Image forming apparatus, control method for image forming apparatus, and control program for image forming apparatus
By converting image data to low-resolution and adjusting ink ejection amounts, the apparatus achieves high-speed printing with maintained image quality and density, addressing the issue of reduced quality in high-speed operations.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-11
- Publication Date
- 2026-04-07
AI Technical Summary
Inkjet image forming apparatuses face a challenge in achieving high-speed printing without deteriorating image quality, as increasing the conveyance speed leads to reduced ink application density and widened dot spacing, resulting in decreased image quality.
The apparatus allows for high-speed printing by converting image data to low-resolution data along the conveyance direction and adjusting the ink ejection amount based on the transport speed to maintain image density, using an inkjet-type image forming apparatus with specific features.
This approach enables high-speed printing while minimizing the deterioration of image quality by maintaining ink application density and color gamut, ensuring high-quality images are produced.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to an image forming apparatus, a control method for an image forming apparatus, and a control program for an image forming apparatus.
Background Art
[0002] Conventionally, an inkjet type image forming apparatus that ejects ink droplets onto a recording medium using an inkjet head to form an image on the recording medium is known (see, for example, Patent Document 1).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In recent years, in this type of image forming apparatus, there has been a demand to enable high-speed printing without changing the mechanical structure of the inkjet head.
[0005] As a method for realizing such high-speed printing, the inventors of the present application convert input image data to be printed into image data with reduced resolution along the conveyance direction, and use the converted image data to execute printing while increasing the conveyance speed of the recording medium. Hereinafter, a method of executing printing at the standard speed of the conveyance speed of the recording medium is referred to as a "standard printing mode", and a method of executing printing while increasing the conveyance speed of the recording medium to a speed higher than the standard speed is referred to as a "high-speed printing mode".
[0006] Figure 1 shows an example of the image data conversion process (hereinafter referred to as "low-resolution processing") in high-speed printing mode. The left side of Figure 1 shows the original image data to be printed, and the right side of Figure 1 shows the converted image data with reduced resolution in the transport direction from the original image data in Figure 1. In Figure 1, for example, the low-resolution processing is shown when printing is performed while transporting at twice the transport speed of the standard printing mode in high-speed printing mode. The circles in the figure represent the planned ink ejection positions on the pixel matrix set in the image data. In the image data shown in Figure 1, the pixel positions in the pixel matrix are specified in an xy coordinate system where the y direction is the transport direction of the recording medium and the x direction is perpendicular to the transport direction.
[0007] The low-resolution processing in high-speed printing mode typically involves removing some of the pixel rows aligned perpendicular to the transport direction from the original image of the print target. In this low-resolution processing, for example, in high-speed printing mode, the print process is performed while transporting the print target at twice the transport speed of standard printing mode. In this case, as shown in Figure 1, the original image data of the print target (left image in Figure 1) is converted into image data with the pixel data in columns y2, y4, y6, and y8 removed (right image in Figure 1), and this converted image data is used to determine the ink ejection positions. Because this low-resolution processing halves the number of planned ink ejection positions in the transport direction on the recording medium, the pixel size in the transport direction of the pixel data is expanded, making it possible to perform printing at an increased transport speed of the recording medium without increasing the ejection speed from the inkjet head (i.e., without changing the ink ejection cycle).
[0008] However, in high-speed printing mode, the ink ejection position is halved, so increasing the transport speed widens the dot spacing in the transport direction, and the amount of ink applied per unit area also decreases, resulting in a decrease in image quality. For example, if the transport speed is doubled in high-speed printing mode without changing the ink ejection cycle, the dot spacing in the transport direction becomes twice as wide as in standard printing mode, and the amount of ink applied is halved, resulting in a significant decrease in the density of the image formed on the recording medium. As a result, this leads to a decrease in the image quality of the image formed on the recording medium (for example, a decrease in the color gamut).
[0009] This disclosure has been made in view of the above-mentioned problems, and aims to provide an image forming apparatus, a control method for the image forming apparatus, and a control program for the image forming apparatus that can achieve high-speed printing while minimizing the deterioration of image quality. [Means for solving the problem]
[0010] The main disclosure that addresses the aforementioned issues is: An operation mode setting unit accepts the selection of a print mode when executing a print job, from a standard print mode and a high-speed print mode in which printing is performed with a recording medium transport speed higher than that of the standard print mode. In the aforementioned high-speed printing mode, an image data conversion unit converts the image data to be printed into low-resolution image data along the transport direction, In the high-speed printing mode, an ink ejection amount determination unit determines the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium based on the converted image data, so as to increase the amount of ink ejected corresponding to the density of the pixel data of the image data in accordance with the transport speed. This is an inkjet-type image forming apparatus equipped with [a specific feature / feature].
[0011] Also, in other situations, A process for accepting the selection of a print mode when executing a print job, from a standard print mode and a high-speed print mode in which printing is performed with a recording medium transport speed higher than that of the standard print mode, In the aforementioned high-speed printing mode, the process involves converting the image data to be printed into low-resolution image data along the transport direction, In the high-speed printing mode, the process of determining the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium, based on the converted image data, increases the amount of ink ejected corresponding to the density of the pixel data of the image data in accordance with the transport speed. This is a control method for an inkjet-type image forming apparatus having [a specific feature / feature].
[0012] Also, in other situations, A process for accepting the selection of a print mode when executing a print job, from a standard print mode and a high-speed print mode in which printing is performed with a recording medium transport speed higher than that of the standard print mode, In the aforementioned high-speed printing mode, the process involves converting the image data to be printed into low-resolution image data along the transport direction, In the high-speed printing mode, the process of determining the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium, based on the converted image data, increases the amount of ink ejected corresponding to the density of the pixel data of the image data in accordance with the transport speed. This is a control program for an inkjet-type image forming apparatus. [Effects of the Invention]
[0013] The image forming apparatus described herein makes it possible to achieve high-speed printing while minimizing the deterioration of image quality. [Brief explanation of the drawing]
[0014] [Figure 1] This figure shows an example of the low-resolution processing in high-speed printing mode. [Figure 2]Diagram showing the schematic configuration of an image forming apparatus according to an embodiment of the present invention [Figure 3] Schematic diagram showing the configuration of a head unit according to an embodiment of the present invention [Figure 4] Block diagram showing the main functional configuration of an image forming apparatus according to an embodiment of the present invention [Figure 5] Diagram showing the functional blocks of a control unit according to an embodiment of the present invention [Figure 6] Diagram showing an example of a control map referred to when an ink ejection amount determination unit according to an embodiment of the present invention determines the ink ejection amount ejected from an inkjet head to each pixel position of a recording medium [Figure 7] Diagram showing an example of a control map referred to when a UV light adjustment unit according to an embodiment of the present invention determines the irradiation intensity of UV light irradiated onto a recording medium [Figure 8] Diagram showing an example of a flow of a print job data generation process of a control unit according to an embodiment of the present invention [Figure 9] Diagram showing the results of a verification experiment regarding the color gamut achievable in high-speed printing mode in an image forming apparatus according to an embodiment of the present invention [Figure 10] Diagram showing other results of a verification experiment regarding the color gamut achievable in high-speed printing mode in an image forming apparatus according to an embodiment of the present invention [Figure 11] Diagram showing an example of a user interface for receiving a setting of a density standard of an image formed on a recording medium in high-speed printing mode [Figure 12] Diagram showing another example of a user interface for receiving a setting of a density standard of an image formed on a recording medium in high-speed printing mode [Figure 13] Diagram showing yet another example of a user interface for receiving a setting of a density standard of an image formed on a recording medium in high-speed printing mode
Embodiments for Carrying Out the Invention
[0015] Preferred embodiments of this disclosure will be described in detail below with reference to the attached drawings. In this specification and the drawings, components having substantially the same function are denoted by the same reference numerals, and redundant descriptions will be omitted.
[0016] Figure 2 is a diagram showing the schematic configuration of an image forming apparatus 1 according to one embodiment of the present invention.
[0017] Image forming apparatus 1 is an inkjet-type image forming apparatus that records images on a recording medium P. Image forming apparatus 1 comprises a paper feeding unit 10, an image forming unit 20, a paper discharge unit 30, and a control unit 40.
[0018] The image forming apparatus 1, under the control of the control unit 40, transports the recording medium P stored in the paper feeding unit 10 to the image forming unit 20, where the image forming unit 20 ejects ink onto the recording medium P to record an image, and then transports the recording medium P with the recorded image to the paper discharge unit 30.
[0019] In detail, the image forming apparatus 1 records a color image on the recording medium P by overlaying and outputting four colors—yellow (Y), magenta (M), cyan (C), and black (K)—at predetermined recording gradations. The image forming apparatus 1 is configured to store a color image on the recording medium P in the high-speed printing mode described above. In the following, the ink colors yellow (Y), magenta (M), cyan (C), and black (K) will be abbreviated as Y, M, C, and K, respectively.
[0020] As the recording medium P, various media capable of fixing ink deposited on its surface can be used, including paper such as plain paper or coated paper, as well as fabric or sheet-like resin.
[0021] The paper feeding unit 10 includes a paper feeding tray 11 for storing the recording medium P, and a media supply unit 12 for transporting and supplying the recording medium P from the paper feeding tray 11 to the image forming unit 20. The media supply unit 12 has a ring-shaped belt supported on its inside by two rollers, and the recording medium P is transported from the paper feeding tray 11 to the image forming unit 20 by rotating the rollers with the recording medium P placed on this belt.
[0022] The image forming unit 20 includes a transport unit 21, a transfer unit 22, a heating unit 23, a head unit 24, a fixing unit 25, a delivery unit 27, and the like.
[0023] The transport unit 21 holds the recording medium P placed on the transport surface of the cylindrical transport drum 211, and the transport drum 211 rotates around a rotation axis (cylindrical axis) extending in the T direction in Figure 2 (representing a direction perpendicular to the transport direction; the same applies hereinafter), thereby transporting the recording medium P on the transport drum 211 in the transport direction along the transport surface.
[0024] The transport drum 211 includes claws and an air intake (not shown) for holding the recording medium P on its transport surface. The recording medium P is held on the transport surface by its ends being pressed down by the claws and being drawn towards the transport surface by the air intake.
[0025] The transfer unit 22 is located between the media supply unit 12 and the transport unit 21 of the paper feeding unit 10. It holds one end of the recording medium P transported from the media supply unit 12 with the swing arm unit 221, picks it up, and transfers it to the transport unit 21 via the transfer drum 222.
[0026] The heating unit 23 is located between the position of the transfer drum 222 and the position of the head unit 24, and heats the recording medium P being transported by the transport unit 21 so that the recording medium P reaches a temperature within a predetermined temperature range. The heating unit 23 has, for example, an infrared heater, and energizes the infrared heater based on a control signal supplied from the control unit 40 to generate heat.
[0027] The head unit 24 records an image by ejecting ink onto the recording medium P from nozzle openings provided on the ink ejection surface facing the transport surface of the transport drum 211 at an appropriate timing corresponding to the rotation of the transport drum 211 in which the recording medium P is held.
[0028] The head unit 24 is arranged such that the ink ejection surface and the transport surface are separated by a predetermined distance. In the image forming apparatus 1 of this embodiment, four head units 24, each corresponding to one of the four ink colors Y, M, C, and K, are arranged at predetermined intervals from the upstream side in the transport direction of the recording medium P in the order of the colors Y, M, C, and K.
[0029] The head unit 24 is used in a fixed position when recording images, and records images in a single-pass manner by sequentially ejecting ink at predetermined intervals (transport direction intervals) at different positions in the transport direction in accordance with the transport of the recording medium P.
[0030] Figure 3 is a schematic diagram showing the configuration of the head unit 24 according to this embodiment. Figure 3 shows the surface of the head unit 24 that faces the outer circumferential surface of the transport drum 211.
[0031] Here, the head unit 24 comprises four inkjet heads 240 (corresponding to the "ink ejection section" of the present invention) attached to a mounting member 244. Each of the inkjet heads 240 is provided with multiple image forming elements, each having a pressure chamber (not shown) for storing ink, a piezoelectric element (not shown) provided on the wall surface of the pressure chamber, and a nozzle 243. When a drive signal is input to deform the piezoelectric element, the pressure chamber deforms due to the deformation of the piezoelectric element, changing the pressure inside the pressure chamber, and ink is ejected from the nozzle 243 that communicates with the pressure chamber.
[0032] The four inkjet heads 240 are arranged in a staggered pattern so that the arrangement range of the nozzle rows in the T direction is seamlessly connected. The arrangement range of the nozzles 243 included in the head unit 24 in the T direction covers the width in the T direction of the area on the recording medium P transported by the transport drum 211 where the image is formed, and the head unit 24 is used fixed to the rotation axis of the transport drum 211 when the image is formed. In other words, the head unit 24 constitutes a line head capable of ejecting ink over the image-forming width in the T direction relative to the recording medium P.
[0033] The inkjet head 240 is equipped with an ink heating unit (not shown) that heats the ink stored inside the inkjet head 240, and ejects the heated, sol-like ink. When this sol-like ink is ejected onto the recording medium P, the ink droplets land on the recording medium P, and then, due to natural cooling, the ink quickly turns into a gel and solidifies on the recording medium P.
[0034] Furthermore, the configuration of the head unit 24 is not limited to the above configuration, as long as multiple recording elements are provided at different positions in the T direction.
[0035] The fixing unit 25 has a UV light irradiation unit that is arranged over the width of the transport unit 21 in the T direction, and irradiates the recording medium P placed on the transport unit 21 with UV light such as ultraviolet light from the UV light irradiation unit to cure and fix the ink ejected onto the recording medium P. The UV light irradiation unit of the fixing unit 25 is positioned facing the transport surface in the transport direction from the position of the head unit 24 to the position of the transfer drum 271 of the delivery unit 27.
[0036] The delivery unit 27 includes a belt loop 272 having a ring-shaped belt supported on the inside by two rollers, and a cylindrical transfer drum 271 that transfers the recording medium P from the transport unit 21 to the belt loop 272. The recording medium P transferred from the transport unit 21 to the belt loop 272 by the transfer drum 271 is transported by the belt loop 272 and sent to the paper discharge unit 30.
[0037] The paper output unit 30 has a plate-shaped paper output tray 31 on which the recording medium P sent out from the image forming unit 20 by the delivery unit 27 is placed.
[0038] Figure 4 is a block diagram showing the main functional configuration of the image forming apparatus 1. The image forming apparatus 1 comprises a control unit 40, a head drive unit 50, a transport drive unit 60, an image processing unit 70, an input / output interface 80, an operation reception unit 90, and a display unit 100.
[0039] The control unit 40 includes a CPU 41 (Central Processing Unit), RAM 42 (Random Access Memory), ROM 43 (Read Only Memory), and storage unit 44, and comprehensively controls the overall operation of the image forming apparatus 1. The control unit 40 receives image data transmitted from an external device (e.g., a personal computer) connected to a communication network such as a LAN (Local Area Network) or WAN (Wide Area Network) via the input / output interface 80, and causes the head drive unit 50, transport drive unit 60, and image processing unit 70, etc., to perform operations to form an image on the recording medium P based on this image data (input image data).
[0040] The CPU 41 reads various control programs and setting data stored in the ROM 43, stores them in the RAM 42, and executes the programs to perform various calculations.
[0041] RAM42 provides the CPU41 with a working memory space and stores temporary data. RAM42 may also include non-volatile memory.
[0042] ROM43 stores various control programs and setting data executed by the CPU41. Alternatively, rewritable non-volatile memory such as EEPROM (Electrically Erasable Programmable Read Only Memory) or flash memory may be used instead of ROM43.
[0043] The storage unit 44 stores image data of the image to be printed, etc., input from an external device (not shown) via the input / output interface 80. For example, an HDD (Hard Disk Drive) may be used as the storage unit 44, and DRAM (Dynamic Random Access Memory) may also be used in combination.
[0044] The head drive unit 50, based on the control of the control unit 40, supplies a drive signal corresponding to the image data to the recording elements of the head unit 24 at an appropriate timing, thereby causing the nozzles of the head unit 24 to eject an amount of ink corresponding to the pixel value of the image data.
[0045] The transport drive unit 60, based on control signals supplied from the control unit 40, supplies a drive signal to the transport drum motor provided on the transport drum 211, causing the transport drum 211 to rotate at a predetermined speed and timing. The transport drive unit 60 also supplies drive signals to motors that operate the medium supply unit 12, the transfer unit 22, and the delivery unit 27, based on control signals supplied from the control unit 40, causing the recording medium P to be supplied to the transport unit 21 and discharged from the transport unit 21.
[0046] The image processing unit 70 performs predetermined image processing on the image data stored in the storage unit 44 and stores the obtained image data in the storage unit 44. This image processing includes correction processing, which corrects the image data by applying a correction table (not shown) to the image data, as well as color conversion processing, gradation correction processing, pseudo-halftone processing, and so on.
[0047] The input / output interface 80 is connected to the input / output interface of an external device (e.g., a personal computer) and mediates the transmission and reception of data between the control unit 40 and the external device. For example, the input / output interface 80 acquires print job data (image data to be printed and setting data related to image recording) from the external device based on the control of the control unit 40, and also transmits status information to the external device. The input / output interface 80 includes one or more input / output interfaces that support various communication protocols, such as a LAN card.
[0048] The operation reception unit 90 receives user input and outputs it to the control unit 40. The operation reception unit 90 is composed of, for example, a touch sensor, a push button switch, and a numeric keypad, which are superimposed on the display screen of the display unit 100.
[0049] The display unit 100 displays the status of the image forming apparatus 1, operation menus, and other information on the display screen in accordance with control signals from the control unit 40. The display unit 100 may also include LED lamps or other indicators to provide warnings such as errors.
[0050] [Regarding the generation process of print job data in high-speed printing mode] The following describes the process of generating print job data in high-speed printing mode performed by the image forming apparatus 1 according to this embodiment, with reference to Figures 5 to 10. This print job data generation function is provided, for example, by the control unit 40.
[0051] Figure 5 shows the functional blocks of the control unit 40 according to this embodiment. The control unit 40 has the functions of an operation mode setting unit 40a, an image data conversion unit 40b, an ink ejection amount determination unit 40c, and a UV light adjustment unit 40d.
[0052] The operation mode setting unit 40a accepts the selection of a printing mode when executing a print job from a standard printing mode and a high-speed printing mode in which printing is performed with the transport speed of the recording medium P increased above the standard speed. The high-speed printing mode, as described above, is a mode in which the transport speed of the recording medium P is increased and printing is performed at high speed by reducing the resolution of the image data to be printed along the transport direction, while maintaining the ink ejection cycle at the same or similar cycle as the standard printing mode.
[0053] Furthermore, since the "high-speed printing mode" reduces the resolution of the image to be formed compared to the "standard printing mode" and increases the transport speed of the recording medium P, it may also be called the "low-resolution mode."
[0054] The image data conversion unit 40b, in high-speed printing mode, converts the input image data to be printed into low-resolution image data along the transport direction.
[0055] Furthermore, the high-speed printing mode may be configured such that the transport speed is fixed at a predetermined multiple of the standard speed (for example, twice the standard speed), or it may be configured so that the transport speed can be changed by the user to twice, three times, four times, etc., the standard speed.
[0056] Specifically, the image data conversion unit 40b performs the same processing as the deresolution processing described with reference to Figure 1. For example, the image data conversion unit 40b converts the original image specified as input image data into an image in which some of the pixel rows arranged in a direction orthogonal to the transport direction (for example, rows y2, y4, y6, and y8 in Figure 1) are thinned out. Here, the degree to which the image data conversion unit 40b deresolutions the input image data depends on the transport speed. For example, if the transport speed in high-speed printing mode is twice that of standard printing mode, the image data conversion unit 40b deresolutions the input image data so that the number of pixels in the transport direction of the converted image data is half the number of pixels in the transport direction of the original image data.
[0057] However, instead of simply downsampling pixel data, methods such as averaging the pixel values of adjacent pixels may be used for such resolution reduction. Furthermore, to avoid the occurrence of moiré and jagged edges, smoothing along the transport direction of the input image data (smoothing every 2 pixels if the resolution is halved) or low-pass filtering may be performed before simply downsampling pixel data. Additionally, methods such as bilinear or bicubic methods, which determine the pixel values after reduction by interpolation calculations based on the pixel values of surrounding pixels, may be used.
[0058] Furthermore, due to the low-resolution processing performed by the image data conversion unit 40b, each pixel in the image represented by the two-dimensional pixel matrix becomes a pixel with an expanded pixel size in the transport direction. For example, when the transport speed is twice the standard speed, as shown in Figure 1, even-numbered address pixel sequences arranged in a direction orthogonal to the transport direction are decimated from the input image data, and each pixel is expanded to twice the pixel size in the transport direction.
[0059] The ink ejection amount determination unit 40c determines the amount of ink to be ejected from the inkjet head 240 to each pixel position of the recording medium P, based on the converted image data, so as to increase the amount of ink ejected corresponding to the density of the pixel data of the image data in accordance with the transport speed in high-speed printing mode. The ink ejection amount determination unit 40c determines the amount of ink to be ejected from the inkjet head 240 to each pixel position of the recording medium P so that the higher the transport speed in high-speed printing mode, the larger the amount of ink ejected for one pixel area of pixel data of the same density.
[0060] Figure 6 shows an example of a control map (in this case, a control map for the Y color) that the ink ejection amount determination unit 40c refers to when determining the amount of ink to be ejected from the inkjet head 240 to each pixel position on the recording medium P. In Figure 6, the horizontal axis represents the transport speed in high-speed printing mode, and the vertical axis represents the density of the pixel data to be printed (pixel data at any pixel position in the image data).
[0061] Such a control map is set up so that, for example, the amount of ink to be ejected at each pixel position is derived from the transport speed in high-speed printing mode and the density of the Y color specified in the pixel data of the image data after it has been subjected to low-resolution processing by the image data conversion unit 40b. Such a control map is set up so that, for example as shown in Figure 6, when the density of the Y color specified in the pixel data is the same, the amount of ink ejected at each pixel position increases as the transport speed in high-speed printing mode increases. Furthermore, such a control map is set up so that, for example, the amount of ink ejected is increased according to the magnitude of the transport speed in high-speed printing mode, based on the density of the pixel data of the image data and the amount of ink ejected in standard printing mode.
[0062] Figure 6 shows the ink ejection volume control map for the Y color, but such ink ejection volume control maps are prepared in advance for each of the four colors, YMCK, etc.
[0063] As mentioned above, in high-speed printing mode, the density of ink ejection points on the recording medium P decreases due to the reduction in image resolution. Therefore, if image formation is performed in high-speed printing mode with the same ink ejection amount as in standard printing mode, the density of the image formed on the recording medium P will decrease, resulting in a deterioration of image quality.
[0064] From this perspective, the ink ejection amount determination unit 40c, for example, when the transport speed in high-speed printing mode is twice the transport speed in standard printing mode, sets the ink ejection amount in high-speed printing mode to twice the ink ejection amount in standard printing mode for one pixel area of pixel data of the same density. That is, the ink ejection amount determination unit 40c determines the amount of ink of each ink color to be ejected from the inkjet head 240 to each pixel position of the recording medium P in a ratio corresponding to the ratio of the transport speed in high-speed printing mode to the standard speed, such that the amount of ink ejected for one pixel area of pixel data of the same density is greater than the amount of ink ejected in standard printing mode. As a result, the amount of ink per unit area on the recording medium P (representing the amount of ink placed on the recording medium P; the same applies hereinafter) can be made approximately the same in high-speed printing mode and standard printing mode. As a result, the density of the image formed on the recording medium P in high-speed printing mode can be approximated to that in standard printing mode, and the image quality can be improved.
[0065] However, the ink ejection amount determination unit 40c does not necessarily need to determine the amount of ink to be ejected at each pixel position on the recording medium P so that the amount of ink per unit area on the recording medium P is the same in high-speed printing mode and in standard printing mode. The ink ejection amount determination unit 40c may, for example, determine the amount of ink per unit area on the recording medium P in high-speed printing mode to be lower than the amount of ink per unit area on the recording medium P in standard printing mode, depending on the user's needs, such as when it is desirable to save ink even if it means tolerating some degradation in image quality (see Modification Example 1 described later).
[0066] Furthermore, the maximum allowable total amount of ink ejected for each pixel position of the four colors (hereinafter abbreviated as "maximum allowable total amount of ink ejected"), which is referenced in the ink ejection amount determination unit 40c when determining the amount of ink to be ejected for each pixel position of the recording medium P, is set to a larger value in high-speed printing mode than in standard printing mode. As a result, in high-speed printing mode, the ink ejection amount determination unit 40c is able to determine a larger value for the amount of ink ejected from the inkjet head 240 to each pixel position of the recording medium P than in standard printing mode.
[0067] The maximum permissible total amount of ink ejected for all four colors is set to a value corresponding to the transport speed in high-speed printing mode. Generally, due to constraints such as the ink absorption capacity of the recording medium P and the curing performance of the ink itself, the total amount of ink of each color placed on each pixel area of the recording medium P is limited, and the maximum permissible total amount of ink ejected for all four colors is set in accordance with this limit. For example, each nozzle 243 of the inkjet head 240 has a maximum total YMCK ink ejection capacity of 40 [cc / m³]. 2 ](10 [cc / m²] for each ink color 2 Even if it has a discharge capacity of ] cc / m³, the total ink discharge volume is 16 cc / m³. 2 Restrict to ].
[0068] However, in high-speed printing mode, the resolution reduction process makes the pixel size along the transport direction larger (for example, twice as large) than the pixel size in standard printing mode. As a result, constraints such as ink curing performance are also relaxed compared to standard printing mode. In other words, in this case, the maximum allowable total amount of ink ejected for all four colors in high-speed printing mode can be set to twice the maximum allowable total amount of ink ejected for all four colors in standard printing mode. This is because, if the integrated amount of UV light irradiated onto the recording medium P is the same as in standard printing mode, the allowable amount of ink per unit area on the recording medium P required to cure the ink can be set to be the same in both high-speed and standard printing modes.
[0069] There are no particular restrictions on the ratio of each color in the maximum allowable total ink ejection amount for the four colors. For example, if the ratio of each color in the maximum allowable total ink ejection amount in standard printing mode is K / C / M / Y = 10 / 2 / 2 / 2, then in high-speed printing mode, K / C / M / Y may be 10 / 2 / 2 / 2, 4 / 4 / 4 / 4, or 1 / 5 / 5 / 5. Note that the ratio of each color in the maximum allowable total ink ejection amount corresponds to the ratio of each color at each brightness value in a grayscale image.
[0070] The UV light adjustment unit 10d controls the operation of the fixing unit 25 to adjust the irradiation state of UV light for ink curing on the recording medium P (i.e., the UV light irradiation intensity and UV light irradiation time). Here, in high-speed printing mode, the UV light adjustment unit 10d adjusts the UV light irradiation state, taking into account the transport speed in high-speed printing mode, so that the integrated amount of UV light irradiated per unit area of the recording medium P becomes a reference value (representing the integrated amount of light required to fix the ink to the recording medium P; the same applies hereinafter).
[0071] The degree of curing (i.e., fixation) of the ink ejected onto the recording medium P typically depends on the integrated amount of UV light irradiated onto the ink. From this perspective, the UV light adjustment unit 10d, for example, in high-speed printing mode, takes into account that the UV light irradiation time decreases as the transport speed of the recording medium P increases, and increases the UV light irradiation intensity compared to standard printing mode. For example, in standard printing mode, the UV light irradiation intensity is set to 2 mW / cm². 2 If this setting is used, then in high-speed printing mode, the power consumption will be 4 mW / cm². 2 The settings are configured to compensate for the reduced irradiation time due to the increased speed by adjusting the irradiation intensity. However, since the total amount of UV light is determined by the product of the UV light irradiation intensity and the UV light irradiation time (=irradiation time × irradiation intensity), the UV light adjustment unit 10d may adjust the UV light irradiation time instead of adjusting the UV light irradiation intensity, or in conjunction with it.
[0072] Figure 7 shows an example of a control map that the UV light adjustment unit 40d refers to when determining the irradiation intensity of UV light irradiated onto the recording medium P. In Figure 7, the horizontal axis represents the transport speed in high-speed printing mode, and the vertical axis represents the irradiation intensity of UV light.
[0073] The control map shown in Figure 7 illustrates a configuration in which the irradiation intensity of UV light irradiated onto the recording medium P increases as the transport speed in high-speed printing mode increases (i.e., as the maximum allowable total amount of ink ejected increases). This ensures that the integrated amount of UV light irradiated per unit area of the recording medium P reaches the reference value.
[0074] In the image forming apparatus 1 according to this embodiment, the processing by the ink ejection amount determination unit 40c makes it possible to make the amount of ink applied per unit area on the recording medium P substantially the same in both the standard printing mode and the high-speed printing mode when printing the same image data. In this case, the integrated amount of UV light required to cure the ink ejected onto the recording medium P is substantially the same in both the standard printing mode and the high-speed printing mode.
[0075] However, even if the UV light irradiation intensity is increased, increased speed may prevent sufficient UV light from reaching the primer layer of the ink placed on the recording medium P (the layer near the interface between the ink and the recording medium P), potentially resulting in poor adhesion. Therefore, it is preferable that the integrated light amount in high-speed printing mode is greater than or equal to the integrated light amount in standard printing mode. On the other hand, if the integrated light amount is too large, there is a concern that the surface of the ink layer may crack, or that wrinkles may form on the recording medium P due to the difference in thermal expansion between areas with and without ink.
[0076] From this viewpoint, it is preferable that the UV light adjustment unit 40d adjusts the UV light irradiation state to satisfy, for example, the following equation (1), thereby providing some margin in the integrated light amount in the high-speed printing mode. The integrated light amount per unit area on the recording medium P in the standard printing mode is, for example, 350 mJ / cm². 2 It is set to a certain degree. L1×1.0≦L2≦L1×1.5…Formula (1) (However, L1 represents the integrated amount of UV light irradiated to each pixel position on the recording medium P in standard printing mode, and L2 represents the integrated amount of UV light irradiated to each pixel position on the recording medium P in high-speed printing mode. L1 and L2 represent the integrated amount of UV light when the amount of ink applied per unit area on the recording medium P is the same.)
[0077] Figure 8 shows an example of the flow of the print job data generation process of the control unit 40 according to this embodiment.
[0078] In step S101, the control unit 40 receives a print job execution command from the user. This section describes the case where a command to print in high-speed printing mode is set during the print job. In step S102, the control unit 40 performs a low-resolution processing on the input image data (converting it to image data corresponding to the transport speed in high-speed printing mode). In step S103, the control unit 40 determines the amount of ink to be ejected at each pixel position of the recording medium P to be ejected from the inkjet head 240, based on the pixel data of the image data after the low-resolution processing and the transport speed in high-speed printing mode. In step S104, the control unit 40 determines the UV irradiation intensity so that the amount of UV light irradiated per unit area of the recording medium P becomes a reference value.
[0079] In the flow described above, the control unit 40 according to this embodiment generates print job data that determines the amount of ink to be ejected from the inkjet head 240 to each pixel position on the recording medium P, and the irradiation state of UV light to be irradiated onto the recording medium P. Then, the control unit 40 controls the image forming unit 20 using this print job data and performs printing on the recording medium P.
[0080] [Verification experiment] Figure 9 shows the results of a verification experiment regarding the color gamut that can be achieved in the high-speed printing mode in the image forming apparatus 1 according to this embodiment. The results of this verification experiment were obtained from images read by an in-line sensor (not shown) installed downstream of the fuser unit 25 when printing was actually performed on the recording medium P in high-speed printing mode while changing the parameters related to the amount of ink ejected.
[0081] Figure 9A shows the color gamut at L=20 in the Lab color space, and Figure 9B shows the color gamut at L=25 in the Lab color space. In the ab plane of the Lab color space, the angle in polar coordinates corresponds to hue, the distance in polar coordinates represents saturation, and the area enclosed within the ab plane represents the color gamut that the image forming apparatus 1 can represent.
[0082] Each region shown in Figures 9A and 9B represents a color gamut in the following manner. Area B: Color gamut in high-speed printing mode with transport speed doubled to standard speed (Assuming the ink ejection volume is 1.00 times that of the standard printing mode) Region C: Color gamut in high-speed printing mode with transport speed doubled to standard speed (Assuming the ink ejection volume is 1.25 times that of the standard printing mode) Region M: Color gamut in high-speed printing mode with transport speed doubled to standard speed (Assuming the ink ejection volume is 1.50 times that of the standard printing mode) Region R: Color gamut in high-speed printing mode with transport speed doubled to standard speed (Assuming the ink ejection volume is 1.75 times that of the standard printing mode) Region Y: Color gamut in high-speed printing mode with transport speed doubled to standard speed (Assuming the ink ejection volume is 2.00 times that of the standard printing mode) Region V: Color gamut in standard print mode Area W: Reference color gamut In this context, "ink ejection volume" refers to the amount of ink ejected into a single pixel area. Furthermore, "reference color gamut" refers to the target color range for achieving high-quality images.
[0083] As can be seen from Figures 9A and 9B, in high-speed printing mode, if the amount of ink ejected to a single pixel area is the same as in standard printing mode, a sufficient color gamut cannot be secured. However, as the amount of ink ejected to a single pixel area is increased, the expressible color gamut expands. Furthermore, when the amount of ink ejected to a single pixel area is increased to twice the amount of ink ejected in standard printing mode, it is possible to secure a color gamut that can be expressed up to the standard color gamut (the target color gamut when high-quality images are desired), even in high-speed printing mode.
[0084] Figure 10 shows other results of verification experiments regarding the color gamut that can be achieved in high-speed printing mode with the image forming apparatus 1 according to this embodiment. In Figure 10, the color gamut that can be achieved in high-speed printing mode and the ink adhesion in those cases are shown, based on the transport speed, maximum ink application amount (i.e., the maximum allowable total amount of ink ejected), integrated UV light amount, UV light irradiation intensity, and UV light irradiation path length in standard printing mode, when these values are changed.
[0085] In Figure 10, Sample 1 represents a sample printed in standard printing mode, while Samples 2-12 represent samples printed in high-speed printing mode. In this verification experiment, "color gamut" is expressed as a value when the volume of the gamut in standard printing mode (the volume of the three-dimensional region enclosed in the Lab color space) is set to 100. "Adhesion" is expressed as a result evaluated using the cross-cut method specified in the JIS standard, where "0" indicates good adhesion and "1" indicates poor adhesion (i.e., ink peeling).
[0086] As can be seen from Figure 10, in high-speed printing mode, if the transport speed is increased and the maximum ink application amount is not set to a value corresponding to that transport speed, the expressible color gamut will be significantly reduced. On the other hand, if the maximum ink application amount is increased, the UV light irradiation intensity must be increased accordingly, or the UV light irradiation pass length must be lengthened, otherwise problems with ink adhesion will occur.
[0087] In other words, in order to form high-quality images in high-speed printing mode, it is important to increase the maximum ink application amount compared to standard printing mode, depending on the transport speed, and to increase the UV light irradiation intensity compared to standard printing mode or to increase the UV light irradiation path length compared to standard printing mode so that the integrated amount of UV light reaches the reference value.
[0088] [effect] As described above, the image forming apparatus 1 according to this embodiment is An operation mode setting unit 40a accepts the selection of a print mode when executing a print job from a standard print mode and a high-speed print mode in which printing is performed with the transport speed of the recording medium P increased compared to the standard print mode, In high-speed printing mode, an image data conversion unit 40b converts the image data to be printed into low-resolution image data along the transport direction, In high-speed printing mode, the ink ejection amount determination unit 40c determines the amount of ink to be ejected from the inkjet head 240 to each pixel position of the recording medium P based on the converted image data, so as to increase the amount of ink ejected corresponding to the density of the pixel data of the image data in accordance with the transport speed. It is equipped with.
[0089] According to the image forming apparatus 1 of this embodiment, when the image data resolution is reduced in high-speed printing mode, it is possible to suppress the situation in which the ink ejection position on the recording medium P becomes less dense and the image quality deteriorates as a result.
[0090] In other words, this increases the amount of ink ejected to each pixel position of the recording medium P during high-speed printing compared to the standard printing mode, thereby making the density of the image formed on the recording medium P substantially the same as that of the standard printing mode, and thereby reducing the degree of image quality degradation. The image forming apparatus 1 according to this embodiment is particularly useful in that it can suppress the situation in which the color gamut is significantly reduced during high-speed printing.
[0091] (Variation 1) In the above embodiment, the UV light adjustment unit 10d was shown to adjust the integrated amount of UV light by controlling the irradiation intensity of UV light. However, the UV light adjustment unit 10d may also adjust the integrated amount of UV light by controlling the irradiation path length of UV light.
[0092] The total amount of UV light is determined by the product of the UV light irradiation intensity and the UV light irradiation time (= irradiation time × irradiation intensity). From this perspective, in this modified example, the UV light adjustment unit 10d adjusts the UV light irradiation time by controlling the UV light irradiation path length, thereby ensuring that the total amount of UV light irradiated per unit area of the recording medium P becomes a reference value (the total amount of light required to fix the ink to the recording medium P).
[0093] One method for adjusting the UV light irradiation path length is to provide multiple transport paths for recording media P in the fixing unit 25 of the image forming apparatus 1, and switch between these transport paths depending on whether it is in standard printing mode or high-speed printing mode. In this case, for example, if the irradiation path length in standard printing mode is 20 cm, the irradiation path length in double-speed high-speed printing mode can be set to 40 cm, and the reduction in irradiation time due to the increased speed can be compensated for by increasing the length of the irradiation area.
[0094] (Modification 2) The image forming apparatus 1 according to this modified example differs from the image forming apparatus 1 according to the above embodiment in that the high-speed printing mode is configured to vary the density standard of the image formed on the recording medium P based on user input.
[0095] In the above embodiment, as an example of a high-speed printing mode, the ink ejection amount determination unit 40c automatically determines the ink ejection amount at each pixel position of the recording medium P so that the amount of ink per unit area on the recording medium P (i.e., the density standard of the image formed on the recording medium P) is substantially the same in high-speed printing mode and in standard printing mode. According to this embodiment, it is possible to maintain a constant density of the image formed on the recording medium P and to maintain a constant image quality.
[0096] However, some users may prefer to keep the image density low during high-speed printing mode, for reasons such as saving ink consumption. From this perspective, the image forming apparatus 1 according to this modified example allows for high-speed printing mode based on a density standard set by user input.
[0097] Specifically, the operation mode setting unit 40a in this modified example is configured to accept a high-speed printing mode based on density set by user input.
[0098] Furthermore, the ink ejection amount determination unit 40c in this modified version determines the amount of ink to be ejected at each pixel position of the recording medium P so that the amount of ink ejected corresponds to the density standard set by the user's input operation. For example, when the transport speed in high-speed printing mode is set to twice the transport speed in standard printing mode, the ink ejection amount determination unit 40c allows the user to select from four modes for a single pixel area of pixel data of the same density: one mode where the ink ejection amount in high-speed printing mode is twice the ink ejection amount in standard printing mode; one mode where it is 1.00 times the ink ejection amount in standard printing mode; one mode where it is 1.25 times the ink ejection amount in standard printing mode; and one mode where it is 1.50 times the ink ejection amount in standard printing mode.
[0099] Figure 11 shows an example of a user interface for receiving the setting of the density standard for an image formed on the recording medium P in high-speed printing mode. In Figure 11, icons R11, R12, R13, and R14 are icons for selecting the density standard for an image in high-speed printing mode, and are images that the operation mode setting unit 40a displays on the display unit 100 when it receives a print job related to high-speed printing mode.
[0100] Figure 12 shows another example of a user interface for accepting the setting of the density reference for an image formed on the recording medium P in high-speed printing mode. The user interface shown in Figure 12 displays an operation lever image R22 on a bar image R21 that extends vertically. The vertical position on the bar image R21 corresponds to the image density reference, with the density reference decreasing from darker values to lighter values from top to bottom. The operation lever image R22 is an operation element that can be moved vertically on the bar image R21. When the operation lever image R22 is moved on the bar image R21, the image density reference corresponding to the position of the operation lever image R22 is selected.
[0101] Figure 13 shows yet another example of a user interface for accepting the setting of the density standard for an image formed on the recording medium P in high-speed printing mode. The user interface shown in Figure 13 is a checkbox image R31 that displays the image density standard in a selectable format. The user can set the density standard for the image formed on the recording medium P by selecting one of the multiple (in this case, four) boxes displayed in the checkbox image R31.
[0102] As described above, the image forming apparatus 1 according to this modified example is useful in that, in high-speed printing mode, the user can change the setting of the density standard for the image formed on the recording medium P by input operation as needed, thereby saving ink consumption and other benefits.
[0103] (Variation 3) The image forming apparatus 1 according to this modified example differs from the image forming apparatus 1 according to the above embodiment in that the high-speed printing mode is configured to allow the transport speed to be varied by user input.
[0104] As described above, in high-speed printing mode, increasing the transport speed necessitates lowering the resolution of the image data, making some degree of image quality degradation unavoidable. However, with the image forming apparatus 1 according to this disclosure, even when printing in high-speed printing mode, the degree of image quality degradation (reduction in color gamut and density) can be kept to a minimum.
[0105] From this perspective, the image forming apparatus 1 according to this modified example allows the user to perform printing in a high-speed printing mode with a desired transport speed, taking into account the user's requirements regarding image quality and printing time for the image data to be printed.
[0106] Specifically, the operation mode setting unit 40a in this modified example is configured to accept a high-speed printing mode with a transport speed set by user input.
[0107] Furthermore, the ink ejection amount determination unit 40c in this modified example determines the amount of ink to be ejected at each pixel position of the recording medium P so that the amount of ink ejected corresponds to the transport speed set by the user's input operation. For example, if the transport speed in high-speed printing mode is set to twice the transport speed in standard printing mode, the ink ejection amount in high-speed printing mode for one pixel area of pixel data of the same density is set to twice the ink ejection amount in standard printing mode. Also, for example, if the transport speed in high-speed printing mode is set to 1.5 times the transport speed in standard printing mode, the ink ejection amount determination unit 40c determines the ink ejection amount in high-speed printing mode for one pixel area of pixel data of the same density is set to 1.5 times the ink ejection amount in standard printing mode.
[0108] Furthermore, the user interface for setting the transport speed through input operations is arbitrary and may, for example, utilize icons, operation knobs, or checkboxes, similar to those shown in Figures 11, 12, and 13 above.
[0109] As described above, the image forming apparatus 1 according to this modified example is useful in that, when in high-speed printing mode, the user can change the transport speed in high-speed printing mode by input operation according to the usage scene, thereby saving ink consumption, etc.
[0110] Although specific examples of the present invention have been described in detail above, these are merely illustrative and do not limit the scope of the claims. The technologies described in the claims include various modifications and changes to the specific examples illustrated above. [Explanation of Symbols]
[0111] 1. Image forming apparatus 10 Paper feed section 11 Paper feed tray 12 Media supply section 20 Image forming unit 21 Conveying section 22 Transfer Unit 23 Heating section 24 Head Units 25 Fixing section 27 Delivery Department 30 Paper output section 31 Paper output tray 40 Control Unit 40a Operating mode setting section 40b Image Data Conversion Unit 40c Ink ejection volume determination unit 40d UV light adjustment section 50 Head drive unit 60 Conveyor drive unit 70 Image Processing Unit 80 Input / Output Interfaces 90 Operation reception unit 100 Display
Claims
1. An operation mode setting unit accepts the selection of a print mode when executing a print job, from a standard print mode and a high-speed print mode in which printing is performed with a recording medium transport speed higher than that of the standard print mode. In the high-speed printing mode, an image data conversion unit converts the image data to be printed into image data with reduced resolution along the transport direction to a degree corresponding to the transport speed, based on the transport speed. In the high-speed printing mode, an ink ejection amount determination unit determines the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium, based on the converted image data, so as to increase the amount of ink ejected corresponding to the density of the pixel data of the image data in accordance with the transport speed. A UV light adjustment unit that adjusts the irradiation state of UV light for ink curing on the recording medium, Equipped with, The ink ejection amount determination unit determines the amount of ink to be ejected from the inkjet head to each pixel position on the recording medium such that the amount of ink applied per unit area on the recording medium when printing the image data to be printed is substantially the same in the high-speed printing mode and the standard printing mode. The UV light adjustment unit adjusts the irradiation state of the UV light to satisfy the following formula (1) based on the transport speed and the amount of ink ejected to each pixel position during the high-speed printing mode. An inkjet-type image forming apparatus. L1×1.0≦L2≦L1×1.5…Formula (1) (However, L1 represents the integrated amount of UV light irradiated to each pixel position on the recording medium in standard printing mode, and L2 represents the integrated amount of UV light irradiated to each pixel position on the recording medium in high-speed printing mode. L1 and L2 represent the integrated amount of UV light when the amount of ink applied per unit area on the recording medium is the same.)
2. The ink ejection amount determination unit determines the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium such that the amount of ink ejected for one pixel area of the pixel data of the same density increases as the transport speed increases. The image forming apparatus according to claim 1.
3. The ink ejection amount determination unit determines the amount of ink of each ink color to be ejected from the inkjet head to each pixel position of the recording medium, such that the amount of ink ejected to one pixel area of the pixel data of the same density is greater than the amount of ink ejected in the standard printing mode, at a ratio corresponding to the multiplier of the transport speed to the standard speed. The image forming apparatus according to claim 2.
4. The maximum permissible amount of ink ejected from the inkjet head to each pixel position of the recording medium during the high-speed printing mode is set to be greater than the maximum permissible amount of ink ejected from the inkjet head to each pixel position of the recording medium during the standard printing mode. The image forming apparatus according to claim 1.
5. The irradiation state of the UV light that the UV light adjustment unit adjusts is the irradiation intensity of the UV light. The image forming apparatus according to claim 1.
6. The irradiation state of the UV light that the UV light adjustment unit adjusts is the irradiation path length of the UV light. The image forming apparatus according to claim 1.
7. The aforementioned high-speed printing mode is configured to allow the transport speed to be varied by user input. The image forming apparatus according to claim 1.
8. The high-speed printing mode is configured to vary the density standard of the image formed on the recording medium based on user input. The image forming apparatus according to claim 1.
9. A first process that accepts the selection of a print mode when executing a print job from a standard print mode and a high-speed print mode in which printing is performed with the transport speed of the recording medium increased compared to that of the standard print mode, In the high-speed printing mode, a second process is performed to convert the image data to be printed into image data with reduced resolution along the transport direction to a degree corresponding to the transport speed, based on the transport speed. In the high-speed printing mode, a third process is performed to determine the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium, based on the converted image data, such that the amount of ink ejected corresponding to the density of the pixel data of the image data is increased in accordance with the transport speed. A fourth process for adjusting the irradiation state of UV light for ink curing on the recording medium, It has, In the third process, the amount of ink to be ejected from the inkjet head to each pixel position on the recording medium is determined such that the amount of ink applied per unit area on the recording medium when the image data to be printed is substantially the same in the high-speed printing mode and the standard printing mode. In the fourth process, during the high-speed printing mode, the irradiation state of the UV light is adjusted to satisfy the following formula (1) based on the transport speed and the amount of ink ejected to each pixel position. A control method for an inkjet-type image forming apparatus. L1×1.0≦L2≦L1×1.5…Formula (1) (However, L1 represents the integrated amount of UV light irradiated to each pixel position on the recording medium in standard printing mode, and L2 represents the integrated amount of UV light irradiated to each pixel position on the recording medium in high-speed printing mode. L1 and L2 represent the integrated amount of UV light when the amount of ink applied per unit area on the recording medium is the same.)
10. A first process that accepts the selection of a print mode when executing a print job from a standard print mode and a high-speed print mode in which printing is performed with the transport speed of the recording medium increased compared to that of the standard print mode, In the high-speed printing mode, a second process is performed to convert the image data to be printed into image data with reduced resolution along the transport direction to a degree corresponding to the transport speed, based on the transport speed. In the high-speed printing mode, a third process is performed to determine the amount of ink to be ejected from the inkjet head to each pixel position of the recording medium, based on the converted image data, such that the amount of ink ejected corresponding to the density of the pixel data of the image data is increased in accordance with the transport speed. A fourth process for adjusting the irradiation state of UV light for ink curing on the recording medium, It has, In the third process, the amount of ink to be ejected from the inkjet head to each pixel position on the recording medium is determined such that the amount of ink applied per unit area on the recording medium when the image data to be printed is substantially the same in the high-speed printing mode and the standard printing mode. In the fourth process, during the high-speed printing mode, the irradiation state of the UV light is adjusted to satisfy the following formula (1) based on the transport speed and the amount of ink ejected to each pixel position. Control program for an inkjet-type image forming apparatus. L1×1.0≦L2≦L1×1.5…Formula (1) (However, L1 represents the integrated amount of UV light irradiated to each pixel position on the recording medium in standard printing mode, and L2 represents the integrated amount of UV light irradiated to each pixel position on the recording medium in high-speed printing mode. L1 and L2 represent the integrated amount of UV light when the amount of ink applied per unit area on the recording medium is the same.)
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