Liquid dispensing head
The liquid discharge head addresses the issue of ink thickening near the ejection port by implementing a circulation system with supply and recovery through-holes and channels, ensuring effective ejection speed and accuracy.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- CANON KK
- Filing Date
- 2022-03-14
- Publication Date
- 2026-05-25
AI Technical Summary
Existing liquid ejection heads fail to effectively suppress the thickening of liquid near the ejection port due to re-inflow of concentrated ink from individual channels, which affects ejection speed and accuracy.
A liquid discharge head design with individual flow channels that communicate with discharge ports, incorporating supply and recovery through-holes and channels to facilitate circulation, preventing re-inflow of liquid from outlets into channels.
The design allows for efficient circulation of liquid through individual channels, suppressing the re-inflow of concentrated ink and maintaining ejection quality by replacing it with fresh ink.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a liquid ejection head.
Background Art
[0002] In a liquid ejection head that ejects a liquid such as ink, the volatile components in the liquid may evaporate, causing the liquid near the ejection port to thicken. The thickening of the liquid may affect the ejection speed and landing accuracy of the ejected liquid droplets. In order to suppress the thickening of the liquid, it has been proposed to cause a minute liquid circulation (microcirculation) in an individual flow path including the ejection port, and to cause a larger-scale liquid circulation (macro circulation) in a common flow path communicating with the individual flow path. Patent Document 1 discloses a liquid ejection head in which a microcirculation region is provided on one surface of a substrate, a macro circulation region is provided on the other surface, and these regions are communicated with each other by through holes provided in the substrate. Patent Document 2 discloses a liquid ejection head in which individual flow paths for performing microcirculation are arranged close to a common flow path for performing macro circulation.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Patent Document 2
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the liquid ejection head described in Patent Document 1, the microcirculation region and the macrocirculation region are separated. As a result, concentrated ink that flows out from the individual channels is easily re-introduced from the individual channels by microcirculation. In the liquid ejection head described in Patent Document 2, concentrated ink that flows out from the individual channels is accumulated downstream by macrocirculation. However, when ink is ejected from the ejection port, ink is supplied from the inlet and outlet of the individual channels, so concentrated ink is also supplied to the individual channels from the outlet. Therefore, these liquid ejection heads may not be able to suppress the thickening of the ink near the ejection port.
[0005] The present invention aims to provide a liquid discharge head having individual flow channels that communicate with the discharge port, which allows liquid to circulate through the individual flow channels and suppresses the re-inflow of liquid that has flowed out of the individual flow channels into the individual flow channels. [Means for solving the problem]
[0006] The liquid discharge head of the present invention is a substrate having a first surface, and a plurality of individual channels provided on the first surface of the substrate, communicating with a liquid discharge port and having inlets and outlets. It has a row of flow channels arranged in a first direction. A substrate having a supply through-hole that penetrates the substrate to supply liquid to an inlet, and a recovery through-hole that penetrates the substrate to recover liquid from an outlet, and supplying liquid to the supply through-hole and extending in the first direction Liquid is recovered from the supply channel and the recovery through-hole. and extending in the first direction The system has a recovery channel, a supply channel, a supply through-hole, a connection region provided on the first surface of the substrate that communicates with the outlet of an individual channel, a recovery through-hole, and a circulation channel through which liquid flows in that order. [Effects of the Invention]
[0007] According to the present invention, it is possible to provide a liquid discharge head having individual flow paths that communicate with a discharge port, which allows liquid to circulate through the individual flow paths and suppresses the re-inflow of liquid that has flowed out of the individual flow paths into the individual flow paths. [Brief explanation of the drawing]
[0008] [Figure 1]This is a schematic diagram of the main parts of the liquid discharge head according to the first embodiment of the present invention. [Figure 2] This is a schematic diagram of the main part of a liquid discharge head according to a second embodiment of the present invention. [Figure 3] This is a schematic diagram of the main parts of a liquid discharge head according to a third embodiment of the present invention. [Figure 4] This is a schematic diagram of the main parts of a liquid discharge head according to a fourth embodiment of the present invention. [Figure 5] This is a schematic diagram of the main parts of a liquid discharge head according to a fifth embodiment of the present invention. [Figure 6] This is a schematic diagram of the main parts of a liquid discharge head according to the sixth embodiment of the present invention. [Figure 7] This is a schematic diagram of the main parts of a comparative example liquid dispensing head. [Modes for carrying out the invention]
[0009] The following describes some embodiments of the liquid ejection head of the present invention with reference to the drawings. The embodiments described below are suitable specific examples of the present invention and are therefore subject to various technically preferred limitations. However, it goes without saying that the present invention is not limited to these embodiments. The liquid ejection head of the present invention is applicable to devices such as printers, copiers, facsimile machines with communication systems, word processors with printer units, and industrial recording devices combined with various processing devices. The following embodiments focus on ink ejection heads that eject ink, but the present invention can also be used for applications that eject liquids other than ink, such as biochip manufacturing and electronic circuit printing.
[0010] In the following description and drawings, the first surface 1A of the substrate 1 is the surface on which the individual flow channels 4 and discharge ports 5 are formed, and the second surface 1B of the substrate 1 is the back surface of the first surface 1A. The first direction X is parallel to the first and second surfaces 1A and 1B of the substrate 1 and is the direction in which the flow channel row 31, discharge port row 32, and through-hole row 33-35 described below extend. The first direction X corresponds to the longitudinal direction of the liquid discharge head 100. The second direction Y is parallel to the first and second surfaces 1A and 1B of the substrate 1 and is perpendicular to the first direction X. The second direction Y corresponds to the short direction of the liquid discharge head 100. The Z direction is perpendicular to the first and second surfaces 1A and 1B of the substrate 1, that is, perpendicular to the first direction X and the second direction Y.
[0011] (First embodiment) Figure 1 is a schematic diagram illustrating in detail the vicinity of the discharge port 5 of the liquid discharge head 100 of the first embodiment. Figure 1(a) is a plan view of the liquid discharge head 100 as seen from the Z direction, showing the macrocirculation of ink. Figure 1(b) is a cross-sectional view along line AA of Figure 1(a) as seen from the first direction X, showing the microcirculation and macrocirculation of ink. Figure 1(c) is an enlarged view of part B of Figure 1(a), showing the microcirculation of ink. The liquid discharge head 100 includes a substrate 1, a discharge port forming member 2 provided on the substrate 1, and a flow path member 3 located on the opposite side of the discharge port forming member 2 and supporting the substrate 1. The substrate 1 is a parallelogram that is longer in the first direction X and shorter in the second direction Y. A plurality of individual flow paths 4 are formed between the substrate 1 and the discharge port forming member 2. The discharge port forming member 2 has a discharge port 5 that communicates with the individual flow paths 4 and discharges ink. An energy generating element 6 is formed on the substrate 1 at a position opposite the ejection port 5, which provides energy to the ink for ejection. A recirculation element 7 is also formed on the substrate 1, which provides energy to the ink for microcirculation (described later). The energy generated by the recirculation element 7 is not large enough to eject the ink. Electrothermal conversion elements and piezoelectric elements can be used as the energy generating element 6 and the recirculation element 7.
[0012] The individual flow channels 4 are provided on the first surface 1A of the substrate 1 and are channels through which ink is recirculated. The individual flow channels 4 have a roughly U-shape, with a recirculation element 7 on the upstream side and an energy generation element 6 on the downstream side. A partition wall 16 is provided between the energy generation element 6 and the recirculation element 7. Multiple individual flow channels 4 form a flow channel row 31 extending in a first direction X, and accordingly, the discharge ports 5 form a discharge port row 32 extending in the first direction X. In Figure 1(a), four individual flow channels 4 are arranged in the first direction X, but in reality, more individual flow channels 4 are arranged in the first direction X. In this embodiment, two flow channel rows 31 are provided. On the first surface 1A of the substrate 1, a connection area 8 is provided that communicates with the inlets 41 and outlets 42 of the multiple individual flow channels 4. The connection area 8 is arranged in a second direction Y, adjacent to the inlets 41 and outlets 42 of the multiple individual flow channels 4. A filter member 19 is provided in front of the outlet 42.
[0013] When the energy generating element 6 is not driven (when ink is not being ejected), ink that enters the individual channel 4 from the connection region 8 through the inlet 41 is driven by the recirculation element 7, passes through the energy generating element 6, and flows out to the connection region 8 from the outlet 42. This creates microcirculation C1 in the individual channel 4. Microcirculation C1 is a minute circulation of ink within each individual channel 4 unit caused by the recirculation element 7. That is, microcirculation C1 occurs in each individual channel 4, which includes one ejection port 5, one energy generating element 6, and one recirculation element 7. When ink is not being ejected, the concentrated ink that has thickened due to evaporation from the ejection port 5 flows out from the outlet 42 of the individual channel 4 by microcirculation C1. This replaces the concentrated ink near the ejection port 5 with fresh ink, thereby suppressing clogging of the ejection port 5.
[0014] The substrate 1 has a supply through-hole 9 and a recovery through-hole 10 that penetrate through the substrate 1. The supply through-hole 9 and the recovery through-hole 10 penetrate the substrate 1 from the first surface 1A to the second surface 1B. Viewed from the Z direction, the supply through-hole 9 and the recovery through-hole 10 are located in the connection region 8. The flow channel member 3 is provided with a supply channel 11 and a recovery channel 12 facing the second surface 1B of the substrate 1. The supply channel 11 is connected to the supply through-hole 9, and the recovery channel 12 is connected to the recovery through-hole 10. Viewed from the Z direction, the supply channel 11 and the recovery channel 12 are separated from each other by a partition wall 13 provided between the supply through-hole 9 and the recovery through-hole 10. The partition wall 13 extends linearly in the first direction X, but its shape is not limited as long as the supply channel 11 and the recovery channel 12 can be separated. With the above configuration, the connection region 8, supply through-hole 9, recovery through-hole 10, supply channel 11, and recovery channel 12 form ink circulation channels 8-12. Ink flows into the first surface 1A of the substrate 1 through the supply channel 11 and supply through-hole 9, and flows through the connection region 8 of the first surface 1A, then through the recovery through-hole 10 and recovery channel 12 in that order. The supply through-hole 9 supplies ink to the connection region 8, and further supplies ink to the multiple individual channels 4 via the connection region 8. The recovery through-hole 10 recovers ink from the connection region 8. In other words, the recovery through-hole 10 recovers ink from the multiple individual channels 4 via the connection region 8.
[0015] Thus, circulation channels 8-12 are channels that communicate with multiple individual channels 4 and recirculate ink. The ink circulation that occurs in circulation channels 8-12 is called macrocirculation C2. Macrocirculation C2 is a circulation over a larger range than microcirculation C1. As will be described later, macrocirculation C2 does not necessarily need to supply ink to individual channels 4, but it is configured to recirculate the ink flowing out of individual channels 4. Macrocirculation C2 is generated by recirculation elements for macrocirculation provided in circulation channels 8-12, and by circulation pumps (neither shown) provided outside the substrate 1.
[0016] A plurality of supply through-holes 9 and recovery through-holes 10 are provided in the first direction X respectively, forming a supply through-hole row 33 and a recovery through-hole row 34. In Fig. 1(a), two supply through-holes 9 and two recovery through-holes 10 are arranged in the first direction X. Actually, more supply through-holes 9 and recovery through-holes 10 are arranged in the first direction X. The supply through-hole row 33 and the recovery through-hole row 34 are located between two flow path rows 31 in the second direction Y. The flow path rows 31 are provided on both sides of the supply through-hole row 33 and the recovery through-hole row 34 in the second direction Y. That is, a pair of through-hole rows 33, 34 are shared by two flow path rows 31 combined with this. Thereby, the number of through-hole rows 33, 34 can be suppressed. Each supply through-hole 9 and the corresponding recovery through-hole 10 are adjacent to each other in the second direction Y. The macro circulation C2 mainly flows from each supply through-hole 9 toward the corresponding recovery through-hole 10. Therefore, in the connection region 8, the macro circulation C2 generally occurs in the second direction Y.
[0017] Here, a comparative example will be described with reference to Figure 7. Figure 7 is a schematic diagram illustrating in detail the vicinity of the discharge port 5 of the liquid discharge head 101 of the comparative example. Figure 7(a) is a plan view of the liquid discharge head 101 as seen from the Z direction, and Figure 7(b) is a cross-sectional view along line AA of Figure 7(a) as seen from the first direction X. In the comparative example, due to microcirculation C1 within the individual channel 4, as indicated by arrow C3, concentrated ink that has flowed out from the outlet 42 of the individual channel 4 may re-flow into the individual channel 4 from the inlet 41 of the individual channel 4. Due to this re-inflow of concentrated ink, the concentrated ink in the individual channel 4 may not be efficiently replaced with fresh ink. This problem can be solved, for example, by arranging the inlet 41 away from the outlet 42 as in the fourth to sixth embodiments, but when ink is discharged, ink flows into the individual circuit from both the inlet 41 and the outlet 42, so concentrated ink may backflow into the individual channel 4. In other words, even if the inlet 41 is positioned away from the outlet 42, there is still a possibility of poor ink ejection or printing defects due to concentrated ink during ink ejection. These problems are caused by concentrated ink flowing out from the outlet 42 of the individual channel 4 re-flowing into the individual channel 4 through at least one of the inlet 41 and the outlet 42. Therefore, it is desirable to discharge the concentrated ink that flows out from the outlet 42 of the individual channel 4 into the connection area 8 from the connection area 8 without allowing it to flow back into the individual channel 4.
[0018] One of the causes of the above problems in the comparative example is that the individual flow path 4 that performs the microcirculation C1 and the circulation flow path that performs the macrocirculation C2 communicate with each other only through the through hole 109 of the substrate 1. Since the microcirculation C1 occurs only on the first surface 1A side of the substrate 1 and the macrocirculation C2 occurs only on the second surface 1B side of the substrate 1, the effect of replacing the concentrated ink in the individual flow path 4 with fresh ink by the macrocirculation C2 is limited. Therefore, the concentrated ink flowing out from the outlet 42 of the individual flow path 4 cannot be efficiently discharged from the connection region 8. On the other hand, in the present embodiment, since the supply flow path 11 and the recovery flow path 12 are separated from each other by the partition wall 13, the macrocirculation C2 flows through the supply through hole 9 to the connection region 8 on the first surface 1A of the substrate 1, that is, in the vicinity of the outlet 42 of the individual flow path 4. In other words, the macrocirculation C2 flows at the same level as the microcirculation C1 in the Z direction. The concentrated ink flowing out from the individual flow path 4 to the connection region 8 by the microcirculation C1 is efficiently discharged from the connection region 8 by the macrocirculation C2, and the individual flow path 4 is replaced with fresh ink. Since the concentrated ink is unlikely to stay in the connection region 8, the possibility of the concentrated ink flowing backward from the connection region 8 to the individual flow path 4 during ink ejection is also reduced. Thereby, the influence of the concentrated ink flowing out from the outlet 42 of the individual flow path 4 can be reduced. In the present embodiment, the recirculation element 7 is an electrothermal conversion element. However, when a piezo element is used, depending on the driving method, the inlet 41 and the outlet 42 of the individual flow path 4 may be reversed compared to the present embodiment. In this case, the same configuration as in the present embodiment can be applied.
[0019] (Second Embodiment) FIGS. 2 are schematic views for explaining in detail the vicinity of the discharge port 5 of the liquid discharge head 100 according to the second embodiment. FIG. 2(a) is a plan view of the liquid discharge head 100 as viewed from the Z direction, FIG. 2(b) is a cross-sectional view taken along the line A-A of FIG. 2(a) as viewed from the first direction X, and FIG. 2(c) is a cross-sectional view taken along the line B-B of FIG. 2(a) as viewed from the first direction X. FIGS. 2(b) and 2(c) show the microcirculation C1 and the macrocirculation C2 of the ink. Hereinafter, the description will focus on the differences from the first embodiment. The configurations and effects for which the description is omitted are the same as those in the first embodiment.
[0020] The supply through-hole 9 and the recovery through-hole 10 work together to form a row of through-holes 35 extending in a first direction X. The supply through-holes 9 and the recovery through-holes 10 are arranged alternately in the first direction X, and the macrocirculation C2 flows between the supply through-holes 9 and the recovery through-holes 10 in the first direction X. The flow path rows 31 are provided on both sides of the through-hole row 35 in a second direction Y. That is, one row of through-holes 35 is combined with two flow path rows 31. The circulation flow paths 8-12 have a connection region 8, a supply through-hole 9, a recovery through-hole 10, a supply flow path 11, and a recovery flow path 12. The supply through-hole 9 and the recovery flow path 12 face the second surface 1B of the substrate 1 and communicate with the supply flow path 11 and the recovery through-hole 10, respectively. The partition wall 13 separating the supply channel 11 and the recovery channel 12 extends in a meandering manner along the periphery of the supply through-hole 9 and the recovery through-hole 10 when viewed from the Z direction. The supply through-hole 9 is connected to the supply channel 11 by a supply connection channel 14 that branches off from the supply channel 11 in a comb-like manner and extends in a second direction Y. Similarly, the recovery through-hole 10 is connected to the recovery channel 12 by a recovery connection channel 15 that branches off from the recovery channel 12 in a comb-like manner and extends in a second direction Y.
[0021] In the first embodiment, the macrocirculation C2 flows in the connection region 8 mainly in the second direction Y between the supply through-hole row 33 and the recovery through-hole row 34. In contrast, in this embodiment, the macrocirculation C2 flows in the first direction X in the connection region 8, and the ink flow is particularly dominant in the region along the through-hole row 35. As a result, the macrocirculation C2 can flow in a region close to the outlet 42 of the individual channel 4. Because the supply through-holes 9 and recovery through-holes 10 are arranged alternately, the macrocirculation C2 flows more uniformly in the second direction Y. For these reasons, the concentrated ink that has leaked out from the outlet 42 of the individual channel 4 can be discharged from the connection region 8 more efficiently. In addition, in this embodiment, because the supply through-holes 9 and recovery through-holes 10 are arranged alternately, only one row of through-hole row 35 is needed. Therefore, compared to the first embodiment, the space between the through-holes and the rows of through-holes is reduced, and the dimensions of the liquid discharge head 100 in the second direction Y can be reduced.
[0022] (Third embodiment) Figure 3 is a schematic diagram illustrating in detail the vicinity of the discharge port 5 of the liquid discharge head 100 of the third embodiment. Figure 3(a) is a plan view of the liquid discharge head 100 as seen from the Z direction, Figure 3(b) is a cross-sectional view along line AA of Figure 3(a) as seen from the first direction X, and Figure 3(c) is a cross-sectional view along line BB of Figure 3(a) as seen from the first direction X. Figures 3(b) and 3(c) show the microcirculation C1 and macrocirculation C2 of the ink. The following description will focus on the differences from the second embodiment. Configurations and effects that are not described are the same as in the first and second embodiments. Multiple through-hole rows 35 are provided, and flow path rows 31 are provided on both sides of each through-hole row 35 in the second direction Y. That is, one row of through-hole rows 35 is combined with two flow path rows 31. The supply connection flow path 14 branches off from the supply flow path 11 in a comb-like manner and extends in the second direction Y. The supply connection channel 14 is connected to each supply through-hole 9 in a plurality of (two in this embodiment) rows of through-holes 35 that are at the same position in the first direction X. Similarly, the recovery connection channel 15 branches off from the recovery channel 12 in a comb-like manner and extends in the second direction Y. The recovery connection channel 15 is connected to each recovery through-hole 10 in a plurality of (two in this embodiment) rows of through-holes 35 that are at the same position in the first direction X. The number of rows of through-holes 35 is not limited to two; three or more rows of through-holes 35 can be provided. Since multiple rows of through-holes 35 can be provided between one supply channel 11 and one recovery channel 12, the number of discharge port rows 32 combined with them can also be increased. Therefore, many discharge ports 5 can be provided while keeping the dimensions of the liquid discharge head 100 in the second direction Y to a minimum.
[0023] (Fourth embodiment) Figure 4 is a schematic diagram illustrating in detail the vicinity of the discharge port 5 of the liquid discharge head 100 of the fourth embodiment. Figure 4(a) is a plan view of the liquid discharge head 100 as seen from the Z direction, Figure 4(b) is a cross-sectional view along line AA in Figure 4(a) as seen from the first direction X, and Figure 4(c) is a cross-sectional view along line BB in Figure 4(a) as seen from the first direction X. Figures 4(b) and 4(c) show the micro-circulation C1 and macro-circulation C2 of the ink. The following explanation will focus on the differences from the first embodiment. Configurations and effects that are not explained are the same as in the first embodiment.
[0024] The inlet 41 of the individual channel 4 is connected to another connection region 8A, which is different from the connection region 8. Rows of through-holes 35 and 36, which are combined with the individual channel 4, are provided on both sides of the individual channel 4. Row 35 of the through-holes is located in the connection region 8, and row 36 of the through-holes is located in the other connection region 8A. The other connection region 8A is provided only with supply through-holes 9, and does not have recovery through-holes 10. In other words, row 36 of the through-holes consists only of supply through-holes 9, and the other connection region 8A is connected to a supply channel 17 in which the ink does not recirculate. The supply channel 17 and the supply channel 11 are separated from each other by a partition wall 18. Unlike the first to third embodiments, the microcirculation C1 flows between different connection regions 8 and 8A.
[0025] The configuration of the connection region 8 is the same as in the second embodiment. The supply through-holes 9 and the recovery through-holes 10 are arranged alternately in the first direction X, forming a row of through-holes 35 extending in the first direction X. In the connection region 8, the macrocirculation C2 flows in the first direction X between the supply through-holes 9 and the recovery through-holes 10. The supply through-holes 9 are connected to the supply channel 11 by a supply connection channel 14 that branches off from the supply channel 11 in a comb-like manner and extends in the second direction Y. Similarly, the recovery through-holes 10 are connected to the recovery channel 12 by a recovery connection channel 15 that branches off from the recovery channel 12 in a comb-like manner and extends in the second direction Y.
[0026] When the inlet 41 and outlet 42 of an individual flow path 4 are connected to different connection regions 8, 8A, sufficient effect can be obtained by performing macro circulation C2 only in the connection region 8 connected to the outlet 42. Therefore, according to this embodiment, it is possible to rationalize the pump for macro circulation C2. However, in order to prevent concentrated ink from flowing from the connection region 8 into the individual flow path 4, it is preferable that the pressure at the inlet 41 be higher than the pressure at the outlet 42. This can be achieved by controlling the pressure of the pump that supplies ink to the supply flow path 17. Since each individual flow path 4 extends linearly in the second direction Y, it has excellent arrangement efficiency. However, as long as the inlet 41 and outlet 42 are connected to different connection regions 8, the shape of the individual flow path 4 is not limited in any way and may be curved or bent. In this embodiment, the discharge ports 5 can be arranged linearly in the first direction X. However, as shown in Figure 5(d), discharge ports 5A and 5B of different sizes can be shifted in the second direction Y and arranged in the first direction X as separate rows. Although not shown in the illustration, a configuration comprising the supply through-hole row 33 and the recovery through-hole row 34 shown in the first embodiment is also applicable to this embodiment.
[0027] (Fifth embodiment) Figure 5 is a schematic diagram illustrating in detail the vicinity of the discharge port 5 of the liquid discharge head 100 in the fifth embodiment. Figure 5(a) is a plan view of the liquid discharge head 100 as seen from the Z direction, Figure 5(b) is a cross-sectional view along line AA in Figure 5(a) as seen from the first direction X, and Figure 5(c) is a cross-sectional view along line BB in Figure 5(a) as seen from the first direction X. Figures 5(b) and 5(c) show the microcirculation C1 and macrocirculation C2 of the ink. The following description will focus on the differences from the fourth embodiment. Configurations and effects that are not described are the same as in the first and fourth embodiments. In this embodiment, flow path rows 31 combined with the through-hole row 35 are provided on both sides of the through-hole row 35 in the second direction Y. The other configurations are the same as in the fourth embodiment. Since one through-hole row 35 is shared by two flow path rows 31, many discharge ports 5 can be provided while keeping the dimensions of the liquid discharge head 100 in the second direction Y to a minimum. Although not shown in the illustration, a configuration comprising the supply through-hole row 33 and the recovery through-hole row 34 shown in the first embodiment is also applicable to this embodiment.
[0028] (Sixth embodiment) Figure 6 is a schematic diagram illustrating in detail the vicinity of the discharge port 5 of the liquid discharge head 100 of the sixth embodiment. Figure 6(a) is a plan view of the liquid discharge head 100 as seen from the Z direction, Figure 6(b) is a cross-sectional view along line AA of Figure 6(a) as seen from the first direction X, and Figure 6(c) is a cross-sectional view along line BB of Figure 6(a) as seen from the first direction X. Figures 6(b) and 6(c) show the microcirculation C1 and macrocirculation C2 of the ink. The following description will focus on the differences from the fifth embodiment. Configurations and effects that are not described are the same as in the fourth and fifth embodiments. In this embodiment, as in the fourth and fifth embodiments, the inlet 41 of the individual flow path 4 is connected to another connection area 8A different from the connection area 8. Multiple through-hole rows 35 are provided, and flow path rows 31 combined with the through-hole rows 35 are provided on both sides of the central through-hole row 35 in the second direction Y. In the connection regions 8, 8A on both sides, which are combined with the individual flow paths 4, a series of through-holes 35 is provided, in which supply through-holes 9 and recovery through-holes 10 are alternately arranged in the second direction Y. Unlike the fourth and fifth embodiments, the other connection regions 8A are connected to the circulation flow paths 8-12.
[0029] Similar to the third embodiment, the supply connection channel 14 branches off from the supply channel 11 in a comb-like manner and extends in the second direction Y. The supply connection channel 14 is connected to each supply through-hole 9 in a plurality of (three in this embodiment) through-hole rows 35 that are at the same position in the first direction X. Similarly, the recovery connection channel 15 branches off from the recovery channel 12 in a comb-like manner and extends in the second direction Y. The recovery connection channel 15 is connected to each recovery through-hole 10 in a plurality of (three in this embodiment) through-hole rows 35 that are at the same position in the first direction X. The number of through-hole rows 35 is not limited to three. In this embodiment as well as in the third embodiment, multiple through-hole rows 35 can be provided between one supply channel 11 and one recovery channel 12, so the number of discharge port rows 32 combined with them can also be increased. Therefore, many discharge ports 5 can be provided while keeping the dimensions of the liquid discharge head 100 in the second direction Y to a minimum. [Explanation of Symbols]
[0030] 2 circuit boards 4 Individual channel 8 connection areas 9 Supply through hole 10 Recovery through-hole
Claims
1. A substrate having a first surface, It is provided on the first surface of the substrate, communicates with the liquid discharge port, and has an inlet and an outlet. It has a row of channels in which multiple individual channels are arranged in a first direction, A supply through-hole that penetrates the substrate and supplies liquid to the inlet, and a through-hole that penetrates the substrate A substrate having a recovery through-hole for recovering liquid from the outlet, A supply channel that supplies liquid to the supply through-hole and extends in the first direction, and a recovery channel that recovers liquid from the recovery through-hole and extends in the first direction, The supply channel, the supply through-hole, and the first surface of the substrate provided in front of the individual channels. The liquid flows in the following order: the connection area communicating with the outlet, the recovery through-hole, and the recovery channel. A liquid dispensing head having a circulation channel.
2. The supply channel and the recovery channel are provided and connected to the second surface which is the back surface of the first surface. A liquid discharge head according to claim 1, having a flow channel member.
3. The plurality of individual flow paths have a flow path row arranged in a first direction, and the supply through hole and the recovery The through-hole is adjacent to a second direction perpendicular to the first direction, the liquid according to claim 1 or 2. Body discharge head.
4. The supply channel and the recovery channel are, when viewed from a direction perpendicular to the substrate, the supply through-hole and the front The following is the claim of claim 3, which is separated from each other by a partition wall provided between it and the recovery through-hole. Liquid dispensing head.
5. The plurality of individual flow paths have a flow path row arranged in a first direction, and the supply through hole and the recovery The invention relates to claim 1 or 2, wherein the through holes are arranged alternately in the first direction in a row of through holes. Liquid dispensing head.
6. The supply channel and the recovery channel are, when viewed from a direction perpendicular to the substrate, the supply through-hole and the front Claim 5, separated from each other by a partition wall that extends in a meandering manner along the periphery of the collection through-hole. The liquid dispensing head described.
7. The supply channel and the recovery channel extend in the first direction, A branch is made from the supply channel and extends in a second direction perpendicular to the first direction, and the supply channel A supply connection channel connecting the supply through hole and the supply through hole, It branches off from the aforementioned recovery channel and extends in the second direction, and connects the recovery channel and the recovery through-hole. A liquid discharge head according to claim 5 or 6, comprising a connected recovery connection channel.
8. The flow path rows are provided on both sides of the through-hole row in a second direction perpendicular to the first direction. A liquid dispensing head according to any one of claims 5 to 7.
9. Liquid discharge according to any one of claims 5 to 7, wherein a plurality of the aforementioned rows of through holes are provided. head.
10. Multiple supply through-holes and recovery through-holes are provided in the first direction. A liquid dispensing head according to any one of claims 2 to 4.
11. The inlets of the plurality of individual flow paths are connected to the connection area, according to claims 1 to 10. A liquid dispensing head as described in item 1.
12. The inlet of the individual channel is provided on the first surface of the substrate, which is different from the connection area. A liquid discharge according to any one of claims 1 to 10, connected to a second connection region. head.
13. The liquid discharge head according to claim 12, wherein each individual flow path extends in a straight line.
14. The second connection region is connected to a supply channel in which the liquid is not recirculated, claim 12 or This is the liquid dispensing head described in 13.
15. The second connection region is connected to the circulation channel, the liquid according to claim 12 or 13. Dispensing head.