This application claims benefit of priority to Japanese Patent Application No. 2014-021998 filed Feb. 7, 2014, the entire content of which is incorporated herein by reference.
The present invention relates to a printing method and a printing device, in which ink is ejected from a nozzle of an ink head to perform printing.
A printing device that performs printing by ejecting ink from a nozzle of an ink head ejects an ink drop to a surface of a workpiece arranged below the ink head. For example, the workpiece is placed on an X-Y table, and the workpiece and the ink head move relatively in an X-axis direction and a Y-axis direction orthogonal to the X-axis direction. The X-Y table may move and the ink head may move.
During the relative movement between the workpiece and the ink head, the ink drop is ejected from the ink head to perform the printing on the surface of the workpiece. Through an inkjet system, a desired print pattern (functional film) is printed while ink drop ejection timing is controlled, thereby producing an electronic component, an electronic device, and an electronic instrument (for example, see Japanese Patent Publication Laid-Open No. 2009-292017).
In the case that the printing is performed by the inkjet system, printing speed depends on resolution.
As illustrated in
A freedom degree of the arrangement of an edge position of the print pattern (functional film) is increased by enhancing the resolution, thereby increasing a freedom degree of design of the printing. Accordingly, in order to enhance definition of the print pattern, preferably the printing is performed while the resolution is enhanced. However, in the inkjet system, there is a problem in that the printing speed is decreased with enhancing resolution to lengthen time necessary for the printing.
For example, as illustrated in
A limit of the ejection frequency is decided in each ink head 2. In the case that the ink is ejected at a frequency exceeding the limit ejection frequency, namely, the ink is ejected at intervals shorter than a minimum time interval at which the ink can be ejected, there is a risk that the ink drop is not ejected but a printing failure is generated.
As illustrated in
It is conceivable that the arranged ink head 2 is increased to two instead of increasing the number of scan times of the ink head 2. However, in the case that the arranged ink head 2 is increased, a mechanism that performs alignment between the ink heads 2 becomes complicated and increases production cost. Additionally, a moving stroke of the ink head 2 is possibly lengthened in order to secure a space where the two ink heads 2 are arranged, and the time necessary for the one-time scan tends to be lengthened. Therefore, in both the cases, the printing time is hardly shortened.
An object of the present invention is to provide a printing method and a printing device, in which the printing quality can be maintained without increasing the time necessary for printing even if the resolution is enhanced.
According to a first aspect of the present invention, a printing method for ejecting ink from an ink head provided with plural nozzles, and forming a print pattern in an article to be printed by moving the ink head relative to the article to be printed, the printing method includes: sending a reference signal at an interval shorter than a minimum time interval at which the ink head can eject the ink; counting at least two reference signals as one count, the reference signals being set longer than the minimum time interval; ejecting the ink every one count; forming the print pattern by collectivity of the ejected ink; and adjusting at least a final one count used to form the print pattern such that the final one count is lengthened by one or plural reference signals.
In the configuration of the first aspect, the reference signal is sent at intervals shorter than the minimum time interval at which the ink head can eject the ink, and at least two reference signals set longer than the minimum time interval is counted as one count. At least the final one count used to form the print pattern is adjusted so as to be lengthened by the one or plural reference signals, and the ink is ejected every one count. Therefore, the ink ejection timing of the ink is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if a necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head.
According to a second aspect of the present invention, a printing method for ejecting ink from an ink head provided with plural nozzles, and forming a print pattern in an article to be printed by moving the ink head relative to the article to be printed, the printing method includes: sending a reference signal at an interval shorter than a minimum time interval at which the ink head can eject the ink; counting at least two reference signals as one count, the reference signals being set longer than the minimum time interval; ejecting the ink every one count; forming the print pattern by collectivity of the ejected ink; and adjusting at least a predetermined one count used to form the print pattern such that the predetermined one count is longer than other one counts except the predetermined one count by one or plural reference signals.
In the configuration of the second aspect, the reference signal is sent at intervals shorter than the minimum time interval at which the ink head can eject the ink, and at least two reference signals set longer than the minimum time interval is counted as one count. At least the predetermined one count used to form the print pattern is adjusted longer than other one counts except the predetermined one count by the one or plural reference signals, and the ink is ejected every one count. Therefore, the ink ejection timing of the ink is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if a necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head.
According to a third aspect of the present invention, a printing method for ejecting ink from an ink head provided with plural nozzles, and forming a print pattern in an article to be printed by moving the ink head relative to the article to be printed, the printing method includes: sending a reference signal at an interval shorter than a minimum time interval at which the ink head can eject the ink; counting at least two reference signals as one count, the reference signals being set longer than the minimum time interval; ejecting the ink every one count; forming the print pattern by collectivity of the ejected ink; and adjusting at least a one count used to form the print pattern such that the one count is lengthened by one or plural reference signals.
In the configuration of the third aspect, the reference signal is sent at intervals shorter than the minimum time interval at which the ink head can eject the ink, and at least two reference signals set longer than the minimum time interval is counted as one count. At least the one count used to form the print pattern is adjusted so as to be lengthened by the one or plural reference signals, and the ink is ejected every one count. Therefore, the ink ejection timing is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if a necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head. The time interval at which the ink is ejected is equalized, so that the ink can land on the surface of the workpiece at equal intervals to reduce a variation in thickness of the print pattern.
According to a fourth aspect of the present invention, a printing device includes: an ink head in which plural openings of nozzles ejecting ink are formed in one surface of the ink head, the ink in the nozzle being ejected from the opening, a print pattern being formed in an article to be printed by moving the ink head relative to the article to be printed; and a control device, wherein the control device includes: a reference signal sender that sends a reference signal at an interval shorter than a minimum time interval at which the ink head can eject the ink; a counter that counts at least two reference signals as one count, the reference signals being set longer than the minimum time interval; a timing adjuster that adjusts ink ejection timing; and a signal output unit that outputs an instruction signal, the instruction signal ejecting the ink every one count to form the print pattern by collectivity of the ejected ink, and the timing adjuster adjusts the ink ejection timing such that at least a final one count used to form the print pattern is lengthened by one or plural reference signals.
In the configuration of the fourth aspect, the reference signal is sent at intervals shorter than the minimum time interval at which the ink head can eject the ink, and at least two reference signals set longer than the minimum time interval is counted as one count. The ink ejection timing is adjusted such that at least the final one count used to form the print pattern is lengthened by the one or plural reference signals, and the ink is ejected every one count. Therefore, the ink ejection timing is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head.
According to a fifth aspect of the present invention, a printing device includes: an ink head in which plural openings of nozzles ejecting ink are formed in one surface of the ink head, the ink in the nozzle being ejected from the opening, a print pattern being formed in an article to be printed by moving the ink head relative to the article to be printed; and a control device, wherein the control device includes: a reference signal sender that sends a reference signal at an interval shorter than a minimum time interval at which the ink head can eject the ink; a counter that counts at least two reference signals as one count, the reference signals being set longer than the minimum time interval; a timing adjuster that adjusts ink ejection timing; and a signal output unit that outputs an instruction signal, the instruction signal ejecting the ink every one count to form the print pattern by collectivity of the ejected ink, and the timing adjuster adjusts the ink ejection timing such that at least a predetermined one count used to form the print pattern is longer than other one counts except the predetermined one count by one or plural reference signals.
In the configuration of the fifth aspect, the reference signal is sent at intervals shorter than the minimum time interval at which the ink head can eject the ink, and at least two reference signals set longer than the minimum time interval is counted as one count. The ink ejection timing is adjusted such that at least the predetermined one count used to form the print pattern is longer than other one counts except the predetermined one count by the one or plural reference signals, and the ink is ejected every one count. Therefore, the ink ejection timing is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if a necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head.
According to a sixth aspect of the present invention, a printing device includes: an ink head in which plural openings of nozzles ejecting ink are formed in one surface of the ink head, the ink in the nozzle being ejected from the opening, a print pattern being formed in an article to be printed by moving the ink head relative to the article to be printed; and a control device, wherein the control device includes: a reference signal sender that sends a reference signal at an interval shorter than a minimum time interval at which the ink head can eject the ink; a counter that counts at least two reference signals as one count, the reference signals being set longer than the minimum time interval; a timing adjuster that adjusts ink ejection timing; and a signal output unit that outputs an instruction signal, the instruction signal ejecting the ink every one count to form the print pattern by collectivity of the ejected ink, and the timing adjuster adjusts the ink ejection timing such that at least a one count used to form the print pattern is lengthened by one or plural reference signals.
In the configuration of the sixth aspect, the reference signal is sent at intervals shorter than the minimum time interval at which the ink head can eject the ink, and at least two reference signals set longer than the minimum time interval is counted as one count. The ink ejection timing is adjusted such that at least the one count used to form the print pattern is lengthened by the one or plural reference signals, and the ink is ejected every one count. Therefore, the ink ejection timing is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if a necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head.
In the above configuration of the present invention, the ink ejection timing is changed without changing the moving speed of the ink head, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if a necessity to increase the number of scan times of the ink head is generated in order to enhance the resolution in the array direction of the nozzles of the ink head, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head.
Hereinafter, a preferred embodiment of the present invention will be described in detail with reference to the drawings.
The pump 5 is arranged in the ink circulation route 4, and supplies the ink 20 to the ink head 2 and the ink circulation route 4. The ink 20 is supplied to the ink head 2 and the ink circulation route 4 to circulate the ink 20, which prevents aggregation of a particle component of the ink 20 in the ink head 2. A control device 37 controls operation of the pump 5.
The ink 20 is reserved in the ink tank 3. For example, the ink 20 used in the printing device 1 is ink containing pigment ink metallic particles (Au, Ag, Cu, Pd, and Ni that are of electrode materials) or conductive particles, and has a configuration in which a particle component (such as pigment and metallic particles) is dispersed in a liquid component. The ink 20 may contain ceramic or resin in addition to the metallic particles and the like. Preferably a viscosity of the ink 20 is as low as 40 mPa·S or less, more preferably the viscosity of the ink 20 ranges from about 10 mPa·S to about 25 mPa·S. For example, the ink tank 3 has a capacity of about 50 mL.
The ink replenishment route 7 is a route through which the ink 20 in the ink tank 3 is supplied to the ink circulation route 4, and is connected to the ink circulation route 4 located on a suction side of the pump 5. The ink circulation route 4 is replenished with a necessary amount of ink 20 ejected from the nozzle 21 of the ink head 2 through the ink replenishment route 7.
A stage 62 on which a workpiece (article to be printed) 63 is placed is arranged below the ink head 2. The workpiece 63 is sucked and fixed onto the stage 62 so as not to move with respect to the stage 62. The stage 62 can move in three axial directions, and the placed workpiece 63 is moved according to a position of the ink 20 ejected from the nozzle 21 of the ink head 2. Specifically, the ink 20 is ejected while the stage 62 is moved in a direction orthogonal to the array of the openings 22 of the nozzles 21, which allows the printing to be performed by a one-time scan. The control device 37 controls the movement of the stage 62.
The workpiece 63 and the ink head 2 can be moved relative to each other, and either the stage 62 or the ink head 2 may be moved. A scan direction is not necessarily orthogonal to the array of the openings 22 of the nozzles 21, but the scan direction may be an oblique direction. The stage 62 is not limited to a planar shape, and the workpiece 63 is not limited to a strip shape. For example, the stage 62 may be a rotatable stage having a roll shape, and the workpiece 63 may be a long workpiece wound around the roll-shaped stage. In this case, the long workpiece moves while the roll-shaped stage rotates, which allows the printing to be performed by continuous scan.
The reference signal sender 371 sends a reference signal at intervals shorter than a minimum time interval at which the ink head 2 can eject the ink 20. The counter 372 counts at least two reference signals, which are specified so as to be longer than the minimum time interval, as one count. The timing adjuster 373 adjusts ejection timing of the ink 20 by varying the number of pulses of the reference signal included in one count. The drive signal output unit 374 outputs a drive signal (instruction signal) ejecting the ink 20 every one count to the ink head 2 and the stage 62. For example, the minimum time interval at which the ink head 2 can eject the ink 20 is 2.5×10−6 sec (40 kHz), and the time interval of the reference signal is 1×10−9 sec (100 MHz).
In the first embodiment, the drive signal is a signal issuing an instruction of the ejection timing of the ink 20 and a signal controlling the movement of the stage 62. The position of the stage 62 is understood by an output signal from a shaft encoder 65 attached to the stage 62, and the stage 62 is moved according to the ejection of the ink 20, which allows the printing to be performed at the desired position.
As illustrated in
As illustrated in
The ejection timing of the printing device 1 of the first embodiment will be described below with reference to
In
In the comparative example of
For this reason, in the first embodiment, as illustrated in
For example, assuming that resolution 1440 dpi is the state in which the printing is performed every four minimum time intervals, the resolution becomes 5760 dpi in the case that the ink 20 is ejected to all the impact points 40. On the other hand, in the first embodiment, the printing is performed every four minimum time intervals in the broken-line area that is not colored in gray, but the ink 20 is not ejected, so that the printing can be performed with the apparent resolution of 5760 dpi while the printing speed is maintained at a speed corresponding to the resolution of 1440 dpi.
In the case that a certain print pattern 69 is formed, even if the ejection timing is adjusted, the ejection timing can be readjusted according to a starting position of the next print pattern 69 because a non-printing area (an area where the ink 20 is not ejected from the ink head 2) exists until the formation of the next print pattern 69 is started. For example, after the final ejection timing of a certain print pattern 69 is adjusted to ‘4241’, the first ejection timing of the next print pattern 69 is readjusted to ‘8001’, which allows the starting position of the next print pattern 69 to be returned to an originally-decided position.
One of the features of the first embodiment is that the reference signal sending interval is shorter than the minimum time interval at which the ink head 2 can eject the ink 20. Accordingly, at least two reference signals are counted as one count, and the ejection timing can be delayed by at least one reference signal in the final one count. Therefore, the printing can be performed at high apparent resolution without decreasing the printing speed.
The adjustment of the ejection timing is not limited to the final one count of the print pattern 69, but the ejection timing may be adjusted in plural counts including the final one count. For example, the ejection timing of the final two or three counts may be adjusted so as to be lengthened by one or plural reference signals.
As described above, in the first embodiment, the ejection timing of the ink 20 is changed without changing the moving speed of the ink head 2, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if the necessity to increase the number of scan times of the ink head 2 is generated in order to enhance the resolution in the array direction of the nozzles 21 of the ink head 2, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head 2.
The change in ejection timing is not limited to the final one count.
As illustrated in
After one print pattern 69 is formed, the ejection timing of the first one count may be brought forward in order to form the next print pattern 69.
As illustrated in
In order to form the next print pattern 69, the ejection timing of the first one count is set by not the reference signal ‘8001’ but the reference signal ‘7761’ so as to be brought forward by the 240 reference signals. Thus, the present invention can also be applied to the case that the first one count starts earlier in order to form the print pattern 69, and the ejection timing can be brought forward by at least one reference signal in the first one count. Therefore, the printing can be performed at high apparent resolution without decreasing the printing speed.
Because a schematic diagram illustrating a configuration of a printing device according to a second embodiment of the present invention and a functional block diagram of a control device of the second embodiment are similar to those of the first embodiment, the identical component is designated by the identical numeral, and the detailed description is neglected. The second embodiment differs from the first embodiment in that the ejection timing is delayed in all the counts corresponding to the print pattern by one or plural reference signals.
The ejection timing of the printing device 1 of the second embodiment will be described below with reference to
In the first embodiment, the ejection timing is adjusted such that only the final ejection timing is lengthened by 240 reference signals. When attention is paid to the relationship between the number of reference signals and the ejection timing, the ejection timing is set every 1000 reference signals such as ‘1001’, ‘2001’, ‘3001’, . . . , and the final ejection timing is set such that the reference signal next to the reference signal ‘3001’ is not ‘4001’ but ‘4241’. Therefore, the printing can be performed in the printing area similar to the case that the resolution is enhanced four times.
On the other hand, in the second embodiment, the ejection timing is slightly delayed every one count to generate the delay similar to the case that only the final ejection timing is delayed like the first embodiment, and the instruction signal becomes the on state in the timing of equally dividing the whole time such that each count can eject the ink 20 at constant intervals (equal intervals).
As illustrated in
For example, assuming that resolution 1440 dpi is the state in which the printing is performed every four minimum time intervals, the resolution becomes 5760 dpi in the case where the ink 20 is ejected to all the impact points 40. Even in the second embodiment, similarly to the first embodiment, the printing is performed every four minimum time intervals in the broken-line area that is not colored in gray in
One of the features of the second embodiment is that the reference signal sending interval is shorter than the minimum time interval at which the ink head 2 can eject the ink 20. Accordingly, at least two reference signals are counted as one count, and the ejection timing can be delayed by at least one reference signal every one count. Therefore, the printing can be performed at a high apparent resolution without decreasing the printing speed.
The length of one count is adjusted in the case that a certain print pattern 69 is formed, and the length of one count can be readjusted in the case that the next print pattern 69 is formed. For example, after the length of one count is adjusted to ‘1060’ in the case that a certain print pattern 69 is formed, the length of one count is readjusted to ‘1000’ in the case that the next print pattern 69 is formed, which allows the time interval of one count to be returned to the original one.
As described above, in the second embodiment, the ejection timing of the ink 20 is changed without changing the moving speed of the ink head 2, the desired print pattern can be printed, and the printing can be performed at the high apparent resolution. Even if the necessity to increase the number of scan times of the ink head 2 is generated in order to enhance the resolution in the array direction of the nozzles 21 of the ink head 2, the decrease in printing speed is relaxed as a whole because the printing speed is hardly decreased when the resolution is enhanced in the moving direction of the ink head 2. The time interval at which the ink 20 is ejected is equalized, so that the ink 20 can land on the surface of the workpiece 63 at equal intervals to reduce a variation in thickness of the print pattern 69.
Various changes can be made without departing from the scope of the present invention. The impact point 40 of the first and second embodiments are described only by way of example, and the present invention can be applied as long as the final or each ejection timing can be delayed by one or plural reference signals shorter than the minimum time interval.
Number | Date | Country | Kind |
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2014-021998 | Feb 2014 | JP | national |
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An Office Action issued by the Japanese Patent Office on Dec. 1, 2015, which corresponds to Japanese Patent Application No. 2014-021998 and is related to U.S. Appl. No. 14/607,381; with English language. |
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Number | Date | Country | |
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20150224762 A1 | Aug 2015 | US |