MULTI-NEEDLE HEAD, METHOD OF ALIGNING END PORTION OF MULTI-NEEDLE HEAD, AND ALIGNMENT DEVICE USED THEREIN
20220331835 · 2022-10-20
Assignee
Inventors
Cpc classification
B05C5/027
PERFORMING OPERATIONS; TRANSPORTING
B05B13/0278
PERFORMING OPERATIONS; TRANSPORTING
B05B5/035
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B13/02
PERFORMING OPERATIONS; TRANSPORTING
B05B5/035
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Proposed is a multi-needle head. The multi-needle head includes at least one adapter mounted with a needle in which liquid is discharged therethrough, and includes a holder in which the adapter is fixed. An O-ring having an outer diameter thereof larger than a width of a body of the adapter is coupled to the body of the adapter, a fixing hole into which the body of the adapter is inserted is formed in the holder, and an O-ring fixing portion having an inner diameter thereof larger than an inner diameter of the fixing hole is formed in the middle of the fixing hole such that the O-ring is positioned at the O-ring fixing portion. A vertical width of the O-ring fixing portion is larger than a vertical width of the O-ring, thereby allowing a height of the adapter that is fixed to the holder to be adjusted.
Claims
1. A multi-needle head comprising: at least one adapter mounted with a needle in which liquid is discharged therethrough; and a holder in which the adapter is fixed, wherein an O-ring having an outer diameter thereof larger than a width of a body of the adapter is coupled to the body of the adapter, a fixing hole into which the body of the adapter is inserted is formed in the holder, and an O-ring fixing portion having an inner diameter thereof larger than an inner diameter of the fixing hole is formed in the middle of the fixing hole such that the O-ring is positioned at the O-ring fixing portion, wherein a vertical width of the O-ring fixing portion is larger than a vertical width of the O-ring, thereby allowing a height of the adapter that is fixed to the holder to be adjusted.
2. The multi-needle head of claim 1, wherein the holder is formed of a plurality of parts that is cut on the basis of the fixing hole, and the plurality of parts is assembled after the adapter to which the O-ring is coupled is inserted into the holder while the plurality of parts that forms the holder is in a separated state.
3. The multi-needle head of claim 2, wherein when the holder formed of the plurality of parts is assembled, a position of the adapter is fixed.
4. The multi-needle head of claim 1, further comprising a manifold which is coupled to an upper portion of the holder and which is configured to supply the liquid to a plurality of needles, wherein a housing of the manifold is provided with a cavity which is filled with the liquid and which is formed on a position corresponding to the adapter, and the housing of the manifold is provided with a supply pipe through which the liquid is supplied to the cavity and a collecting pipe through which the liquid inside the cavity is discharged outside.
5. The multi-needle head of claim 4, further comprising an exhaust pipe connected to the cavity, wherein a valve configured to open and close the exhaust pipe is mounted on the exhaust pipe.
6. A method of aligning an end portion of the needle of the multi-needle head of claim 3, the method comprising: temporally assembling a holder by inserting an adapter into a fixing hole of the holder and assembling the holder to an extent that a height of the adapter is capable of being adjusted; aligning a height of the end portion of the needle by adjusting the height of the adapter; and fixing the holder so that the height of the adapter is fixed.
7. A method of using a liquid discharge device comprising the multi-needle head of claim 5, the method comprising: preparing in which a cavity of a manifold is filled with liquid; and operating a discharging of the liquid through a needle after the cavity is filled with the liquid, wherein a valve of an exhaust pipe is opened during the preparing, and the valve of the exhaust pipe is closed during the operating.
8. A device for aligning an end portion of a needle of the multi-needle head of claim 3, the device comprising: a reference portion provided with a reference surface that is a flat surface capable of matching a height of the end portion of the needle to be constant; a stand provided with a stand surface on which a holder of the multi-needle head is placed, the stand being configured to maintain a space between the reference surface and the stand surface; and an adjusting portion capable of adjusting a space between a bottom surface of the holder and the reference surface, wherein when the multi-needle head is in a state of being placed on the stand surface, the space between the bottom surface of the holder and the reference surface is adjusted until each end portion of all of a plurality of needles is in contact with the reference surface.
9. The device of claim 8, wherein the reference surface is inclined at a predetermined angle to the ground, and a stand surface is arranged at an angle perpendicular to the reference surface so that the multi-needle head is diagonally placed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The above and other objectives, features, and other advantages of the present disclosure will be more clearly understood from the following detailed description when taken in conjunction with the accompanying drawings, in which:
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
DETAILED DESCRIPTION OF THE INVENTION
[0044] Hereinafter, an embodiment of the present disclosure will be described in detail with reference to the accompanying drawings.
[0045] However, embodiments of the present disclosure may be modified in a variety of different forms, and the scope of the present disclosure is not limited to the embodiments described below. The shapes and sizes of the elements in the drawings may be exaggerated for clarity, and elements denoted by the same reference numerals in the drawings are the same elements.
[0046] Throughout the specification, it will be understood that when an element is referred to as being “connected” to another element, it can be directly connected to the other element or it can be electrically connected with the other element and intervening elements may be present therebetween. In addition, it will be further understood that when a part “comprises”, “includes”, or “has” an element, this means that other elements are not excluded but may be further included, unless otherwise stated.
[0047] Also, the terms such as “first”, “second”, etc. may be used to distinguish one element from another element, and the scope of the present disclosure must not be limited by these terms. For example, a first constitutive element may be referred as a second constitutive element, and the second constitutive element may be also referred to as the first constitutive element.
[0048]
[0049]
[0050] The present disclosure relates to a multi-needle head used in a device that discharges liquid, and may be broadly applied to a device in which a needle is used in a nozzle that discharges liquid. In the present disclosure, using a pressure, an electric field, or the like during a process of discharging liquid is not specifically limited. Further, as long as features of the present disclosure are not impaired, all types of devices may be applicable to the present disclosure. In addition, forms in which liquid is discharged are also not particularly limited. Further, not only when a single droplet is sequentially discharged for forming a pattern or liquid is continuously discharged for spinning but also when droplets are injected in a spray form for coating may be applicable to the present disclosure.
[0051] The multi-needle head of the present embodiment includes a nozzle portion 10 in which a plurality of needles is disposed, and the nozzle portion 10 includes at least one adapter 200 in which the plurality of needles is respectively installed and a holder 300 that fixes the adapter 200.
[0052] The nozzle portion 10 is an element in which the plurality of needles 100 as a plurality of nozzles is disposed and aligned, the plurality of nozzles being configured such that liquid is discharged therethrough from a head of a liquid discharge device. Further, a manifold configured to uniformly supply the liquid will be described later in detail, and a configuration of the nozzle portion 10 will be described first.
[0053] The adapter 200 is an element in which the needle 100 is mounted in a fixed state such that the needle 100 is easily aligned. In the present embodiment, the needle 100 is mounted on a lower portion of a body of the adapter 200, and a fixing groove for fixing an O-ring 220 is formed on an upper portion of the body of the adapter 200. The O-ring 220 is fitted around the body of the adapter 200, and a position of the O-ring 200 with respect to the adapter 200 is fixed. Conventionally, a Luer-lock adapter that fixes a needle via threads was applied as an adapter for fixing a needle, and was useful when the Luer-lock adapter is applied to a head that is provided with a single needle.
[0054] However, there is a problem that the Luer-lock adapter is difficult to be applied to a multi-needle head that is provided with a plurality of needles. In the present disclosure, the adapter 200 and the holder 300 which are a new type and which solve the problem that occurs when the Luer-lock adapter is applied are provided.
[0055] A material of the adapter 200 and a material of the O-ring 220 are not particularly limited, and a suitable material may be applied depending upon the need. When electricity is required to be applied to the needle 100, the adapter 200 may be formed of a conductive material, or the adapter 200 may be formed of a non-conductive material and a conductive structure for applying electricity may be added on the needle 100. In terms of a function of the O-ring 220, it is preferable that the O-ring 220 is applied with a material having a certain degree of elasticity.
[0056] The holder 300 is an element that fixes the adapter 200, and is provided with a fixing hole 310 into which the adapter 200 is inserted. The fixing hole 310 is formed in consideration of a cross-sectional shape and a size of the adapter 200, and an O-ring fixing portion 320 having an inner diameter thereof larger than that of the fixing hole 310 is formed in the middle of the fixing hole 310 so that the O-ring 220 is positioned therein. It is preferable that an inner surface of the fixing hole 310 is in close contact with an outer surface of the adapter 200 when the adapter 200 is inserted. Therefore, it is preferable that when liquid is provided to the adapter 200 from above the adapter 200, the liquid moves only through a pipe formed in an inner portion of the adapter 200 and the liquid does not flow between the adapter 200 and the fixing hole 310.
[0057] At this time, as described above, in the present embodiment, since the O-ring 220 is mounted on the outer surface of the adapter 200, the adapter 200 on which the O-ring 220 is mounted is unable to be inserted into the fixing hole 310 that is formed in consideration of the outer surface of the adapter 200. Therefore, in the present embodiment, the holder 300 is formed in a separation type, so that the adapter 200 on which the O-ring 220 is mounted can be inserted into the fixing hole 310.
[0058] Specifically, in the present embodiment, the holder 300 is separated into two parts in a longitudinal direction in which the plurality of adapters 200 is arranged, and is separated such that vertical cross-sections are formed, so that half of the fixing hole 310 is exposed. In addition, in the middle of the fixing hole 310 of the holder 300 that is applied to the multi-needle head of the present disclosure, since the O-ring fixing portion 320 has the inner diameter thereof larger than that of the fixing hole 310 such that the O-ring 220 is positioned therein, the body of the adapter 200 on which the O-ring 220 is mounted is fixed in a state of being inserted into the fixing hole 310 when the adapter 200 on which the O-ring 220 is mounted is positioned between the parts of the holder 300 that are separated into the two parts and then the separated parts of the holder 300 are fastened to each other.
[0059] At this time, a vertical width of the O-ring fixing portion 320 is designed to be larger than a vertical width of the O-ring 220, and each O-ring 220 of each adapter 200 may be inserted and fixed at different heights. In addition, the cross-sectional shape and the size of the O-ring fixing portion 320 are designed in consideration of the O-ring 220, and may be designed to have a size smaller at a predetermined ratio than the size of the O-ring 220 so that the O-ring 220 having elasticity is more strongly fixed. In this structure, when the separated parts of the holder 300 are strongly coupled to each other, the inner surfaces of the fixing hole 310 and the O-ring fixing portion 320 are in close contact with the body of the adapter 200 and the outer surface of the O-ring 220, and the adapter 200 is fixed. Further, a height of the adapter 200 and a height of the O-ring 220 are constantly fixed.
[0060] In the illustrated structure, the holder 300 is separated in the longitudinal direction in which the plurality of adapters 200 is arranged, but the holder 300 may be shortly separated in a front-rear direction. In this situation, although the number of separated parts of the holder 300 increases, utilization of the holder 300 increases by adding or removing the holder 300 depending on the number of needles 100 and the number of adapters 200. In the illustrated structure, the holder 300 is required to be separately manufactured depending on the number of adapters 200. However, as the number of parts of the holder 300 is constant at two, the assembly process is more easily performed. Therefore, it is preferable to select the appropriate type of holder 300 by considering the utilization of the holder 300 and ease of assembly of the holder 300. In addition, in the illustrated structure, the holder 300 is separated by cutting the holder 300 in a direction perpendicular to the ground. However, the holder 300 may be separated by cutting the holder 300 in a direction horizontal to the ground. When the holder 300 is separated by cutting across the O-ring fixing portion, the holder 300 may be assembled by coupling the parts of the holder 300 after mounting the O-ring 220 on the adapter 200 while the adapter 200 is inserted into the part of the holder 300. when the holder 300 is separated in the direction horizontal to the ground, the assembly process of the holder 300 is more complicated. However, on an upper surface of the adapter 200 to which the liquid is injected, there is no gap due to the separation of the holder 300, so that the risk of leakage of the liquid in the process of supplying the liquid is reduced.
[0061] When the nozzle portion 10 is assembled by fastening the holder 300 in a state in which the adapter 200 is partially inserted as illustrated in
[0062] The structure of the adapter 200 and the structure of the holder 300 are configurations for aligning an end portions of the needles 100 that are respectively mounted on the plurality of adapters 200. As illustrated in
[0063] As described above, in the multi-needle head of the present embodiment, since the vertical width of the O-ring fixing portion 320 that is formed in the fixing hole 310 of the holder 300 is larger than the vertical width of the O-ring 220, the height at which the O-ring 220 is fixed may be adjusted. Further, as illustrated in
[0064] Hereinafter, with respect to the nozzle portion 10 of the multi-needle head of the present embodiment, a method of aligning the heights of the end portions of the needles 100 to be the same and a method of assembling the nozzle portion 10 will be described.
[0065]
[0066] An aligning method of the present embodiment is a method of aligning the heights of the end portions of the needles 100 to be the same and of assembling the needle portion 10 during a process of assembling the nozzle portion 10 of the multi-needle head illustrated in
[0067] The temporally assembling refers to a state in which the adapter 200 on which the O-ring 220 is mounted is inserted into the fixing hole 310 of the holder 300 but the holder 300 separated into a plurality of parts is not completely fastened. In the state in which the holder 300 is not completely fastened, the adapter 200 is in a state in which the adapter 200 that is inserted into the fixing hole 310 is capable of being moved vertically. Further, when the holder 300 is fastened by using a bolt, the bolt may not be fully tightened. In addition, it is possible to fix the holder 300 by using a temporary fixing device. Further, when a method other than bolting is applied, the method may be applied by modifying a suitable process.
[0068] In the aligning, the adapters 200 are moved in the nozzle portion 10 that is temporally assembled such that the heights of the end portions of the needles 100 are adjusted to be the same. The method of aligning the heights of the end portions of the needles 100 to be the same is variously realized. For example, it is possible to perform a method that allows all needles 100 to be in contact with a flat surface by standing up the nozzle portion 10 such that the needles 100 face down on the flat surface.
[0069] The fixing process is a process that fixes the adapters 200 such that the adapters 200 respectively inserted into the fixing holes 310 are not moved, which is realized by completely fastening the holder 300 while the heights of the end portions of the needles 100 are constantly aligned when the assembling is completed. In the fixing process, the final assembly of the nozzle portion 10, which is not the temporally assembling process, is performed. In addition, when the bolting fastening is performed, the bolt is completely tightened such that the adapters 200 are not moved. Further, when other fastening method is applied, the nozzle portion 10 is assembled by fastening the holder 300 such that the adapters 200 are not moved.
[0070] When the method as described above is applied, the heights of the end portions of the needles 100 that are mounted in the multi-needle head are aligned to be the same and the nozzle portion 10 is assembled. Further, in the liquid discharge device that uses the multi-needle head, working accuracy of the liquid discharge device is improved since the liquid is discharged at the same height.
[0071] Hereinafter, an alignment device which is used in the process of aligning the heights of the end portions of the needles 100 of the multi-needle head and the process of assembling the multi-needle head and which is used by the method as described above will be described.
[0072]
[0073] The alignment device 20 for aligning the multi-needle head according to an embodiment of the present disclosure includes a reference portion 400, a stand 500, and an adjusting portion 600.
[0074] The reference portion 400 is configured to match the end portions of the needles 100. Further, the reference portion 400 has a reference surface 410 that is horizontal, so that the end portions of the needles 100 are positioned on a horizontal plane when the end portions of the needles 100 are in contact with the reference surface 410.
[0075] The stand 500 includes a stand surface 510 that is configured to hold the holder 300 in which the adapter 200 is mounted, and is configured to maintain a space between a bottom surface of the holder 300 and the reference surface 410.
[0076] The adjusting portion 600 is configured to adjust the space between the bottom surface of the holder 300 and the reference surface 410. In the structure illustrated in
[0077] Specifically, when the holder 300 is positioned on the reference surface 510 of the alignment device 20 while the holder 300 in which the adapters 200 are inserted is not completely fastened, the O-ring 200 is not completely fixed by the O-ring fixing portion 320 of the holder 300, so that the adapters 200 can be moved in the vertical direction. In this manner, by adjusting the length of the stand 500 by using the adjusting portion 600 when in the state in which the adapters 200 are capable of being moved, the space between the bottom surface of the holder 300 and the reference surface 410 is adjusted such that all of the end portions of the needles 100 are in a state of being in contact with the reference surface 410. When all of the end portions of the needles 100 are in contact with the reference surface 410 and the end portions of the needles 100 are aligned, the holder 300 is completely fastened, and the adapters 200 are strongly fixed such that the adapters 200 are unable to be moved in the vertical direction.
[0078] In this manner, when the alignment device 20 according to an embodiment of the present disclosure is used, the nozzle portion 10 may be assembled while positions of the end portions of the needles 100 are horizontally aligned.
[0079]
[0080] In the alignment device having the structure as illustrated in
[0081] The reference portion 400 is configured to match the end portions of the needles 100. Further, the reference surface 410 that is flat is formed but the reference surface 410 is disposed to be inclined at a predetermined angle. At this time, since the arrangement of the reference surface 410 is only inclined and the reference surface 410 is a flat plane, the heights of the end portions of the needles 100 are aligned to be the same when the end portions of the needles 100 are in contact with the reference surface 410.
[0082] The stand 500 includes the stand surface 510 that is configured to hold the holder 300 in which the adapter 200 is mounted, and is configured to maintain the space between the bottom surface of the holder 300 and the reference surface 410. In the present embodiment, the stand surface 510 is tilted to a predetermined angle corresponding to the reference surface 410, and a side surface of the holder 300 is placed on the stand surface 510. In this manner, since not the bottom surface of the holder 300 but the side surface of the holder 300 is placed on the stand surface 510, there is an effect that the weight applied to the needles 100 is dispersed.
[0083] The adjusting portion 600 is configured to adjust the space between the bottom surface of the holder 300 and the reference surface 410. In the present embodiment, the space between the bottom surface of the holder 300 and the reference surface 410 is adjusted by moving the adjusting portion 600 in a diagonal direction that is perpendicular to the reference surface 410.
[0084] Specifically, when the side surface of the holder 300 is placed on the reference surface 510 of the alignment device 20 such that the holder 300 is diagonally positioned while the holder 300 in which the adapters 200 are inserted is not completely fastened, the adapters 200 can be moved in the diagonal direction since the O-ring fixing portion 320 of the holder 300 are not completely fixing the O-ring 220. In this manner, when in the state in which the adapters 200 are capable of being moved, the space between the bottom surface of the holder 300 and the reference surface 410 is adjusted such that all of the end portions of the needles 100 are in a state of being in contact with the reference surface 410 by using the adjusting portion 600. When all of the end portions of the needles 100 are in contact with the reference surface 410 and the end portions of the needles 100 are aligned, the holder 300 is completely fastened, and the adapters 200 are strongly fixed such that the adapters 200 are unable to be moved.
[0085] In this manner, when the alignment device 20 according to an embodiment of the present disclosure is used, the nozzle portion 10 may be assembled while the weight applied to the needles 100 is dispersed and positions of the end portions of the needles 100 are horizontally aligned.
[0086] Hereinafter, a configuration of the manifold which is coupled to the nozzle portion 10 mounted with the needles 100 and which is configured to supply the liquid will be described, and the multi-needle head in which the nozzle portion 10 and the manifold are coupled will be described.
[0087]
[0088]
[0089] The manifold 30 in the present embodiment is coupled to the upper portion of the nozzle portion 10, and a supply pipe 810, a collecting pipe 820, and an exhaust pipe 900 are connected to a housing 700 in which a cavity 720 is formed.
[0090] The cavity 720 that is formed by opening a lower surface of the housing 700 is positioned on a position corresponding to the connecting holes that are respectively formed on the adapters 200 in order to supply the liquid exposed on the upper surface of the nozzle portion 10 to the needles 100. In the multi-needle head in which the liquid is discharged to the plurality of needles 100, since the liquid is required to be simultaneously discharged at the same discharge pressure from the plurality of needles 100, the single cavity 720 in which a predetermined amount of ink can be filled is formed on the upper portion of the nozzle portion 10. In this manner, when the liquid is additionally input after the liquid is fully filled in the single cavity 720 that is connected to all of the plurality of the adapters 200, the liquid is discharged at the same discharge pressure from the plurality of needles 100 by an input pressure. The size of the cavity 720 is not specifically determined, and may be variously adjusted depending on the need.
[0091] The supply pipe 810 is connected to the cavity 720, and is configured to supply the liquid to the cavity 720. In a general needle head, a supply pipe for supplying liquid to a needle is only provided. However, in the present embodiment, the collecting pipe 820 and the exhaust pipe 900 are additionally connected to the housing 700 of the manifold 30.
[0092] As described above, when the cavity 720 is formed such that the liquid is simultaneously discharged from the plurality of needles 100 that is mounted in the multi-needle head, the liquid is started to be discharged after the cavity 720 is completely filled. At this time, during a process of filling the cavity 720, there is a high possibility that bubbles may be generated or air remaining in the cavity 720 becomes bubbles. Further, when bubbles are moved into the needles 100, bubbles interrupt the liquid from being moved into the needles 100 that have small inner diameters. Generally, the pressure applied during the process of discharging the liquid is not sufficient to remove bubbles that are blocking the needles, so that there is a problem that the operation is required to be performed after the entire device is stopped and bubbles are removed.
[0093] In the present embodiment, by using the collecting pipe 820 and the exhaust pipe 900, the problem caused by bubbles generated inside the cavity 720 may be prevented. At the beginning of injecting the liquid, the generation of bubbles may be prevented by discharging air existing inside the cavity 720 to the outside through the collecting pipe 820 and the exhaust pipe 900. Next, when in a situation in which the cavity 720 is fully filled with the liquid and a liquid discharge operation is performed, bubbles inside the cavity 720 may be discharged through the collecting pipe 820 instead of the needles 100 by discharging the ink through the collecting pipe 820. In the exhaust pipe 900, a valve 910 is mounted, so that the exhaust pipe 900 can be opened when the exhaust pipe 900 is required to be opened, such as at the beginning of injecting the liquid. Further, the exhaust pipe 900 is configured to be closed in other situations.
[0094] In addition, when the cavity 720 is formed such that the liquid is simultaneously discharged from the plurality of needles 100 that is mounted in the multi-needle head, there is no problem when the discharging of the liquid is continuously performed. However, when the discharging of the liquid is stopped, a problem occurs by the liquid remaining in the cavity 720. For example, various substances configuring the liquid are required to be evenly mixed. However, while the liquid stagnates in the cavity 720, there may be a problem that the homogeneity of the liquid may collapse, such as the separation of the substances due to a difference in a specific gravity or the like. However, in the present embodiment, since the collecting pipe 820 is added, the liquid does not stagnate in the cavity 720 and is discharged through the collecting pipe 820, so that the liquid is continuously moved and maintains the homogeneity.
[0095] A method of coupling the manifold 30 and the nozzle portion 10 to each other is not specifically limited, and the fastening method by using the bolt as illustrated in the drawings may be applied or other methods may be applied.
[0096] Hereinafter, a process of using the multi-needle head in which the nozzle portion 10 and the manifold 30 are coupled to each other will be described.
[0097] In the multi-needle head of the present disclosure, an initial process in which the cavity 720 that is formed above the adapters 200 is filled is performed before the operation of discharging the liquid is performed. The liquid is supplied to the cavity 720 through the supply pipe 810, and air filled inside the cavity 720 is discharged through the collecting pipe 820. At this time, when the valve 910 connected to the exhaust pipe 900 is opened, the air inside the cavity 720 is further discharged through the exhaust pipe 900, so that the air is quickly discharged. Therefore, the air is prevented from remaining inside the cavity 720 and from generating bubbles. In addition, since the thickness of each needle 100 is very thin, the discharging of the liquid through the needles 100 does not occur during the initial process in which the cavity 720 is filled with the liquid.
[0098] When the cavity 720 is sufficiently filled, the valve 910 is closed. Further, it is preferable that the valve 910 is closed after the air inside the cavity 720 is completely discharged. At this time, there is a high possibility that bubbles are generated during the process of filling the cavity 720. However, as illustrated in the drawings, when the valve 910 is closed after a predetermined amount of an upper portion of the liquid containing microbubbles is discharged to the outside of the valve 910 through the exhaust pipe 900, not only the air inside the cavity 720 but also microbubbles generated during filling the cavity 720 with the liquid may be removed. The collecting pipe 820 maintains an open state. Finally, the cavity 720 is fully filled with the liquid while microbubbles are removed through the exhaust pipe 900.
[0099] By blocking a flow of the liquid inside the collecting pipe 820 or increasing a flow rate of the liquid that flows into the supply pipe 810 to be larger than a flow rate of the liquid that flows into the collecting pipe 820 after the cavity 720 is completely filled with the liquid, the operation of discharging the liquid through the needles 100 may be performed.
[0100] As described above, when the liquid is discharged to the outside through the collecting pipe 820 while the operation of discharging the liquid is being performed, bubbles generated inside the cavity 720 or bubbles introduced through the supply pipe 810 do not block the needles and are discharged to the outside through the collecting pipe 820.
[0101] In summary, in the method of using the multi-needle head as described above, the liquid discharge device including the multi-needle head of the present disclosure may be divided into a preparation process and an operation process depending on a process in which the liquid discharge device is used.
[0102] The preparation process is a process in which the device is prepared before the operation of discharging the liquid is performed. Further, in the multi-needle head having the structure as described above, since the cavity 730 adjacent to the nozzle portion 10 is required to be completely filled with the liquid so as to discharge the liquid at the same pressure from all of the needles 100, the process of filling the liquid in the cavity 720 is performed. The air is filled inside the cavity 720 before the liquid is injected into the cavity 720 through the supply pipe 810 that is connected to the manifold 30. Further, during a process of injecting the liquid through the supply pipe 810, it is preferable that the air filled inside the cavity 720 is not moved to the supply pipe 810. In the present embodiment, the air is discharged through the collecting pipe 820, and the air inside the cavity 720 is also discharged through the exhaust pipe 900 in which the valve 910 is opened. Therefore, the air inside the cavity 720 is easily discharged. Further, during this process, the problem that the air flows backward to the supply pipe 810 or bubbles stagnate inside the cavity 720 does not occur.
[0103] The operation process is a process in which the discharging of the liquid is performed after the liquid is completely filled inside the cavity 720 and preparing for other portions is completed. At this time, the valve 910 of the exhaust pipe 900 is closed, and the liquid is prevented from leaking into the exhaust pipe 900. In addition, by discharging the liquid through the collecting pipe 820 at all times or optionally depending on the need, bubbles introduced into the cavity 720 are discharged together with the liquid through the collecting pipe 820, so that the problem that bubbles block the needles 100 does not occur. Meanwhile, the valve 910 of the exhaust pipe 900 is closed when the operation of discharging the liquid is performed. However, the valve 910 is not always closed when the cavity 720 is filled with the liquid. During the operation, it is also possible to stop the operation for the purpose of maintenance or the like, and then bubbles inside the cavity 720 can be removed by opening the valve 910 while the cavity 720 is filled with the liquid.
[0104] By applying the structure and the using method as described above, the problem that bubbles are generated inside the multi-needle head which discharges the liquid from the plurality of needles 100 may be reduced. Further, there is an effect that bubbles do not block the needles 100 and are discharged outside the multi-needle head even if bubbles are generated or introduced. Although the preferred embodiments of the present disclosure have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the technical idea of the present disclosure. Therefore, the scope of protection of the present disclosure should be determined by the scope of the appended claims, rather than the specific embodiments, and all technical ideas falling within the scope of the claims should be construed as being included in the scope of the present disclosure.