Inkjet printer and printing method
10414156 ยท 2019-09-17
Assignee
Inventors
Cpc classification
B41J2002/1657
PERFORMING OPERATIONS; TRANSPORTING
B41J2/2142
PERFORMING OPERATIONS; TRANSPORTING
B41J2/04581
PERFORMING OPERATIONS; TRANSPORTING
B41J2/2139
PERFORMING OPERATIONS; TRANSPORTING
B41J2/16579
PERFORMING OPERATIONS; TRANSPORTING
B41J2/0451
PERFORMING OPERATIONS; TRANSPORTING
B41J25/34
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41J2/045
PERFORMING OPERATIONS; TRANSPORTING
B41J25/34
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An inkjet printer includes a table for a recording medium, an injection head including nozzles arrayed in a first direction, the injection head injecting ink toward the recording medium, a movement mechanism moving, in the first direction, one of the table and the injection head with respect to the other of the table and the injection head, and a controller communicably connected with the injection head and the movement mechanism, the controller driving the injection head and the movement mechanism. The controller includes a printing controller printing an image by using portion of the plurality of nozzles, the portion being selected based on a nozzle check to determine if any of the nozzles has an injection defect.
Claims
1. An inkjet printer, comprising: a table on which a recording medium is able to be placed; an injection head including a plurality of nozzles arrayed in a first direction, the injection head injecting an image-forming ink toward the recording medium; a movement mechanism moving, in the first direction, one of the table and the injection head with respect to the other of the table and the injection head; and a controller communicably connected with the injection head and the movement mechanism, the controller driving the injection head and the movement mechanism; wherein the controller includes a first printing controller printing an image by use of a portion of the plurality of nozzles, the portion being selected based on a nozzle check to determine whether or not any of the plurality of nozzles has an injection defect; the injection head includes, from the plurality of nozzles, a plurality of nozzles that inject the image-forming ink of a same color; and the first printing controller prints an image by using a portion of the plurality of nozzles that inject the image-forming ink of the same color.
2. The inkjet printer according to claim 1, wherein the first printing controller is configured or programmed to select, from the plurality of nozzles, a plurality of nozzles continuously arrayed in the first direction.
3. The inkjet printer according to claim 1, wherein the first printing controller includes a storage storing the plurality of nozzles grouped into a plurality of groups, and is configured or programmed to select a group that does include any of the plurality nozzles determined to have an injection defect, from the plurality of groups.
4. The inkjet printer according to claim 3, wherein in the case where the plurality of groups stored on the storage include a plurality of groups that do not include any of the plurality nozzles determined to have an injection defect, the first printing controller is configured or programmed to select one group or a plurality of groups continuously arrayed in the first direction, such that the number of nozzles included in the selected one group or the selected plurality of groups is a maximum.
5. The inkjet printer according to claim 1, wherein the first printing controller includes a storage storing the plurality of nozzles grouped into a plurality of groups, and is configured or programmed not to select a group including a nozzle detected as having an injection defect, from the plurality of groups.
6. The inkjet printer according to claim 1, wherein the first printing controller is configured or programmed to cause the plurality of nozzles to inject the image-forming ink toward the recording medium to print a test pattern for the nozzle check.
7. The inkjet printer according to claim 6, further comprising an optical meter reading the test pattern for the nozzle check; wherein the first printing controller is configured or programmed to detect whether or not any of the plurality of nozzles has an injection defect by use of the optical meter.
8. The inkjet printer according to claim 1, further comprising a sensor detecting whether or not any of the plurality of nozzles has an injection defect; wherein the first printing controller is configured or programmed to use the sensor to automatically detect whether or not any of the plurality of nozzles has an injection defect, and is configured or programmed to automatically select nozzles, from the plurality of nozzles, from which the image-forming ink is to be injected.
9. The inkjet printer according to claim 1, wherein: the injection head includes a first injection head and a second injection head arrayed in a second direction perpendicular or substantially perpendicular to the first direction; the first injection head includes a portion of the plurality of nozzles arrayed in the first direction; the second injection head includes a portion of the plurality of nozzles arrayed in the first direction; and the first printing controller is configured or programmed to select either one of the first injection head and the second injection head.
10. The inkjet printer according to claim 1, wherein the controller includes a second printing controller printing an image in a state when the portion of the plurality of nozzles is not selected.
11. The inkjet printer according to claim 10, wherein the first printing controller is configured or programmed to divide an area where the second printing controller prints by one scan into a plurality of areas along the first direction, and to print by a plurality of scans.
12. The inkjet printer according to claim 10, wherein: the first printing controller includes a storage storing a first group and a second group in which the plurality of nozzles are divided along a first direction, the second printing controller is configured or programmed to print from the nozzles of the first group to the first printing region and to print from the nozzles of the second group to the second printing region, and the first printing controller is configured or programmed to print from the nozzles of the first group to the first printing region and the second printing region.
13. The inkjet printer according to claim 10, wherein: the injection head is configured to be movable in a second direction perpendicular or substantially perpendicular to the first direction, and the first printing controller is configured or programmed to perform printing with scanning the injection head in the second direction more than twice as compared with the second printing controller performs printing.
14. A printing method performed by use of an inkjet printer including a table on which a recording medium is able to be placed, an injection head including a plurality of nozzles arrayed in a first direction, the injection head injecting an image-forming ink toward the recording medium, a movement mechanism moving, in the first direction, one of the table and the injection head with respect to the other of the table and the injection head, and a controller communicably connected with the injection head and the movement mechanism, the controller driving the injection head and the movement mechanism, the printing method comprising: a nozzle check step of performing a nozzle check of detecting whether or not any of the plurality of nozzles has an injection defect; a nozzle selection step of selecting a nozzle from which the image-forming ink is to be injected, from the plurality of nozzles, based on results of the nozzle check; and a printing execution step of printing an image by use of the selected nozzle; wherein the injection head includes, from the plurality of nozzles, a plurality of nozzles that inject the image-forming ink of a same color; and the method further comprising printing an image by using a portion of the plurality of nozzles that inject the image-forming ink of the same color.
15. The printing method according to claim 14, wherein the plurality of nozzles included in the injection head include a first group of nozzles injecting the image-forming ink toward a first printing region, and a second group of nozzles injecting the image-forming ink toward a second printing region; in a case where any nozzle in the first group of nozzles is detected as having an injection defect in the nozzle check step, the second group of nozzles is selected; and in the printing execution step, the image-forming ink is injected from the second group of nozzles toward the first printing region and the second printing region.
16. The printing method according to claim 14, wherein, when no injection defect is found in any nozzle, a printing is performed by using the plurality of nozzles without performing the nozzle selection step and the printing executing step.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(9) Hereinafter, preferred embodiments of the present invention will be described with reference to the attached drawings. The preferred embodiments of the present invention described below are not intended to specifically limit the present invention. Components and portions that have the same functions will bear the same reference signs, and overlapping descriptions will be omitted or simplified optionally.
(10)
(11) The printer 1 moves a medium 5 forward sequentially and injects ink from an injection head 30A moving in the main scanning direction Y to print an image on the medium 5. The medium 5 is a printing target on which an image is to be printed. There is no specific limitation on the material of the medium 5. The medium 5 may be, for example, paper such as plain paper, printing paper for inkjet printers, or the like; a transparent sheet formed of a resin, glass or the like; or a sheet formed of a metal material, rubber or the like.
(12) In this specification, the term inkjet printer refers to any printer using a printing method of a conventionally known inkjet technology, for example, a continuous method such as a binary deflection method, a continuous deflection method or the like; or an on-demand method such as a thermal method, a piezoelectric element method or the like.
(13) The printer 1 includes a printer main body 10, legs 11 supporting the printer main body 10 and a controller 25. The printer main body 10 extends in the main scanning direction Y. The printer main body 10 includes a guide rail 12 and a carriage 30 engaged with the guide rail 12. The guide rail 12 guides the carriage 30 to move in the main scanning direction Y. The guide rail 12 extends in the main scanning direction Y. An endless belt 13 is secured to the carriage 30. The belt 13 is wound along pulleys 14 provided at a left end and a right end of the guide rail 12. A carriage motor 15 is attached to the pulley 14 at the right end. The carriage motor 15 is electrically connected with the controller 25. The carriage motor 15 is controlled by the controller 25. When the carriage motor 15 is driven, the pulleys 14 are rotated, and the belt 13 runs. Then, the carriage 30 is moved in the main scanning direction Y along the guide rail 12. In this preferred embodiment, the belt 13, the pulleys 14 and the carriage motor 15 are included in a main scanning direction movement mechanism that moves the carriage 30 in the main scanning direction Y.
(14) A platen 16 is located below the carriage 30. The platen 16 extends in the main scanning direction Y. The medium 5 is located on the platen 16. A pinch roller 17 pressing the medium 5 from above is provided above the platen 16. A grit roller 18 is provided at a position on the platen 16 that corresponds to the pinch roller 17. The grit roller 18 is coupled with a feed motor (not shown). The grit roller 18 is adapted to be rotatable upon receipt of a driving force of the feed motor. The feed motor is electrically connected with the controller 25. The feed motor is controlled by the controller 25. When the grit roller 18 is rotated in the state where the medium 5 is held between the pinch roller 17 and the grit roller 18, the medium 5 is transported in the sub scanning direction X. In this preferred embodiment, the pinch roller 17, the grit roller 18 and the feed motor are included in a sub scanning direction movement mechanism that moves the medium 5 in the sub scanning direction X.
(15) The carriage 30 waits at a home position HP at the right end of the guide rail 12 when not performing a printing operation. The carriage 30 includes one injection head 30A.
(16) The head portions 31C, 31M, 31Y and 31K each include a plurality of nozzles 6 arrayed in the sub scanning direction X (in other words, in the front-rear direction). In each of the head portions 31C, 31M, 31Y and 31K, the plurality of nozzles 6 are arrayed in a line to define a nozzle line. Namely, the injection head 30A preferably includes four nozzle lines, for example. The length of the nozzle line, namely, length L1 from the center of the nozzle 6 located at the foremost position to the center of the nozzle 6 located at the rearmost position, is equal or substantially equal among the head portions 31C, 31M, 31Y and 31K. In
(17) The head portions 31C, 31M, 31Y and 31K each accommodate a pressure chamber (not shown) having an ink stored therein, a vibration plate (not shown) defining a portion of the pressure chamber, and an actuator (not shown) coupled with the vibration plate. The actuator includes a piezoelectric element or the like. The pressure chamber is in communication with the nozzles 6. The actuator is electrically connected with the controller 25. When the controller 25 supplies a driving signal to the actuator, the actuator is deformed, and accordingly, the vibration plate is deformed. As a result, the pressure of the ink in the pressure chamber is changed, and thus the ink is injected from the nozzles 6 toward the medium 5.
(18) The head portions 31C, 31M, 31Y and 31K are respectively communicated with ink cartridges (not shown) via ink supply paths (not shown). The ink cartridges are detachably located at, for example, a right end of the printer main body 10. There is no limitation on the material of the ink. Any of various materials conventionally used as ink materials for inkjet printers is usable. The ink may be, for example, solvent-based pigment ink or aqueous pigment ink. Alternatively, the ink may be aqueous dye ink, ultraviolet-curable pigment ink curable when being exposed to ultraviolet light, or the like.
(19) The printer main body 10 accommodates an exhaust ink container 19A and a wiper 19B inner to the home position HP. The exhaust ink container 19A is opened upward. The exhaust ink container 19A is a container receiving the ink injected from the nozzles 6 of the injection head 30A. When the ink inside the injection head 30A is exposed to air, the viscosity of the ink is increased, and the injection performance may be changed. In order to avoid this, the injection head 30A makes an operation of injecting the ink from the nozzles 6 toward the exhaust ink container 19A when necessary. The exhaust ink container 19A recovers the ink injected from the nozzles 6. The wiper 19B cleans a surface of the injection head 30A on the side of the nozzles 6 (cleans the nozzle surface). In the state where the injection head 30A is at the home position HP, the nozzle surface of the injection head 30A is rubbed by the wiper 19B appropriately. This removes unnecessary ink, dust or the like attached to the nozzle surface. In this specification, the operation of the injection head 30A of injecting the ink toward the exhaust ink container 19A, and an operation of the wiper 19B of cleaning the nozzle surface of the injection head 30A, will be referred to as a cleaning operation.
(20) An operation panel 20 is provided at the right end of the printer main body 10. The operation panel 20 includes a display displaying an operation state, input keys operable by the user, and the like. Inside the operation panel 20, the controller 25 controlling operations of various components of the printer 1 is accommodated. The controller 25 is communicably connected with the feed motor, the carriage motor 15 and the actuator, and is adapted to control these components.
(21) There is no specific limitation on the structure of the controller 25. The controller 25 is, for example, a microcomputer. There is no specific limitation on the hardware structure of the microcomputer. The controller 25 includes, for example, an interface (I/F) receiving printing data or the like from an external device such as a host computer or the like. a central processing unit (CPU) executing an instruction from a control program, a ROM (read only memory) storing the program executable by the CPU, a RAM (random access memory) usable as a working area in which the program is developed, a storage device, such as a memory or the like, storing the above-described program and various types of data, and the like. The controller 25 does not need to be provided inside the printer main body 10. The controller 25 may be, for example, a computer or the like that is installed outside the printer main body 10 and is communicably connected with the printer main body 10 via a wire or wirelessly.
(22) The controller 25 includes a first printing portion 26 and a second printing portion (printing controller) 27. The first printing portion 26 is configured or programmed to control the entire operation of the printer 1 in a normal state, namely, in the state where no injection defect occurs to any nozzle 6. The second printing portion 27 is configured or programmed to control the entire operation of the printer 1 in the state where an injection defect occurs to a nozzle 6.
(23) The storage 27A has, stored thereon, information on grouping on the nozzles 6. The grouping is predefined in accordance with the structure of the printer 1, for example, the number or the location(s) of the injection head(s), the number of the head portions, the number of the colors, the number of the nozzle lines or the like.
(24) In
(25) The nozzle checker 27B is configured or programmed to perform a nozzle check to detect whether or not any of the nozzles 6 has an injection defect. The nozzle selector 27C selects nozzles 6, among the plurality of nozzles 6, from which the ink is to be injected for printing, based on the results of the nozzle check. The printing executer 27D uses the selected nozzles 6 to print an image.
(26) For printing, data on the image to be printed or the like is input to the controller 25. The controller 25 performs printing based on the data. In the normal state, namely, in the state where there is no nozzle 6 having an injection defect, the first printing portion 26 controls the entire operation of the printer 1. The first printing portion 26 controls the feed motor such that the medium 5 is fed forward sequentially. The first printing portion 26 drives the carriage motor 15 to move the carriage 30 in the main scanning direction Y, and drives the actuator to inject the ink from the injection head 30A, so that the ink arrives on a printing surface of the medium 5. The first printing portion 26, for example, moves the carriage 30 in the main scanning direction Y once or a plurality of times each time the medium 5 is fed forward.
(27) By contrast, in the case where an abnormal state occurs, for example, in the case where a dot is missing, or a white stripe appears, on the printed item, and thus printing results as expected are not provided, the user performs head cleaning. Namely, the injection head 30A, at the home position HP, injects the ink toward the exhaust ink container 19A, and/or the wiper 19B cleans the nozzle surface of the injection head 30A. In the case where even such an operation does not solve the abnormal state of the printed item, the controller 25 switches the first printing portion 26 into the second printing portion 27. The second printing portion 27 controls the entire operation of the printer 1.
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(29) In step S1, the nozzle check of checking whether or not any of the nozzles 6 has an injection defect is performed. In an example, a predetermined test pattern for the nozzle check is printed on the medium 5. Specifically, first, the user operates the operation panel 20 to instruct the printing of the test pattern. When being instructed to print the test pattern, the nozzle checker 27B of the second printing portion 27 causes the plurality of nozzles 6 in each of the head portions 31C, 31M, 31Y and 31K to inject the ink toward the medium 5. Thus, the predetermined test pattern for the nozzle check is printed on the medium 5.
(30)
(31) In step S2, the nozzle 6 having an injection defect is specified based on the results of the nozzle check. In an example, the user visually checks the test pattern for the nozzle check to specify the position of the nozzle 6 having the injection defect. For example, in the test printing pattern P1 shown in
(32) In an example, next, the user selects a group with no injection defect from the groups shown in the grouping display portion P2 in
(33) The nozzle selector 27C is adapted to select the nozzles 6 to be used for the printing, based on the information on the group(s) input by the user. The nozzle selector 27C is adapted to, for example, select the nozzles 6 included in the group(s) input by the user, as the nozzles 6 to be used for the printing. Specifically, the nozzle selector 27C is adapted to, in the case where, for example, the user inputs the second group of grouping GA as the group with no injection defect, select the nozzles 6 included in the second group of grouping GA as the nozzles 6 to be used for the printing.
(34) The nozzle selector 27C may be adapted to, in the case where the user selects a plurality of groups with no defect, select the nozzles 6 in all these groups as the nozzles to be used for the printing, or select the nozzles 6 in only a portion of the groups as the nozzles to be used for the printing. In a preferred embodiment of the present invention, the nozzle selector 27C is adapted to select, from the groups selected by the user, the nozzles 6 in a plurality of groups continuously arrayed in the sub scanning direction X, such that the number of the selected nozzles 6 is maximum. For example, the nozzle selector 27C is adapted to, in the case where the user inputs the first group, the third group and the fourth group of grouping GB as the groups with no defect, select the nozzles 6 in the third group and the fourth group continuously arrayed in the sub scanning direction X as the nozzles to be used for the printing. The nozzles 6 in the groups continuously arrayed in the sub scanning direction X are selected, so that the time from the injection of the ink until the ink is dried and cured is made uniform. Therefore, the efficiency of the printing is improved while the image quality is maintained high. Thus, the effect of the technology disclosed herein is better provided.
(35) In another example, the user selects the group with an injection defect from the grouping display portion P2 shown in
(36) In step S3, the selected nozzles 6 are used to print a desired image. Specifically, first, the printing executer 27D changes the control specificities such that an image in a printing region that was to be printed by use of all the nozzles 6 is now printed with only a portion of the nozzles 6 that have been selected in step S2. For example, it is assumed that in step S2, the nozzles 6 included in the second group of grouping GA are selected to be used for the printing. In this case, the printing executer 27D changes the control specificities such that an image in a printing region that was to be printed by use of the nozzles 6 included in the first group of grouping GA, and an image in a printing region that was to be printed by use of the nozzles 6 included in the second group of grouping GA, are both printed by use of the nozzles 6 included in the second group of grouping GA. In this example, the length of the nozzle line of the nozzles 6 included in the second group of grouping GA is half of length L1 of the nozzle line of all the nozzles 6. Therefore, the region on which the printing is performed while the carriage 30 is moved once in the main scanning direction Y is half of the region in the case where the printing is performed by the first printing portion 26. Thus, the second printing portion 27 moves the carriage 30 in the main scanning direction Y twice during the time period in which the first printing portion 26 moves the carriage 30 once in the main scanning direction Y for the printing.
(37) The printing executer 27D also supplies a driving signal to the actuator for the nozzles 6 included in the second group of grouping GA. By contrast, the printing executer 27D does not supply a driving signal to the actuator for the nozzles 6 included in the first group of grouping GA. The nozzles 6 included in the second group of grouping GA inject the ink twice. In this manner, the image in the printing region that was to be printed by use of the nozzles 6 included in the first group of grouping GA and the image in the printing region that was to be printed by use of the nozzles 6 included in the second group of grouping GA are both printed by use of the nozzles 6 included in the second group of grouping GA.
(38) Namely, in this preferred embodiment, the injection head 30A includes the nozzles 6 that are included in the first group and inject the ink toward a first printing region and the nozzles 6 that are included in the second group and inject the ink toward a second printing region. In the case where any of the nozzles 6 included in the first group is detected as having an injection defect in step S1, the nozzles 6 in the second group are selected in step S2. In step S3, the ink is injected from the nozzles 6 included in the second group toward the first printing region and the second printing region.
(39) As described above, in the case where any of the plurality of nozzles 6 is detected as having an injection defect, the printer 1 performs printing without using the nozzle 6 having the injection defect. In other words, the printing is performed using the nozzles 6 other than the nozzle 6 having the injection defect. This prevents decrease in the image quality. Therefore, even in the case where there is a nozzle 6 having an injection defect, the user continues printing with no decrease in the image quality.
(40) In this preferred embodiment, the second printing portion 27 is adapted to select the plurality of nozzles 6 continuously arrayed in the sub scanning direction X. This allows the efficiency of the printing to be improved while the image quality is maintained high. Therefore, the printing quality and the productivity of printed items is better balanced, and the effect of the technology disclosed therein is better provided.
(41) In this preferred embodiment, the second printing portion 27 includes the storage 27A, which stores the plurality of nozzles 6 as being grouped into the plurality of groups, and is adapted to select a group including no nozzle 6 having an injection defect, from the plurality of groups. Therefore, the nozzles 6 to be used for the printing are easily selected from the plurality of nozzles 6.
(42) In this preferred embodiment, the second printing portion 27 is adapted to, in the case where there are a plurality of groups including no nozzle 6 having an injection defect, select one group or a plurality of groups continuously arrayed in the sub scanning direction, such that the number of the nozzles 6 included in the selected group(s) is maximum. This allows the efficiency of the printing to be improved while the image quality is maintained high. Therefore, the printing quality and the productivity of printed items is better balanced, and the effect of the technology disclosed therein is better provided.
(43) In this preferred embodiment, the second printing portion 27 includes the storage 27A, which stores the plurality of nozzles 6 as being grouped into the plurality of groups, and is adapted not to select a group including a nozzle 6 having an injection defect, from the plurality of groups. Therefore, the nozzles 6 to be used for the printing are easily selected from the plurality of nozzles 6.
(44) In this preferred embodiment, the second printing portion 27 is adapted to cause the plurality of nozzles 6 to inject the ink toward the medium 5 to print the test pattern for the nozzle check. In this manner, it is detected whether or not any of the nozzles 6 has an injection defect even if the printer 1 does not include, for example, any sensor or the like for the nozzle check. This decreases the production cost of the printer 1.
(45) The preferred embodiments of the present invention have been described so far. The above-described preferred embodiments are merely examples, and the present invention may be carried out in any of various other forms.
(46) In the above-described preferred embodiments, as shown in
(47) In the example shown in
(48) In the example shown in
(49) In this preferred embodiment, for example, grouping GC, by which the nozzles 6 included in the injection head 50A are grouped into a first group and the nozzles 6 included in the injection head 50B are grouped into a second group, may be stored on the storage 27A. In this case, in step S2 in the preferred embodiments described above with reference to
(50) In the example shown in
(51) In the example shown in
(52) In this preferred embodiment, for example, grouping GD, by which the nozzles 6 included in the injection heads 70A and 70B are grouped into a first group, and the nozzles 6 included in the injection heads 70C and 70D are grouped into a second group, may be stored on the storage 27A. In this case, in step S2 in the preferred embodiments described above with reference to
(53) Alternatively, in this preferred embodiment, different manners of grouping may be set for different colors of the ink. For example, regarding the cyan ink, grouping GE, by which the nozzles 6 included in the head portion 71C in the injection head 70A are grouped into a first group, and the nozzles 6 included in the head portion 71C in the injection head 70D are grouped into a second group, may be stored on the storage 27A. In this case, in step S2 in the preferred embodiments described above with reference to
(54) In the preferred embodiments described above with reference to
(55) In the preferred embodiments described above with reference to
(56) In this preferred embodiment, the printer 1 includes the optical meter 33 reading the test pattern for the nozzle check. The second printing portion 27 is adapted to detect whether or not any of the nozzles 6 has an injection defect by use of the optical meter 33. The use of the optical meter 33 allows the nozzle 6 having an injection defect to be detected objectively as compared with the case where the user visually checks the test pattern. Therefore, in the case where, for example, the user is not sufficiently skilled in the checking work, it is especially effective to use the optical meter 33.
(57) In the preferred embodiments described above with reference to
(58)
(59) This will be described in more detail. For example, the plurality of nozzles 6 inject ink drops sequentially from the leftmost nozzle 6 at a predetermined time interval. If the nozzle has no injection defect, the light emitted from the light emitting element 21 is blocked by the injected ink drops. Therefore, the intensity of the light received by the light receiving element 22 is decreased. By use of such a principle, it is detected sequentially whether or not any of the nozzles 6 has an injection defect. The nozzle selector 27C is adapted to select nozzles 6 from which the ink is to be injected for the printing, based on the results thereof. In a preferred embodiment of the present invention, the nozzle selector 27C is adapted to select two or more (a plurality of) nozzles 6 as the nozzles 6 usable for the printing. The number of the nozzles 6 to be used is increased, so that an image is printed in a larger region at once. This increases the productivity of printed items. It is especially preferred that the nozzle selector 27C is adapted to select a plurality of nozzles 6 continuously arrayed in the sub scanning direction X, such that the number of the selected nozzles 6 is maximum. In this case, the timing at which the ink injected from the nozzles 6 is dried is made uniform. This more effectively prevents the image quality from being decreased. The printer uses the selected nozzles 6 to print the image.
(60) In the preferred embodiment shown in
(61) In the above-described preferred embodiments, the grouping on the nozzles 6 is stored in advance on the storage 27A. In step S2 in the preferred embodiments described above with reference to
(62) In the preferred embodiments described above with reference to
(63) The terms and expressions used herein are for description only and are not to be interpreted in a limited sense. These terms and expressions should be recognized as not excluding any equivalents to the elements shown and described herein and as allowing any modification encompassed in the scope of the claims. The present invention may be embodied in many various forms. This disclosure should be regarded as providing preferred embodiments of the principle of the present invention. These preferred embodiments are provided with the understanding that they are not intended to limit the present invention to the preferred embodiments described in the specification and/or shown in the drawings. The present invention is not limited to the preferred embodiments described herein. The present invention encompasses any of preferred embodiments including equivalent elements, modifications, deletions, combinations, improvements and/or alterations which can be recognized by a person of ordinary skill in the art based on the disclosure. The elements of each claim should be interpreted broadly based on the terms used in the claim, and should not be limited to any of the preferred embodiments described in this specification or referred to during the prosecution of the present application.
(64) While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.