has been received (S1: YES), in S2 the first control board 100 conveys a sheet P to the image-recording unit 3 and outputs one pass worth of image data to the transmission antenna 110. Specifically, while time t is between T1 and T2 in
At the same time, the first control board 100 outputs one pass worth of image data to the transmission antenna 110 via the communication circuit 107. In the first embodiment, the CPU 101 starts up the communication circuit 107 via the ASIC 105 in the first control board 100 when the reception antenna 30 has moved to a position opposing the transmission antenna 110 and the first control board 100 issues a command to the transmission antenna 110 to transmit ejection signals to the reception antenna 30.
Upon receiving a command from the communication circuit 107, the transmission antenna 110 transmits one pass worth of image data to the reception antenna 30. The image data is transmitted as ejection signals using TransferJet. The reception antenna 30 transfers the ejection signals received from the transmission antenna 110 to the second control board 200. Once the transfer of ejection signals from the reception antenna 30 to the second control board 200 is complete, the reception antenna 30 transmits a signal transmission complete notification to the transmission antenna 110. Here, one pass worth of image data refers to the quantity of data for recording an image in one line on the sheet P while the carriage 31 moves one direction in the scanning direction.
After completing the process in S2, in S3 the first control board 100 determines whether the sheet P has been conveyed to the image-recording unit 3 and all image data for one pass has been outputted. Specifically, the first control board 100 determines whether conveyance of the sheet P to the image-recording unit 3 is complete based on the results of detections by the rotary encoder 111 and registration sensor 120. Further, the first control board 100 determines whether output of one pass worth of image data to the transmission antenna 110 is complete based on whether a signal transmission complete notification has been received from the reception antenna 30 via the communication circuit 107.
If conveyance of the sheet P and output of one pass worth of image data are complete (S3: YES), the first control board 100 advances to S4. However, if conveyance of the sheet P is not complete or if all image data for one pass has not been outputted (S3: NO), the first control board 100 loops back to S3 and repeats the determination.
In S4 the first control board 100 drives the carriage motor 109 to move the carriage 31 back and forth once in the scanning direction, i.e., to reciprocate the carriage 31 once in the scanning direction. At this time, the first control board 100 performs an image recording process described below.
That is, while time t is between T2 and T3 in
Next, while time t is between T3 and T4 in
In S5 the first control board 100 determines whether the carriage 31 is in the holding position HP. Specifically, the first control board 100 determines whether the carriage 31 is in the holding position HP based on the results of detections by the linear encoder 121. If the carriage 31 is in the holding position HP (S5: YES), the first control board 100 advances to S6. However, if the carriage 31 is not in the holding position HP (S5: NO), the first control board 100 returns to S5.
In S6 the first control board 100 determines whether the image for the final pass has been recorded. If image recording for the final pass has not been completed (S6: NO), the first control board 100 returns to S2. Here, while time t is between T4 and T5 in
Once image recording for the final pass is complete (S6: YES), in S7 the first control board 100 drives the conveying motor 108 to rotate the conveying rollers 60 and 62 in order to discharge the sheet P into the discharge tray 22. In S8 the first control board 100 determines whether there is another page to print in the current print job. If there is another page to print (S8: YES), the first control board 100 returns to S2. However, if there are no more pages to print (S8: NO), the process in
With the inkjet printer 1 according to the first embodiment described above, the transmission antenna 110 connected to the first control board 100 via the communication circuit 107 transmits ejection signals to the reception antenna 30 disposed on the carriage 31 through near field communication. This process enables the first control board 100 to control the ejection of ink from nozzles 33. Hence, the inkjet printer 1 need not be provided with dedicated wiring for transmitting ejection signals. The above configuration can prevent noise generated in such signal transmission wiring from interfering with communication. Further, power consumption is less when using a transmission antenna 110 that has a communication range A smaller than the size of the casing 10 rather than when using a wide-range antenna.
Use of the TransferJet near field communication technology in particular enables the first control board 100 to transmit a large volume of ejection signals to the reception antenna 30 at a high rate of speed via the transmission antenna 110 and the reception antenna 30. Further, setting the transfer distance L in the TransferJet range to a value (e.g., about 3 cm) smaller than the distance that the carriage 31 reciprocates can reliably prevent communication interference and facilitate the creation of a compact transmission antenna 110.
Further, the flat plate-like transmission antenna 110 is arranged longitudinally in the same direction as the flat plate-like reception antenna 30. Accordingly, communication loss during the transmission of ejection signals is less than if the transmission antenna 110 were to extend in a direction orthogonal to the extended direction of the reception antenna 30.
Additionally, the transfer distance L of the transmission antenna 110 is set to a sufficiently small distance that allows for communication between the reception antenna 30 and transmission antenna 110 only when the reception antenna 30 provided on the carriage 31 overlaps the transmission antenna 110 in the scanning direction. This configuration allows for a more compact transmission antenna 110 and reception antenna 30 and can lead to power savings.
The first control board 100 can further suppress power consumption by starting up the communication circuit 107 only when the reception antenna 30 has reached a position opposite the transmission antenna 110. Further, since the transmission antenna 110 transmits only a quantity of image data for one pass to the reception antenna 30, the first control board 100 can minimize the amount of image data being transmitted, reducing the required capacity for memory provided on the second control board 200.
Next, an inkjet printer 1A according to a second embodiment of the present disclosure will be described with reference to
As shown in
The first control board 100 is disposed in one side of the casing 10 in the left-right direction, and specifically on the left side in
As shown in the timing chart of
In the inkjet printer 1A according to the second embodiment described above, the transmission antenna 110 is disposed on the same left-right side of the casing 10 as the first control board 100. That is, the transmission antenna 110 is disposed on the left side in
Next, an inkjet printer 1B according to a third embodiment of the present disclosure will be described with reference to
As shown in
The second control board 200 is disposed on the top surface of the carriage 31. A reception antenna 30B configured by a circuit board pattern is disposed on the top surface of the second control board 200. Thus, the reception antenna 30 is disposed in a position opposing the transmission antenna 110 vertically with a gap formed therebetween.
The inkjet printer 1B according to the third embodiment described above can obtain the same effects as the inkjet printer 1 in the first embodiment. In particular, since the reception antenna 30B is formed of a circuit board pattern disposed on the second control board 200, the second control board 200 and reception antenna 30B can be integrally manufactured, thereby reducing the number of required parts.
In the first embodiment described above, the first control board 100 is described as outputting one pass worth of image data to the transmission antenna 110 in S2 of the process in
For example, the transmission antenna 110 may be configured to transmit two passes worth of image data to the reception antenna 30 as ejection signals. In this case, after recording an image for the first pass, the first control board 100 records an image for the second pass while time t is between T3 and T4 shown in
Moreover, the transmission antenna 110 can transmit these two passes worth of image data to the reception antenna 30 while the sheet P is being conveyed in the conveying direction the prescribed distance, and specifically an amount equivalent to one line. According to this method, the first control board 100 can reduce processing time for printing by transmitting two passes worth of image data while time t is between T4 and T5 in
TransferJet is used as the near field communication method in the first through third embodiments described above, but the present disclosure may be applied to any communication technology that has a smaller communication range A for near field communication than the size of the casing 10. For example, the NFC technology may be used for near field communication. The communication range for NFC is set to about 10 cm, for example, which is shorter than the distance that the carriage 31 reciprocates.
While the transmission antenna 110 is disposed on the bottom surface of the scanner 11 in the third embodiment described above, the transmission antenna 110 may be disposed on the underside surface of the cover 12, for example.
In the first through third embodiments described above, the transmission antenna 110 is arranged in a position for opposing the reception antenna 30 while the carriage 31 is in the holding position HP, but the present disclosure is not limited to this layout. For example, a surface of the transmission antenna 110 extending in the longitudinal direction of the same may be oriented orthogonal to a surface of the reception antenna 30 extending along the longitudinal direction of the same while the carriage 31 is in the holding position HP.
Alternatively, a plurality of transmission antennas 110 may be arranged at intervals along the scanning direction. In this case, the plurality of transmission antennas 110 can transmit ejection signals to the reception antenna 30, enabling ejection signals to be transmitted to the reception antenna 30 more reliably.
While the description has been made in detail with reference to specific embodiments, it would be apparent to those skilled in the art that many modifications and variations may be made thereto without departing from the spirit of the disclosure, the scope of which is defined by the attached claims.
Number | Date | Country | Kind |
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2021-013955 | Jan 2021 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
20030085946 | Meados | May 2003 | A1 |
20040239706 | Kawakami | Dec 2004 | A1 |
20080238704 | Conway et al. | Oct 2008 | A1 |
20130155450 | Higashikawa | Jun 2013 | A1 |
20130249302 | An | Sep 2013 | A1 |
20140292871 | Kondo | Oct 2014 | A1 |
20200127703 | Yukimasa | Apr 2020 | A1 |
20200223240 | Gabella | Jul 2020 | A1 |
Number | Date | Country |
---|---|---|
2010009556 | Jan 2010 | JP |
2013091256 | May 2013 | JP |
2013-147015 | Aug 2013 | JP |
2014004755 | Jan 2014 | JP |
2017-193184 | Oct 2017 | JP |
Entry |
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Japan Patent Office, Notice of Reasons for Refusal issued in Japanese Patent Application No. 2021-013955, dated Aug. 27, 2024. |
Number | Date | Country | |
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20220242111 A1 | Aug 2022 | US |