This is a National Phase Application filed under 35 U.S.C. 371 as a national stage of PCT/CN2015/087515 filed on Aug. 19, 2015, an application claiming the benefit of Chinese Application No. 201510189023.6 filed on Apr. 21, 2015, the content of each of which is hereby incorporated by reference in its entirety.
The present invention relates to the field of printing devices, and in particular to a printing head and an ink-jet printing device.
Ink-jet printing devices have been wildly used due to their advantages of low cost, friendly manufacturing environment, simple operation and the like. A printing head is an important component of an ink-jet printing device.
As the piezoelectric material 19 has an inverse piezoelectric effect, the piezoelectric material 19 will be deformed after a voltage is applied thereto, thereby changing the volume of a corresponding diversion trench to complete a cyclic process of ink absorption, ink jet, retraction and ink re-absorption. Ink can be sucked from the common ink tank 11 and then jetted from a corresponding nozzle to complete the printing by controlling the deformation of the piezoelectric material 19.
Inventors have found that the printing head according to the prior art has the following defect at least: the distance between adjacent diversion trenches on the base 10 is small when there are many nozzles arranged in the printing head. When a nozzle jets ink due to the deformation of the piezoelectric material 19, the deformation of the part of the piezoelectric material 19 corresponding to the nozzle will influence the shape of the piezoelectric material 19 above the diversion trenches adjacent to the diversion trench corresponding to the nozzle (as shown in
In the prior art, there are two methods for reducing the interference. The first one is: changing the structure of the ink intake channel of the nozzle portion such that two adjacent spacers for separating adjacent nozzles are arranged to have different lengths, that is, the portion of the diversion trench close to the nozzle is different from that connected to the common trench so that the interference between the adjacent nozzles is reduced; and the second one is: optimizing a circuit signal to eliminate or reduce the generation of the interference, that is, at the same time of jetting ink from one nozzle, a corresponding reverse compensation drive signal is applied to nozzles adjacent to the nozzle, to offset the interference to the adjacent nozzles.
Inventors of the present invention propose a method different from the aforementioned methods for reducing the interference.
In order to solve the aforementioned technical problem in the prior art, the present invention provides a printing head and an ink-jet printing device.
According to one aspect of the present invention, a printing head is provided, which includes a plurality of sub-heads each including a base and a plurality of diversion trenches provided in the base, and one end of each of the diversion trenches is connected to one of nozzles of the sub-head. Projections of all the diversion trenches on a first plane in a first projection direction are arranged at an equal interval, the first plane is a plane defined by an arrangement direction and a length direction of the diversion trenches in the sub-head, and the first projection direction is a moving direction of the printing head with respect to a printing surface during printing. A spacing of the diversion trenches on each of the sub-heads is greater than that of projections of all the diversion trenches on the first plane in the first projection direction.
According to the embodiments of the present invention, the diversion trenches corresponding to any two adjacent projections on the first plane may belong to different sub-heads.
According to the embodiments of the present invention, each of the sub-heads may further include an ink tank arranged on the base and communicated with each of the diversion trenches.
According to the embodiments of the present invention, the printing head may further include a common ink inlet and a common ink outlet. One end of the ink tank of each of the sub-heads is connected to the common ink inlet and the other end thereof is connected to the common ink outlet.
According to the embodiments of the present invention, the arrangement directions of all the diversion trenches may be parallel to each other.
According to the embodiments of the present invention, projections of starting nozzles of the respective sub-heads on a second plane in the first projection direction are arranged at an equal interval, the starting nozzle is the first one of the nozzles of each of the sub-heads in a same direction, and the second plane is a plane defined by an arrangement direction and a liquid outlet direction of the nozzles of the sub-head.
According to the embodiments of the present invention, each of the sub-heads may further include a sliding mechanism for adjusting relative positions of the plurality of sub-heads in the arrangement direction of the diversion trenches.
According to the embodiments of the present invention, the printing head may further include an angle adjusting mechanism for adjusting an included angle between the arrangement direction of the diversion trenches of the sub-head and the first projection direction to meet the following formula: cos(k−90)=f/e, where k is an included angle, greater than or equal to 90°, between a second plane and the first projection direction, the second plane is a plane defined by an arrangement direction and a liquid outlet direction of the nozzles of the sub-head, e is a spacing of projections of all the nozzles on the second plane in the first projection direction, and f is a pixel pitch.
According to the embodiments of the present invention, a distance between top surfaces of any two adjacent sub-heads is the same.
According to the embodiments of the present invention, each of the sub-heads has the same number of nozzles.
According to another aspect of the present invention, an ink-jet printing device is provided, which includes the printing head according to the present invention.
The nozzles are arranged on a plurality of sub-heads, so that, in the case of a same pixel pitch, the number of the nozzles in each of the sub-heads is relatively small, and the spacing of the diversion trenches corresponding to the respective nozzles is thus relatively large. As a result, the interference among the nozzles caused by the same piezoelectric material is reduced, and the quality of printing is thus improved.
It should be understood that, the aforementioned general description and detailed description hereinafter are merely exemplary and explanatory, and the present invention is not limited thereto. The accompanying drawings of the present invention are incorporated into the specification and constitute a part of the specification. The accompanying drawings show the embodiments of the present invention and are used for explaining the principle of the present invention together with the specification.
Embodiments of the present invention are shown in the accompanying drawings, and will be further described in detail below with reference to the accompanying drawings. However, these accompanying drawings and description are intended to make the disclosure thorough and complete and to completely convey the concept of the present invention to those skilled in the art, instead of limiting the scope of the concept of the present invention in any form.
The exemplary embodiments shown in the accompanying drawings will be described in detail herein. In the accompanying drawings, dimensions and relative dimensions of each layer and each region will be exaggerated for the purpose of clarity. The same reference numbers always designate the same elements. Implementations to be described in the following exemplary embodiments do not represent all the implementations consistent with the present invention. Instead, they are only examples of devices or methods consistent with some aspects of the present invention as described in detail in the attached claims.
The printing head may mainly include a piezoelectric head and a bubble head. The embodiments of the present invention will be described by taking a piezoelectric head as an example. However, those skilled in the art can readily apply the concept of the present invention to a bubble head upon reading the specification of the present invention.
Referring to
Projections of all the diversion trenches 1011 of the sub-heads 100 on the diversion trench plane α (i.e., a first plane) in a first projection direction t are arranged at an equal interval (referring to
It is to be noted that, as for the piezoelectric head, a protection film and piezoelectric material (such as piezoelectric ceramics) may cover the diversion trenches of each of the sub-heads. The protection film and the piezoelectric material may be adhered to the base 101 by an adhesive, and cover the diversion trenches. However, the concept of the present invention may be applied to printing heads of other types (such as a bubble head), and hence, the protection film and the piezoelectric material of the piezoelectric head are not shown in the drawings.
As shown in
As shown in
In conclusion, in the printing head according to the embodiments of the present invention, the nozzles are arranged on a plurality of sub-heads, so that, in the case of the same pixel pitch, the number of the nozzles in each of the sub-heads is relatively small (that is, the density of the nozzles in each of the sub-heads is reduced). The spacing of the diversion trenches corresponding to the respective nozzles is thus relatively large. As a result, the interference among the nozzles caused by the same piezoelectric material is reduced, and the quality of printing is thus improved. It is to be noted that, although the density of the nozzles in each of the sub-heads is reduced, the density of the nozzles of the entire printing head is not reduced, thereby meeting demands on the printing resolution.
As shown in
A nozzle plane (i.e., the second plane) is a plane defined by the arrangement direction z of the nozzles 1012 and the liquid outlet direction y of the nozzles 1012. As shown in
It is to be noted that there may be a certain angle between the liquid outlet direction y of the nozzles and the length direction c of the diversion trenches.
The printing head according to the exemplary embodiment of the present invention may further include an angle adjusting mechanism (not shown in
Referring to
Additionally, projections of starting nozzles of the respective sub-heads on the nozzle plane β in the first projection direction t are arranged at an equal interval, and here, the starting nozzle is the first one of the nozzles of each of the sub-heads in a same direction. For example, the nozzles r1, r2 and r3 are respectively starting nozzles of three sub-heads as shown in
It needs to be noted that the arrangement directions p of the diversion trenches of the respective sub-heads may not be parallel to each other.
As shown in
As shown in
As shown in
According to the embodiments of the present invention, a lyophobic functional film 103 may cover a peripheral region of the nozzle 1012. The liquid (for example, ink droplets) is not liable to be adhered to the lyophobic functional film 103, and it is thus convenient to clean the peripheral region of the nozzle 1012.
As shown in
During printing, image data needs to be transformed into data for each of the nozzles. This transformation is called raster image process (RIP). Generally, the image data is positioned by two coordinates of x and y. Therefore, the data applied to each of the nozzles is coordinate data.
As shown in
Compared with the printing head in the prior art, in the printing head according to the embodiments of the present invention, the spacing of the diversion trenches in the sub-head is increased, and furthermore, the spacing of the nozzles in the sub-head is increased and the manufacturing difficulty is reduced. As the thickness of the spacer arranged between two adjacent diversion trenches in the sub-head and used for fixing the piezoelectric material is increased, the contact area between the piezoelectric material (or the protection film below the piezoelectric material) and the spacer is increased, and consequently, the connection reliability of the piezoelectric material is improved.
Each of the sub-heads of the printing head according to the embodiments of the present invention has the same number of nozzles, and hence, the sub-heads can be manufactured according to the same specification. This is beneficial for mass production and the manufacturing cost is reduced.
In the printing head according to the embodiments of the present invention, by providing the sliding mechanism and the angle adjusting mechanism, the spacing of the projections of the nozzles on the respective sub-heads in the nozzle plane can be adjusted to meet different demands on the pixel pitch. This is particularly advantageous for printing with high resolution.
In the printing head according to the embodiments of the present invention, by providing an ink tank for each of the sub-heads, the interference generated when different sub-heads share one ink tank is avoided.
Additionally, in the printing head according to the embodiments of the present invention, the nozzles are arranged in a plurality of sub-heads, so that, in the case of the same pixel pitch, the number of the nozzles in each of the sub-heads is relatively small, and the spacing of the diversion trenches corresponding to the respective nozzles is thus relatively large. As a result, the interference among the nozzles caused by the same piezoelectric material is reduced, and the quality of printing is thus improved.
The printing head according to the embodiments of the present invention, for example, the printing head in the embodiment as shown in
Although the concept of the present invention has been described with reference to the embodiments of the present invention, the present invention is not limited to the embodiments set forth herein. Any modifications, equivalent substitutions, improvements and the like of the described embodiments of the present invention should be within the protection scope of the present invention.
Number | Date | Country | Kind |
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2015 1 0189023 | Apr 2015 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/087515 | 8/19/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2016/169167 | 10/27/2016 | WO | A |
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Entry |
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1st Office Action issued in Chinese application No. 201510189023.6 dated Dec. 17, 2015. |
ISR issued in International application No. PCT/CN2015/087515 dated Jan. 7, 2016. |
Number | Date | Country | |
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20170057226 A1 | Mar 2017 | US |