1. Field of the Invention
The present invention relates to an ink jet printing apparatus that prints images by using an elongate print head comprising a plurality of printing element substrates, each having arrays of a plurality of ink ejection printing elements. More particularly it relates to a printing method to prevent seam stripes and density unevenness caused by print areas of the plurality of printing element substrates overlapping one another. It also relates to a printing method to prevent seam stripes and density unevenness that would otherwise occur at boundaries between print areas of a plurality of print scans.
2. Description of the Related Art
Ink jet printing apparatus in general are classified largely into two types—serial type and full line type. The serial type ink jet printing apparatus forms an image by repetitively alternating a printing main scan that moves the print head in a main scan direction while ejecting ink and a sub-scan that conveyes a print medium a distance corresponding to a printing width in a direction crossing the main scan direction.
The full line type ink jet printing apparatus on the other hand uses an elongate print head the length of which corresponds to a print width of a print medium. An image is formed on the print medium by ejecting ink from the individual printing elements of the print head at a predetermined frequency while at the same time conveying the print medium in a direction crossing the direction of arrays of the printing elements at a speed corresponding to the predetermined frequency. Such a full line type printing apparatus can output an image faster than the serial type.
Since an elongate print head is constructed of a large number of ink droplet ejection printing elements arranged in line at high density, it is extremely difficult to ensure that not a single printing element will result in an ejection failure, unavoidably leading to a reduced yield in a manufacturing process. Under this circumstance, it is generally considered effective in recent years to realize an elongate print head by fabricating a number of printing element substrates which has relative small number of printing element and joining them together. An elongate print head of this construction is referred to as a “joining head” in this specification. The joining head, while it can be effectively used on the full line type printing apparatus, can also be applied to the serial type printing apparatus. With the joining head, the serial type printing apparatus can complete an image with fewer printing main scans, improving the printing speed.
Such a “joining head” has a problem that when a plurality of printing element substrates, each having a plurality of ejection ports arrayed therein at a predetermined pitch, are put in place, it is unavoidable that some placement errors occur among the substrates. Such substrate placement errors translate into inclinations among individual printing element substrates and variations in distance between the printing element substrates and a print medium, causing image impairments, such as black stripes and white stripes, to appear at merged portions of images formed by different scans.
To deal with this problem, Japanese Patent Laid-Open No. 2003-305853 for example discloses a method for arranging joints of printing element substrates with high precision and a method for reducing deviations in alignment pitch of ejection ports by an alignment device to physically improve manufacturing precision.
Japanese Patent Laid-Open No. H05-57965 discloses a construction in which, as shown in
Another method has been proposed which involves differentiating ink volumes ejected from ejection ports at the jointing portion from ink volumes of other portions, in order to make unwanted stripes, that are likely to appear at the jointing portion, less noticeable. Further, in a construction that uses a plurality of ink colors, a method has been conceived which differentiates the positions of the overlapping portions among different colors so that positional errors of the jointing portion of different colors show at different positions.
In addition to the black or white stripes caused by the placement errors of the plurality of printing element substrates, the joining head has another problem of a density unevenness that is caused by a difference in ink ejection timing between the overlapping portions and other portions.
The problem of density unevenness will be explained in detail by referring to
In an image printed by the ink jet printing system in general, even if the same volumes of ink are used, a printed image density tends to be higher in an area applied with ink in a longer period of time than in an area applied with ink in a shorter period of time. In the example of
However, the conventional measures described above are taken to deal with black and white stripes caused by placement errors of the plurality of printing element substrates but not to deal with density variations caused by differences in printing time between overlapping portions and other portions. That is, in producing photographic images with such a high level of resolution as required in recent years at high speed by using an elongate “joining head”, it is still not possible to output satisfactory images.
The similar problem may also be observed in a serial type printing apparatus that does not use the “joining head”. As already explained, the serial type printing apparatus forms an image by alternating the printing main scan, which moves the print head as it ejects ink, and the sub-scan, which conveys the print medium a distance corresponding to the printing width in a direction crossing the printing main scan. Therefore, at boundaries between bands printed by individual main scans, images are printed by two main scans. As a result, these boundaries have increased densities, showing up as seam stripes.
The present invention has been accomplished with a view to overcoming the above-mentioned problems. It is therefore an object of this invention to provide an ink jet printing apparatus and a printing method that can produce high-quality images with no density unevenness between substrate-overlapping areas and other areas when photographic images are printed using an elongate “joining head”. It is also an object of this invention to provide a printing method that can output a uniform image with no seam stripes also in a serial type printing apparatus.
In a first aspect of the present invention, there is provided an ink jet printing system performing a printing operation by ejecting ink to a print medium, said system comprising: a print head arranging a plurality of printing element substrates on each of which printing elements for ejecting ink are arrayed, the printing element substrates being arranged in the printing element arrayed direction so that respective printing element arrayed regions of two adjacent printing element substrates have overlapping portion, and a signal value conversion unit to perform an image data signal value conversion so that a volume of ink applied to an image area of the print medium by printing elements of the overlapping portion of the adjacent two printing element substrates is smaller than that applied to an image area of the print medium by printing elements of printing element arrayed regions other than the overlapping portions.
In a second aspect of the present invention, there is provided an ink jet printing system performing a printing operation by ejecting ink to a print medium, said system comprising: a scanning unit which causes a printing element column arranging printing elements for ejecting ink, to scan in a scanning direction different from the printing element arrayed direction; a conveying unit which conveys the print medium along a direction crossing the scanning direction; a printing unit which performs printing on the print medium by alternately repeating a printing operation that performs printing while said scanning unit causes the printing element column to scan and a conveying operation in which the print medium is conveyed a distance smaller than a printing width of the printing element column, by said conveying unit; and a signal value conversion unit to perform an image data signal value conversion so that a volume of ink applied to overlapping areas on the print medium to be printed by two consecutive scans is smaller than that applied to other than the overlapping areas.
In a third aspect of the present invention, there is provided an ink jet printing method performing a printing operation by ejecting ink to a print medium, said method comprising the steps of: printing using a print head arranging a plurality of printing element substrates on each of which printing elements for ejecting ink are arrayed, the printing element substrates being arranged in the printing element arrayed direction so that respective printing element arrayed regions of two adjacent printing element substrates have overlapped portion; conveying the print medium relative to the print head in a direction different from the printing element arrayed direction during said printing step; and performing an image data signal value conversion so that a volume of ink applied to an image areas of the print medium to be printed by printing elements of the overlapping portions is smaller than that of an image areas of the print medium to be printed by printing elements of printing element arrayed region other than the overlapping portions.
In a fourth aspect of the present invention, there is provided an ink jet printing method performing a printing operation by ejecting ink to a print medium, said method comprising the steps of: printing by causing a printing element column arranging printing elements ejecting ink, to scan in a main scan direction different from the printing element array direction, conveying the print medium along a direction crossing the main scan direction a distance smaller than a printing width of the printing element column, following said scanning step, wherein said printing step and said conveying step are alternately repeated for performing printing to the print medium, and an image data signal value conversion is performed so that a volume of ink applied to overlapping areas on the print medium to be printed by two consecutive said scanning step is smaller than that applied to other than the overlapping areas.
Further features of the present invention will become apparent from the following description of exemplary embodiments (with reference to the attached drawings).
Now, embodiments applicable to the present invention will be explained in detail.
The printing element substrate C41 and the printing element substrate C42 are arranged so that they have overlapping portions D, in which each ejection port column includes 32 ejection ports.
An image data input unit 31 takes into the system multi-valued image data from image input devices such as scanners and digital cameras and multi-valued image data stored in hard disk drives of personal computers. An operation unit 32 has keys with which the user sets various parameters and instructs a printing start.
The CPU 33 sends image data entered from the image data input unit 31 to an image data processing unit 36 that performs various image processing on the image data according to commands received by the operation unit 32 and various information stored in the storage media 34. The image data processing unit 36 processes the multi-valued image data entered from the image data input unit 31 to generate binary print data that can be printed by the print head. The steps performed by the image data processing unit 36 will be detailed later.
The RAM 35 is used as a work area for various programs in the storage media 34, as a temporary saving area for error processing and also as a work area for image processing. The tables in the storage media 34 may be copied into the RAM 35 and their contents modified so that the image processing can be executed by referring to the modified tables.
The image printing unit 37 corresponds to the ink jet printing apparatus shown in
The image data processing unit 36 executes a color correction operation 3601 that performs data conversion to map a color space represented by the image data R, G, B of sRGB standard into a color space represented by the image printing unit 37. More specifically, the 8-bit image data R, G, B of 256 grayscale levels is converted into 8-bit R, G, B data within the color space of the image printing unit by using a three-dimensional LUT stored in the storage media 34.
In a subsequent color separation operation 3602, the 8-bit R, G, B data is converted into 8-bit grayscale data corresponding to ink colors used in the printing apparatus. More specifically, 8-bit R, G, B data is converted into 8-bit C, M, Y, K, LC, LM data by referring to a three-dimensional LUT stored in the storage media 34. This embodiment aims to solve the problem of density unevenness caused by the aforementioned overlapping portions by providing the color separation LUT with characteristics. The characteristics of the color separation operation in this embodiment will be detailed later.
The 8-bit grayscale data for six colors output from the color separation operation 3602 is converted by a subsequent binarization operation 3603 into binary density data, i.e., 1-bit data representing either a printing instruction or a non-printing instruction. Such a binarization operation may adopt a conventionally known error diffusion method or a dither method.
The binarized 1-bit data is transferred to the image printing unit 37 which, according to the 1-bit data, performs ink ejection operation using the print head.
This embodiment is characterized in that different color separation LUT's are used for the overlapping portions and the non-overlapping portions. Detailed explanations will be given as to the overlapping portions and the non-overlapping portions in this embodiment.
As explained in the Description of Related Art, the overlapping areas printed by the overlapping portions of the head take longer to print than the areas printed by the non-overlapping portions and thus are likely to have an increased image density. Therefore the areas B tend to be higher in cyan density than the areas A, and the areas C tend to be higher in light cyan density than the areas A. So, in this embodiment, even if the same grayscale cyan densities are to be realized, the amount of cyan ink to be applied to the areas B is made smaller than that for the areas A. Likewise, as for the light cyan ink, the amount of light cyan ink to be applied to the areas C is made smaller than that for areas A. For this purpose, independent color separation tables (LUT's) are prepared for areas A, B, C.
Denoted 905-907 are diagrams showing how the color separation operation is performed for each of the areas A, B, C. An abscissa represents grayscale values of cyan data, and an ordinate represents output signal values for cyan and light cyan corresponding to the grayscale value. The output value can be said to be equivalent to the number of ink droplets or the volume of ink to be applied to a unit area of print medium. The color separation operation 905 for the area A outputs only light cyan signal with highlight to half-tone values while keeping the cyan output at zero. Once the output value of light cyan reaches maximum, the cyan output value is progressively increased while at the same time the light cyan output value is gradually decreased. When the grayscale value reaches its maximum, the cyan output is maximum and light cyan output is zero.
In contrast to this, the color separation operation 906 for the area B does not reduce the light cyan output even in a grayscale range following the light cyan output having reached its maximum. Although the cyan output is progressively increased, its inclination or rate of rise is smaller than that of the area A so that even when the grayscale level reaches its maximum, the cyan output is not maximum. In the area B since the cyan ink density tends to be higher than that of the area A, the cyan output is restricted and the amount the density falls short of what is needed is made up for by the appropriate application of light cyan ink.
In the color separation operation 907 for the area C, the cyan ink output is progressively increased in a grayscale range, starting before the light cyan output becomes maximum, and at the same time the light cyan output is reduced gradually. When the grayscale level reaches its maximum, the cyan output is maximum and the light cyan output is zero. In the area C since the light cyan ink density tends to be higher than that of the area A, the light cyan output is restricted and the amount the density falls short of what is needed is made up for by the appropriate application of cyan ink.
In this case, if the cyan density in the area B can be matched to that of the area A by only reducing the cyan signal value, there is no need to differentiate the light cyan output value from that of the area A. Similarly, if the cyan density in the area C can be matched to that of the area A by only reducing the light cyan signal value, there is no need to differentiate the cyan output value from that of the area A.
While we have explained the example relation between cyan and light cyan, this embodiment prepares independent color conversion tables in the similar manner also for magenta and light magenta as the first and second ink. For other ink colors, it is of course possible to execute a signal value conversion that suppresses the ink volume to be applied to the substrate-overlapping areas on a print medium.
To verify the effects of this embodiment, an example of verification tests conducted by the inventors of this invention will be explained below. The inventors of this invention used a full line type ink jet printing apparatus and “joining heads” explained with reference to
In a test for comparison with the above verification test, one kind of color conversion table for execution of the operation 905 of
As a result, in an image produced in the comparison test, seam stripes corresponding to substrate joints and density unevenness were observed. On the other hand, in the verification test a uniform, high-quality image without seam stripes or density unevenness could be obtained.
While the first embodiment has been shown to be effective in the full line type printing apparatus, this invention can also be applied to a serial type printing apparatus that does not use “joining heads”.
In the serial type printing apparatus used in this embodiment, an image in those areas on a print medium that are printed by the non-overlapping portions of the heads is completed by one printing scan, whereas overlapping areas on the print medium printed by the overlapping portions d′ of the heads are applied ink in two printing scans. Thus, the overlapping areas on the print medium printed by the overlapping portions d′ tend to be higher in image density than the non-overlapping areas printed by the non-overlapping portions. Therefore, even if the same grayscale levels are to be expressed, this embodiment prepares a color conversion table (LUT) for the color separation operation that reduces the volume of ink to be ejected from the overlapping portions d′ of the heads.
With the above construction, this embodiment can produce a uniform image with no seam stripes in overlapping areas or density unevenness on a print medium even if printing is done by a serial type printing apparatus.
Although in the second embodiment the present invention has been described to be applied to a serial type printing apparatus using print heads other than the “joining heads”, the “joining head” construction can of course be adopted advantageously also with the serial type printing apparatus. In that case, in addition to the color conversion tables that take into consideration the densities of overlapping areas characteristic of the “joining heads”, a color conversion table that considers densities of overlapping areas at boundaries between printing scans may also be prepared. This can realize both of the effects of the first embodiment and the second embodiment at the same time.
In the above, we have described, as examples of the invention, ink jet printing apparatus that use a set of two inks of the same color with different densities, such as a set of cyan and light cyan and a set of magenta and light magenta. It is noted, however, that the present invention is not limited to this construction. This invention can also be applied to a printing apparatus that uses a plurality of inks of the same color with three or more different densities.
In the above embodiments, printing elements have been described to have a heater as an energy generation element. This invention is not limited to this construction. In the case of an on-demand type that ejects ink droplets as necessary, as with the above embodiments, it is possible to adopt a pressure control system that causes ink droplets to be ejected from orifices by mechanical vibrations of piezoelectric elements. In the case of a continuous type that continuously ejects ink droplets, a charge control configuration or a scatter control configuration may be employed.
In the above embodiments, as shown in
Further, to operate various devices to implement the aforementioned functions of the embodiments, software program codes for implementing these functions may be supplied to a computer in an apparatus or system connected to the devices. In that case, the software program codes themselves implement the aforementioned embodiments, and therefore the software program codes and a means of supplying the program codes to the computer, such as a storage media holding the program codes, constitute the present invention. Storage media to store such program codes include, for example, floppy (registered trademark) disks, hard disks, optical discs, magneto-optical discs, CD-ROMs, magnetic tapes, non-volatile memories and ROMs. Not only are the aforementioned functions of the embodiments implemented by the computer executing the loaded program codes, but the above embodiments may also be implemented by the cooperation between the program codes and an operating system (OS) and application software running on the computer. In such a case, the program codes constitute an embodiment of this invention.
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2007-178668, filed Jul. 6, 2007, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
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2007-178668 | Jul 2007 | JP | national |