Liquid dispensing amount control apparatus and control method thereof and inkjet printing apparatus
10654290 ยท 2020-05-19
Assignee
- Boe Technology Group Co., Ltd. (Beijing, CN)
- Hefei Xinsheng Optoelectronics Technology Co., Ltd. (Hefei, Anhui, CN)
Inventors
- Mengyu Luan (Beijing, CN)
- Youyuan Hu (Beijing, CN)
- Xinfeng Wu (Beijing, CN)
- Lin Chen (Beijing, CN)
- Bo MAO (Beijing, CN)
- Fei Li (Beijing, CN)
- Xinzhu Wang (Beijing, CN)
- Huihui Li (Beijing, CN)
Cpc classification
B41J11/00216
PERFORMING OPERATIONS; TRANSPORTING
B41J2/14451
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41J2/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure is related to a liquid dispensing amount control apparatus. The liquid dispensing amount control apparatus may include at least one nozzle and at least one heating device. The heating device may be configured to heat a position of liquid dispensed from the nozzle to form a droplet.
Claims
1. A liquid dispensing amount control apparatus comprising: at least one nozzle; and at least one heating device, wherein the heating device is configured to heat a position of liquid dispensed from the nozzle to form a droplet, the at least one heating device is at least one light irradiation device, wherein the light irradiation device is configured to shine a light on the position of liquid dispensed from the nozzle to form the droplet, the light irradiation device comprises a light source, a controller, and an adjuster, wherein the light source is configured to emit the light; wherein the controller is configured to calculate the position of the dispensed liquid where the light shines to form the droplet based on an amount of the liquid required for the droplet; and wherein the adjuster is configured to adjust the light emitted from the light source to shine on the calculated position of the dispensed liquid, the adjuster is an angle conversion device, and the angle conversion device is a piezoelectric ceramic control element, wherein one end of the piezoelectric ceramic control system is fixedly connected with one end of the light source.
2. The liquid dispensing amount control apparatus according to claim 1, wherein the light source is an infrared light source or an ultraviolet light source or a laser.
3. The liquid dispensing amount control apparatus according to claim 2, wherein the droplet formed from each of the plurality of the nozzles has substantially the same amount of liquid.
4. The liquid dispensing amount control apparatus according to claim 1, further comprising a plurality of nozzles and a plurality of light irradiation devices, wherein each of the plurality of the light irradiation device is configured to shine a light on a position of the liquid dispensed from one of the plurality of the nozzles respectively to form a droplet.
5. The liquid dispensing amount control apparatus according to claim 4, wherein each of the light irradiation devices comprises a point light source.
6. The liquid dispensing amount control apparatus according to claim 1, further comprising a plurality of nozzles arranged in a line and a light irradiation device, wherein the light irradiation device is configured to shine a light on a position of liquid dispensed from each of the nozzles to form droplets.
7. The liquid dispensing amount control apparatus according to claim 6, wherein the light irradiation device comprises a linear light source.
8. The liquid dispensing amount control apparatus according to claim 6, wherein the droplets formed from the plurality of the nozzles have substantially the same amount of liquid.
9. An ink-jet printing apparatus, comprising the liquid dispensing amount control apparatus according to claim 1.
10. A controlling method for the liquid dispensing amount control apparatus according to claim 1, comprising the steps of: dispensing the liquid from the nozzle; and heating a position of the dispensed liquid to form a droplet, wherein heating the position of the dispensed liquid to form a droplet comprises: shining a light on the position of the dispensed liquid to form the droplet, and the step of shining the light on the position of the dispensed liquid comprises the steps of: calculating the position of the dispensed liquid where the light shines to form the droplet based on an amount of liquid required for the droplet; and adjusting the light emitted from the light source of the light irradiation device to shine on the calculated position of the dispensed liquid.
11. The controlling method for the liquid dispensing amount control apparatus according to claim 10, the light irradiation device comprises a point light source, and each point light source shines a light on a position of dispensed liquid from one of a plurality of nozzles respectively.
12. The controlling method for the liquid dispensing amount control apparatus according to claim 10, wherein the light irradiation device comprises a linear light source, and the linear light source shines a light on a position of dispensed liquid from each of a plurality of nozzles.
13. The controlling method for the liquid dispensing amount control apparatus according to claim 10, wherein calculating the position of the dispensed liquid where the light shines to form the droplet based on an amount of liquid required for the droplet comprises: selecting a nozzle having a diameter based on liquid viscosity and targeted liquid volume so that a droplet volume obtained by the substrate approaches and slightly exceeds V0 without the aid of illumination; and turning on the light source and adjusting the light position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other objects, features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION
(10) The present disclosure will be described in further detail with reference to the accompanying drawings and embodiments in order to provide a better understanding by those skilled in the art of the technical solutions of the present disclosure. Throughout the description of the disclosure, reference is made to
(11) One embodiment of the present disclosure is a liquid dispensing amount control apparatus. The liquid dispensing amount control apparatus include at least one nozzle and at least one heating device. The heating device is configured to heat a position of liquid dispensed from the nozzle to form a droplet.
(12) In one embodiment, as shown in
(13) Necking refers to phenomenon of partial cross-section reduction of liquid material under tensile stress and gravity. The arrangement of the light irradiation device 2 allows the liquid 3 dispensed from the nozzle 1 to rise in temperature locally at the irradiation position so that the liquid 3 necks at the irradiation position and forms a droplet, thereby controlling the amount of liquid in the droplet and accordingly achieving uniform dispensing amount of the liquid from the nozzle 1.
(14) In one embodiment, as shown in
(15) The light source 21 may emit infrared light, ultraviolet light, or laser. The light source 21 is not limited to those emitting infrared light or ultraviolet light, and other light sources 21 capable of necking the liquid 3 at the irradiated position may be used as long as the light of the predetermined frequency emitted from the light source 21 does not cause material of the liquid 3 emitted from the nozzle 1 to denature. The predetermined amount requirement for a droplet refers to the requirement for the mass and volume that form the droplet. The controller 22 can calculate the irradiation position of the light beam on the liquid column for forming a droplet with a predetermined amount of liquid based on the concentration of the liquid, the diameter of the nozzle 1, and the diameter of the discharged liquid column.
(16) In one embodiment, the calculation process may be as follows:
(17) As shown in
(18) 1. When the light position is fixed, the volume of V is increased by increasing the pushing force of the power system. After increasing the volume of V, the volume of V1 and V0 will both increase. This method is suitable for larger volume adjustment.
(19) 2, when the pushing force of the power system is fixed, V is the same. By adjusting the light position, the ratio of V1 and V0 is changed. As such, the volume of V0 is changed. This method is suitable for smaller volume adjustment.
(20) In general, in addition to the power system, the amount of liquid ejected is also affected by the size of the nozzle and the liquid viscosity. Among them, the size of the nozzle can adjust the amount of liquid in a larger range, and the selection of the nozzle will be affected by the viscosity of the liquid. When the liquid viscosity is small, the size of a nozzle cannot be too large. The amount of liquid can be calculated as follows:
(21) In step 1, according to the liquid viscosity and the targeted liquid volume, a suitable nozzle size is selected and the power system is adjusted so that the droplet volume V obtained by the substrate approaches and slightly exceeds V0 without the aid of illumination.
(22) In step 2, the light is turned on, and the light position is adjusted to the lower position of the liquid column. The volume of the droplet obtained on the substrate at this time is measured, which is as V.sub.m. At this time, it is divided into two cases:
(23) In step 2.1, if the V.sub.m is less than V0, then the light position is fine-tuned, so that the light position is shifted upwards until the V.sub.m is equal to V0. When step 1 is completed, the V.sub.m is greater than V0, and when the illumination is turned on and the illumination position is lower, the V.sub.m is less than V0. Therefore, moving illumination position upwards may reach a position where V.sub.m is equal to V0.
(24) In step 2.2, if the V.sub.m is greater than V0, indicating that the power system is not enough. The power system needs to be adjusted to reduce the size of the entire droplet. After adjustment, the process returns to step 2.1.
(25) The adjuster 23 can either automatically adjust the irradiation position of the light emitted by the light source 21 or manually adjust the irradiation position of the light emitted by the light source 21. For example, the adjuster 23 may adopt an angle conversion device which can adjust the irradiation position of the light on the liquid 3 by adjusting the irradiation angle of the light of the light source 21, as shown in
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(27) In one embodiment, the liquid dispensing amount control apparatus is applied to control the dispensing amount of a high-viscosity liquid. Due to the large surface tension of the high viscosity liquid, it is not easy for the necking to form droplets, so it is difficult to control the dispensing amount of the liquid with high viscosity. By using the liquid dispensing amount control apparatus according to one embodiment of the present disclosure, the high-viscosity liquid dispensed from the nozzle 1 can be forced to neck at the corresponding position by the light irradiation device 2, so that the high-viscosity liquid can smoothly form a droplet with a predetermined amount of liquid, and accordingly uniformity of the dispensing amount of the high viscosity liquid can be improved.
(28) In the prior art, the liquid droplet dispensed from the nozzle is formed by a pulse rebound method. When a liquid droplet is formed, a part of the liquid that is dispensed from the nozzle is sucked back into the nozzle by liquid surface tension, thereby achieving the separation of the dispensed liquid at a certain position to form the droplet. In the pulse rebound mode, before separating at the certain position of the liquid to form the droplet, the upper part of the liquid near the nozzle and the lower part of the liquid far away from the nozzle have different velocities, thereby resulting in tailing of the lower part of the liquid. As a result, the lower part of the liquid forms satellite spots at the landing site after separation from the upper part of the liquid. Compared with the pulse rebound method in the prior art, the light irradiation device 2 according to one embodiment of the present disclosure can cause the liquid to neck down at the corresponding position to form a droplet in a light and thermal-induced manner, thereby preventing the liquid at the upper and lower part of neck from having different velocities, and accordingly avoiding the formation of the satellite spots at the landing site and improving stability of the droplet formation and uniformity of the dispensing amount.
(29) Another embodiment of the present disclosure is a method for controlling the dispensing amount of the liquid from the liquid dispensing amount control apparatus. According to one embodiment of the present disclosure, the method includes dispensing the liquid from the nozzle, and shining a light from the light irradiation device on a corresponding position of the liquid dispensed from the nozzle so that the liquid is necked at the position shined with the light to form a liquid droplet with a predetermined amount of the liquid.
(30) The method may further include calculating the position of the dispensed liquid where the light shines based on the predetermined amount of liquid for the droplet and adjusting the light emitted from the light irradiation device to shine on the position of the liquid dispensed from the nozzle based on the calculation result of the irradiation position.
(31) In the liquid dispensing amount control apparatus according to one embodiment of the present disclosure, by providing the light irradiation device, the liquid dispensed from the nozzle can be locally warmed at its irradiated position so that the liquid is necked at the irradiated position to form the droplet. As such, it is possible to control the amount of liquid in the droplet, and accordingly improve uniformity of the amount of liquid discharged from the nozzle.
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(33) In one embodiment, the light emitted by each of the light sources irradiates the liquid 3 dispensed from one of the nozzles 1 respectively, thereby realizing the independent control of the dispensing amount of each of the nozzles 1 and, at the same time, improving the uniformity of the dispensing amount of all the nozzles 1.
(34) The irradiation positions of the point light sources on the liquid 3 dispensed from each of the nozzles 1 may be the same. For example, when each of the nozzles 1 dispenses the same type of liquid 3, the irradiation positions of the point light sources on the dispensed liquid 3 of the nozzles 1 are the same. As such, it is possible to control uniformity of the dispensing amount of the liquid from all the nozzles 1.
(35) The irradiation positions of the point light sources on the liquid 3 dispensed from the nozzles 1 may also be different. For example, when each of the nozzles 1 dispenses a different type of liquid 3, the irradiation positions of the light sources on the liquid from each of the nozzles are different for each of the point light sources to ensure that the same amount of different liquid is dispensed from each of the nozzles to form the droplets.
(36) By providing a plurality of the light irradiation devices 2, it is possible to control the dispensing amount of the plurality of nozzles 1 to be uniform, thereby achieving uniform dispensing amount of the liquid dispensing amount control apparatus provided with a plurality of nozzles 1.
(37) Another embodiment of the present disclosure is a method for controlling the dispensing amount of the liquid from the liquid dispensing amount control apparatus. On the basis of the method for controlling the amount of liquid dispensed in Embodiment 1, the light sources of the light irradiation device in this embodiment are point light sources, and each of the point light sources irradiates the liquid from one of the nozzles respectively.
(38) Other structures of the liquid dispensing amount control apparatus and other steps of the liquid dispensing amount control method in this embodiment are similar as those in Embodiment 1, and the details are not described herein again.
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(40) The light source is a linear light source, and the light emitted from the linear light source is correspondingly irradiated onto the liquid 3 dispensed from all the nozzles 1. The irradiation position of the linear light source on the liquid 3 dispensed from each of the nozzles 1 may be the same. For example, when each of the nozzles 1 is used for dispensing the same type of liquid 3, the irradiation positions of the linear light source on the liquid 3 dispensed by each of the nozzles 1 are the same, thereby controlling the dispensing amount of each of the nozzles 1 and improving uniformity of the dispensing amount of liquid from all the nozzles 1.
(41) The irradiation positions of the linear light source on the liquid 3 dispensed from each of the nozzles 1 may also be different. For example, when each of the nozzles 1 dispenses a different type of liquid 3, the irradiation positions of the linear light source on the liquid from each of the nozzles are different to ensure that the same amount of different liquid is dispensed from each of the nozzles to form the droplets.
(42) By providing the light irradiation device 2, it is possible to control the dispensing amount of the plurality of nozzles 1 to be uniform, thereby achieving uniform dispensing amount of the liquid dispensing amount control apparatus provided with a plurality of nozzles 1.
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(44) Other structures of the liquid dispensing amount control apparatus and other steps of the liquid dispensing amount control method in this embodiment are similar as those in Embodiment 1, and the details are not described herein again.
(45) In the liquid dispensing amount control apparatus according to one embodiment of the present disclosure, by providing the light irradiation device, the liquid dispensed from the nozzle can be locally warmed at its irradiated position so that the liquid is necked at the irradiated position to form the droplet. As such, it is possible to control the amount of liquid in the droplet, and accordingly improve uniformity of the amount of liquid discharged from the nozzle.
Embodiment 4
(46) Another embodiment of the present disclosure is an ink jet printing apparatus comprising the liquid dispensing amount control apparatus according to one embodiment of the present disclosure.
(47) By employing the liquid dispensing amount control apparatus according to one embodiment of the present disclosure, the uniformity of the dispensing amount of the ink-jet printing apparatus is improved, thereby improving the printing quality of the ink-jet printing apparatus.
(48) The descriptions of the various embodiments of the present disclosure have been presented for purposes of illustration, but are not intended to be exhaustive or limited to the embodiments disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The terminology used herein was chosen to best explain the principles of the embodiments, the practical application or technical improvement over technologies found in the marketplace, or to enable others of ordinary skill in the art to understand the embodiments disclosed herein.