Printing device and printing method

The printing device adjusts ink ejection amounts and pattern design to enhance nozzle inspection accuracy by increasing ink volume for patterns with minimal color difference, addressing detection challenges in inkjet printing.

JP7779137B2Active Publication Date: 2025-12-03SEIKO EPSON CORP
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Patent Information

Application Number
JP2021209012
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-23
Publication Date
2025-12-03
Estimated Expiration
2041-12-23

AI Technical Summary

Technical Problem

Existing inkjet printing technologies struggle with reduced detection accuracy when the difference between the color of the printing paper and the ink is small, making it difficult to perform proper nozzle inspections.

Method used

A printing device and method that adjusts the ejection amount of ink based on the color difference between the test pattern and the medium, using a first ejection amount when the difference is above a threshold and a second, greater ejection amount when the difference is below the threshold, along with a test pattern design that enhances detection accuracy.

Benefits of technology

Improves nozzle inspection accuracy by increasing the ink ejection amount for patterns with minimal color difference, resulting in denser patterns and enhanced detection capabilities.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a printer and a printing method which enable inspection of a test pattern with high accuracy.SOLUTION: A printer includes a printing head having a nozzle array where a plurality of nozzles capable of discharging ink to a printing medium are arrayed, and a control part for controlling discharge of the ink from the nozzles, wherein the printing head can discharge the ink accompanied with scanning that is relative movement in a predetermined direction to the printing medium, and the control part performs such control as to allow the nozzles to discharge a first discharge amount of ink when a difference between the color of TP and the color of the printing medium is larger than a predetermined threshold, in test printing for printing the TP on the printing medium, and to allow the nozzles to discharge a second discharge amount larger than the first discharge amount of ink when the difference between the color of the TP and the color of the printing medium is equal to or less the predetermined threshold.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a printing device and a printing method. [Background technology]

[0002] In an inkjet printing device, a technique has been disclosed in which a print head prints a test pattern on printing paper, the test pattern is read by a scanner, and nozzle abnormalities are determined based on the read data (see Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-54970 Summary of the Invention [Problem to be solved by the invention]

[0004] However, with the technology described in Patent Document 1, when the difference between the color of the printing paper and the color of the ink is small, the detection accuracy of the test pattern decreases, and it may be impossible to perform the inspection properly. Therefore, a suitable test pattern is needed to properly perform the inspection after reading. [Means for solving the problem]

[0005] The printing device comprises a print head having a nozzle row in which multiple nozzles capable of ejecting liquid onto a medium are arranged, and a control unit that controls the ejection of the liquid from the nozzles, wherein the print head is capable of ejecting the liquid in association with scanning, which is relative movement in a predetermined direction relative to the medium, and the control unit controls, in test printing that prints a test pattern on the medium, to eject a first ejection amount of the liquid from the nozzle when the difference between the color of the test pattern and the color of the medium is greater than a predetermined threshold, and to eject a second ejection amount of the liquid greater than the first ejection amount from the nozzle when the difference between the color of the test pattern and the color of the medium is equal to or less than the threshold.

[0006] The printing method is a printing method for a printing device that has a print head having a nozzle row in which multiple nozzles capable of ejecting liquid onto a medium are arranged, and that ejects the liquid from the print head in conjunction with a scan, which is a relative movement in a predetermined direction relative to the medium, and includes a test printing step that prints a test pattern on the medium, and the test printing step includes a first determination step that determines the ejection amount of the liquid to be ejected from the nozzle to be a first ejection amount when the difference between the color of the test pattern and the color of the medium is greater than a predetermined threshold, and a second determination step that determines the ejection amount of the liquid to be ejected from the nozzle to be a second ejection amount greater than the first ejection amount when the difference between the color of the test pattern and the color of the medium is equal to or less than the threshold. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a block diagram showing a simplified device configuration. [Figure 2] FIG. 2 is a diagram showing a specific example of a configuration including a transport unit and a print head. [Figure 3] FIG. 2 is a diagram showing the relationship between the print medium and the print head from an overhead perspective. [Figure 4] 1 is a flowchart showing the process from printing to inspection of a TP. [Figure 5] FIG. 10 is a diagram showing an example of TP image data. [Figure 6] FIG. 1 is an enlarged view of a portion of the TP. [Figure 7] FIG. 10 is a diagram showing an example of a color ejection amount table. [Figure 8] FIG. 10 is a diagram showing an example of a color-by-color pass number table. DETAILED DESCRIPTION OF THE INVENTION

[0008] 1. Embodiment 1 Hereinafter, the first embodiment will be described with reference to the drawings. Note that the drawings are merely examples for explaining the first embodiment. Because the drawings are merely examples, the proportions and shapes may not be accurate, the drawings may not match each other, and some parts may be omitted.

[0009] 1-1.Device configuration FIG. 1 shows a simplified configuration of a printing device 10 according to this embodiment. The printing device 10 is a device that prints by ejecting ink as a liquid onto a print medium 30 (see FIG. 2) as a medium, and is equipped with a control unit 11, a display unit 13, an operation reception unit 14, a communication IF 15, a transport unit 16, a carriage 17, a print head 18, a reading unit 19, etc. IF stands for interface. The control unit 11 is configured to include one or more ICs having a CPU 11a as a processor, a ROM 11b, a RAM 11c, etc., and other non-volatile memories, etc.

[0010] In the control unit 11, a processor, i.e., CPU 11a, executes arithmetic processing in accordance with one or more programs 12 stored in ROM 11b or other memory, using RAM 11c or the like as a work area, thereby realizing various functions such as a print control unit 12a, a read control unit 12b, and an inspection unit 12c. Note that the processor is not limited to a single CPU, and may be configured to perform processing using multiple CPUs or hardware circuits such as ASICs, or may be configured to perform processing in cooperation with a CPU and hardware circuits.

[0011] The display unit 13 is a means for displaying visual information and is configured, for example, by a liquid crystal display, an organic EL display, or the like. The display unit 13 may be configured to include a display and a drive circuit for driving the display. The operation reception unit 14 is a means for receiving operations by the user and is realized, for example, by a physical button, a touch panel, a mouse, a keyboard, or the like. Of course, the touch panel may be realized as one function of the display unit 13.

[0012] The display unit 13 and the operation reception unit 14 may be part of the configuration of the printing device 10, or may be peripheral devices external to the printing device 10. The communication IF 15 is a general term for one or more IFs that allow the printing device 10 to connect to the outside world via wired or wireless communication in accordance with a predetermined communication protocol including a known communication standard.

[0013] The transport unit 16 is a means for transporting the print medium 30 and includes rollers and motors for rotating the rollers. The print head 18 performs printing by ejecting ink from nozzles onto the print medium 30 using an inkjet method. The reading unit 19 is a means for acquiring color information about the print medium 30 and reading the print results on the print medium 30. The reading unit 19 is also called a scanner. However, the printing device 10 may be configured without including the reading unit 19.

[0014] The carriage 17 is a mechanism that receives power from a carriage motor (not shown) and can move back and forth in a predetermined direction. The predetermined direction in which the carriage 17 moves corresponds to the first direction, also called the main scanning direction. The carriage 17 carries a print head 18, as shown in Figures 2 and 3.

[0015] The configuration of the printing device 10 shown in FIG. 1 may be realized by a single printer, or may be realized by a plurality of devices connected so as to be able to communicate with each other. That is, the printing device 10 may actually be a printing system. The printing system includes, for example, an information processing device that functions as the control unit 11, and a printer that includes a transport unit 16, a carriage 17, a print head 18, and even a reading unit 19. The printing method of this embodiment is realized by such a printing device 10 or printing system. Furthermore, the part of the control unit 11 that functions as the print control unit 12a and the parts that function as the read control unit 12b and the inspection unit 12c may be separate information processing devices.

[0016] 2 shows a specific example of a configuration of part of the printing device 10, mainly including the transport unit 16 and the print head 18. In FIG. 2, the above configuration is shown from a perspective perpendicular to the transport direction D2 of the print medium 30. The transport unit 16 has a payout spindle 22 on the upstream side of the transport and a take-up spindle 25 on the downstream side of the transport. The upstream and downstream sides of the transport are simply referred to as upstream and downstream. A long print medium 30 wound in a roll on the payout spindle 22 and the take-up spindle 25 is stretched along the transport direction D2. The print medium 30 is transported in the transport direction D2. The print medium 30 may be paper, or may be a medium made of a material other than paper.

[0017] In the example of FIG. 2, the printing medium 30 wound around the payout spindle 22 is paid out downstream as the payout spindle 22 rotates clockwise. A front drive roller 23 is provided downstream of the payout spindle 22, and a rear drive roller 24 is provided upstream of the take-up spindle 25. The front drive roller 23 rotates clockwise to transport the printing medium 30 paid out from the payout spindle 22 downstream. A nip roller 23n is provided for the front drive roller 23. The nip roller 23n comes into contact with the printing medium 30, thereby sandwiching the printing medium 30 between itself and the front drive roller 23.

[0018] The rear drive roller 24 rotates clockwise, thereby transporting the print medium 30 further downstream, which is transported downstream by the front drive roller 23. A nip roller 24n is provided for the rear drive roller 24. The nip roller 24n comes into contact with the print medium 30, thereby sandwiching the print medium 30 between itself and the rear drive roller 24.

[0019] A print head 18 is disposed between the front drive roller 23 and the rear drive roller 24, and ejects ink from above onto the print medium 30. As can be seen from Figure 2, the print head 18 is mounted on a carriage 17. The print head 18 is capable of ejecting ink of multiple colors, such as cyan (C), magenta (M), yellow (Y), black (K), light cyan (LC), and light magenta (LM).

[0020] Each nozzle of the print head 18 opens to a nozzle face 20 that faces the print medium 30 of the print head 18, and the print head 18 ejects or does not eject ink from the nozzles based on print data, which will be described later. The ink ejected from the nozzles is also called an ink droplet or a dot. The print head 18 may also be called a print head, inkjet head, liquid ejection head, print head, etc. The ejection of ink from the nozzles is controlled by the print control unit 12a of the control unit 11.

[0021] As the winding shaft 25 rotates clockwise, the printed print medium 30 transported by the rear drive roller 24 is wound onto the winding shaft 25 . Specific examples of the transport unit 16 that transports the print medium 30 include the supply spindle 22, the take-up spindle 25, the rollers, and a motor (not shown) for rotating these rollers as needed. The number and arrangement of rollers provided along the transport path for transporting the print medium 30 are not limited to the embodiment shown in FIG. 2 . Furthermore, the color of ink ejected by the print head 18 is not limited to the colors described above. Needless to say, a flat platen or the like may be provided between the front drive roller 23 and the rear drive roller 24 to support from below the print medium 30 that receives the ink ejected from the print head 18. Furthermore, the portion of the print medium 30 that has been printed by the print head 18 may be separated from the portion of the print medium 30 upstream of that portion by a cutter (not shown) and collected, rather than being wound into a roll by the take-up spindle 25.

[0022] In the example of FIG. 2, the reading unit 19 is located downstream of the carriage 17 and print head 18 and upstream of the rear drive roller 24. The reading unit 19 optically reads the print medium 30 printed by the print head 18 using an image sensor, and outputs image data as the reading result. The reading unit 19 may be configured to read the print medium 30 while moving on a carriage, similar to the print head 18, or may be configured to read while stationary. Note that reading by the reading unit 19 is controlled by the reading control unit 12b of the control unit 11, and the reading result is inspected by the inspection unit 12c of the control unit 11.

[0023] FIG. 3 shows a simplified top-down view of the relationship between the print medium 30 and the print head 18. The print head 18, mounted on the carriage 17, moves together with the carriage 17 in the main scanning direction D1, moving from one end to the other (forward movement) and from the other end to the other end (return movement). The main scanning direction D1 and the transport direction D2 intersect. This intersection can be interpreted as being perpendicular. Therefore, FIG. 2 illustrates the print head 18 and other components from a perspective facing the main scanning direction D1. However, due to various errors in the printer as a finished product, for example, the main scanning direction D1 and the transport direction D2 may not be strictly perpendicular.

[0024] FIG. 3 shows an example of the arrangement of nozzles 21 on the nozzle surface 20. Each small circle on the nozzle surface 20 represents a nozzle 21. The print head 18 includes multiple nozzle rows 26, each configured to receive ink of each color from a liquid holding means (not shown) called an ink cartridge or ink tank and eject the ink from the nozzles 21. The nozzle row 26 consisting of nozzles 21 ejecting C ink will also be referred to as nozzle row 26C. Similarly, the nozzle row 26 consisting of nozzles 21 ejecting M ink will also be referred to as nozzle row 26M, the nozzle row 26 consisting of nozzles 21 ejecting Y ink will also be referred to as nozzle row 26Y, the nozzle row 26 consisting of nozzles 21 ejecting K ink will also be referred to as nozzle row 26K, the nozzle row 26 consisting of nozzles 21 ejecting LC ink will also be referred to as nozzle row 26LC, and the nozzle row 26 consisting of nozzles 21 ejecting LM ink will also be referred to as nozzle row 26LM. The nozzle rows 26C, 26M, 26Y, 26K, 26LC, and 26LM are aligned along the main scanning direction D1.

[0025] Each nozzle row 26 is composed of a plurality of nozzles 21 with a constant or nearly constant nozzle pitch, which is the distance between the nozzles 21 in the transport direction D2. The direction in which the plurality of nozzles 21 constituting the nozzle row 26 extend is called the nozzle row direction D3. In the example of FIG. 3, the nozzle row direction D3 is parallel to the transport direction D2. In a configuration in which the nozzle row direction D3 is parallel to the transport direction D2, the nozzle row direction D3 and the main scanning direction D1 are perpendicular to each other. However, the nozzle row direction D3 may not be parallel to the transport direction D2, but may be configured to intersect obliquely with the main scanning direction D1.

[0026] The nozzle rows 26C, 26M, 26Y, 26K, 26LC, and 26LM are positioned in the same position in the transport direction D2. The printing device 10 prints an image on the print medium 30 by combining the transport of the print medium 30 in the transport direction D2 with the ejection of ink by the print head 18 as the carriage 17 moves along the main scanning direction D1. The forward and backward movements of the carriage 17 are called "scans" and "passes." In other words, the print head 18 ejects ink as the carriage 17 scans, or makes a pass. The movement of the print head 18 in the main scanning direction D1 as the carriage 17 scans corresponds to the relative movement of the print head 18 with respect to the print medium 30.

[0027] 1-2. Test pattern printing FIG. 4 is a flowchart showing the flow of steps executed by the control unit 11 in accordance with the program 12, from printing a TP to inspecting the nozzles 21 based on the TP. TP stands for test pattern. The flowchart roughly consists of a TP printing process (step S100), obtaining a reading result of the printed TP (step S200), and an inspection based on the reading result of the TP (step S300). Printing the TP corresponds to test printing, and step S100 corresponds to the test printing process. In FIG. 4, step S100 is shown in detail, divided into steps S110 to S190.

[0028] In step S110, the print control unit 12a acquires TP image data, which is image data representing the TP, from a storage source such as a predetermined memory or storage device with which the control unit 11 can communicate. The TP image data is, for example, image data in a bitmap format that defines the color of each pixel in a predetermined color system. The color system referred to here can be, for example, an RGB (red, green, blue) color system, a CMYK color system, or various other systems.

[0029] In step S120, the reading control unit 12b acquires color information of the print medium 30. The reading control unit 12b acquires the color information by detecting the RGB values ​​of the leading edge portion of the print medium 30 on the downstream side in the conveyance direction D2 with the reading unit 19. The color information here refers to information expressed, for example, in the RGB (red, green, blue) color system or the CMYK color system. The reading control unit 12b outputs the acquired color information to the print control unit 12a.

[0030] In step S130, the print control unit 12a sets the print conditions for the TP. The print control unit 12a sets the print conditions for normal printing as desired by the user as the print conditions for the TP. User-desired normal printing refers to a process of printing objects such as photos, text, or CG arbitrarily selected by the user, rather than the TP. The user can set the print conditions for normal printing by operating the operation reception unit 14 while viewing the user interface (UI) screen displayed on the display unit 13. The print conditions include, for example, print quality.

[0031] The print quality is presented to the user as a sensory choice, such as high definition, normal, or fast, and the print control unit 12a sets each item required for printing execution, such as the movement speed of the carriage 17, the transport speed of the transport unit 16, the waveform of the drive signal used to drive the nozzles 21, and the drive cycle of the nozzles 21 during a pass, depending on the print quality selection.In addition, initial settings are provided for the printing conditions, and if the user does not particularly change the initial settings, the print control unit 12a applies these initial settings to TP printing and normal printing. The execution order of steps S110, S120, and S130 may be out of the order shown in FIG. 4, or may be substantially simultaneous.

[0032] In step S140, the print control unit 12a generates print data for printing the TP from the TP image data. The print control unit 12a performs predetermined image processing, such as color conversion processing and halftone processing, on the TP image data as needed to generate print data that specifies ink ejection (dot-on) or ink non-ejection (dot-off) for each pixel and for each ink color. Assuming that the print head 18 uses ink of multiple colors, as illustrated in FIG. 3, in step S140, the print control unit 12a generates print data that specifies dot-on / dot-off for each pixel and for each ink color based on the TP image data.

[0033] FIG. 5 shows an example of TP image data 40 acquired in step S110. TP image data 40 is image data that represents TP41. FIG. 5 and FIG. 6, which will be described later, also show the correspondence between TP image data 40 and the main scanning direction D1 and the transport direction D2. TP41 includes TPs for each ink color. According to FIG. 5, TP41C is a TP represented by the color C. Similarly, TP41LC is a TP of LC color, TP41M is a TP of M color, TP41LM is a TP of LM color, TP41Y is a TP of Y color, and TP41K is a TP of K color.

[0034] In the TP image data 40, TPs 41C, 41LC, 41M, 41LM, 41Y, and 41K for each ink color are aligned in the main scanning direction D1 and are positioned at the same position in the transport direction D2. Each of TPs 41C, 41LC, 41M, 41LM, 41Y, and 41K for each ink color is a collection of multiple linear "patterns." In the example of FIG. 5, each pattern is a ruled line whose length is in the main scanning direction D1, i.e., a ruled line parallel to the main scanning direction D1. One pattern is an image printed by one nozzle 21 of the corresponding ink color.

[0035] FIG. 6 shows an enlarged view of a portion of TP41 represented by the TP image data 40. Specifically, FIG. 6 shows portions of TP41C and TP41Y. TP41C is composed of multiple patterns 42C arranged at equal intervals in the transport direction D2, and TP41Y is composed of multiple patterns 42Y arranged at equal intervals in the transport direction D2. For ease of understanding, FIG. 6 also shows portions of the nozzle arrays 26C and 26Y used to print these TP41C and 41Y, along with TP41C and 41Y. That is, each pattern 42C constituting TP41C is printed by one nozzle 21 constituting the nozzle array 26C, and the patterns 42C are arranged at intervals similar to the nozzle pitch in the transport direction D2. Similarly, each pattern 42Y constituting TP41Y is printed by one nozzle 21 constituting the nozzle array 26Y, and the patterns 42Y are arranged at intervals similar to the nozzle pitch in the transport direction D2.

[0036] In the example of FIG. 6, the patterns 42C are arranged with their positions shifted in the main scanning direction D1 so that their positions in the main scanning direction D1 coincide every three to facilitate detection of each pattern during inspection. Similarly, the patterns 42Y are arranged with their positions shifted in the main scanning direction D1 so that their positions in the main scanning direction D1 coincide every three. In this way, the linear patterns constituting TP41 are arranged in a staircase pattern of three steps for each ink color in the main scanning direction D1. Note that the number of steps is not limited to three, as long as there is more than one. Furthermore, the patterns constituting TP corresponding to one ink color may all be positioned at the same position in the main scanning direction D1.

[0037] The print data generated in step S140 is image data that represents TP41 expressed by such TP image data 40 as on / off dots. Each pattern that makes up TP41C, 41LC, 41M, 41LM, 41Y, and 41K for each ink color is formed with dots of only the corresponding ink color.

[0038] In step S150, the print control unit 12a calculates the color difference between each ink color of the TP 41 in the TP image data acquired in step S110 and the color of the printing medium 30 acquired in step S120, and determines whether the result is equal to or less than a predetermined threshold. The color difference is expressed as a distance in color space, for example. The distance in color space can be calculated by converting the acquired value in the RGB color system into a value in the L*a*b* color system, using the following formula (1): Note that values ​​in the RGB color system can be converted to values ​​in the L*a*b* color system using a conversion method defined for a standard color space such as sRGB, AdobeRGB, etc. Alternatively, values ​​can be calculated using a known interpolation calculation that references a table that describes the correspondence between values ​​in the RGB color system and values ​​in the L*a*b* color system and that is stored in advance in a storage source such as a predetermined memory or storage device with which the control unit 11 can communicate.

[0039]

number

[0040] In step S150, the print control unit 12a first selects one ink to be used in printing TP41 and compares the color difference between that ink color and the print medium 30 with a predetermined threshold. If the color difference is greater than the predetermined threshold, the selected ink is classified as the "first ink." If the color difference is equal to or less than the predetermined threshold, the selected ink is classified as the "second ink." For example, if the color of the print medium 30 is yellowish, and the color difference between the C ink is greater than the threshold and the color difference between the Y ink is equal to or less than the threshold, the C ink corresponds to the first ink and the Y ink corresponds to the second ink.

[0041] If the color difference between the ink color and the print medium 30 is equal to or less than a predetermined threshold, the print control unit 12a proceeds to step S160, and if it is greater than the predetermined threshold, the print control unit 12a proceeds to step S170. In steps S160 and S170, the print control unit 12a determines the ejection amount for each ink to be ejected from the nozzles 21 when printing TP41. FIG. 7 shows an example of a color-specific ejection amount table 50 used to determine the ejection amount. The color-specific ejection amount table 50 is pre-stored in a memory or storage device inside or outside the printing device 10 that the control unit 11 can access. The color-specific ejection amount table 50 defines parameters that directly or indirectly determine the ejection amount for printing TP for each ink color on the printing medium 30. As shown in FIG. 7, the color-specific ejection amount table 50 specifies two ejection amounts for each of the ink colors CMYKLCLM. One of these ejection amounts is the ejection amount for a first ink whose color difference with the printing medium 30 is greater than a threshold value and corresponds to the first ejection amount. The other ejection amount is the ejection amount for a second ink whose color difference with the printing medium 30 is equal to or less than a threshold value and corresponds to the second ejection amount. As shown in Figure 7, the second ejection amount, which is the ejection amount of the second ink, is set to a value greater than the first ejection amount, which is the ejection amount of the first ink. These ejection amounts are the ejection amounts associated with one scan of the print head 18. However, the number of passes required to print TP41 is not limited to one, and may be multiple. Also, in Figure 7, the first ejection amount and the second ejection amount are set to the same value for all ink colors, but they may differ depending on the ink color.

[0042] If it is determined in step S150 that the color difference between the ink color and the print medium 30 is equal to or less than the threshold value and the process proceeds to step S160, the print control unit 12a determines the ejection amount of the selected ink as the ejection amount of the second ink, i.e., the second ejection amount. Step S160 corresponds to the second determination step.

[0043] For example, a detailed description will be given of a case where the color of the printing medium 30 is (R, G, B)=(245, 245, 0), the threshold is 10, and the ink color is Y ink with (R, G, B)=(240, 240, 0). In the L*a*b* color system, (R,G,B)=(245,245,0) corresponds to (L*,a*,b*)=(94,-15,91), and (R,G,B)=(240,240,0) corresponds to (L*,a*,b*)=(93,-15,89). Therefore, according to equation (1), the color difference is ΔE*=2.2, which is below the threshold. Therefore, in step S160, the ejection amount of Y ink is determined to be the second ejection amount.

[0044] On the other hand, if it is determined in step S150 that the color difference between the ink color and the print medium 30 is greater than the threshold value and the process proceeds to step S170, the print control unit 12a determines the ejection amount of the selected ink to be the ejection amount of the first ink, i.e., the first ejection amount. Step S170 corresponds to the first determination step.

[0045] For example, a detailed description will be given of the case where the color of the print medium 30 is (R, G, B)=(245, 245, 0), the threshold is 10, and the ink color is C ink with (R, G, B)=(0, 175, 240). In the L*a*b* color system, (R,G,B)=(245,245,0) corresponds to (L*,a*,b*)=(94,-15,91), and (R,G,B)=(0,175,240) corresponds to (L*,a*,b*)=(67,-21,44). Therefore, according to equation (1), the color difference is ΔE*=137.8, which is greater than the threshold value. Therefore, in step S170, the ejection volume of C ink is determined to be the first ejection volume.

[0046] In step S180, the print control unit 12a determines whether the ejection amounts have been determined for all inks used in printing TP41. If the ejection amounts for all inks have been determined, the process proceeds to step S190. On the other hand, if there are inks whose ejection amounts have not yet been determined, the process selects one of them, returns to step S150, and repeats the above operations.

[0047] When the process proceeds to step S190, the print control unit 12a prints TP41 on the print medium 30 by controlling the movement of the carriage 17 and the ink ejection by the print head 18 in accordance with the printing conditions set in step S130, the print data generated in step S140, and the ejection amount determined in steps S160 and S170. Specifically, when printing TP41 on the print medium 30, the print control unit 12a controls the ejection amount of the second ink, which has a small color difference from the print medium 30, so that it is greater than the ejection amount of the first ink, which has a large color difference. This makes it possible to print TP41 printed with the second ink with a darker color. Note that in the above example, the nozzle row 26C ejecting the C ink, which is the first ink, corresponds to the first nozzle row, and the nozzle row 26Y ejecting the Y ink, which is the second ink, corresponds to the second nozzle row. Furthermore, TP41C printed with the first ink corresponds to the first test pattern, and TP41Y printed with the second ink corresponds to the second test pattern.

[0048] Next, steps S200 and S300 will be briefly described. In step S200, the reading control unit 12b controls the reading unit 19 to read the print medium 30 after TP41 has been printed in step S100, and obtains image data as the reading result from the reading unit 19. Of course, the transport unit 16 transports the print medium 30 after printing by the amount necessary for the reading unit 19 to read it. However, in step S200, it is sufficient to obtain the reading result of the print medium 30 on which TP41 is printed. Therefore, the user may have an external scanner read the print medium 30 on which TP41 is printed, and the printing device 10 may obtain the reading result via the communication IF 15.

[0049] In step S300, the inspection unit 12c inspects the state of ink ejection by the nozzles 21 of the print head 18 based on the image data acquired as the reading result in step S200. The state of ink ejection is classified as normal or abnormal. Abnormalities include inability to eject dots, where dots do not land in the ideal position, and so on. The inspection unit 12c analyzes the image data to detect each pattern for each ink color and each nozzle 21. Then, by identifying the density and position of each pattern, the inspection unit 12c inspects whether each nozzle 21 is normal or abnormal, and saves the inspection results as data. This completes the flowchart in FIG.

[0050] According to this embodiment, during test printing of TP41, the print control unit 12a ejects a first amount of ink if the difference between the color of TP41 and the color of the printing medium 30 is greater than a threshold value. If the difference is equal to or less than the threshold value, the print control unit 12a ejects a second amount of ink, which is greater than the first amount. As a result, if the colors of TP41 and the printing medium 30 are similar, the amount of ink ejected increases, and the area of ​​the dots forming the pattern increases, resulting in a denser pattern. This improves detection accuracy during testing. Specifically, for TPs printed with the second ink, which has a small color difference from the printing medium 30, it is difficult to accurately identify the position of the pattern during testing based on the reading results, making it difficult to accurately determine whether the nozzles 21 are normal or abnormal. However, by using TP41 printed in step S100 of this embodiment, it is possible to test the nozzles 21 of both inks with high accuracy.

[0051] Furthermore, according to this embodiment, in TP41, multiple linear patterns are arranged in a stepped pattern in units of multiple stages, so that even if the printed patterns bleed, interference between adjacent patterns is suppressed.

[0052] In this embodiment, in TP41, in which multiple linear patterns are arranged in a staircase pattern, the number of steps in the main scanning direction D1 is the same for TPs printed with the first ink and TPs printed with the second ink, but the number of steps for TPs printed with the second ink may be greater than the number of steps for TPs printed with the first ink. With this configuration, by increasing the number of steps for TPs formed with the second ejection amount and prone to bleeding, the distance between adjacent patterns can be increased and the effects of bleeding can be suppressed.

[0053] 2. Embodiment 2 Hereinafter, a description will be given of embodiment 2. Note that the same components as those in embodiment 1 are given the same reference numerals, and redundant description will be omitted. In the second embodiment, a color-by-color pass number table 51 shown in FIG. 8 is referenced instead of the color-by-color ejection volume table 50 shown in FIG.

[0054] In the second embodiment, in step S160 or step S170, the print control unit 12a references the color-specific pass number table 51 to determine the number of scans of the carriage 17, i.e., the number of passes. Specifically, the print control unit 12a sets the number of passes when printing the TP with the second ink, whose color difference with the print medium 30 is less than or equal to a threshold, to be greater than the number of passes when printing the TP with the first ink, whose color difference with the print medium 30 is greater than the threshold. In this case, the ink ejection volume per pass may be greater for either the first ink or the second ink, but the total ejection volume is set to be greater for the second ink. Here, the total ejection volume obtained by multiplying the number of passes of the first ink by the ejection volume per pass corresponds to the first ejection volume, and the total ejection volume obtained by multiplying the number of passes of the second ink by the ejection volume per pass corresponds to the second ejection volume. Note that in FIG. 8, the number of passes of the first ink and the number of passes of the second ink are the same for all ink colors, but they may differ depending on the ink color.

[0055] According to this embodiment, when the difference between the color of TP41 and the color of the print medium 30 is equal to or less than a threshold value, the print control unit 12a increases the number of scans of the carriage 17 when printing TP41, thereby increasing the amount of ink ejected, compared to when the difference is greater than the threshold value. With this configuration, increasing the number of scans increases the total amount of ink ejected, making it possible to print TP41 with less bleeding than by increasing the amount ejected in one ejection.

[0056] 3. Other embodiments The present embodiment is not limited to the above-described aspects. For example, in the above embodiment, the color information of the print medium 30 in step S120 is read by the reading unit 19, but this is not a limitation. A sensor for acquiring color information may be provided separately from the reading unit 19. Also, the measured color information may be acquired via the communication IF 15, or may be input by the user via the operation reception unit 14.

[0057] The printing device 10 does not have to be a so-called serial inkjet printer in which the print head 18 is mounted on a carriage 17 that moves in the main scanning direction D1 as described in the above embodiment. For example, a so-called line-type inkjet printer may be considered, which ejects ink using a print head 18 that extends in a main scanning direction D1 that intersects with the transport direction D2 and has nozzle rows 26 for each ink color that are long enough to cover the width of the print medium 30. In a line-type inkjet printer, the nozzle row direction D3 can be understood to be parallel to the main scanning direction D1, not the transport direction D2.

[0058] In this embodiment, assuming that the printing device 10 is a line-type inkjet printer, the TP41 shown in FIG. 5 is printed on the print medium 30 with each straight-line pattern, which is a ruled line, parallel to the transport direction D2 rather than the main scanning direction D1. Furthermore, the multiple passes of the print head 18 described above are achieved using backfeeding by the transport unit 16. Backfeeding is a process in which the transport unit 16 transports the print medium 30 from downstream to upstream. In other words, when the print medium 30 passes under the print head 18 as it is transported from upstream to downstream, a single printing is performed on the print medium 30. After this, the transport unit 16 backfeeds the portion of the print medium 30 that has already been printed, returning it to a position upstream of the print head 18 and then starting downstream transport again. By repeating this process, the TP41 can be repeatedly printed, just as a serial inkjet printer prints multiple passes of overlapping TP41.

[0059] When the printing device 10 is a line-type inkjet printer, transporting the print medium 30 by the transport unit 16 during printing by the print head 18 corresponds to moving the print head 18 relative to the print medium 30.

[0060] Needless to say, the print medium 30 does not have to be continuous paper wound in a roll as shown in Fig. 2. The print medium 30 may be cut sheets of paper cut into page units.

[0061] The shape of TP41 is not limited to a linear pattern having a length component in the main scanning direction D1, as shown in Figures 5 and 6. For example, in a serial printing device that ejects liquid as the carriage scans, the present invention can be applied to a test pattern for correcting errors between the landing positions during the forward scan and the backward scan of the carriage. In this case, in step S300, the inspection unit 12c detects the difference between the landing positions during the forward scan and the backward scan based on the reading result obtained in step S200.

[0062] The shape of TP41 is not limited to a stepped pattern in which each step is offset from the other in the main scanning direction D1 and the transport direction D2, as shown in Figures 5 and 6. However, forming a stepped pattern increases the distance between the previous and next steps, making it possible to create a pattern that is less likely to affect reading accuracy even if the pattern bleeds, so it is acceptable to print a stepped pattern only in areas where bleeds are likely to occur due to an increased ejection amount.

[0063] The shape of the TP41 is not limited to being the same for all inks, as shown in Figures 5 and 6. For example, in a TP printed with a first ink, the linear patterns may be arranged with a shift only in the transport direction D2, without being shifted in the main scanning direction D1, while in a TP printed with a second ink, the linear patterns may be arranged in a stepped pattern with a shift in both the main scanning direction D1 and the transport direction D2. This configuration makes it possible to prevent the second ink, which has a large ejection volume and is more likely to bleed than the first ink, from interfering with nearby patterns before and after due to bleeding, thereby reducing detection accuracy.

[0064] The TP41 is not limited to a configuration in which multiple TPs of different ink colors are arranged side by side in the main scanning direction D1 as shown in Fig. 5. For example, it may be a configuration in which TPs are arranged for each color or for multiple colors in the transport direction D2.

[0065] In this embodiment, the distance in the color space is calculated using the L*a*b* color system for color difference, but the method for calculating the color difference is not limited to this method. For example, the Euclidean distance in the color space of the RGB color system may be calculated. In this case, an appropriate threshold value according to the method for calculating the color difference is used as appropriate to compare the color difference with the threshold value. [Explanation of symbols]

[0066] 10...printing device, 11...control unit, 11a...CPU, 11b...ROM, 11c...RAM, 12...program, 12a...printing control unit, 12b...reading control unit, 12c...inspection unit, 13...display unit, 14...operation reception unit, 15...communication IF, 16...conveying unit, 17...carriage, 18...print head, 19...reading unit, 20...nozzle surface, 21...nozzle, 22...feeding shaft, 23...front drive roller, 23n...nip roller, 24 ...rear drive roller, 24n...nip roller, 25...winding shaft, 26, 26C, 26M, 26Y, 26K, 26LC, 26LM...nozzle array, 30...printing medium, 40...TP image data, 41, 41C, 41M, 41Y, 41K, 41LC, 41LM...TP, 42C, 42Y...pattern, 50...color-specific ejection volume table, 51...color-specific pass number table, D1...main scanning direction, D2...conveyance direction, D3...nozzle array direction.

Claims

1. a print head having a nozzle row in which a plurality of nozzles capable of ejecting liquid onto a medium are arranged; a control unit that controls the ejection of the liquid from the nozzles, the print head is capable of ejecting the liquid in association with scanning, which is relative movement in a predetermined direction with respect to the medium; The control unit, in test printing for printing a test pattern on the medium, When the difference between the color of the test pattern and the color of the medium is greater than a predetermined threshold, a first ejection amount of the liquid is ejected from the nozzle; A printing device characterized by controlling the ejection of a second ejection amount of the liquid from the nozzle, which is greater than the first ejection amount, when the difference between the color of the test pattern and the color of the medium is less than the threshold value.

2. The printing device described in claim 1, characterized in that when the difference between the color of the test pattern and the color of the medium is less than the threshold, the control unit increases the amount of liquid ejected by increasing the number of scans of the print head when printing the test pattern, compared to when the difference is greater than the threshold.

3. The printing device described in claim 1 or claim 2, characterized in that when the difference between the color of the test pattern and the color of the medium is less than the threshold value, the control unit increases the amount of liquid ejected in one scan of the print head compared to when the difference is greater than the threshold value.

4. 4. A printing device according to claim 1, wherein the test pattern is printed using the liquid ejected from each of the nozzles and includes a plurality of linear patterns having length components along a first direction that intersects with the extension direction of the nozzle row.

5. 5. The printing device according to claim 4, wherein the plurality of linear patterns are arranged in a staircase pattern in units of a plurality of stages.

6. The printing device according to claim 5, characterized in that the control unit increases the number of steps in the first direction when the difference between the color of the test pattern and the color of the medium is less than the threshold value compared to when the difference is greater than the threshold value.

7. the print head includes, as the nozzle rows, a first nozzle row and a second nozzle row aligned in the first direction; the control unit causes a first test pattern printed from the first nozzle row at the first ejection amount and a second test pattern printed from the second nozzle row at the second ejection amount to be printed side by side in the first direction, as the test patterns; the linear patterns constituting the first test pattern and the second test pattern are each arranged in a staircase pattern with a plurality of stages; 7. The printing device according to claim 5, wherein the second test pattern has a greater number of rows in the first direction than the first test pattern.

8. A printing method for a printing device that includes a print head having a nozzle row in which a plurality of nozzles capable of ejecting liquid onto a medium are arranged, and that ejects the liquid from the print head in association with scanning, which is relative movement in a predetermined direction with respect to the medium, comprising: a test printing step of printing a test pattern on the medium; The test printing step includes: a first determination step of determining a first ejection amount of the liquid to be ejected from the nozzle when a difference between the color of the test pattern and the color of the medium is greater than a predetermined threshold; A printing method comprising a second determination process for determining the amount of liquid to be ejected from the nozzle to be a second ejection amount greater than the first ejection amount when the difference between the color of the test pattern and the color of the medium is less than the threshold value.

Citation Information

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