Referring to the drawings, an illustrative embodiment in accordance with the present invention will be described. Firstly, referring to
In the present embodiment, the inkjet printer 1 is of a well-known inkjet printer, which is capable of printing images on a recording medium by supplying ink to a first inkjet head 21 and a second inkjet head 22, each having a nozzle face for ejecting the ink. The inkjet printer 1 is capable of printing on a fabric such as a T-shirt as the recording medium, based on the input image information, etc. As shown in
A recording system in the main cover 10 is of a well-known inkjet type recording system. In the inkjet printer 1, a guide rail 11 for guiding a movement of a carriage 13 loading the first inkjet head 21, is provided to extend in a horizontal direction of the inkjet printer 1 (i.e., an up-and-down direction in
Additionally, a guide rail 12 for guiding a movement of a carriage 14 loading the second inkjet head 22, is provided in parallel to the guide rail 11 in the inkjet printer 1. A carriage belt is provided between a second carriage motor 25 (see
It is noted that in the present embodiment, a left-hand side of
Additionally, a feeding system 7 capable of guiding a movement of a platen 5 for supporting a recording medium, in an anteroposterior direction in the inkjet printer 1 (i.e., the right-and-left direction in
The platen 5 has a pentagonal shape in a plan view. Specifically, the platen 5 has a shape of pentagonal plate having a projecting angle facing to a user, and a fabric recording medium (e.g., T-shirt, etc.) can be loaded horizontally on an upper surface of the platen 5. It is noted that the platen 5 according to the embodiment is an only an example and may have various types of shape, and the shape of the platen 5 to be used is determined in accordance with the recording medium, such as the size of a T-shirt, etc.
Additionally, as shown in
As shown in
Next, an electrical configuration of the inkjet printer 1 will be described referring to
Hereinafter, a feeding system 7 of the platen 5 in the inkjet printer 1 will be described referring to
As sown in
The timing belt 78 is arranged to be perpendicular to the main scanning direction of the first inkjet head 21 and the second inkjet head 22 (i.e., a direction parallel with the guide rail 11 and 12). Specifically, the timing belt 78 is arranged so that a line connecting the center of the first belt pulley 74 and the center of the second belt pulley 75 is perpendicular to the main scanning direction of the first inkjet head 21 and the second inkjet head 22 (i.e., in a direction parallel with the guide rails 11 and 12). The platen 5 is fixed on the timing belt 78 by a platen mounting device 51 so that the platen 5 is moved in an anteroposterior direction (i.e., the front-and-rear direction) in the inkjet printer 1 (i.e., in a direction indicated by an arrow A in
Hereinafter, a configuration of the stepper motor 71 will be described in detail. The stepper motor 71 is a well known 1-2 phase excitation type stepper motor. In the stepper motor 71, a stator to be used as an electrical magnet is arranged around a rotor. When the stator is excited, the rotor is pulled to the electrical magnet (stator), and thereby rotating the rotor by one step. Specifically, the stator may be supplied with one of four excitation phases (i.e., a phase A, a reverse phase A, a phase B and a reverse phase B) and they are arranged in an order of the phase A, the phase B, the reverse phase A, the reverse phase B, the phase A, the phase B and so on, clockwise. The stator is excited in an order of the phase A only, the phase A and the phase B, the phase B only, the phase B and the reverse phase A, the reverse phase A only, the reverse phase A and the reverse phase B, the reverse phase B only, the reverse phase B and the phase A, the phase A only and so on. When the excited phase is magnetized of N (north) pole, the S (south) pole of the rotor is attracted and the north pole of the rotor is repelled, thereby rotating the rotor by one step.
Thus, the stepper motor is rotated by exciting the stator successively, and therefore, the platen 5 is moved horizontally in the anteroposterior direction of the inkjet printer 1. Additionally, an angle of rotation of the rotor at one excitation is determined in accordance with a number of the north poles and the south poles of the rotor. Therefore, the moving distance of the platen 5 can be controlled in accordance with a number of rotation steps of the stepper motor 71.
As shown in
Therefore, by elongating a switching interval of the phase control signals, the rotation speed of the stepper motor 71 can be made slower, and by shortening the interval the rotation speed of the stepper motor 71 can be made faster. However, when the phase control signal is switched in a short interval at the beginning of the rotation of the stepper motor 71, the rotor might not be rotated since the rotor can not be attracted to the excited phases. Further, when the excitation is suddenly terminated to stop the rotation of the stepper motor 71, the rotor might not be stopped but continue to rotate due to the law of inertia
Therefore, when starting or stopping the rotation of the stepper motor 71 (i.e., moving or stopping the platen 5), the switching interval of the phase control signals should be changed gradually. Specifically, when starting, the rotation speed of the stepper motor 7 is accelerated till it reaches the moving speed by shortening the switching interval of the phase control signals gradually, and when stopping, the rotation speed of the stepper motor 7 is decelerated until the stepper motor 7 is stopped by elongating the switching interval of the phase control signals gradually. Incidentally, the clock counter 170 and an acceleration table (not shown) are used for switching the phase control signals. The acceleration table is stored in the RAM 130 and stores count values representing the timings of switching the phase control signals for an acceleration state (multiple count values for gradually shortening the switching interval), a steady speed (single count value for a constant speed) and a deceleration state (multiple count values for gradually elongating the switching interval). The CPU 110 controls to switch the phase control signals at the timings when the count value of the clock counter 170 reaches the count values read out from the acceleration table.
Next, the moving range of the platen 5 in the inkjet printer 1 will be described referring to
In the first embodiment, as shown in
When the CPU 110 transmits a driving instruction to the stepper motor driver 147, the stepper motor 71 is driven and then the motor pulley 73 is rotated. Accordingly, the large pulley 72 and the first belt pulley 74 are rotated with the rotation of the motor pulley 73, and the timing belt 79 is driven, which causes the platen 5 to move to the rearmost side of the main cover 10 as shown
Next, referring to
In the second embodiment, firstly, the platen 5 is located to the “loading position” as in the first embodiment.
After the recording medium is loaded on the platen 5, the platen is moved to the “print start position of the first inkjet head 21” as shown in
Next, referring to
In the third embodiment, initially, the platen 5 is located at the. “loading position as shown in
Then, the platen 5 is moved such that the rear edge of the platen 5 is located at a position which is on the rear side with respect to a middle part (in the front-and-rear direction) of the main cover 10 as shown in
Incidentally, the inkjet printer 1 described above may be modified such that the size of main cover 10 in the auxiliary scanning direction (i.e., the front-and-rear direction) is shortened so that the platen 5 is protruded from the main cover 10 when it is located at the print start position of the first print head 21. In such a modified configuration, the main cover 10 may be formed with an opening for allowing the rear portion of the platen 5 to protrude from the main cover 10. Optionally, a second cover 10A for covering the rear end portion of the platen 5 projected from the opening formed on the rear side of the main cover 10 may be provided as shown in
Referring to a flowchart in
Firstly, an editing process for editing an image to be printed by the inkjet printer 1 is performed by the PC (S1). When a print instruction is issued after editing the image data (S2), an input profile is referred to (S3) and white data is generated (S4). The white data is generated in a same manner for generating spot color image data using an application on the PC. Next, the color data is generated (i.e., conversion from RGB data to CMYK data) (S5).
Next, a pseudo gradation process and a binarization process are applied to the generated print data (S6), and the print data is transmitted to the inkjet printer 1 (S7). Then the print data generating process is finished. Incidentally, if the judgment in S2 is NO, the print data generating process is immediately terminated.
Referring now to a flowchart in
When the print data received from the PC and stored in the RAM 130 is the print data of the white ink (S12: YES), the platen 5 is moved to the rearmost side of the main cover 10, that is, to the print start position of the first inkjet head 21 (see
When the platen 5 is moved to the print start position of the first inkjet head 21 (see
When the print data received from the PC and stored in the RAM 130 includes not only the print data for the white ink but also the print data for the color (CMYK) inks (S15: YES), if the platen 5 has reached the print start position of the second inkjet head 22 (see
When the printing of the print data with the white ink is finished (S18: YES), the ejection of the white ink from the first inkjet head 21 is finished, and the operation of the first head driving device 140 and the first maintenance system are finished (S19). Thus, the first inkjet head 21 mounted on the carriage 13 is moved to the position of the first maintenance system and the necessary maintenance such as wiping of a nozzle of the first inkjet head 21 and capping, is performed. Thereafter, the first inkjet head 21 stays in the standby state.
When the printing of the print data with the color inks is finished (S20: YES), the ejection of the color inks from the second inkjet head 22 is finished, and the operation of the second head driving device 141 and the second maintenance system are finished (S21.) Thereafter, the second inkjet head 22 mounted on the carriage 14 is moved to the position of the second maintenance system and the necessary maintenance such as wiping of a nozzle of the second inkjet head 22 and capping is performed. Thereafter, the second inkjet head 22 stays in the standby state.
After that, the platen 5 is moved to the loading position (i.e., the platen 5 is ejected from the main cover 10 as shown in
If the print data received from the PC and stored in the RAM 130 does not include the print data with the color (CMYK) inks (i.e., the print data includes only the print data for the white ink) (S15: NO), when the printing of the print data with the white ink is finished (S29: YES), the ejection of the white ink from the first inkjet head 21 is finished, and the operation of the first head driving device 140 and the first maintenance system are finished (S30.) Thereafter, the first inkjet head 21 mounted on the carriage 13 is moved to the position of the first maintenance system and the necessary maintenance such as wiping of a nozzle of the first inkjet head 21 and capping is performed. Then, the first inkjet head 21 stays in the standby state. Thereafter, the platen 5 is moved to the loading position (i.e., ejected from the main cover 10 as shown in
When the print data received from the PC and stored in the RAM 130 does not include the print data for the white ink (S12: NO) but includes the print data for the color (CMYK) inks (S23: YES), the platen 5 is moved to the print start position of the second inkjet head 22 (see
Then, the second maintenance system for cleaning the second inkjet head 22 (not shown) and the second head driving device 141 are activated to perform a necessary maintenance such as uncapping of the second inkjet head 22, etc. Then, the printing with the CMYK inks is started by ejecting the CMYK inks from the second inkjet head 22 (S25). When the second inkjet head 22 has scanned in the main scanning direction by one line and the CMYK ink for one line have been ejected, the platen 5 is moved to the ink ejecting position of the next line in the platen ejecting direction.
When the printing of the print data with the color ink is finished (S26: YES), the ejection of the color inks from the second inkjet head 22 is finished, and the operation of the second head driving device 141 and the second maintenance system are finished (S27). Thereafter, the second inkjet head 22 mounted on the carriage 14 is moved to the position of the second maintenance system and the necessary maintenance such as wiping of a nozzle of the second inkjet head 22 and capping are performed. Then, the second inkjet head 22 stays in the standby state. Thereafter, the platen 5 is moved to the loading position (i.e., ejected from the main cover 10 as shown in
According to the above, in the inkjet printer 1, if the print data if only for the white ink, after finishing the printing with the white ink, the platen 5 is moved directly to the loading position, and the first inkjet head 21 is moved to the position of the first maintenance system to have a necessary maintenance to the recording head (e.g., wiping a nozzle surface and capping) and then, the first inkjet head 21 stays in the standby state. Similarly, if the print data is only for the color inks (CMYK) (i.e., the print data for the white ink is not included), after finishing the printing operation, the platen 5 is moved to the loading position, and the second inkjet head 22 is moved to the position of the second maintenance system to have a necessary maintenance (e.g., wiping a nozzle surface and capping) and then, the second inkjet head 22 stays in the standby state.
If the print data includes data for both the white ink and the color ink, the first maintenance system and the first head driving device 140 are activated to perform a necessary maintenance, and then, the white ink is ejected from the first inkjet head 21. Then, the second maintenance system and the second head driving device 140 are activated to perform a necessary maintenance such as uncapping, etc. and then, the color ink is ejected from the second inkjet head 22. The timing of ejecting the color inks from the second inkjet head 22 after ejecting the white ink from the first inkjet head 21 is determined depending on conditions of the first inkjet head 21 (e.g., resolution or driving voltage, etc.). Then, the first inkjet head 21 and the second inkjet head 22 eject necessary ink in accordance with the print data with the white ink and the color ink, as the process drives the first head driving device 140 and the second head driving device 141. When the print data is finished, each inkjet head stops ejecting the ink. Thereafter, the first inkjet head 21 and second inkjet head 22 is moved to the first maintenance system and the second maintenance system, respectively, and then, stay in the standby state for preparing the next printing, with protecting the surface of the head, which is not used, by capping for preventing the unused head from drying and attachment of foreign substances.
As described above, since the inkjet printer 1 includes two inkjet heads arranged in parallel with each other, when the white ink is ejected to a recording medium with a deep colored background firstly and then the color ink is ejected thereto, or when the color ink is ejected on a recording medium with white or light colored background, the recording medium is moved only once to the print start position and further moved once from the print end position to the loading position regardless of combinations of inkjet heads to be used. Accordingly, the period of time necessary for printing can be reduced. Further, the period of time for printing can also be reduced since the moving range is optimized according to whether the color of inks are to be used. Additionally, the surface of the inkjet head which is not used is always protected by capping for preventing drying and attachment of foreign substances.
Additionally, when the amounts of print data are different largely between two inkjet heads arranged and scanning in parallel, only the inkjet head necessary for the printing is driven. Therefore, a driving time of each carriage loading each inkjet head can be optimized comparing with a case where multiple heads are arranged in one line. Therefore, the printing time period can be well reduced. For example, when the print data or amount of ejection with the color ink of the second inkjet head 22 is smaller than that of the first inkjet head 21, the driving of the second inkjet head 22 is finished at the approximately same time when the printing with the first inkjet head 21 is finished or prior thereto. Accordingly, the ejection time period of the white ink and the color ink can be optimized.
When the print data of the second inkjet head 22 is larger than that of the first inkjet head 21, or the amount of the ejection of the ink corresponding to the white data is relatively small, the second inkjet head 22 might start to eject the ink before the first inkjet head 21 does. In this case, the driving of the first inkjet head 21 and the second inkjet head 22 are optimized, thereby optimizing the ejection time with the white ink and the color ink.
The present invention is not to be restricted by the above particular illustrative embodiments and various modifications can be made. For example, the platen does not need to be covered by a housing (the main cover 10). That is, the housing may be configured to have a separate part which can be detached from the rear side of the housing. With such a configuration, the separate part can be detached when the first inkjet head 21 is used so that the platen can protrude from the housing. With the above configuration, the housing may be configured to be thinner. When the amount of print data size is different largely between the white ink and the color ink, uncapping of each inkjet head may be delayed as late as possible to protect each inkjet head. For example, the uncapping of the second inkjet head may be performed before the uncapping of the first inkjet head depending on the print data (image data). Therefore the printing time period may be further reduced.
Further, the platen 5 may not be moved back to the print start position of the first inkjet head when the start position of the print data with the white ink is on the upstream side in the moving direction of the platen 5 for printing of the print data for the color inks. Therefore, the printing time can be further reduced.
A number of the inkjet heads scanning in parallel (i.e., arranged in parallel) are not limited to two, but may be three, four, or more. Additionally, the recording head is not limited to the inkjet head but the invention may be applicable to the heads which are arranged in parallel in the platen-moving direction and are driven serially in the main scanning direction with respect to the recording medium on the platens
It should be noted that the present invention is applicable to a printing apparatus having a plurality of recording heads arranged parallelly along the platen-moving direction and configured to scan parallelly to eject the ink one the recording medium held by the platen.
Number | Date | Country | Kind |
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2006-266080 | Sep 2006 | JP | national |