Storage device and liquid ejection device
The integration of a flexible printed circuit board with strategically positioned electrodes and wirings in the storage device enhances detection accuracy, addressing the challenge of precise liquid level monitoring.
Patent Information
- Application Number
- JP2021190869
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-25
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2041-11-25
AI Technical Summary
Conventional storage devices face challenges in accurately detecting the amount of objects stored, necessitating improvements in detection accuracy.
The storage device incorporates a flexible printed circuit board with electrodes and wirings positioned on multiple walls of a storage section, utilizing a detection circuit to enhance the detection of liquid levels by determining the position of the circuit board and electrodes.
This configuration improves the accuracy of detecting the liquid level within the storage device, ensuring precise monitoring and management of the liquid supply.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a storage device and a liquid ejection device. [Background technology]
[0002] Techniques for detecting the amount of an object stored in a storage device have been proposed. For example, Patent Document 1 describes a remaining amount detection sensor that detects the amount of content remaining in a container. This type of remaining amount detection sensor has a detection electrode arranged opposite the container and a guard electrode arranged opposite the detection electrode. The remaining amount detection sensor detects the amount of content remaining in the container based on the capacitance measured by the detection electrode, using the potential of the guard electrode as a reference potential. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-230227 Summary of the Invention [Problem to be solved by the invention]
[0004] However, depending on the application of the device that detects the amount of objects stored in the storage device, it is required to improve the detection accuracy of the amount of objects stored in the storage device. In conventional storage devices, there is room for further improvement in terms of improving the detection accuracy of the amount of objects stored. [Means for solving the problem]
[0005] In order to solve the above problems, the storage device of the present invention comprises a storage section including a plurality of walls and storing objects in a space surrounded by the plurality of walls, and a flexible printed circuit board fixed to the storage section, wherein the storage section has a first positioning section, and the flexible printed circuit board has a first electrode provided on a first wall of the plurality of walls, a second electrode provided on a second wall of the plurality of walls, a first wiring connected to the first electrode, a second wiring connected to the second electrode, and a second positioning section that determines the position of the flexible printed circuit board by connecting to the first positioning section.
[0006] In addition, a liquid ejection device according to the present invention comprises a storage device for storing liquid, a detection circuit for detecting the amount of liquid stored in the storage device, and an ejection unit for ejecting the liquid supplied from the storage device, wherein the storage device includes a plurality of walls and comprises a storage unit for storing the liquid in a space surrounded by the plurality of walls, and a flexible printed circuit board fixed to the storage unit, wherein the storage unit has a first positioning unit, and the flexible printed circuit board has a first electrode provided on a first wall of the plurality of walls, a second electrode provided on a second wall of the plurality of walls, a first wiring connected to the first electrode, a second wiring connected to the second electrode, and a second positioning unit that determines the position of the flexible printed circuit board by connecting to the first positioning unit. [Brief explanation of the drawings]
[0007] [Figure 1] 1 is an explanatory diagram illustrating an example of a configuration of a liquid ejection device according to an embodiment of the present invention. [Figure 2] FIG. 2 is a perspective view showing an example of an ink tank. [Figure 3] FIG. 10 is a schematic diagram of the ink tank as viewed from the +Y direction. [Figure 4] FIG. 2 is a perspective view showing an example of a schematic internal structure of an ink tank. [Figure 5] FIG. 10 is a schematic diagram of the ink tank as viewed from the -Z direction. [Figure 6]10A and 10B are schematic diagrams of the ink tank as seen from the -X direction and the +Z direction. [Figure 7] 3 is a cross-sectional view showing an example of a cross section of the ink tank and the flexible printed circuit board taken along the line A1-A2 shown in FIG. 2. [Figure 8] 10A and 10B are explanatory diagrams for explaining an outline of a method for detecting the amount of ink stored in an ink tank. [Figure 9] 5A and 5B are explanatory diagrams for explaining the relationship between the ink level in the ink tank and a detection signal. [Figure 10] FIG. 2 is a circuit diagram of a detection circuit. [Figure 11] FIG. 1 is a plan view illustrating an example of a flexible printed circuit board. [Figure 12] 10 is an explanatory diagram illustrating an example of the relationship between the capacitance between the input electrode and the detection electrode and the size of the detection electrode. FIG. [Figure 13] 10 is an explanatory diagram for explaining another example of the relationship between the capacitance between the input electrode and the detection electrode and the size of the detection electrode. FIG. [Figure 14] 10 is a flowchart showing an example of an operation of the control unit. [Figure 15] 10A to 10C are explanatory views for explaining an example of a manufacturing method of the tank unit. [Figure 16] 10A and 10B are explanatory diagrams illustrating an example of detecting the amount of stored ink when the ink tank is tilted. [Figure 17] FIG. 10 is an explanatory diagram for explaining an outline of an ink tank according to a first comparative example. [Figure 18] FIG. 10 is a plan view showing an example of a flexible printed circuit board according to a first modified example. [Figure 19] FIG. 10 is an explanatory diagram for explaining an overview of a flexible printed circuit board according to a second modified example. [Figure 20] 20 is a plan view showing an example of the flexible printed circuit board shown in FIG. 19. FIG. [Figure 21] FIG. 11 is a cross-sectional view showing an example of a cross section of an ink tank and a flexible printed circuit board according to a third modified example. [Figure 22]FIG. 10 is a cross-sectional view showing an example of a cross section of an ink tank and a flexible printed circuit board according to a fourth modified example. [Figure 23] FIG. 23 is a plan view showing an example of the ink tank shown in FIG. 22. [Figure 24] FIG. 13 is an explanatory diagram for explaining an outline of an ink tank and a flexible printed circuit board according to a fifth modified example. DETAILED DESCRIPTION OF THE INVENTION
[0008] Hereinafter, embodiments of the present invention will be described with reference to the drawings. However, in each drawing, the dimensions and scale of each part are appropriately different from those of the actual parts. Furthermore, since the embodiments described below are preferred examples of the present invention, various technically preferable limitations are applied, but the scope of the present invention is not limited to these embodiments unless otherwise specified in the following description to the effect that the present invention is limited.
[0009] [1. Embodiment] First, the configuration of an inkjet printer 1 according to this embodiment will be described with reference to FIG.
[0010] Fig. 1 is an explanatory diagram illustrating an example of the configuration of an inkjet printer 1 according to an embodiment of the present invention. Note that Fig. 1 shows an example of a partial configuration of the inkjet printer 1. The inkjet printer 1 is an example of a "liquid ejection device."
[0011] For example, the inkjet printer 1 ejects ink INK to form an image on a print medium P such as printing paper. Specifically, print data indicating the image to be formed by the inkjet printer 1 is supplied to the inkjet printer 1 from a host computer such as a personal computer or digital camera. The inkjet printer 1 then executes a printing process to form the image indicated by the print data supplied from the host computer on the print medium P. Note that the print medium P is not limited to print paper. For example, the print medium P may be a medium made of any material, such as a resin film or fabric. The ink INK is an example of an "object" and a "liquid." This embodiment assumes that the inkjet printer 1 is a serial printer. Note that the inkjet printer 1 may have a copy function, a scanner function, a facsimile sending function, or a facsimile receiving function in addition to a printing function. In other words, the inkjet printer 1 may correspond to a so-called "multifunction device."
[0012] The inkjet printer 1 includes, for example, a management unit 2, a control unit 4, and a discharge unit 6. The management unit 2 includes, for example, a tank unit 10 that stores ink INK, and a detection circuit 20 that detects the amount of ink INK stored in the tank unit 10. For example, the management unit 2 is a storage amount management device that manages the storage amount of ink INK stored in the tank unit 10.
[0013] The tank unit 10 has, for example, a plurality of ink tanks 100 that correspond one-to-one to a plurality of different types of ink INK, and a plurality of flexible printed circuit boards 200 that correspond one-to-one to the plurality of ink tanks 100. The tank unit 10 is an example of a "storage device," and the ink tanks 100 are an example of a "storage section."
[0014] In this embodiment, it is assumed that there are five types of ink: cyan, magenta, yellow, and two types of black. In this case, the tank unit 10 has five ink tanks 100 that correspond one-to-one to the five types of ink. Note that the number of types of ink is not limited to five. In other words, the number of ink tanks 100 that the tank unit 10 has is not limited to five. For example, if there is only one type of ink, the tank unit 10 may have one ink tank 100.
[0015] Each ink tank 100 stores a corresponding ink INK from among the plurality of inks INK. Furthermore, each flexible printed circuit board 200 is fixed to a corresponding ink tank 100 from among the plurality of ink tanks 100. Hereinafter, the flexible printed circuit boards are also referred to as FPCs (Flexible Printed Circuits). Note that details of the ink tanks 100 and FPCs 200 will be described later with reference to FIG. 2 etc. Furthermore, details of the detection circuit 20 will be described later with reference to FIG. 10.
[0016] The control unit 4 is, for example, a processor that controls each part of the inkjet printer 1. For example, the control unit 4 has one or more central processing units (CPUs), not shown. The control unit 4 functions as a control unit that controls the management unit 2, the discharge unit 6, etc., by operating, for example, according to a control program. Note that all or some of the elements realized by the control unit 4 executing the control program may be realized in hardware using electronic circuits such as an FPGA (field programmable gate array) or an ASIC (application specific IC). Alternatively, all or some of the functions of the control unit 4 may be realized by a combination of software and hardware. The control program may be stored in a storage device, not shown, included in the control unit 4, or may be transmitted from another device via a network.
[0017] The ejection unit 6 includes, for example, a plurality of head units 30 corresponding one-to-one to the plurality of ink tanks 100, a carriage 32, a timing belt 40, a carriage guide shaft 42, a carriage transport mechanism 43, a transport roller 44, a medium transport mechanism 45, and a platen 46. Each head unit 30 includes a plurality of ejection sections 30a that eject ink INK supplied from the tank unit 10 via a tube 14. For example, under the control of the control unit 4, the ejection unit 6 ejects ink INK from the ejection sections 30a while transporting the printing medium P in the sub-scanning direction SD2 and reciprocating the plurality of head units 30 along a main scanning direction SD1 that intersects with the sub-scanning direction SD2. As a result, dots are formed on the printing medium P according to the print data.
[0018] The multiple head units 30 are mounted on a carriage 32. For example, when a printing process is performed, the ejection unit 6 moves the carriage 32 back and forth in the main scanning direction SD1 and transports the printing medium P in the sub-scanning direction SD2, thereby changing the relative position of the printing medium P with respect to each head unit 30. This enables the ejection unit 6 to land ink INK on the entire printing medium P.
[0019] The carriage guide shaft 42 supports the carriage 32 so that it can move back and forth along the main scanning direction SD1. The timing belt 40 is fixed to the carriage 32 and driven by a carriage transport mechanism 43. This allows the ejection unit 6 to move the multiple head units 30 together with the carriage 32 back and forth along the carriage guide shaft 42. The transport roller 44 rotates in response to the drive of the medium transport mechanism 45, and transports the printing medium P on the platen 46 in the sub-scanning direction SD2. The printing medium P is positioned between the platen 46 and the carriage 32.
[0020] The configuration of the inkjet printer 1 is not limited to the example shown in Fig. 1. For example, Fig. 1 illustrates an example in which the tank unit 10 is provided outside the carriage 32, but the tank unit 10 may be stored in the carriage 32 as an ink cartridge. Also, for example, the inkjet printer 1 may be a line printer.
[0021] Fig. 2 is a perspective view showing an example of an ink tank 100. The following description will focus on one ink tank 100 out of the multiple ink tanks 100 included in the tank unit 10 and an FPC 200 fixed to the ink tank 100. For example, Fig. 2 shows one ink tank 100 out of the multiple ink tanks 100 included in the tank unit 10 and an FPC 200 fixed to the ink tank 100.
[0022] For ease of explanation, a three-axis Cartesian coordinate system having mutually orthogonal X, Y, and Z axes will be introduced as appropriate below. Hereinafter, the direction indicated by the X-axis arrow will be referred to as the +X direction, and the direction opposite to the +X direction will be referred to as the −X direction. Hereinafter, the direction indicated by the Y-axis arrow will be referred to as the +Y direction, and the direction opposite to the +Y direction will be referred to as the −Y direction. Hereinafter, the +X direction and the −X direction will sometimes be referred to as the X direction without any particular distinction, and the +Y direction and the −Y direction will sometimes be referred to as the Y direction without any particular distinction. Hereinafter, the +Z direction and the −Z direction will sometimes be referred to as the Z direction without any particular distinction. Hereinafter, the +Z direction will sometimes be referred to as the upper side, and the −Z direction will sometimes be referred to as the lower side. In this embodiment, it is assumed that the −Z direction is the direction of gravity. For example, the -Z direction corresponds to the direction in which the ink INK decreases. Furthermore, hereinafter, viewing an object from a specific direction may be referred to as a planar view.
[0023] The ink tank 100 has, for example, multiple outer walls 120, a discharge section 150 that discharges ink INK from the ink tank 100, a supply port 160 that supplies ink INK to the ink tank 100, a connection section 170, an adjustment port 180, and an attachment section 190. A tube 14 is connected to the connection section 170. The adjustment port 180 is an intake port that takes in air to adjust the pressure inside the ink tank 100. The attachment section 190 is a mechanism for attaching the ink tank 100 to the inkjet printer 1.
[0024] The plurality of outer walls 120 includes, for example, outer walls 120a, 120b, 120c, 120d, and 120e. In addition, in Fig. 2, the reference numerals of some of the plurality of outer walls 120 are omitted for clarity.
[0025] The material of the multiple outer walls 120 is not particularly limited as long as it is a dielectric material that is impermeable to ink INK. For example, the material of the multiple outer walls 120 may be various resin materials such as polyolefin, polycarbonate, and polyester, or various glass materials. Furthermore, the material of the multiple outer walls 120 may be either a hard material or a soft material. Alternatively, some portions of the multiple outer walls 120 may be made of a hard material, and other portions may be made of a soft material.
[0026] For example, of the multiple outer walls 120, the outer wall 120a may be formed of a soft material such as a film, and the other outer walls 120 other than the outer wall 120a may be formed of a hard material such as plastic. The elastic modulus of the hard material may be greater than that of the soft material. In this embodiment, it is assumed that the outer wall 120a of the multiple outer walls 120 is formed of a nylon film, and the other outer walls 120 other than the outer wall 120a are formed of a plastic having a greater elastic modulus than the nylon film. In this case, for example, the outer wall 120a can be easily formed to be thinner than the outer wall 120b. Furthermore, in this embodiment, because the elastic modulus of the outer wall 120b is greater than that of the outer wall 120a, deformation of the outer wall 120b due to pressure inside the ink tank 100 can be suppressed, for example, compared to when the elastic modulus of the outer wall 120b is the same as that of the outer wall 120a.
[0027] In this embodiment, all of the multiple outer walls 120 except for the outer wall 120a are made of plastic, which makes it possible to easily manufacture an ink tank 100 that is less likely to deform. For example, in this embodiment, the ink tank 100 can be easily manufactured by adhering the outer wall 120a made of nylon film to the outer wall 120 made of plastic.
[0028] As shown in FIG. 2, outer walls 120a and 120b are spaced apart from each other in the Y direction and constitute side walls of the ink tank 100 that are approximately parallel to the XZ plane. Note that terms such as "approximately parallel," "approximately perpendicular," and "approximately right angles," which will be described later, are concepts that include tolerances. For example, "approximately parallel" simply means that the side walls are parallel in design. Furthermore, outer walls 120c and 120d are spaced apart from each other in the X direction and constitute side walls of the ink tank 100 that are approximately parallel to the YZ plane. For example, outer wall 120c is located between outer walls 120a and 120b and is connected to a portion of outer wall 120a and a portion of outer wall 120b at the edges of outer walls 120a and 120b in the +X direction. Furthermore, for example, the outer wall 120d is disposed between the outer walls 120a and 120b, and is connected to a part of the outer wall 120a and a part of the outer wall 120b at the edges of the outer walls 120a and 120b in the -X direction.
[0029] Furthermore, outer wall 120e includes a surface that is approximately parallel to the XY plane and constitutes the bottom of ink tank 100. For example, outer wall 120e is disposed between outer walls 120a and 120b, and is connected to a portion of outer wall 120a and a portion of outer wall 120b at the edges of outer walls 120a and 120b in the -Z direction. Outer walls 120a, 120b, 120c, 120d, and 120e form a box that opens in the +Z direction. The opening of the box is closed, for example, by outer walls 120 other than outer walls 120a, 120b, 120c, 120d, and 120e among the multiple outer walls 120.
[0030] The outer walls 120a and 120b may be provided so as to be inclined at a predetermined angle with respect to the XZ plane. Similarly, the outer walls 120c and 120d may be provided so as to be inclined at a predetermined angle with respect to the YZ plane.
[0031] The outer wall 120a includes, for example, a first arrangement portion PP1 on which an input electrode 210 is provided to which an AC signal for detecting the amount of ink INK stored in the ink tank 100 is input. For example, the first arrangement portion PP1 is a portion of the outer wall 120a that includes a target arrangement portion where the input electrode 210 is to be provided and a peripheral portion of the target arrangement portion. The first arrangement portion PP1 includes a peripheral portion of the target arrangement portion of the input electrode 210 so that the entire input electrode 210 is included in a plan view from the -Y direction even if the attachment position of the FPC 200 on the outer wall 120a is shifted from the predetermined position due to an attachment error or the like.
[0032] For example, the width WP1x of the first arrangement portion PP1 in the X direction is larger than the width W10x of the input electrode 210 in the X direction, and the width WP1z of the first arrangement portion PP1 in the Z direction is larger than the width W10z of the input electrode 210 in the Z direction.
[0033] A part of the FPC 200 is attached to the outer surface OF1 of the outer wall 120a. In this embodiment, among the outer surfaces OF1 of the outer wall 120a, the reference numeral for the outer surface OF1 of the first arrangement portion PP1 has a lowercase alphabet "a" added to the end of the reference numeral.
[0034] The FPC 200 includes, for example, an input electrode 210 provided on the outer surface OF1a of the first arrangement portion PP1, a wiring 212 connected to the input electrode 210 and extending in the X direction, and two shield wirings 240 maintained at a constant voltage such as ground voltage. In FIG. 2, to distinguish the two shield wirings 240 from each other, a lowercase alphabet "a" or "b" is added to the end of the reference numeral of each of the two shield wirings 240. For example, the shield wiring 240a is the shield wiring 240 provided in the -Z direction from the input electrode 210, and the shield wiring 240b is the shield wiring 240 provided in the +Z direction from the input electrode 210. The shield wirings 240 illustrated in FIG. 3 and subsequent figures also have a lowercase alphabet added to the end of the reference numeral of the shield wiring 240 to distinguish them from the other shield wirings 240.
[0035] The input electrode 210, the wiring 212, and the shield wiring 240a and 240b are examples of elements provided on the outer surface OF1 of the outer wall 120a among the multiple elements of the FPC 200. As shown in Figures 3, 6, and 7, the FPC 200 also has elements other than the input electrode 210, the wiring 212, and the shield wiring 240a and 240b.
[0036] The input electrode 210, the wiring 212, and the shield wiring 240a and 240b are made of a conductive material. The conductive material may be, for example, a metal material such as gold, silver, copper, aluminum, iron, nickel, or cobalt, or an alloy containing one or more metal materials. In this embodiment, it is assumed that the input electrode 210 and the wiring 212 are integrally formed. In this case, the wiring 212 is directly connected to the input electrode 210.
[0037] The input electrode 210 is formed, for example, so that the width W10z of the input electrode 210 in the Z direction is smaller than the width W10x of the input electrode 210 in the X direction. For example, the input electrode 210 may be formed in a rectangular shape with the X direction as the longitudinal direction. The shape of the input electrode 210 is not limited to a rectangular shape. In this embodiment, the input electrode 210 is located between the shield wiring 240a extending in the X direction and the shield wiring 240b extending in the X direction. In addition, the input electrode 210 includes a portion that overlaps with the center CXa of the outer wall 120a in the X direction in a plan view from the -Y direction.
[0038] In this embodiment, a portion of the shield wiring 240a and a portion of the shield wiring 240b are provided on the outer surface OF1a of the first arrangement portion PP1 in addition to the input electrode 210. Therefore, for example, the width WP1z of the first arrangement portion PP1 is larger than the width W40ab in the Z direction of the portion of the FPC 200 that includes the input electrode 210 and the shield wiring 240a and 240b.
[0039] Next, with reference to FIG. 3, the elements of the FPC 200 that face the outer wall 120b will be described.
[0040] Fig. 3 is a schematic diagram of the ink tank 100 as viewed from the +Y direction. Of the multiple elements of the FPC 200, Fig. 3 focuses on the elements provided on the outer surface OF2 of the outer wall 120b as seen when the ink tank 100 is viewed from the +Y direction.
[0041] The outer wall 120b includes, for example, a second arrangement portion PP2 in which two detection electrodes 220 for detecting the amount of ink INK stored in the ink tank 100 are provided. In Fig. 3, in order to distinguish the two detection electrodes 220 from each other, the reference numerals of the two detection electrodes 220 are suffixed with a lowercase alphabet "a" or "b." For example, the detection electrode 220a is the detection electrode 220 that is provided in the -Z direction from the detection electrode 220b.
[0042] In this embodiment, it is assumed that the detection electrodes 220a and 220b are the same size. Also, in this embodiment, it is assumed that two detection electrodes 220a and 220b are provided in the second arrangement portion PP2 of the outer wall 120b, but the number of detection electrodes 220 provided in the second arrangement portion PP2 is not limited to two. For example, the number of detection electrodes 220 provided in the second arrangement portion PP2 may be one, or three or more.
[0043] The second arrangement portion PP2 corresponds to, for example, a portion of the outer wall 120b that includes a target arrangement portion where the detection electrodes 220a and 220b are to be provided and a peripheral portion of the target arrangement portion. The second arrangement portion PP2 includes a peripheral portion of the target arrangement portion of the detection electrodes 220 so as to include the entire detection electrodes 220 in a plan view from the +Y direction, even if the attachment position of the FPC 200 on the outer wall 120b deviates from the predetermined position due to an attachment error or the like. Note that the entire detection electrodes 220 include the entire detection electrodes 220a and the entire detection electrodes 220b.
[0044] For example, the X-direction width WP2x of the second arrangement portion PP2 is larger than both the X-direction width W20ax of the detection electrode 220a and the X-direction width W20bx of the detection electrode 220b. Also, the Z-direction width WP1z of the second arrangement portion PP2 is larger than the Z-direction width W20ab of the portion of the FPC 200 that includes the detection electrodes 220a and 220b.
[0045] A portion of the FPC 200 is attached to the outer surface OF2 of the outer wall 120b. In this embodiment, among the outer surfaces OF2 of the outer wall 120b, the reference numeral for the outer surface OF2 of the second arrangement portion PP2 has a lowercase alphabet "a" added to the end of the reference numeral.
[0046] The FPC 200 includes, for example, detection electrodes 220a and 220b provided on the outer surface OF2a of the second arrangement portion PP2, a wiring 222a connected to the detection electrode 220a and extending in the X direction, and a wiring 222b connected to the detection electrode 220b and extending in the X direction. The FPC 200 also includes a shield wiring 240c maintained at a constant voltage such as ground voltage. The shield wiring 240c is a shield wiring 240 located between the detection electrode 220a and the detection electrode 220b. Therefore, a portion of the shield wiring 240c is provided on the outer surface OF2a of the second arrangement portion PP2. In this embodiment, a portion of the shield wiring 240a and a portion of the shield wiring 240b are also provided on the outer surface OF2a of the second arrangement portion PP2.
[0047] For example, the detection electrode 220a is located between the shield wiring 240a extending in the X direction and the shield wiring 240c extending in the X direction, and the detection electrode 220b is located between the shield wiring 240b extending in the X direction and the shield wiring 240c extending in the X direction. Note that the shield wiring 240c is located between the shield wiring 240a and the shield wiring 240b.
[0048] Furthermore, the detection electrode 220a includes a portion overlapping with the center CXb of the outer wall 120b in the X direction in a plan view from the +Y direction. Similarly, the detection electrode 220b includes a portion overlapping with the center CXb of the outer wall 120b in the X direction in a plan view from the +Y direction. Note that in this embodiment, the center CXb of the outer wall 120b in the X direction substantially coincides with the center CXa of the outer wall 120a in the X direction. Furthermore, the position of the supply port 160 in the X direction and the position of the detection electrode 220a in the X direction are different from each other. Similarly, the position of the supply port 160 in the X direction and the position of the detection electrode 220b in the X direction are different from each other.
[0049] In this manner, in this embodiment, the detection electrodes 220a and 220b and portions of the shield wiring 240a, 240b, and 240c are provided on the outer surface OF2a of the second arrangement portion PP2. Therefore, for example, the width WP2z of the second arrangement portion PP2 is larger than the width W40cd in the Z direction of the portion of the FPC 200 that includes the detection electrodes 220a and 220b and the shield wiring 240a, 240b, and 240c.
[0050] 11, for example, the detection electrode 220a is formed so that its width W20az in the Z direction is smaller than its width W20ax in the X direction. Similarly, the detection electrode 220b is formed so that its width W20bz in the Z direction is smaller than its width W20bx in the X direction. In this embodiment, the detection electrodes 220a and 220b are understood to have a rectangular shape with the X direction as the longitudinal direction when viewed in a plan view from the +Y direction. Note that the shapes of the detection electrodes 220a and 220b are not limited to rectangular shapes.
[0051] Furthermore, the detection electrodes 220a and 220b, the wiring 222a and 222b, and the shield wiring 240c are formed of the same material as the input electrode 210. In this embodiment, it is assumed that the detection electrode 220a and the wiring 222a are integrally formed, and the detection electrode 220b and the wiring 222b are integrally formed. In this case, the wiring 222a is directly connected to the detection electrode 220a, and the wiring 222b is directly connected to the detection electrode 220b.
[0052] Next, the internal structure of the ink tank 100 will be described with reference to FIG.
[0053] FIG. 4 is a perspective view showing an example of a schematic internal structure of the ink tank 100. As shown in FIG.
[0054] The ink tank 100 includes, for example, a plurality of partition walls 122, a plurality of support portions 130, and a plurality of auxiliary portions 140. In FIG. 4 , to distinguish the support portions 130 from one another, the reference numerals of the support portions 130 are suffixed with a lowercase letter "a," "b," or "c." Similarly, the reference numerals of the auxiliary portions 140 are suffixed with a lowercase letter "a," "b," "c," "d," or "e." The number of support portions 130 and the number of auxiliary portions 140 are not limited to the example shown in FIG. 4 . For example, the number of support portions 130 may be one or two. Alternatively, the number of support portions 130 may be four or more. The partition walls 122 include, for example, partition walls 122a and 122b.
[0055] For example, the partition wall 122a is disposed opposite the outer wall 120d and away from the outer wall 120d in the -X direction. The partition wall 122a is positioned closer to the outer wall 120d than the outer wall 120a. Air is taken into the space between the outer wall 120d and the partition wall 122a via, for example, the adjustment port 180 to adjust the pressure inside the ink tank 100. In addition, for example, ink INK is stored in a space SP surrounded by the partition wall 122a and the outer walls 120a, 120b, 120c, and 120e.
[0056] The partition wall 122b separates, for example, the space SP from a flow path (not shown) for ink INK supplied from the supply port 160. For example, the partition wall 122b is disposed opposite the outer wall 120e and spaced apart from the outer wall 120e in the +Z direction. In this embodiment, the partition wall 122b is positioned further in the +Z direction than the second placement portion PP2 of the outer wall 120b.
[0057] In this way, the space SP in which the ink INK is stored is partitioned by the outer walls 120a, 120b, 120c, and 120e and the partition walls 122a and 122b. The outer walls 120a, 120b, 120c, and 120e and the partition walls 122a and 122b are examples of "plurality of walls."
[0058] The support portion 130a supports, for example, the outer walls 120a and 120b. For example, the support portion 130a includes a plurality of rod portions 132 that support the outer walls 120a and 120b, a plurality of plate portions 134 that support the outer walls 120a and 120b, and an auxiliary support portion 136. Note that in FIG. 4, in order to distinguish the plurality of rod portions 132 from one another, the reference numerals of the plurality of rod portions 132 are suffixed with a lowercase letter "a," "b," or "c." Similarly, the reference numerals of the plurality of plate portions 134 are suffixed with a lowercase letter "a," "b," or "c."
[0059] Each rod portion 132 is, for example, a column extending in the Y direction. In the example shown in Fig. 4, each rod portion 132 is a cylinder, but each rod portion 132 may also be a rectangular column. The multiple rod portions 132 are arranged, for example, in the Z direction. One end E1 of each rod portion 132 is bonded to the outer wall 120a, and the other end E2 of each rod portion 132 is bonded to the outer wall 120b.
[0060] Furthermore, each plate portion 134 includes, for example, a plane that is approximately parallel to the YZ plane. That is, each plate portion 134 includes a plane that is approximately perpendicular to the outer wall 120b. Two edges of the plate portion 134a along the Z direction are connected to the outer walls 120a and 120b, respectively, and two edges of the plate portion 134a along the Y direction are connected to the rod portions 132a and 132b, respectively. Two edges of the plate portion 134b along the Z direction are connected to the outer walls 120a and 120b, respectively, and two edges of the plate portion 134b along the Y direction are connected to the rod portions 132b and 132c, respectively.
[0061] Auxiliary support portion 136 is understood to have a substantially right-angled triangular shape when viewed from above in the +Z direction, for example. For example, two of the edges of auxiliary support portion 136 corresponding to the two sides other than the hypotenuse of the right-angled triangle are connected to outer wall 120b and rod portion 132b, respectively. Rod portion 132b is stably fixed to outer wall 120b by auxiliary support portion 136.
[0062] The configuration of the support portions 130b and 130c is the same as that of the support portion 130a. For example, like the support portion 130a, the support portions 130b and 130c also support the outer walls 120a and 120b. In Fig. 4, the reference numerals of the elements such as the rod portion 132 included in the support portions 130b and 130c are not shown, but the elements included in the support portions 130b and 130c are also referred to using the same reference numerals as the elements included in the support portion 130a.
[0063] In this embodiment, it is assumed that the support portions 130a and 130b are respectively arranged on two edges of the first arrangement portion PP1 along the Z direction. For example, the support portions 130a and 130b extend along the +Y direction, which is the direction from the first arrangement portion PP1 toward the second arrangement portion PP2, and support the first arrangement portion PP1 and the second arrangement portion PP2. Note that, because the first arrangement portion PP1 of the outer wall 120a is not shown in FIG. 4, the positional relationship between the support portions 130a and 130b and the first arrangement portion PP1 will be described later in FIG. 5.
[0064] The multiple auxiliary portions 140 are understood to have a substantially right-angled triangular shape in a plan view from the +X direction, for example. For example, of the edges of auxiliary portion 140a, two edges corresponding to the two sides other than the hypotenuse of the right-angled triangle are connected to outer walls 120b and 120e, respectively. As with auxiliary portion 140a, of auxiliary portions 140b and 140c, two edges corresponding to the two sides other than the hypotenuse of the right-angled triangle are connected to outer walls 120b and 120e, respectively. Auxiliary portions 140a, 140b, and 140c stably fix outer walls 120b and 120e to each other. Furthermore, of the edges of auxiliary portion 140d, two edges corresponding to the two sides other than the hypotenuse of the right-angled triangle are connected to outer wall 120c and partition wall 122b, respectively. Similar to auxiliary portion 140d, auxiliary portion 140e has two edges corresponding to the two sides of the right triangle other than the hypotenuse connected to outer wall 120c and partition wall 122b, respectively. Auxiliary portions 140d and 140e stably fix outer wall 120c and partition wall 122b to each other.
[0065] Furthermore, in this embodiment, it is assumed that the support part 130 and the auxiliary part 140 are subjected to a water-repellent treatment, but part or all of the support part 130 and the auxiliary part 140 may not be subjected to a water-repellent treatment.
[0066] The discharge portion 150 is provided with a discharge opening Hd that penetrates the discharge portion 150 and the outer wall 120e and discharges the ink INK from the space SP. The discharge opening Hd is located, for example, near the center of the outer wall 120e in the X direction. The positional relationship between the discharge opening Hd and the first arrangement portion PP1 and the second arrangement portion PP2 will be described later with reference to FIG. 5.
[0067] The supply port 160 is open, for example, in the +Z direction. For example, the opening Hf of the supply port 160 communicates with the space SP via a flow path (not shown). This allows the ink INK to be supplied from the supply port 160 to the space SP.
[0068] 2, the tube 14 is connected to the connection part 170. The ink INK stored in the space SP is discharged, for example, from the discharge port Hd of the discharge part 150 and reaches the connection part 170 via a flow path not shown. Then, the ink INK that has reached the connection part 170 is supplied to the discharge part 30a of the head unit 30 via the tube 14 connected to the connection part 170.
[0069] Next, with reference to FIG. 5, the positional relationship between the input electrode 210 and the detection electrode 220 and the outlet Hd will be described.
[0070] Fig. 5 is a schematic diagram of the ink tank 100 as viewed from the -Z direction. Fig. 5 explains the positional relationship between the input electrode 210 and the detection electrode 220 and the discharge port Hd. Note that in Fig. 5, the shield wiring 240 and the like are omitted from illustration in order to make it easier to understand the positional relationship between the input electrode 210 and the detection electrode 220 and the discharge port Hd. Also, in Fig. 5, the support portions 130a and 130b are indicated by dashed lines in order to explain the positional relationship between the first arrangement portion PP1 of the outer wall 120a and the second arrangement portion PP2 of the outer wall 120b and the support portions 130a and 130b.
[0071] 5, when the discharge port Hd is viewed from the -Z direction, the entire discharge port Hd is located between the input electrode 210 and the detection electrode 220. As a result, in this embodiment, the amount of stored ink INK can be detected near the discharge port Hd.
[0072] When viewed from the -Z direction, the outlet Hd may include a portion located between the input electrode 210 and the detection electrode 220 and a portion not located between the input electrode 210 and the detection electrode 220. Even in this case, the amount of stored ink INK can be detected closer to the outlet Hd than in a configuration in which the entire outlet Hd is not located between the input electrode 210 and the detection electrode 220 when viewed from the -Z direction. Furthermore, when viewed from the -Z direction, at least a portion of the outlet Hd may be located between the first arrangement portion PP1 of the outer wall 120a and the second arrangement portion PP2 of the outer wall 120b. Even in this case, the amount of stored ink INK can be detected closer to the outlet Hd than in a configuration in which the entire outlet Hd is not located between the first arrangement portion PP1 and the second arrangement portion PP2 when viewed from the -Z direction.
[0073] Details will be described later in Figure 16, but in this embodiment, by detecting the amount of stored ink INK near the discharge outlet Hd, the amount of stored ink INK can be detected more accurately than in the first comparative example, in which the amount of stored ink INK is detected at a location far from the discharge outlet Hd.
[0074] Furthermore, when focusing on the position of the discharge port Hd, the discharge port Hd is formed near the center of the outer wall 120e in the X direction. For example, the discharge port Hd is formed so that the center CXs of the space SP of the ink tank 100 in the X direction is located inside the discharge port Hd in a plan view from the -Z direction. In the example shown in Fig. 5, the discharge port Hd is formed so that the center CP of the space SP of the ink tank 100 is located inside the discharge port Hd in a plan view from the -Z direction. This makes it possible to reduce the amount of ink INK that remains in the space SP without being discharged through the discharge port Hd, for example, when the ink tank 100 is used in an inclined position.
[0075] Furthermore, the width W10x of the input electrode 210 in the X direction and the width W20ax of the detection electrode 220a in the X direction are greater than the width WHx of the discharge port Hd in the X direction. As a result, in this embodiment, as will be described later in FIG. 16, even if the ink tank 100 is tilted, it is possible to accurately detect whether the amount of ink INK stored in the ink tank 100 is equal to or greater than a predetermined lower limit.
[0076] The supports 130a and 130b are respectively arranged on two edges along the Z direction of the first arrangement portion PP1 of the outer wall 120a. For example, end E1 of each rod portion 132 of the support 130a is fixed to one of the two edges along the Z direction of the first arrangement portion PP1, and end E1 of each rod portion 132 of the support 130b is fixed to the other of the two edges along the Z direction of the first arrangement portion PP1. Then, end E2 of each rod portion 132 of the support 130a is fixed to one of the two edges along the Z direction of the second arrangement portion PP2, and end E2 of each rod portion 132 of the support 130b is fixed to the other of the two edges along the Z direction of the second arrangement portion PP2.
[0077] Thus, in this embodiment, the range of outer wall 120a that includes the positions in the X direction of each rod portion 132 of support portion 130a and each rod portion 132 of support portion 130b can be considered to be the X-direction range of first arrangement portion PP1. Similarly, in this embodiment, the range of outer wall 120b that includes the X-direction positions of each rod portion 132 of support portion 130a and each rod portion 132 of support portion 130b can be considered to be the X-direction range of second arrangement portion PP2.
[0078] The thickness T1 of the first arrangement portion PP1 of the outer wall 120a is thinner than the thickness T2 of the second arrangement portion PP2 of the outer wall 120b. The thickness T1 of the first arrangement portion PP1 of the outer wall 120a is thinner than the thickness T3 of the outer wall 120d. Furthermore, in this embodiment, the outer wall 120a is assumed to be formed of a nylon film having a lower elastic modulus than the outer wall 120b, etc., and therefore the outer wall 120a is more easily deformed than the outer wall 120b, etc. For this reason, in this embodiment, support portions 130a and 130b are provided to support the first arrangement portion PP1 and the second arrangement portion PP2. As a result, in this embodiment, deformation of the first arrangement portion PP1 can be suppressed. Furthermore, in this embodiment, in addition to the support portions 130a and 130b, a support portion 130c is provided to support the portion of the outer wall 120a other than the first arrangement portion PP1 and the portion of the outer wall 120b other than the second arrangement portion PP2, thereby suppressing deformation of the outer wall 120a.
[0079] Note that, for example, the rod portions 132 of the support portion 130a and the rod portions 132 of the support portion 130b may be disposed outside the first arrangement portion PP1 as long as deformation of the first arrangement portion PP1 can be suppressed. Specifically, the rod portions 132 of the support portion 130a may be positioned further in the -X direction than the first arrangement portion PP1. Similarly, the rod portions 132 of the support portion 130b may be positioned further in the +X direction than the first arrangement portion PP1. Furthermore, for example, the support portion 130 may be provided near the center of the first arrangement portion PP1 in the X direction.
[0080] Furthermore, for example, the plate portion 134 may be formed in a lattice shape having through holes through which the ink passes. Alternatively, the plate portion 134 may be omitted. Furthermore, the support portion 130 may have a plurality of pillars extending in the Z direction instead of the plate portion 134. In this case, the support portion 130 may be formed in a lattice shape having openings through which the ink passes, with a plurality of pillars extending in the Z direction and a plurality of rod portions 132 extending in the Y direction. Alternatively, a triangular or L-shaped support portion may be provided to support the outer walls 120a and 120e. Furthermore, for example, a plate-shaped support portion may be provided that has a surface parallel to the inner surface IF3 of the outer wall 120e and supports the outer walls 120a and 120b.
[0081] Next, with reference to FIG. 6, an outline of the ink tank 100 as viewed from the -X direction will be described.
[0082] Figure 6 is a schematic diagram of the ink tank 100 as viewed from the -X direction and as viewed from the +Z direction. In Figure 6, the plan view shown on the upper side is a schematic diagram of the ink tank 100 as viewed from the -X direction, and the plan view shown on the lower side is a schematic diagram of the ink tank 100 as viewed from the +Z direction. Note that in Figure 6, the input electrode 210, detection electrode 220, etc. are omitted to make the drawing easier to see.
[0083] As shown in the schematic diagram of the ink tank 100 viewed from the -X direction, the ink tank 100 has, for example, positioning portions PT10 and PT12. For example, the positioning portions PT10 and PT12 are formed integrally with the outer wall 120d using the same material as the outer wall 120d. That is, in this embodiment, the positioning portions PT10 and PT12 are provided on the outer wall 120d, which is a portion formed from a material harder than the first placement portion PP1. The positioning portions PT10 and PT12 are formed, for example, in a convex shape protruding from the outer wall 120d in the -X direction. For example, the positioning portion PT10 is perceived as having a rectangular shape when viewed from the -X direction. For example, the positioning portion PT12 is perceived as having a triangular shape when viewed from the -X direction. The positioning portions PT10 and PT12 are provided on the outer wall 120d, and the positioning portion PT10 is located further in the +Z direction than the positioning portion PT12.
[0084] The FPC 200 also has a positioning portion PT20 that determines the position of the FPC 200 by connecting to the positioning portion PT10, and a positioning portion PT22 that determines the position of the FPC 200 by connecting to the positioning portion PT12.
[0085] For example, as shown in the schematic illustration of the ink tank 100 viewed from the -X direction, a notch that opens in the +Z direction and fits into the positioning portion PT10 is formed as the positioning portion PT20 on the +Z-direction edge of the FPC 200, of the two edges along the Y direction. That is, the area inside the notch formed as the positioning portion PT20 is perceived as rectangular in plan view from the -X direction. Also, a notch that opens in the -Z direction and fits into the positioning portion PT20 is formed as the positioning portion PT22 on the -Z-direction edge of the FPC 200, of the two edges along the Y direction. That is, the area inside the notch formed as the positioning portion PT22 is perceived as triangular in plan view from the -X direction.
[0086] The positioning portions PT20 and PT22 are not limited to notches. For example, a through-hole that penetrates the FPC 200 in the X direction and fits with the positioning portion PT10 may be formed as the positioning portion PT20. Similarly, a through-hole that penetrates the FPC 200 in the X direction and fits with the positioning portion PT12 may be formed as the positioning portion PT22.
[0087] In this embodiment, when the FPC 200 is attached to the ink tank 100, the positioning portion PT20 of the FPC 200 is connected to the positioning portion PT10 of the ink tank 100, and the positioning portion PT22 of the FPC 200 is connected to the positioning portion PT12 of the ink tank 100. This makes it possible to prevent the position of the FPC 200 relative to the ink tank 100 from shifting from a predetermined position when the FPC 200 is attached to the ink tank 100 in this embodiment.
[0088] Furthermore, in this embodiment, the shape of the positioning portion PT10 is different from the shape of the positioning portion PT12. This makes it possible to reduce, for example, the likelihood of the positioning portion PT22 being erroneously mated with the positioning portion PT10, or the likelihood of the positioning portion PT20 being erroneously mated with the positioning portion PT12. This makes it possible to reduce, for example, the likelihood of the FPC 200 being attached to the ink tank 100 in the wrong orientation.
[0089] The positioning portions PT10 and PT12 may be formed so that one or both of their shapes and sizes differ. For example, if the size of the positioning portion PT10 differs from the size of the positioning portion PT12, the shapes of the positioning portion PT10 and the positioning portion PT12 may be the same. Even in this case, it is possible to reduce the possibility of the FPC 200 being attached to the ink tank 100 in the wrong orientation. Below, the positioning portions PT10, PT12, PT20, and PT22 may be collectively referred to as the positioning portions PT.
[0090] The FPC 200 also has a terminal TMt1 electrically connected to the input electrode 210, a terminal TMR1 electrically connected to the detection electrode 220a, and a terminal TMR2 electrically connected to the detection electrode 220b. The FPC 200 also has a plurality of terminals TMg1 to TMg6 that are maintained at a constant voltage such as a ground voltage. Hereinafter, the terminals TMg1 to TMg6 may be collectively referred to as terminals TMg. The number of terminals TMg is not limited to six. For example, the number of terminals TMg may be two to five or seven or more. Hereinafter, the terminals TMt1, TMR1, TMR2, and TMg may be collectively referred to as terminals TM. The plurality of terminals TMg are formed, for example, from the same material as the input electrode 210.
[0091] In this embodiment, it is assumed that the multiple terminals TMg are held at ground voltage, but the multiple terminals TMg may also be held at a constant voltage other than ground voltage. Alternatively, the multiple terminals TMg may include a terminal TMg held at a first constant voltage such as ground voltage and a terminal TMg held at a second constant voltage other than the first constant voltage. Each of the multiple terminals TMg1 to TMg6 is electrically connected to one or more of the multiple shielding wirings 240. Note that when focusing on the multiple shielding wirings 240, each of the multiple shielding wirings 240 is electrically connected to one or more of the multiple terminals TMg1 to TMg6.
[0092] In this embodiment, in order to reduce interference between two terminals TM among terminals TMt1, TMR1, and TMR2, one or more terminals TMg among the multiple terminals TMg are arranged between the two terminals TM. Interference between two terminals TM occurs, for example, when a signal transmitted to one of the two terminals TM is transmitted to the other terminal TM as noise. Note that in this embodiment, for example, in a plan view from the −X direction, a terminal TMg that overlaps with a line connecting an arbitrary position in one of the two terminals TM to an arbitrary position in the other terminal TM corresponds to the terminal TMg located between the two terminals TM.
[0093] For example, among the multiple terminals TMg, terminals TMg1, TMg2, and TMg3 are arranged between terminals TMt1 and TMR1. Furthermore, terminals TMg3 and TMg6 are arranged between terminals TMR1 and TMR2. Furthermore, terminals TMg1, TMg2, TMg4, and TMg5 are arranged between terminals TMR2 and TMt1.
[0094] Also, for example, the terminal TMt1 contacts a first external contact outside the FPC 200, the terminal TMR1 contacts a second external contact outside the FPC 200, and the terminal TMR2 contacts a third external contact outside the FPC 200. For example, the first external contact is electrically connected to an AC power supply ACP, which will be described later in Fig. 10. Also, for example, the second external contact is electrically connected to an input terminal IN1 of a selection circuit 21, which will be described later in Fig. 10, and the third external contact is electrically connected to an input terminal IN2 of the selection circuit 21.
[0095] The multiple terminals TMg1 to TMg6 are in contact with, for example, multiple constant voltage contacts outside the FPC 200. The multiple constant voltage contacts are maintained at a constant voltage such as ground voltage. That is, the multiple terminals TMg1 to TMg6 are maintained at a constant voltage such as ground voltage by being in contact with multiple constant voltage contacts that are maintained at a constant voltage such as ground voltage.
[0096] 8 corresponds to the first external contact, external contact CTr1 corresponds to the second external contact, external contact CTr2 corresponds to the third external contact, and external contacts CTg1 to CTg6 correspond to constant voltage contacts. Hereinafter, external contacts CTt1, CTr1, CTr2, and CTg1 to CTg6 may be collectively referred to as external contacts CT. Furthermore, external contact CT is also used as a collective term for the first external contact, second external contact, third external contact, and multiple constant voltage contacts.
[0097] The connections between the multiple terminals TM and the multiple external contacts CT are realized by, for example, spring contacts. For example, the multiple external contacts CT are provided on an external board that is detachable from the ink tank 100. When the external board is attached to the ink tank 100, a force is exerted on each of the multiple external contacts CT provided on the external board, for example, by the repulsive force of a spring or the like, pushing the external contact CT in the +X direction.
[0098] When attention is paid to the positional relationship between the multiple terminals TM and the positioning portions PT20 and PT22, at least a portion of the terminal arrangement area AR including the multiple terminals TM is located between the positioning portions PT20 and PT22 in the FPC 200. The misalignment of the attachment position of the FPC 200 relative to the ink tank 100 is smaller in the portions of the FPC 200 closer to the positioning portions PT20 and PT22 than in the portions farther from the positioning portions PT20 and PT22.
[0099] In this embodiment, the multiple terminals TM are disposed near the positioning portions PT20 and PT22, which reduces deviation of the multiple terminals TM from their predetermined positions relative to the ink tank 100. As a result, this embodiment reduces incorrect connections between the multiple terminals TM and the multiple external contacts CT. Furthermore, this embodiment reduces deviation of the multiple terminals TM from their predetermined positions relative to the ink tank 100, which improves the stability of the connections between the multiple terminals TM and the multiple external contacts CT.
[0100] As shown in the schematic diagram of the ink tank 100 viewed from the +Z direction, the FPC 200 is folded at folding portions BP1 and BP2 along the outer periphery of the ink tank 100. When the ink tank 100 is viewed from the +Z direction, the terminals TM are provided on edge EP1 of the two edges EP1 and EP2 of the ink tank 100, and the supply port 160 is located closer to edge EP2 than edge EP1. The two edges EP1 and EP2 of the ink tank 100 are those edges that are separated from each other in the X direction when the ink tank 100 is viewed from the +Z direction. Note that when the ink tank 100 is viewed from the +Z direction, the X direction corresponds to the longitudinal direction of the ink tank 100. Hereinafter, the edge of the outer wall 120e of the edge EP1 of the ink tank 100 may be simply referred to as the edge EP1 of the outer wall 120e. Similarly, of the edge portion EP2 of the ink tank 100, the edge portion of the outer wall 120e may be simply referred to as the edge portion EP2 of the outer wall 120e.
[0101] As described above, in this embodiment, the supply port 160 is located closer to the edge portion EP2 than to the edge portion EP1 where the multiple terminals TM are provided. Therefore, in this embodiment, even if ink INK leaks from the supply port 160 when the ink INK is supplied, it is possible to prevent the leaked ink INK from contaminating the areas around the multiple terminals TM. If the areas around the multiple terminals TM are contaminated by ink INK leaked from the supply port 160, there is a risk of the multiple terminals TM shorting out. In this embodiment, it is possible to prevent the areas around the multiple terminals TM from being contaminated by ink INK leaked from the supply port 160, and therefore it is possible to prevent the multiple terminals TM from shorting out.
[0102] Next, a cross section of the ink tank 100 and the FPC 200 will be described with reference to FIG.
[0103] Figure 7 is a cross-sectional view showing an example of a cross section of the ink tank 100 and the FPC 200 taken along the line A1-A2 shown in Figure 2. In order to make the drawing easier to see, elements located in the +Z direction from the partition wall 122b, the support portion 130, etc. are omitted from Figure 7.
[0104] The FPC 200 has, for example, a non-conductive first cover film layer 201, a conductive first conductor layer 202, a non-conductive base layer 203, a conductive second conductor layer 204, and a non-conductive second cover film layer 205. For example, the base layer 203 is provided between the first cover film layer 201 and the second cover film layer 205. Furthermore, the first conductor layer 202 is provided between the first cover film layer 201 and the base layer 203, and the second conductor layer 204 is provided between the second cover film layer 205 and the base layer 203.
[0105] The first conductive layer 202 includes an input electrode 210, detection electrodes 220a and 220b, and shield wiring 240a, 240b, and 240c. The first conductive layer 202 also includes wiring 212, 222a, and 222b shown in FIGS. 2 and 3. The second conductive layer 204 also includes shield wiring 240d and 240e that are maintained at a constant voltage such as a ground voltage. The second conductive layer 204 also includes terminals TMt1, TMR1, TMR2, and TMg1 to TMg6 shown in FIG. 6. The shield wiring 240d and 240e are formed of, for example, the same material as the input electrode 210.
[0106] The first cover film layer 201 and the second cover film layer 205 are formed of, for example, a polyimide film. The first cover film layer 201 and the second cover film layer 205 may be formed of a material other than a polyimide film.
[0107] The tank unit 10 also has a double-sided tape 260 that adheres the FPC 200 to the ink tank 100. For example, the first cover film layer 201 is provided between the second cover film layer 205 and the ink tank 100, and is adhered to the ink tank 100 by the double-sided tape 260. The double-sided tape 260 includes, for example, a base material 264, a first adhesive layer 262 formed on a first surface SF1 of the base material 264, and a second adhesive layer 266 formed on a second surface SF2 of the base material 264 opposite to the first surface SF1.
[0108] For example, the FPC 200 is attached with double-sided tape 260 to a position on the ink tank 100 determined by the positioning portions PT10, PT12, PT20, and PT22 shown in FIG. 6. As a result, the input electrode 210 included in the FPC 200 is provided on the outer surface OF1a of the first arrangement portion PP1 of the outer wall 120a, and the detection electrodes 220a and 220b included in the FPC 200 are provided on the outer surface OF2a of the second arrangement portion PP2 of the outer wall 120b. For example, the input electrode 210 is disposed at a position where the entire input electrode 210 overlaps with the outer surface OF1a of the first arrangement portion PP1 in a plan view from the -Y direction. Furthermore, the detection electrodes 220a and 220b are disposed at positions where the entire detection electrode 220a and the entire detection electrode 220b overlap with the outer surface OF2a of the second arrangement portion PP2 in a plan view from the +Y direction.
[0109] In this embodiment, the FPC 200 is attached to the ink tank 100 so that, in plan view from the +Y direction, the entire detection electrode 220a and the entire detection electrode 220b overlap with the input electrode 210. The detection electrodes 220a and 220b are disposed at different positions in the Z direction.
[0110] For example, in the Z direction, detection electrode 220a is disposed so that the center of detection electrode 220a is at position H1, and detection electrode 220b is disposed so that the center position of detection electrode 220b is at position H2. Note that positions H1 and H2 are positions in the Z direction when the inner surface IF3 of outer wall 120e is used as the starting point, and position H2 is a position in the +Z direction from position H1. Therefore, detection electrode 220b is disposed in the +Z direction from detection electrode 220a. Hereinafter, a position in the +Z direction from a specific position will also be referred to as a position higher than the specific position, and a position in the -Z direction from the specific position will also be referred to as a position lower than the specific position.
[0111] The detection electrode 220a may be arranged so that the −Z direction side of the two sides of the detection electrode 220a along the X direction is at position H1, or the +Z direction side of the detection electrode 220a is at position H1. Similarly, the detection electrode 220b may be arranged so that the −Z direction side of the two sides of the detection electrode 220b along the X direction is at position H2, or the +Z direction side of the detection electrode 220b is at position H2.
[0112] In this embodiment, the shield wiring 240d and 240e are provided on the FPC 200, which makes it possible to reduce interference between the multiple FPCs 200 that correspond one-to-one to the multiple ink tanks 100 of the tank unit 10. Interference between the FPCs 200 occurs when, for example, a signal from one of the two FPCs 200 is transmitted as noise to one or both of the input electrode 210 and the detection electrode 220 of the other FPC 200.
[0113] Furthermore, a large amplitude signal of about 42 V is supplied to the piezoelectric elements that drive the ejection portions 30 a of the head unit 30. In this embodiment, because the FPC 200 is provided with shield wiring 240 d and 240 e, it is possible to reduce the large amplitude signal supplied to the piezoelectric elements from being transmitted as noise to one or both of the input electrode 210 and the detection electrode 220.
[0114] Furthermore, in this embodiment, the FPC 200 is fixed to the ink tank 100 with double-sided tape 260 of a substantially uniform thickness, so the distance between the input electrode 210 and the outer surface OF1a of the first arrangement portion PP1 and the distance between the detection electrode 220 and the outer surface OF2a of the second arrangement portion PP2 are substantially constant. Therefore, in this embodiment, it is possible to prevent the adhesive from being distributed unevenly compared to when the FPC 200 is fixed to the ink tank 100 with a general curing adhesive. In other words, in this embodiment, it is possible to prevent the distance between the input electrode 210 and the detection electrode 220 from varying depending on the position within the detection electrode 220 compared to when the FPC 200 is fixed to the ink tank 100 with a general curing adhesive. As a result, in this embodiment, it is possible to improve the accuracy of detecting the amount of ink INK stored in the ink tank 100.
[0115] In this embodiment, the inner surface IF1 opposite the outer surface OF1 of the outer wall 120a and the inner surface IF2 opposite the outer surface OF2 of the outer wall 120b are subjected to a water-repellent treatment. Specifically, the water-repellent treatment is applied to the portion of the inner surface IF1 of the outer wall 120a exposed to the space SP and the portion of the inner surface IF2 of the outer wall 120b exposed to the space SP. That is, the water-repellent treatment is not applied to the portions of the inner surface IF1 of the outer wall 120a that are bonded to the outer walls 120c, 120d, and 120e and the portions that are bonded to the partition walls 122a and 122b. The water-repellent treatment is, for example, a water-repellent treatment using a silicone-based coating. Note that the water-repellent treatment is not limited to a water-repellent treatment using a silicone-based coating. For example, the water-repellent treatment may be a water-repellent treatment using a fluorine-based coating.
[0116] In this embodiment, among the inner surfaces IF1 of the outer wall 120a, the reference numeral of the inner surface IF1 of the first arrangement portion PP1 has a lowercase alphabet "a" added to the end of its symbol. Similarly, among the inner surfaces IF2 of the outer wall 120b, the reference numeral of the inner surface IF2 of the second arrangement portion PP2 has a lowercase alphabet "a" added to the end of its symbol.
[0117] The range of the water-repellent treatment is not limited to the above example, as long as the water-repellent treatment is applied to the inner surface IF1a of the first arrangement portion PP1 of the outer wall 120a and the inner surface IF2a of the second arrangement portion PP2 of the outer wall 120b. For example, the water-repellent treatment may be applied to the inner surface IF1a of the first arrangement portion PP1 and the inner surface IF2a of the second arrangement portion PP2 using a fluorine-based coating or a silicone-based coating.
[0118] In this embodiment, the water-repellent treatment is applied to the inner surface IF1a of the first arrangement portion PP1 and the inner surface IF2a of the second arrangement portion PP2, thereby improving the water-repellent properties of the inner surface IF1a of the first arrangement portion PP1 and the inner surface IF2a of the second arrangement portion PP2. As a result, in this embodiment, it is possible to prevent ink INK from adhering to the inner surfaces IF1a and IF2a compared to when the water-repellent treatment is not applied to the inner surfaces IF1a and IF2a.
[0119] For example, when ink INK adheres to the inner surfaces IF1a and IF2a, the accuracy of detecting the amount of ink INK stored in the ink tank 100 may be reduced compared to when ink INK does not adhere to the inner surfaces IF1a and IF2a. In this embodiment, adhesion of ink INK to the inner surfaces IF1a and IF2a can be suppressed, thereby improving the accuracy of detecting the amount of ink INK stored in the ink tank 100.
[0120] Furthermore, in this embodiment, as described above, the portions of the inner surface IF1 of the outer wall 120a that are bonded to the outer walls 120c, 120d, and 120e and the portions that are bonded to the partition walls 122a and 122b are not subjected to a water-repellent treatment. Therefore, in this embodiment, it is possible to prevent a decrease in the adhesive strength between the outer walls 120c, 120d, and 120e and the outer wall 120a, and between the partition walls 122a and 122b and the outer wall 120a.
[0121] When ink INK is ejected from the ejection unit 30a of the head unit 30, the amount of ink INK stored in the ink tank 100 decreases, causing the liquid level L of the ink INK to drop. In this embodiment, the management unit 2, which has the tank unit 10 and the detection circuit 20, can determine the amount of ink INK stored in the ink tank 100, i.e., the remaining amount of ink INK, by detecting the liquid level L of the ink INK using the detection circuit 20. The management unit 2 may also have a notification unit that notifies the user of the inkjet printer 1 of the remaining amount of ink INK. For example, the notification unit may notify the user of the inkjet printer 1 of the remaining amount of ink INK by displaying the remaining amount of ink INK. In an aspect in which the management unit 2 has a notification unit, notifying the user of the inkjet printer 1 of the remaining amount of ink INK can prevent the ink INK from running out at an undesired time.
[0122] Next, with reference to FIG. 8, an outline of a method for detecting the amount of ink INK stored in the ink tank 100 will be described.
[0123] Fig. 8 is an explanatory diagram for explaining an outline of a method for detecting the amount of ink INK stored in the ink tank 100. Fig. 8 shows a cross section of the ink tank 100 and FPC 200 taken along line A1-A2 shown in Fig. 2. In Fig. 8, as in Fig. 7, elements located in the +Z direction from the partition wall 122b, the support portion 130, etc. are omitted for ease of viewing.
[0124] Capacitor CCa is formed by input electrode 210, detection electrode 220a, and dielectrics present between input electrode 210 and detection electrode 220a. Major dielectrics present between input electrode 210 and detection electrode 220a include, for example, double-sided tape 260, outer wall 120a, one or both of ink INK and air, and outer wall 120b. The capacitance of capacitor CCa is represented by, for example, the combined capacitance of multiple capacitors divided based on the multiple dielectrics present between input electrode 210 and detection electrode 220a.
[0125] 8, it is assumed that the capacitor CCa is divided into capacitors Ca1 and Ca5, each of which uses the double-sided tape 260 as a dielectric, capacitors Ca2 and Ca3, each of which uses the outer wall 120a as a dielectric, and capacitor Ca4, each of which uses the outer wall 120b as a dielectric. Note that the capacitor Ca3 is a capacitor that uses one or both of the ink INK and air as a dielectric, among the dielectrics present between the input electrode 210 and the detection electrode 220a.
[0126] Furthermore, input electrode 210, detection electrode 220b, and the dielectric present between input electrode 210 and detection electrode 220b form capacitor CCb. The dielectric present between input electrode 210 and detection electrode 220b is the same as the dielectric present between input electrode 210 and detection electrode 220a. For example, capacitor CCb is divided into capacitors Cb1 and Cb5, each of which uses double-sided tape 260 as a dielectric, capacitor Cb2 and capacitor Cb3, each of which uses outer wall 120a as a dielectric, and capacitor Cb4, each of which uses outer wall 120b as a dielectric.
[0127] For example, the capacitance CC of each of the capacitors CCa and CCb is expressed by equation (1) using capacitances C1, C2, C3, C4, and C5 of the multiple capacitors obtained by dividing each of the capacitors CCa and CCb. CC=1 / (1 / C1+1 / C2+1 / C3+1 / C4+1 / C5) ···(1)
[0128] In this embodiment, it is assumed that the detection electrodes 220a and 220b are the same size, so C1 in formula (1) represents the capacitance of capacitors Ca1 and Cb1, and C2 represents the capacitance of capacitors Ca2 and Cb2. Also, C4 in formula (1) represents the capacitance of capacitors Ca4 and Cb4, and C5 represents the capacitance of capacitors Ca5 and Cb5. Also, when formula (1) represents the capacitance C of capacitor CCa, C3 represents the capacitance of capacitor Ca3, and when formula (1) represents the capacitance C of capacitor CCb, C3 represents the capacitance of capacitor Cb3.
[0129] In the following description, the capacitances CC, C1, C2, C3, C4, and C5 may be collectively referred to as capacitance C. For example, capacitance C [F] is expressed by equation (2). C=ε0*ε1*S / d (2)
[0130] In addition, "*" in equation (2) indicates multiplication. In addition, S in equation (2) indicates the area of detection electrode 220a or 220b, and d indicates the distance between the electrodes of the capacitor. In the example shown in FIG. 8, the length in the Y direction of the dielectric of the capacitor corresponds to the distance d. In addition, ε0 in equation (2) indicates the dielectric constant of a vacuum, and ε1 indicates the relative dielectric constant of the dielectric of the capacitor.
[0131] As shown in equation (2), the capacitance C increases in proportion to the relative dielectric constant ε1 of the dielectric of the capacitor. Of the capacitors Ca1 to Ca5 and Cb1 to Cb5, the relative dielectric constant ε1 of the capacitors other than capacitors Ca3 and Cb3 does not change even if the amount of ink INK stored in the ink tank 100 changes. In contrast, the relative dielectric constant ε1 of the capacitors Ca3 and Cb3, which use ink INK and / or air as their dielectric, varies depending on the amount of ink INK stored in the ink tank 100.
[0132] For example, in the capacitor Ca3, the relative dielectric constant ε1 changes depending on the ratio of ink INK to air present between the input electrode 210 and the detection electrode 220a. The relative dielectric constant ε1 of ink INK is greater than the relative dielectric constant ε1 of air. For example, the relative dielectric constant ε1 of ink INK varies depending on the material of the ink INK, but is approximately 80 if considered to be close to the relative dielectric constant of water. Furthermore, the relative dielectric constant ε1 of air is approximately 1.
[0133] In this way, the capacitance C3 of capacitors Ca3 and Cb3 changes depending on the amount of ink INK stored in the ink tank 100. For example, the effect of a change in the capacitance C3 of capacitor Ca3 on capacitor CCa is greater when the capacitance C of capacitors other than capacitor Ca3 is large than when the capacitance C of capacitors other than capacitor Ca3 is small. Similarly, the effect of a change in the capacitance C3 of capacitor Cb3 on capacitor CCb is greater when the capacitance C of capacitors other than capacitor Cb3 is large than when the capacitance C of capacitors other than capacitor Cb3 is small.
[0134] For example, the capacitance C increases in proportion to the reciprocal of the distance d between the electrodes of the capacitor. That is, when the length of the dielectric of the capacitor in the Y direction is small, the capacitance C is larger than when the length of the dielectric of the capacitor in the Y direction is large. Therefore, in this embodiment, as described in FIG. 7 , the thickness T1 of the first arrangement portion PP1 of the outer wall 120a is thinner than the thickness T2 of the second arrangement portion PP2 of the outer wall 120b and the thickness T3 of the outer wall 120d. The thickness T1 of the first arrangement portion PP1 is not particularly limited as long as it is thinner than either the thickness T2 or T3. For example, the thickness T1 of the first arrangement portion PP1 may be approximately 0.01 mm, and the thickness T2 of the second arrangement portion PP2 may be approximately 1 mm.
[0135] In this embodiment, because the thickness T1 of the first arrangement portion PP1 is thinner than the thicknesses T2 and T3, the capacitance C1 of the capacitors Ca1 and Cb1 can be made larger than when the thickness T1 of the first arrangement portion PP1 is the same as the thickness T2 or T3. This allows the change in the capacitance C3 of each of the capacitors Ca3 and Cb3 to be detected with high accuracy. As a result, the accuracy of detecting the amount of ink INK stored in the ink tank 100 can be improved in this embodiment.
[0136] In this embodiment, it is assumed that the dielectric constant of the first arrangement portion PP1 of the outer wall 120a is higher than the dielectric constant of the second arrangement portion PP2 of the outer wall 120b and the dielectric constant of the outer wall 120d. In this case, the capacitance C1 of the capacitors Ca1 and Cb1 can be made larger than when the outer wall 120a is made of a material having the same dielectric constant as that of the outer wall 120b or 120d.
[0137] In the example shown in FIG. 8, in order to reduce the transmission of noise to the input electrode 210 and the detection electrodes 220a and 220b, the terminal TMg of the shield wiring 240 is grounded via one of the external contacts CTg1 to CTg6.
[0138] Furthermore, the terminal TMt1 of the input electrode 210 is electrically connected to the AC power supply ACP via an external contact CTt1. The AC power supply ACP outputs, for example, an AC signal including a pulse with an amplitude of 3.3 [V] as an input signal Vin to the input electrode 210. The input signal Vin is transmitted to the detection electrode 220a via a capacitor CCa as a detection signal Vout1, and transmitted to the detection electrode 220b via a capacitor CCb as a detection signal Vout2. The terminal TMR1 of the detection electrode 220a is electrically connected to an input terminal IN1 of a selection circuit 21 (described later in FIG. 10) via the external contact CTr1, and the terminal TMR2 of the detection electrode 220b is electrically connected to an input terminal IN2 of the selection circuit 21 via the external contact CTr2. As a result, the detection signals Vout1 and Vout2 are input to the selection circuit 21. The detection signals Vout1 and Vout2 are examples of "electrical signals."
[0139] Note that the amplitude of the detection signal Vout1 is larger when the capacitance CC of the capacitor CCa is large than when the capacitance CC of the capacitor CCa is small. For example, the amplitude of the detection signal Vout1 is larger when the capacitance C3 of the capacitor Ca3 is large than when the capacitance C3 of the capacitor Ca3 is small. That is, when the space between the input electrode 210 and the detection electrode 220a is filled with ink INK, the amplitude of the detection signal Vout1 is larger than when the space between the input electrode 210 and the detection electrode 220a is filled with air. Similarly, when the space between the input electrode 210 and the detection electrode 220b is filled with ink INK, the amplitude of the detection signal Vout2 is larger than when the space between the input electrode 210 and the detection electrode 220b is filled with air.
[0140] 8, the liquid level L of the ink INK is located between the liquid level range LV1 and the liquid level range LV2, and therefore the amplitude of the detection signal Vout1 is larger than the amplitude of the detection signal Vout2. The liquid level range LV1 corresponds to the position of the detection electrode 220a in the Z direction, and is the range from the -Z side to the +Z side of the two sides of the detection electrode 220a along the X direction. The liquid level range LV2 corresponds to the position of the detection electrode 220b in the Z direction, and is the range from the -Z side to the +Z side of the two sides of the detection electrode 220b along the X direction.
[0141] Next, with reference to FIG. 9, the relationship between the liquid level L of the ink INK in the ink tank 100 and the detection signals Vout1 and Vout2 will be described.
[0142] FIG. 9 is an explanatory diagram illustrating the relationship between the liquid level L of the ink INK in the ink tank 100 and the detection signals Vout1 and Vout2. Hereinafter, the detection signals Vout1 and Vout2 may be collectively referred to as the detection signal Vout. The horizontal axis of the diagram indicates the position of the liquid level L of the ink INK in the Z direction. For example, position H2 is located in the +Z direction from position H1. The liquid level range LV2 is located in the +Z direction from the liquid level range LV1. In other words, the liquid level range LV2 is located above the liquid level range LV1. The vertical axis of the diagram indicates the magnitude of the detection signal Vout, which is the voltage of the detection electrode 220. The magnitude of the detection signal Vout may be, for example, the amplitude of the detection signal Vout or the effective value of the detection signal Vout. The voltage VH is greater than the voltage Vth, and the voltage Vth is greater than the voltage VL.
[0143] The voltage Vth is a threshold voltage when the magnitude of the detection signal Vout is expressed as two values such as a high level and a low level. For example, the voltage Vth may be a central voltage between the voltages VL and VH, a voltage between the voltages VL and VH that is closer to the voltage VL than the voltage VH, or a voltage between the voltages VL and VH that is closer to the voltage VH than the voltage VL.
[0144] When the space between the input electrode 210 and the detection electrode 220a is filled with air and no ink INK is present between the input electrode 210 and the detection electrode 220a, the magnitude of the detection signals Vout1 and Vout2 is voltage VL. The magnitude of the detection signal Vout1 increases as the proportion of ink INK present between the input electrode 210 and the detection electrode 220a increases. For example, when the magnitude of the detection signal Vout1 is voltage Vth, it can be assumed that the ink level L of the ink is present in a liquid level range LV1 that includes the position H1 where the detection electrode 220a is located. When the space between the input electrode 210 and the detection electrode 220a is filled with ink INK and no air is present between the input electrode 210 and the detection electrode 220a, the magnitude of the detection signal Vout1 is voltage VH.
[0145] The magnitude of the detection signal Vout2 increases when the proportion of ink INK present between the input electrode 210 and the detection electrode 220b increases. For example, when the magnitude of the detection signal Vout2 is voltage Vth, it can be considered that the ink level L of the ink is present in a liquid level range LV2 that includes the position H2 where the detection electrode 220b is located. When the space between the input electrode 210 and the detection electrode 220b is filled with ink INK and no air is present between the input electrode 210 and the detection electrode 220b, the magnitude of the detection signal Vout2 is voltage VH.
[0146] Next, the detection circuit 20 will be described with reference to FIG.
[0147] Fig. 10 is a circuit diagram of the detection circuit 20. Fig. 10 is an excerpt of a portion of the management unit 2 that manages the amount of ink INK stored in one of the ink tanks 100 of the multiple ink tanks 100 that the tank unit 10 has. In Fig. 10, for ease of explanation, the tank unit 10 is shown as an equivalent circuit represented by capacitors CCa and CCb.
[0148] The detection circuit 20 includes a selection circuit 21, a bias circuit 22, a buffer circuit 23, a band pass filter (BPF) 24, a sample and hold (SH) circuit 25, a low pass filter (LPF) 26, an amplifier circuit 27, and an analog to digital converter (ADC) 28.
[0149] The selection circuit 21 has input terminals IN1 and IN2 and an output terminal OT. Under the control of the control unit 4, the selection circuit 21 electrically connects one of the input terminals IN1 and IN2 to the output terminal OT and grounds the other of the input terminals IN1 and IN2.
[0150] For example, the input terminal IN1 of the selection circuit 21 is electrically connected to the external contact CTr1 that contacts the terminal TMR1, and the input terminal IN2 of the selection circuit 21 is electrically connected to the external contact CTr2 that contacts the terminal TMR2. That is, the input terminal IN1 of the selection circuit 21 is electrically connected to the detection electrode 220a via the external contact CTr1 and the terminal TMR1, and the input terminal IN2 of the selection circuit 21 is electrically connected to the detection electrode 220b via the external contact CTr2 and the terminal TMR2. The output terminal OT of the selection circuit 21 is electrically connected to the buffer circuit 23 via the bias circuit 22.
[0151] That is, the selection circuit 21 selects the detection signal Vout from the detection signal Vout1 received at the input terminal IN1 and the detection signal Vout2 received at the input terminal IN2 under the control of the control unit 4, and outputs the selected detection signal Vout from the output terminal OT to the buffer circuit 23. In this way, the selection circuit 21 switches the detection signal Vout to be output to the buffer circuit 23 between the detection signal Vout1 and the detection signal Vout2.
[0152] The bias circuit 22 biases, for example, the output terminal OT of the selection circuit 21, i.e., the input of the buffer circuit 23, to a predetermined bias voltage between the power supply voltage and the ground voltage. The bias circuit 22 may also bias the input of the buffer circuit 23 with a predetermined bias current.
[0153] The buffer circuit 23 outputs the detection signal Vout output from the selection circuit 21 to the BPF 24. As described above, the detection signal Vout output from the selection circuit 21 is biased to a predetermined bias voltage by the bias circuit 22. In the buffer circuit 23, for example, the input impedance is higher than the output impedance. For example, the buffer circuit 23 is used for impedance conversion.
[0154] The BPF 24 selectively passes components within a predetermined frequency range and removes other components. For example, the BPF 24 outputs to the SH circuit 25, the signal of the components within the predetermined frequency range from the detection signal Vout output from the buffer circuit 23.
[0155] The SH circuit 25 receives, for example, the input signal Vin output from the AC power supply ACP and the signal output from the BPF 24. The SH circuit 25 samples the signal output from the BPF 24 at a period based on the period of the input signal Vin and holds the voltage value of the sampled signal until the operation of the ADC 28 is completed. The SH circuit 25 also outputs the sampled signal to the LPF 26.
[0156] The LPF 26 removes frequency components higher than a predetermined threshold and passes frequency components equal to or lower than the predetermined threshold. For example, the LPF 26 removes frequency components higher than a predetermined threshold from the signal output from the SH circuit 25 and outputs the signal with frequency components equal to or lower than the predetermined threshold to the amplifier circuit 27. Therefore, the signal that has passed through the LPF 26 is a signal from which noise and other frequency components higher than the predetermined threshold have been removed.
[0157] The amplifier circuit 27 amplifies the signal output from the LPF 26 by a predetermined amplification factor, and outputs the amplified signal to the ADC 28. The signal output from the amplifier circuit 27 to the ADC 28 is an analog signal.
[0158] The ADC 28 converts the analog signal output from the amplifier circuit 27 into a digital signal. The ADC 28 then outputs the digital signal converted from the analog signal to the control unit 4 as an output signal Do. The output signal Do is a digital signal that indicates the magnitude of the detection signal Vout selected by the selection circuit 21 from the detection signals Vout1 and Vout2. In this way, the detection circuit 20 detects the amount of ink INK stored in the ink tank 100 by detecting the magnitude of the detection signals Vout1 and Vout2. Details will be described later with reference to FIG. 14, but for example, the control unit 4 determines the amount of ink INK stored in the ink tank 100 based on the output signal Do output from the detection circuit 20.
[0159] The configuration of the detection circuit 20 is not limited to the example shown in FIG. 10 . For example, the detection circuit 20 may have a comparator, instead of the ADC 28, that compares whether the output voltage of the amplifier circuit 27 is equal to or greater than a predetermined value. Furthermore, for example, if there is one detection electrode 220, the selection circuit 21 may be omitted. Alternatively, if there are three or more detection electrodes 220, the selection circuit 21 may have three or more input terminals IN that correspond one-to-one to the three or more detection electrodes 220. The selection circuit 21 electrically connects one of the three or more input terminals IN to the output terminal OT and grounds the other input terminal IN.
[0160] Next, the overall configuration of the FPC 200 will be described with reference to FIG.
[0161] Fig. 11 is a plan view showing an example of the FPC 200. Fig. 11 is a plan view of the FPC 200 in a state where it is not adhered to the ink tank 100. In Fig. 11, to facilitate correspondence with Fig. 3, the +X direction, +Y direction, and +Z direction with respect to the detection electrode 220 are the same as in Fig. 3. In Fig. 11, to make the drawing easier to see, the FPC 200 is shown divided into a view of the first cover film layer 201 and the first conductive layer 202, a view of the base material layer 203, and a view of the second conductive layer 204 and the second cover film layer 205.
[0162] The FPC 200 is an FPC that can mount components on both sides of a base layer 203. For example, a first conductive layer 202 is provided on one side of the base layer 203, and a second conductive layer 204 is provided on the other side of the base layer 203.
[0163] The first conductive layer 202 has, for example, an input electrode 210, a wiring 212 for the input electrode 210, a detection electrode 220a, a wiring 222a for the detection electrode 220a, a detection electrode 220b, a wiring 222b for the detection electrode 220b, and shield wirings 240a, 240b, and 240c. The input electrode 210, the detection electrodes 220a and 220b, the wirings 212, 222a, and 222b, and the shield wirings 240a, 240b, and 240c each extend in the X direction.
[0164] For example, the distance D12 between the input electrode 210 and the detection electrode 220 is larger than the Z-direction width W10z of the input electrode 210. Furthermore, for example, the Z-direction width W12z of the wiring 212 of the input electrode 210 is smaller than the Z-direction width W10z of the input electrode 210, and the Z-direction width W10z of the input electrode 210 is smaller than the X-direction width W10x of the input electrode 210. Furthermore, the Z-direction width W20az of the wiring 222a of the detection electrode 220a is smaller than the Z-direction width W20az of the detection electrode 220a, and the Z-direction width W20az of the detection electrode 220a is smaller than the X-direction width W20ax of the detection electrode 220a. Similarly, the width W20bz in the Z direction of the wiring 222b of the detection electrode 220b is smaller than the width W20bz of the detection electrode 220b in the Z direction, and the width W20bz of the detection electrode 220b is smaller than the width W20bx of the detection electrode 220b in the X direction.
[0165] In this embodiment, it is assumed that the detection electrodes 220a and 220b have substantially the same shape and size. For example, the Z-direction width W20az of the detection electrode 220a is substantially equal to the Z-direction width W20bz of the detection electrode 220b, and the X-direction width W20ax of the detection electrode 220a is substantially equal to the X-direction width W20bx of the detection electrode 220b. When the detection electrodes 220a and 220b have substantially the same shape, it is considered that the electrical characteristics of the capacitor CCa including the detection electrode 220a and the capacitor CCb including the detection electrode 220b are substantially equal. Therefore, in this embodiment, the detection circuit 20 that uses the detection signal Vout1 input from the detection electrode 220a and the detection circuit 20 that uses the detection signal Vout2 input from the detection electrode 220b can be shared. As a result, this embodiment can prevent an increase in the number or size of the detection circuits 20 corresponding to one ink tank 100.
[0166] Note that, as long as the detection circuit 20 can be shared between the detection electrodes 220a and 220b, for example, the size of the detection electrode 220a may be different from the size of the detection electrode 220b. For example, the difference between the Z-direction width W20az of the detection electrode 220a and the Z-direction width W20bz of the detection electrode 220b may be equal to or less than a first value, and the difference between the X-direction width W20ax of the detection electrode 220a and the X-direction width W20bx of the detection electrode 220b may be equal to or less than a second value. The first and second values are, for example, allowable values for the difference in size between the detection electrodes 220a and 220b when the detection circuit 20 is shared between the detection electrodes 220a and 220b. Furthermore, when the detection circuits 20 are provided separately for the detection electrodes 220a and 220b, the detection electrodes 220a and 220b do not have to have substantially the same shape or size.
[0167] Hereinafter, the Z-direction width W20az of the detection electrode 220a and the Z-direction width W20bz of the detection electrode 220b may be collectively referred to as width W20z, and the X-direction width W20ax of the detection electrode 220a and the X-direction width W20bx of the detection electrode 220b may be collectively referred to as width W20x.
[0168] Furthermore, the shield wiring 240c is disposed between the detection electrodes 220a and 220b, and between the wiring 222a and 222b. In this embodiment, it is assumed that the width W40cz in the Z direction of the shield wiring 240c is equal to or greater than the width W20az in the Z direction of the detection electrode 220a and equal to or greater than the width W20bz in the Z direction of the detection electrode 220b. When the width W40cz of the shield wiring 240c is equal to or greater than the width W20 of the detection electrode 220, interference between the two detection electrodes 220a and 220b can be reduced compared to when the width W40cz of the shield wiring 240c is less than the width W20 of the detection electrode 220.
[0169] Furthermore, the bent portion BP1 includes a portion of the wiring 212 of the input electrode 210, a portion of the shield wiring 240a, and a portion of the shield wiring 240b, but does not include the input electrode 210. Similarly, the bent portion BP2 includes a portion of the wiring 222a of the detection electrode 220a, a portion of the wiring 222b of the detection electrode 220b, a portion of the shield wiring 240a, and a portion of the shield wiring 240b, but does not include the detection electrodes 220a and 220b. In other words, the FPC 200 is bent along the outer periphery of the ink tank 100 at the portion where the wiring 212 and the portion where the wiring 222a are arranged.
[0170] In this way, the bent portion BP1 does not include the input electrode 210, which is wider than the wiring 212. Therefore, in this embodiment, the rigidity of the bent portion BP1 can be made lower than that of the portion where the input electrode 210 is arranged. Similarly, in this embodiment, the rigidity of the bent portion BP2 can be made lower than that of the portion where the detection electrode 220 is arranged. As a result, in this embodiment, the FPC 200 can be easily bent at the bent portions BP1 and BP2 along the outer periphery of the ink tank 100.
[0171] The second conductive layer 204 includes, for example, a shielding wiring 240d, an extension wiring 242d of the shielding wiring 240d, a shielding wiring 240e, an extension wiring 242e of the shielding wiring 240e, and a plurality of terminals TM. The shielding wiring 240d is electrically connected to one or more of the plurality of terminals TMg via the extension wiring 242d, and the shielding wiring 240e is electrically connected to one or more of the plurality of terminals TMg via the extension wiring 242e. For example, the shielding wiring 240d is electrically connected to terminals TMg4 and TMg5 via the extension wiring 242d. Furthermore, for example, the shielding wiring 240e is electrically connected to terminal TMg6 via the extension wiring 242e.
[0172] The lead-out wirings 242d and 242e are formed of the same material as the input electrode 210. In this embodiment, it is assumed that the shielding wiring 240d and the lead-out wiring 242d are integrally formed, and the shielding wiring 240e and the lead-out wiring 242e are integrally formed. In this case, the lead-out wiring 242d is directly connected to the shielding wiring 240d, and the lead-out wiring 242e is directly connected to the shielding wiring 240e. Note that the shielding wiring 240d, the lead-out wiring 242d, and the terminals TMg4 and TMg5 may be integrally formed. Similarly, the shielding wiring 240e, the lead-out wiring 242e, and the terminal TMg6 may be integrally formed.
[0173] For example, in a plan view from the +Y direction, the shield wiring 240d includes a region that overlaps with the entire input electrode 210 and at least a portion of the wiring 212. For example, the width W40dx of the shield wiring 240d in the X direction is larger than the width W10x of the input electrode 210 in the X direction. Furthermore, the width W40dz of the shield wiring 240d in the Z direction is larger than the width W10z of the input electrode 210 in the Z direction. In other words, the shield wiring 240d extends in the X direction with a constant width W40dz. Note that the shield wiring 240d may extend in the X direction with a substantially constant width W40dz that includes some error.
[0174] 11, the bent portion BP1 is located between two edge portions EP3d and EP4d of the shield wiring 240d. The two edge portions EP3d and EP4d of the shield wiring 240d are, for example, edge portions that are separated from each other in the X direction among the edge portions as seen in a plan view from the +Y direction. Note that the edge portion EP4d, which is located in the +X direction from the edge portion EP3d, may be located in the −X direction from the bent portion BP1 in a range that includes the region where the shield wiring 240d entirely overlaps with the input electrode 210 in a plan view from the +Y direction.
[0175] For example, in a plan view from the +Y direction, the shield wiring 240e includes regions overlapping with the entire detection electrode 220a, the entire detection electrode 220b, at least a portion of the wiring 222a, and at least a portion of the wiring 222b. For example, the X-direction width W40ex of the shield wiring 240e is greater than both the X-direction width W20ax of the detection electrode 220a and the X-direction width W20bx of the detection electrode 220b. Furthermore, the Z-direction width W40ez of the shield wiring 240e is greater than the sum of the Z-direction width W20az of the detection electrode 220a and the Z-direction width W20bz of the detection electrode 220b. In other words, the shield wiring 240e extends in the X-direction with a constant width W40ez. Note that the shield wiring 240e may extend in the X-direction with a substantially constant width W40ez, including an error.
[0176] 11, the bent portion BP2 is located between two edge portions EP3e and EP4e of the shield wiring 240e. The two edge portions EP3e and EP4e of the shield wiring 240e are, for example, edge portions that are separated from each other in the X direction among the edge portions seen in a plan view from the +Y direction. Note that the edge portion EP4e, which is located in the -X direction from the edge portion EP3e, may be located in the +X direction from the bent portion BP2 in a range that includes the region where the shield wiring 240e entirely overlaps with the detection electrode 220 in a plan view from the +Y direction.
[0177] 11, the +Y direction corresponds to the direction perpendicular to the surface facing outer wall 120a of input electrode 210 and the direction perpendicular to the surface facing outer wall 120b of detection electrode 220. The X direction corresponds to the extension direction of FPC 200.
[0178] In addition, in the terminal arrangement in which the terminals TMt1, TMR1, TMg1, TMg2, and TMg3 are arranged, the terminal TMt1 is located at one end of the terminal arrangement, and the terminal TMR1 is located at the other end of the terminal arrangement.
[0179] Furthermore, the number of terminals TMg located between the terminal TMt1 and one of the terminals TMR1 and TMR2 is greater than the number of terminals TMg located between the terminals TMR1 and TMR2. In the example shown in FIG. 11, the number of terminals TMg located between the terminals TMR1 and TMR2 is two, terminals TMg3 and TMg6. The number of terminals TMg located between the terminal TMt1 and the terminal TMR1 is three, terminals TMg1, TMg2, and TMg3. The number of terminals TMg located between the terminal TMt1 and the terminal TMR2 is four, terminals TMg1, TMg2, TMg4, and TMg5. In this embodiment, by increasing the number of terminals TMg located between the terminal TMt1 and one of the terminals TMR1 and TMR2, it is possible to reduce interference between the terminal TMt1 and one of the terminals TMR1 and TMR2.
[0180] Note that, when focusing on the distance between the terminals TM rather than the number of terminals TMg, the distance between the terminal TMt1 and one of the terminals TMR1 and TMR2 is greater than the distance between the terminals TMR1 and TMR2. The distance between the terminals TM may be the distance between the center of one of the two terminals TM and the center of the other terminal TM, or may be the shortest distance between the two terminals TM. In this case, by increasing the distance between the terminal TMt1 and one of the terminals TMR1 and TMR2, it is possible to reduce interference between the terminal TMt1 and one of the terminals TMR1 and TMR2.
[0181] Through holes TH1, TH2a, TH2b, TH4a, TH4b, and TH4c are formed in the base material layer 203 and penetrate the base material layer 203. Hereinafter, the through holes TH1, TH2a, TH2b, TH2a, TH4a, TH4b, and TH4c may be collectively referred to as through holes TH. Note that in the example shown in Fig. 11, the number of through holes TH is 10, but the number of through holes TH is not limited to 10.
[0182] A through-wire TW1 inserted through the through-hole TH1 connects the terminal TMt1 and the wire 212. The wire 212 connects the through-wire TW1 and the input electrode 210. That is, the input electrode 210 is electrically connected to the terminal TMt1 via the through-wire TW1. A through-wire TW2a inserted through the through-hole TH2a connects the terminal TMR1 and the wire 222a. The wire 222a connects the through-wire TW2a and the detection electrode 220a. That is, the detection electrode 220a is electrically connected to the terminal TMR1 via the through-wire TW2a. A through-wire TW2b inserted through the through-hole TH2b connects the terminal TMR2 and the wire 222b. The wire 222b connects the through-wire TW2b and the detection electrode 220b. That is, the detection electrode 220b is electrically connected to the terminal TMR2 via the through-wire TW2b.
[0183] The shield wiring 240a is electrically connected to the terminals TMg1, TMg2, and TMg3 by a through wiring TW4a that passes through the through hole TH4a. The shield wiring 240b is electrically connected to the terminals TMg4, TMg5, and TMg6 by a through wiring TW4b that passes through the through hole TH4b. The shield wiring 240c is electrically connected to the terminal TMg6 by a through wiring TW4c that passes through the through hole TH4c. Hereinafter, the through wirings TW1, TW2a, TW2b, TW4a, TW4b, and TW4c may be collectively referred to as the through wirings TW.
[0184] Here, the second conductor layer 204, which includes the shield wirings 240d and 240e and the multiple terminals TM, is covered by the second cover film layer 205, except for the multiple terminals TM. That is, the multiple terminals TM are exposed to the outside of the FPC 200. This allows the multiple terminals TM to be in contact with the multiple external contacts CT via spring contacts or the like in this embodiment. Note that in the FPC 200, at least a portion of the terminal arrangement area AR, which includes the multiple terminals TM, is located between the input electrode 210 and the detection electrode 220a. For example, in the FPC 200, the input electrode 210 is located in the −X direction relative to the terminal arrangement area AR, and the detection electrode 220 is located in the +X direction relative to the terminal arrangement area AR. In this embodiment, because the multiple terminals TM are concentrated between the input electrode 210 and the detection electrode 220a, it is possible to reduce the size of an external substrate or the like on which the multiple external contacts CT that contact the multiple terminals TM are provided.
[0185] As described above, in this embodiment, the input electrode 210 and the detection electrodes 220a and 220b are provided on a single FPC 200. Therefore, in this embodiment, the FPC 200 can be more easily attached to the ink tank 100 than in an embodiment in which the input electrode 210 and the detection electrode 220 are provided on two different FPCs. Furthermore, in an embodiment in which the input electrode 210 and the detection electrode 220 are provided on two different FPCs, there is a risk that the position of the detection electrode 220 will be significantly misaligned with respect to the input electrode 210 when the two FPCs are attached to the ink tank 100. In contrast, in this embodiment, it is only necessary to attach a single FPC 200 to the ink tank 100, and therefore it is possible to reduce the likelihood of the detection electrode 220 being misaligned with respect to the input electrode 210 when the FPC 200 is attached to the ink tank 100.
[0186] The arrangement of the multiple positioning portions PT is not limited to the example shown in FIG. 11 . For example, the ink tank 100 may have a fifth positioning portion PT and a seventh positioning portion PT in addition to the positioning portions PT10 and PT12. In this case, the FPC 200 has a sixth positioning portion PT that fits with the fifth positioning portion PT and an eighth positioning portion PT that fits with the seventh positioning portion PT. For example, in the X direction, at least a portion of the terminal arrangement region AR may be located between the sixth positioning portion PT and the eighth positioning portion PT. That is, the FPC 200 may have two positioning portions PT that penetrate the FPC 200, positioned on either side of the terminal arrangement region AR in the X direction. In this case, the positioning portions PT are arranged to surround the terminal arrangement region AR, which further reduces deviation of the multiple terminals TM from their predetermined positions relative to the ink tank 100 when the FPC 200 is attached to the ink tank 100.
[0187] Next, the relationship between the capacitance between the input electrode 210 and the detection electrode 220 and the size of the detection electrode 220 will be described with reference to FIGS.
[0188] FIG. 12 is an explanatory diagram illustrating an example of the relationship between the capacitance between the input electrode 210 and the detection electrode 220 and the size of the detection electrode 220. The horizontal axis of the diagram indicates the position of the ink INK liquid surface L in the Z direction, and the vertical axis of the diagram indicates the capacitance of capacitors CCa and CCb. The solid line in the diagram indicates the capacitance of capacitor CCa, and the dashed line in the diagram indicates the capacitance of capacitor CCb. Note that FIG. 12 shows the results of simulations for three patterns in which the width W20z of the detection electrode 220 in the Z direction is "α", "2*α", and "3*α". α is a positive value. The width W20x of the detection electrode 220 in the X direction is the same for all three simulation patterns.
[0189] When the width W20z of the detection electrode 220 in the Z direction is large, the capacitance when the space between the input electrode 210 and the detection electrode 220 is filled with ink INK is larger than when the width W20z of the detection electrode 220 in the Z direction is small. Note that even if the width W20z of the detection electrode 220 in the Z direction changes, the amount of change in capacitance with respect to a given amount of change in the proportion of ink INK present between the input electrode 210 and the detection electrode 220 remains approximately constant.
[0190] FIG. 13 is an explanatory diagram illustrating another example of the relationship between the capacitance between the input electrode 210 and the detection electrode 220 and the size of the detection electrode 220. As with FIG. 12, the horizontal axis of the diagram indicates the position of the ink level L in the Z direction, and the vertical axis of the diagram indicates the capacitance of capacitors CCa and CCb. The solid line in the diagram indicates the capacitance of capacitor CCa, and the dashed line in the diagram indicates the capacitance of capacitor CCb. Note that FIG. 13 shows the results of simulations for three patterns in which the width W20x of the detection electrode 220 in the X direction is "β," "2*β," and "3*β." β is a positive value. The width W20z of the detection electrode 220 in the Z direction is the same for all three simulation patterns.
[0191] When the width W20x in the X direction of the detection electrode 220 is large, the capacitance when the space between the input electrode 210 and the detection electrode 220 is filled with ink INK is larger than when the width W20x in the X direction of the detection electrode 220 is small. In other words, when the area of the detection electrode 220 is large, the capacitance when the space between the input electrode 210 and the detection electrode 220 is filled with ink INK is larger than when the area of the detection electrode 220 is small.
[0192] Furthermore, when the X-direction width W20x of the detection electrode 220 is large, the amount of change in capacitance relative to a given change in the proportion of ink INK present between the input electrode 210 and the detection electrode 220 is larger than when the X-direction width W20x of the detection electrode 220 is small. In other words, when the X-direction width W20x of the detection electrode 220 is large, the change in capacitance relative to a change in the proportion of ink INK present between the input electrode 210 and the detection electrode 220 is more sensitive than when the X-direction width W20x of the detection electrode 220 is small. When the change in capacitance relative to a change in the proportion of ink INK present between the input electrode 210 and the detection electrode 220 is sensitive, the amount of ink INK stored in the ink tank 100 can be detected more accurately than when the change in capacitance is not sensitive. For this reason, in this embodiment, as described with reference to FIG. 11 and other figures, the detection electrodes 220a and 220b are formed so that the X-direction width W20x is larger than the Z-direction width W20z.
[0193] Next, an example of the operation of the control unit 4 will be described with reference to FIG.
[0194] 14 is a flowchart showing an example of the operation of the control unit 4. Note that Fig. 14 shows an example of the operation of the control unit 4 when the control unit 4 specifies the amount of ink INK stored in the ink tank 100.
[0195] First, in step S100, the control unit 4 controls the AC power supply ACP to start outputting the input signal Vin to the input electrode 210 and the SH circuit 25. For example, the control unit 4 outputs a control signal to the AC power supply ACP to instruct it to start outputting the input signal Vin including a pulse with an amplitude of 3.3 [V]. As a result, the AC power supply ACP outputs the input signal Vin to the input electrode 210 and the SH circuit 25.
[0196] Next, in step S200, the control unit 4 causes the selection circuit 21 to select the detection electrode 220a, which is located at a position H1 lower than the detection electrode 220b, from the detection electrodes 220a and 220b. As a result, a digital signal indicating the magnitude of the detection signal Vout1 input to the detection circuit 20 from the detection electrode 220a selected by the selection circuit 21 is output from the detection circuit 20 to the control unit 4 as the output signal Do.
[0197] Next, in step S300, the control unit 4 determines whether the value of the output signal Do is less than a determination threshold value. The determination threshold value is, for example, a threshold value corresponding to the voltage Vth shown in Fig. 9. For example, the determination threshold value is a threshold value for determining whether the liquid level L of the ink INK in the ink tank 100 is lower than the position corresponding to the detection electrode 220.
[0198] If the result of the determination in step S300 is positive, the control unit 4 advances the process to step S400. On the other hand, if the result of the determination in step S300 is negative, the control unit 4 advances the process to step S420.
[0199] In step S400, the control unit 4 determines that the liquid level L of the ink INK in the ink tank 100 is at a position lower than the position of the detection electrode 220 selected by the selection circuit 21. After executing the process of step S400, the control unit 4 proceeds to step S700.
[0200] Furthermore, in step S420, the control unit 4 determines that the liquid level L of the ink INK in the ink tank 100 is at a height equal to or higher than the position of the detection electrode 220 selected by the selection circuit 21. After executing the process of step S420, the control unit 4 advances the process to step S500.
[0201] In step S500, the control unit 4 determines whether or not the detection electrode 220b, which is located at a position H2 higher than the detection electrode 220a, has been selected from the detection electrodes 220a and 220b. If the determination in step S500 is positive, the control unit 4 proceeds to step S700. On the other hand, if the determination in step S500 is negative, the control unit 4 proceeds to step S600.
[0202] In step S600, the control unit 4 causes the selection circuit 21 to select the detection electrode 220b, which is located at a position H2 higher than the detection electrode 220a, from the detection electrodes 220a and 220b. As a result, a digital signal indicating the magnitude of the detection signal Vout2 input to the detection circuit 20 from the detection electrode 220b selected by the selection circuit 21 is output as the output signal Do from the detection circuit 20 to the control unit 4. After executing the process of step S600, the control unit 4 returns the process to step S300. As a result, a determination is made as to whether the liquid level L of the ink INK in the ink tank 100 is lower than the position corresponding to the detection electrode 220b.
[0203] Furthermore, in step S700, the control unit 4 controls the AC power supply ACP to stop outputting the input signal Vin to the input electrode 210 and the SH circuit 25. For example, the control unit 4 outputs a control signal to the AC power supply ACP to instruct it to stop outputting the input signal Vin. This causes the AC power supply ACP to stop outputting the input signal Vin. After executing the process of step S700, the control unit 4 ends the process of determining the amount of ink INK stored in the ink tank 100.
[0204] 14. For example, the control unit 4 may proceed to step S500 after executing the process of step S400. That is, even if the control unit 4 determines that the liquid level L of the ink INK is lower than the position corresponding to the detection electrode 220a, the control unit 4 may select the detection electrode 220b at position H2 higher than the detection electrode 220a and execute the determination of step S300. Then, for example, if the determination result of step S300 when the detection electrode 220b is selected contradicts the determination result of step S300 when the detection electrode 220a is selected, the control unit 4 may determine that a measurement error has occurred.
[0205] For example, when the value of the output signal Do indicating the magnitude of the detection signal Vout1 from the detection electrode 220a is less than the judgment threshold, the liquid level L of the ink INK is lower than the position corresponding to the detection electrode 220a. Therefore, the liquid level L of the ink INK is lower than the position H2 corresponding to the detection electrode 220b, which is higher than the detection electrode 220a. Therefore, if no measurement error has occurred, the value of the output signal Do indicating the magnitude of the detection signal Vout2 from the detection electrode 220b will be less than the judgment threshold. Therefore, when the value of the output signal Do indicating the magnitude of the detection signal Vout1 from the detection electrode 220a is less than the judgment threshold and the value of the output signal Do indicating the magnitude of the detection signal Vout2 from the detection electrode 220b is equal to or greater than the judgment threshold, the control unit 4 may determine that a measurement error has occurred.
[0206] Alternatively, the control unit 4 may select the detection electrode 220b in step S200 and select the detection electrode 220a in step S600. In this case, the determination in step S500 is omitted, and the determination of whether the detection electrode 220a has been selected is performed after at least step S400 of steps S400 and S420.
[0207] In addition, in step S300, the control unit 4 may determine whether the value of the output signal Do is equal to or greater than a determination threshold value.
[0208] Next, an example of a manufacturing method for the tank unit 10 will be described with reference to FIG.
[0209] FIG. 15 is an explanatory diagram for explaining an example of a manufacturing method of the tank unit 10.
[0210] First, in step P100, the first adhesive layer 262 of the double-sided tape 260 and the FPC 200 are adhered to each other.
[0211] Next, in process P200, the position of the FPC200 relative to the ink tank 100 is determined by fitting the positioning portion PT10 to the positioning portion PT20 and the positioning portion PT12 to the positioning portion PT22. That is, the position of the FPC200 relative to the ink tank 100 is determined by fitting the positioning portion PT10 provided on the outer wall 120d to the positioning portion PT20 provided on the FPC200.
[0212] Next, in the FPC bonding step P300, the second adhesive layer 266 of the double-sided tape 260 bonded to the FPC 200 and the ink tank 100 are bonded.
[0213] More specifically, first, in step P320, the FPC 200 is adhered to the second arrangement portion PP2 of the ink tank 100. In this embodiment, the second arrangement portion PP2 corresponds to a portion of the multiple outer walls 120 having a higher elastic modulus than the first arrangement portion PP1. That is, in step P320, the portion of the multiple outer walls 120 having a higher elastic modulus than the first arrangement portion PP1 is adhered to the second adhesive layer 266 of the double-sided tape 260 adhered to the FPC 200. Therefore, step P320 includes a step of adhering the second adhesive layer 266 of the double-sided tape 260 adhered to the FPC 200 to the outer wall 120d. Then, in step P340, the FPC 200 is adhered to the first arrangement portion PP1 of the ink tank 100. More specifically, the first arrangement portion PP1 is adhered to the second adhesive layer 266 of the double-sided tape 260 adhered to the FPC 200. Therefore, step P340 includes a step of bonding the outer wall 120a to the second adhesive layer 266 of the double-sided tape 260 adhered to the FPC 200. Thus, in this embodiment, step P300 includes steps P320 and P340.
[0214] The ink tank 100 is formed by fixing the outer wall 120a made of nylon film to portions made of plastic or the like having a higher elastic modulus than nylon film, such as outer walls 120c, 120d, and 120e, etc. The step of fixing the outer wall 120a to the outer walls 120c, 120d, and 120e, etc. may be performed before or after step P100, as long as it is performed before step P200.
[0215] For example, in a manufacturing method of the comparative example in which the FPC 200 is bonded to the outer wall 120a and then the outer wall 120a is bonded to the outer walls 120c, 120d, 120e, etc., there is a risk that the FPC 200 will be damaged by a pressing process using a roller for pressure bonding, etc. In contrast, in the present embodiment, the FPC 200 is bonded to the outer wall 120a after the process in which the outer wall 120a is bonded to the outer walls 120c, 120d, 120e, etc., and therefore damage to the FPC 200 can be suppressed.
[0216] Furthermore, in another comparative manufacturing method in which the double-sided tape 260 is adhered to the ink tank 100 and then the double-sided tape 260 and the FPC 200 are adhered to the double-sided tape 260 that has been adhered to the ink tank 100, the FPC 200 is adhered to the double-sided tape 260 that has been adhered to the ink tank 100. Therefore, in the manufacturing method of the other comparative example described above, it is more difficult to accurately adhere the FPC 200 to the double-sided tape 260 than in this embodiment, and there is a risk that the attachment position of the FPC 200 will deviate from the predetermined position. If the attachment position of the FPC 200 deviates from the predetermined position, there is a risk that the FPC 200 will float up from the ink tank 100.
[0217] In this embodiment, since step P300 of bonding the double-sided tape 260 to the ink tank 100 is performed after step P100 of bonding the FPC 200 to the double-sided tape 260, the FPC 200 can be accurately bonded to the double-sided tape 260. Therefore, in this embodiment, by performing step P300 after step P100, the tank unit 10 can be easily manufactured while preventing the attachment position of the FPC 200 to the ink tank 100 from shifting from a predetermined position.
[0218] Next, with reference to FIG. 16, an example of detecting the amount of ink INK stored when the ink tank 100 is tilted will be described.
[0219] Fig. 16 is an explanatory diagram illustrating an example of detecting the amount of stored ink INK when the ink tank 100 is tilted. Fig. 16 is a schematic diagram of the ink tank 100 as viewed from the +Y direction. Note that Fig. 16 schematically illustrates the ink tank 100 when the edge EP1 of the outer wall 120e is positioned further in the +Z direction than the edge EP2 of the outer wall 120e. For example, in Fig. 16, to make the illustration easier to see, of the multiple elements of the FPC 200, elements other than the detection electrodes 220a and 220b are omitted.
[0220] 16, the liquid level L of the ink INK, indicated by the two-dot chain line, is located in the +Z direction from the outlet Hd. In this case, since the ink INK is present between the input electrode 210 and the detection electrode 220a, a detection signal Vout1 having a magnitude corresponding to the proportion of the ink INK present between the input electrode 210 and the detection electrode 220a is input to the detection circuit 20.
[0221] For example, if the width W20ax of the detection electrode 220a is a width exW that is smaller than the width WHx of the discharge port Hd, then no ink INK is present between the input electrode 210 and the detection electrode 220a of width exW. In this case, even if ink INK usable for printing remains in the ink tank 100, it is erroneously determined that the amount of ink INK stored is less than a predetermined lower limit. The ink INK usable for printing is, for example, ink INK that can be discharged from the discharge port Hd when the printing process is executed. In this embodiment, because the width W20ax of the detection electrode 220a is larger than the width WHx of the discharge port Hd, it is possible to prevent the amount of ink INK stored from being less than the lower limit from being erroneously determined to be less than the lower limit.
[0222] The ink level L of the ink indicated by the dotted line in FIG. 16 corresponds to the ink level L of the ink remaining in the space SP without being discharged through the discharge port Hd due to the tilt of the ink tank 100. In this case, since there is no ink between the input electrode 210 and the detection electrode 220a, it is determined that the amount of ink stored is below the lower limit. As described above, in this embodiment, the detection electrode 220a is formed near the discharge port Hd, which prevents the ink remaining in the space SP without being discharged through the discharge port Hd from being erroneously detected as ink usable for printing. For example, in the first comparative example described later in FIG. 17, the detection electrode 220a is formed far from the discharge port Hd, which may result in the ink remaining in the space SP without being discharged through the discharge port Hd being erroneously detected as ink usable for printing.
[0223] Next, with reference to FIG. 17, an outline of an ink tank 100Z according to a first comparative example in which the detection electrode 220a is formed in a location far from the discharge port Hd will be described.
[0224] FIG. 17 is an explanatory diagram illustrating an overview of an ink tank 100Z according to a first comparative example. FIG. 17 is a schematic diagram of the ink tank 100Z as viewed from the +Y direction. Similar to FIG. 16, FIG. 17 also illustrates the ink tank 100Z when the edge EP1 of the outer wall 120e is positioned further in the +Z direction than the edge EP2 of the outer wall 120e. In the ink tank 100Z according to the first comparative example, the discharge port Hd is provided near the edge EP1 of the outer wall 120e, and the detection electrodes 220a and 220b and the input electrode 210 (not shown in FIG. 17) are provided closer to the edge EP1 of the outer wall 120e than the discharge port Hd. The other configuration of the ink tank 100Z is the same as that of the ink tank 100 described with reference to FIGS. 1 to 16.
[0225] The ink level L of the ink INK indicated by the dotted line in FIG. 17 corresponds to the ink level L of the ink INK that remains in the space SP without being discharged through the discharge port Hd due to the tilt of the ink tank 100Z. In the example shown in FIG. 17, because the ink INK is present between the input electrode 210 and the detection electrode 220a, a detection signal Vout1 having a magnitude corresponding to the proportion of the ink INK present between the input electrode 210 and the detection electrode 220a is input to the detection circuit 20. For this reason, in the first comparative example, the ink INK that remains in the space SP without being discharged through the discharge port Hd may be erroneously detected as ink INK that can be used for printing. In contrast, in this embodiment, as described in FIG. 16, the detection electrode 220a is formed near the discharge port Hd, so that erroneous detection of the amount of ink INK stored can be prevented even when the ink tank 100 is tilted.
[0226] Furthermore, in the first comparative example, when the ink tank 100Z is tilted so that the edge EP1 closer to the outlet Hd is positioned further in the +Z direction than the edge EP2 farther from the outlet Hd, the amount of ink INK remaining in the space SP without being discharged from the outlet Hd increases compared to this embodiment. That is, in this embodiment, because the outlet Hd is provided near the center of the outer wall 120e, it is possible to reduce the amount of ink INK remaining in the space SP without being discharged from the outlet Hd when the ink tank 100 is used in a tilted state.
[0227] As described above, in this embodiment, the inkjet printer 1 has a tank unit 10 that stores ink INK, a detection circuit 20 that detects the amount of ink INK stored in the tank unit 10, and an ejection section 30a that ejects the ink INK supplied from the tank unit 10. The tank unit 10 has an ink tank 100 and an FPC 200 fixed to the ink tank 100. The ink tank 100 includes a plurality of outer walls 120 and a plurality of partition walls 122, and stores ink INK in a space SP surrounded by the plurality of outer walls 120a, 120b, 120c, 120d, and 120e and the plurality of partition walls 122a and 122b. Furthermore, the ink tank 100 has a positioning part PT10. The FPC 200 has an input electrode 210 provided on the outer wall 120a, a detection electrode 220a provided on the outer wall 120b, a wiring 212 connected to the input electrode 210, and a wiring 222a connected to the detection electrode 220a. The FPC 200 further has a positioning part PT20 that determines the position of the FPC 200 by connecting to the positioning part PT10.
[0228] In this embodiment, the outer wall 120a is an example of a "first wall," the outer wall 120b is an example of a "second wall," and the outer wall 120d is an example of a "third wall." The input electrode 210 is an example of a "first electrode," and the detection electrode 220a is an example of a "second electrode." The wiring 212 is an example of a "first wiring," and the wiring 222a is an example of a "second wiring." The positioning portion PT10 is an example of a "first positioning portion," and the positioning portion PT20 is an example of a "second positioning portion." The positioning portion PT12 is an example of a "third positioning portion," and the positioning portion PT22 is an example of a "fourth positioning portion." The terminal TMt1 is an example of a "first terminal," the terminal TGr1 is an example of a "second terminal," and the terminal TMg is an example of a "constant voltage terminal." The external contact CTt1 is an example of a "first external contact," and the external contact CTr1 is an example of a "second external contact." The Z direction is an example of a "first direction." Furthermore, in the modified examples described below, the positioning portion PT22A is an example of a "fourth positioning portion," and the positioning portion PT22B is an example of a "sixth positioning portion." Furthermore, the positioning portion PT24 is an example of a "second end positioning portion," and the positioning portion PT26 is an example of a "fourth end positioning portion." Furthermore, of the multiple positioning portions PT provided on the ink tank 100, the positioning portion PT corresponding to the positioning portion PT22A is an example of a "third positioning portion," and the positioning portion PT corresponding to the positioning portion PT22B is an example of a "fifth positioning portion." Furthermore, the positioning portion PT corresponding to the positioning portion PT24 is an example of a "first end positioning portion," and the positioning portion PT corresponding to the positioning portion PT26 is an example of a "third end positioning portion."
[0229] As described above, in this embodiment, when the FPC 200 is attached to the ink tank 100, the positioning portion PT20 of the FPC 200 is connected to the positioning portion PT10 of the ink tank 100. As a result, in this embodiment, when the FPC 200 is attached to the ink tank 100, it is possible to prevent the position of the FPC 200 relative to the ink tank 100 from shifting from a predetermined position. That is, in this embodiment, it is possible to prevent the input electrode 210 and the detection electrode 220a from shifting from their predetermined positions. As a result, in this embodiment, it is possible to accurately detect changes in the capacitance CC between the input electrode 210 and the detection electrode 220a. As a result, in this embodiment, it is possible to improve the accuracy of detecting the amount of ink INK stored in the ink tank 100.
[0230] Furthermore, in this embodiment, the positioning portion PT20 fits into the positioning portion PT10. The positioning portion PT20 is located on the FPC 200 between the input electrode 210 and the detection electrode 220a. In this manner, in this embodiment, the positioning portion PT20 is located on the FPC 200 between the input electrode 210 and the detection electrode 220a, which prevents either the input electrode 210 or the detection electrode 220a from significantly deviating from its predetermined position. As a result, in this embodiment, the accuracy of detecting the amount of ink INK stored in the ink tank 100 can be improved. Furthermore, in this embodiment, the positioning portion PT20 fits into the positioning portion PT10, which facilitates the task of determining the position of the FPC 200 relative to the ink tank 100.
[0231] Furthermore, in this embodiment, the ink tank 100 further includes a positioning portion PT12, and the FPC 200 further includes a positioning portion PT22 that fits into the positioning portion PT12. Thus, in this embodiment, the position of the FPC 200 relative to the ink tank 100 is determined at two locations: the positioning portions PT10 and PT20 that fit into each other, and the positioning portions PT12 and PT22 that fit into each other. This makes it possible to prevent the FPC 200 from rotating when attaching the FPC 200 to the ink tank 100, for example. Therefore, in this embodiment, the task of attaching the FPC 200 to the ink tank 100 can be made easier.
[0232] Furthermore, in this embodiment, the positioning portion PT10 and the positioning portion PT12 are different in either shape or size, or both. This reduces the likelihood of the positioning portion PT22 being erroneously mated with the positioning portion PT10, or the likelihood of the positioning portion PT20 being erroneously mated with the positioning portion PT12. This reduces the likelihood of the FPC 200 being attached to the ink tank 100 in the wrong orientation.
[0233] In this embodiment, the positioning portion PT10 is provided on the outer wall 120d and has a convex shape. The outer wall 120d and the positioning portion PT10 are made of plastic. In this embodiment, the positioning portion PT10 provided on the outer wall 120d is formed in a convex shape, which makes it easier to form the positioning portions PT10 and PT20 compared to when the positioning portion PT20 provided on the FPC 200 is formed in a convex shape.
[0234] In this embodiment, the positioning portions PT10 and PT12 are provided on the outer wall 120d. The FPC 200 has a terminal TMt1 electrically connected to the input electrode 210 and in contact with the external external contact CTt1, a terminal TMR1 electrically connected to the detection electrode 220a and in contact with the external external contact CTr1, and a terminal TMg maintained at a constant voltage. In the FPC 200, at least a portion of a terminal arrangement area AR including the terminals TMt1, TMR1, and TMg is located between the positioning portion PT20 and the positioning portion PT22. In this manner, in this embodiment, the multiple terminals TM are disposed near the positioning portions PT20 and PT22, which reduces deviation of the multiple terminals TM from their predetermined positions relative to the ink tank 100. As a result, in this embodiment, it is possible to prevent incorrect connections between the multiple terminals TM and the multiple external contacts CT. Furthermore, in this embodiment, it is possible to reduce deviation of the multiple terminals TM from their predetermined positions relative to the ink tank 100, which improves the stability of the connections between the multiple terminals TM and the multiple external contacts CT.
[0235] Furthermore, in this embodiment, the distance D12 between the input electrode 210 and the detection electrode 220a in the FPC 200 is greater than the width W10z of the input electrode 210 in the Z direction intersecting the extension direction of the FPC 200. In an embodiment where the distance D12 between the input electrode 210 and the detection electrode 220a is small, if the position of the FPC 200 is misaligned, the amount of misalignment of the detection electrode 220a and other electrodes relative to their predetermined positions is more likely to be greater than in an embodiment where the distance D12 between the input electrode 210 and the detection electrode 220a is large. Therefore, in this embodiment, it is possible to reduce the misalignment of the input electrode 210 and the detection electrode 220a relative to the ink tank 100 compared to an embodiment where the distance D12 between the input electrode 210 and the detection electrode 220a is small.
[0236] [2. Modifications] Each of the above embodiments can be modified in various ways. Specific modified embodiments are exemplified below. Two or more embodiments arbitrarily selected from the following examples can be combined as appropriate within a range that does not contradict each other. In the modified examples exemplified below, elements whose actions and functions are equivalent to those of the embodiments will be designated by the same reference numerals as in the above description, and detailed descriptions of each will be omitted as appropriate.
[0237] [First Modification] In the above-described embodiment, the FPC 200 extends in the X direction with a substantially constant width, but the present invention is not limited to this. For example, the width in the Z direction of the bent portions BP1 and BP2 of the FPC 200 may be smaller than the width in the Z direction of the portions of the FPC 200 other than the bent portions BP1 and BP2.
[0238] Fig. 18 is a plan view showing an example of an FPC 200A according to a first modified example. Similar to Fig. 11, Fig. 18 shows a plan view of the FPC 200A when not attached to the ink tank 100. To make the drawing easier to see, Fig. 18 divides the FPC 200A into a view of the first cover film layer 201 and the first conductor layer 202 and a view of the base material layer 203, the second conductor layer 204, and the second cover film layer 205. Elements similar to those described in Figs. 1 to 17 are designated by the same reference numerals, and detailed description thereof will be omitted.
[0239] In the FPC 200A, the Z-direction width WB1z of the bent portion BP1 is smaller than the Z-direction width WE1z of the portion where the input electrode 210 is provided. Similarly, the Z-direction width WB2z of the bent portion BP2 is smaller than the Z-direction width WE2z of the portion where the detection electrode 220 is provided. Therefore, in this modification, the rigidity of the bent portions BP1 and BP2 of the FPC 200A can be made lower than both the rigidity of the portion where the input electrode 210 is provided and the rigidity of the portion where the detection electrode 220 is provided.
[0240] Furthermore, since the width WB1z of the bent portion BP1 and the width WB2z of the bent portion BP2 are different from those of the FPC 200, the shapes of the wirings 212, 222a, 222b, etc. are also different from those of the FPC 200. For example, in the FPC 200A, the lead-out wiring 242c connecting the shield wiring 240c and the through wiring TW4c is formed from the same material as the input electrode 210. In this modification, it is assumed that the shield wiring 240c and the lead-out wiring 242c are integrally formed. Furthermore, the FPC 200A has positioning portions 22A and PT22B instead of the positioning portion PT22. Furthermore, the FPC 200A has positioning portions PT24 and PT26. The other configurations of the FPC 200A are the same as those of the FPC 200.
[0241] For example, the shield wiring 240d includes a region that overlaps with the entire input electrode 210 and at least a portion of the wiring 212 in a plan view from the +Y direction. In this modification, for example, the X-direction width W40dx of the shield wiring 240d is larger than the X-direction width W10x of the input electrode 210. Furthermore, the Z-direction width W40dz of the shield wiring 240d is larger than the Z-direction width W10z of the input electrode 210. Note that in the FPC 200A, the two edge portions EP3d and EP4d of the shield wiring 240d are located in the -X direction relative to the bent portion BP1. Therefore, the Z-direction width W42dz of the bent portion BP1 of the lead wiring 242d of the shield wiring 240d is smaller than the Z-direction width W40dz of the shield wiring 240d.
[0242] Furthermore, for example, the shield wiring 240e includes regions that overlap with the entire detection electrode 220a, the entire detection electrode 220b, at least a portion of the wiring 222a, and at least a portion of the wiring 222b in a plan view from the +Y direction. For example, the X-direction width W40ex of the shield wiring 240e is greater than both the X-direction width W20ax of the detection electrode 220a and the X-direction width W20bx of the detection electrode 220b. Note that in the FPC 200A, the two edges EP3e and EP4e of the shield wiring 240e are located in the +X direction relative to the bent portion BP2. Therefore, the Z-direction width W42ez of the bent portion BP2 of the lead wiring 242e of the shield wiring 240e is smaller than the Z-direction width W40ez of the shield wiring 240e.
[0243] Furthermore, the width W42cz of the lead wiring 242c in the Z direction is smaller than the width W40cz of the shield wiring 240c in the Z direction. In this modification, it is assumed that the width W40cz of the shield wiring 240c, the width W20ax of the detection electrode 220a, and the width W20bx of the detection electrode 220b are substantially the same as one another.
[0244] The positioning portions PT20, PT22A, and PT22B are arranged so that the lines connecting the positioning portions PT20, PT22A, and PT22B form a triangle when viewed from above in the +Y direction. For example, the positioning portion PT22B has a center at a position offset from the line passing through the center of the positioning portion PT20 and the center of the positioning portion PT22A on the FPC 200A.
[0245] In the FPC 200A, the positioning portion PT24 is formed on the edge portion EP5 on which the input electrode 210 is provided, and the positioning portion PT26 is formed on the edge portion EP6 on which the detection electrode 220 is provided.
[0246] Each of the positioning portions PT20, PT22A, PT22B, PT24, and PT26 is formed, for example, by cutting out an edge portion of the FPC 200A, similar to the positioning portion PT20. Note that the positioning portions PT20, PT22A, PT22B, PT24, and PT26 are not limited to cutouts. For example, some or all of the positioning portions PT20, PT22A, PT22B, PT24, and PT26 may be through holes that penetrate the FPC 200A in the X direction.
[0247] The ink tank 100 to which the FPC 200A is attached is provided with a plurality of positioning parts PT that correspond one-to-one to the plurality of positioning parts PT20, PT22A, PT22B, PT24, and PT26. Each of the plurality of positioning parts PT provided on the ink tank 100 is formed, for example, in a convex shape that fits with the corresponding positioning part PT among the plurality of positioning parts PT20, PT22A, PT22B, PT24, and PT26.
[0248] The arrangement of the multiple positioning portions PT is not limited to the example shown in Fig. 18. For example, the FPC 200A may have two positioning portions PT that penetrate the FPC 200A and are formed at positions on either side of the terminal arrangement area AR in the X direction.
[0249] As described above, this modification also achieves the same effects as the above-described embodiment. Furthermore, in this modification, the second conductor layer 204 includes an extraction wiring 242d connected to the shield wiring 240d and an extraction wiring 242e connected to the shield wiring 240e. The extraction wiring 242d includes a bent portion BP1 whose Z-direction width W42dz is smaller than the Z-direction width W40dz of the shield wiring 240d. Furthermore, the extraction wiring 242e includes a bent portion BP2 whose Z-direction width W42ez is smaller than the Z-direction width W40ez of the shield wiring 240e. The FPC 200A is bent at the bent portions BP1 and BP2 to follow the outer periphery of the ink tank 100. As a result, in this modification, the rigidity of the bent portion BP1 can be made lower than that of the portion where the shield wiring 240d is disposed. Similarly, in this modification, the rigidity of the bent portion BP2 can be made lower than that of the portion where the shield wiring 240e is disposed.
[0250] Furthermore, in this modification, the center of the positioning portion PT22B in the FPC 200A is offset from the line passing through the centers of the positioning portions PT20 and PT22A. In this case, the positioning portions PT20, PT22A, and PT22B are arranged so that the lines connecting the positioning portions PT20, PT22A, and PT22B form a triangle when viewed in a plan view from the +Y direction. Therefore, in this modification, it is possible to further reduce deviation of the position of the FPC 200 from the predetermined position relative to the ink tank 100 compared to, for example, when the positioning portion PT consists only of the positioning portions PT10 and PT20.
[0251] In this modification, the FPC 200A has a positioning portion PT24. The positioning portion PT24 is located on the edge EP5 where the input electrode 210 is provided. The ink tank 100 has a positioning portion PT that fits into the positioning portion PT24. In this case, it is possible to reduce deviation of the position of the input electrode 210 relative to the ink tank 100 from the predetermined position.
[0252] In this modification, the FPC 200A has a positioning portion PT26. The positioning portion PT26 is located on the edge portion EP6 where the detection electrode 220 is provided. The ink tank 100 also has a positioning portion PT that fits into the positioning portion PT26. In this case, it is possible to reduce deviation of the position of the detection electrode 220 relative to the ink tank 100 from the predetermined position.
[0253] [Second Modification] In the above-described embodiment and modified example, the wiring 222a is positioned so as to overlap with the detection electrode 220a in the Z direction, but the present invention is not limited to this. For example, the position of a portion of the wiring 222a and the position of the detection electrode 220a may be different from each other in the Z direction.
[0254] Figure 19 is an explanatory diagram for explaining an overview of an FPC 200B according to a second modified example. Note that Figure 19 is a plan view of the ink tank 100 and FPC 200B as viewed from the +Y direction. To make the explanation easier to understand, Figure 19 omits illustration of shield wiring 240e and the like. Elements similar to those explained in Figures 1 to 18 are given the same reference numerals, and detailed explanations will be omitted.
[0255] The FPC 200B is similar to the FPC 200A shown in FIG. 18 except that the wiring 222a, 222b, etc. are formed to extend in the X direction, passing through a position in the -Z direction from the detection electrode 220a. For example, the wiring 222a includes an extension portion ET2a extending in the X direction, and the wiring 222b includes an extension portion ET2b extending in the X direction. The lead wiring 242c includes an extension portion ET2c extending in the X direction. The shield wiring 240a includes an extension portion ET2d extending in the X direction, and the shield wiring 240b includes an extension portion ET2e extending in the X direction. Hereinafter, the extension portions ET2a, ET2b, ET2c, ET2d, and ET2e may be collectively referred to as the extension portion ET2.
[0256] 19, the extension portion ET2a of the wiring 222a is located closer to the outlet Hd in the Z direction than the detection electrode 220a. Similarly, the extension portion ET2b of the wiring 222b is located closer to the outlet Hd in the Z direction than the detection electrode 220b.
[0257] For example, if the liquid level L of the ink INK changes from a position within the range of the wiring 222a in the Z direction to a position in the -Z direction from the wiring 222a, or a position in the +Z direction from the wiring 222a, the wiring 222a may detect a change in the remaining amount of ink INK.
[0258] If the Z-direction range of the wiring 222a overlaps with the Z-direction range of the detection electrode 220a, the timing at which the detection electrode 220a detects a change in the remaining amount of ink may overlap with the timing at which the wiring 222a detects a change in the remaining amount of ink. In this case, there is a risk that the detection result by the detection electrode 220a will contain an error corresponding to the detection result by the wiring 222a. Therefore, for example, it is preferable that the wiring 222a be routed so as to mainly pass through positions further in the -Z direction than the detection electrode 220a or positions further in the +Z direction than the detection electrode 220a.
[0259] In this modified example, the wiring 222a, 222b, etc. are routed through a position that is further in the -Z direction than the detection electrode 220a, thereby improving the accuracy of detecting the amount of ink INK stored compared to when the Z-direction range of the wiring 222a overlaps with the Z-direction range of the detection electrode 220a.
[0260] Next, the overall configuration of the FPC 200B will be described with reference to FIG.
[0261] Figure 20 is a plan view showing an example of the FPC 200B shown in Figure 19. Similar to Figure 18, Figure 20 shows a plan view of the FPC 200B when not attached to the ink tank 100. Similar to Figure 18, Figure 20 also shows the FPC 200B divided into a view of the first cover film layer 201 and first conductor layer 202 and a view of the base material layer 203, second conductor layer 204, and second cover film layer 205. Elements similar to those described in Figures 1 to 19 are designated by the same reference numerals, and detailed description thereof will be omitted.
[0262] In the FPC 200B, the wirings 212, 222a, and 222b and the shield wirings 240a and 240b are routed through positions in the -Z direction relative to both the input electrode 210 and the detection electrode 220a.
[0263] For example, the wiring 212 includes an extending portion ET1a extending in the X-direction. Furthermore, the shield wiring 240a includes an extending portion ET1d extending in the X-direction, and the shield wiring 240b includes an extending portion ET1e extending in the X-direction. Hereinafter, the extending portions ET1a, ET1d, and ET1e may be collectively referred to as the extending portion ET1.
[0264] For example, the extension portion ET1 of each of the wiring 212 and the shield wirings 240a and 240b extends in the X direction through the bent portion BP1. Similarly, for example, the extension portion ET2 of each of the wirings 222a and 222b and the shield wirings 240a, 240b, and 240c extends in the X direction through the bent portion BP2.
[0265] Furthermore, the extension portion ET1 of each of the wiring 212 and the shield wirings 240a and 240b is located in the -Z direction relative to the input electrode 210. For example, the extension portion ET1a of the wiring 212 is located closer to the outlet Hd in the Z direction than the input electrode 210, similar to the extension portion ET2a of the wiring 222a described in FIG.
[0266] Furthermore, for example, the lead-out wiring 242d of the shield wiring 240d is formed in a shape that includes an overlapping region with the extending portions ET1 of the wiring 212 and the shield wirings 240a and 240b in a plan view from the +Y direction. Similarly, the lead-out wiring 242e of the shield wiring 240e is formed in a shape that includes an overlapping region with the extending portions ET2 of the wirings 222a and 222b and the shield wirings 240a and 240b in a plan view from the +Y direction.
[0267] In FPC 200B as well, the Z-direction width WB1z of bent portion BP1 is smaller than the Z-direction width WE1z of the portion where input electrode 210 is provided, and the Z-direction width WB2z of bent portion BP2 is smaller than the Z-direction width WE2z of the portion where detection electrode 220 is provided. Therefore, in this modification as well, the rigidity of bent portions BP1 and BP2 of FPC 200A can be made lower than both the rigidity of the portion where input electrode 210 is provided and the rigidity of the portion where detection electrode 220 is provided.
[0268] 19 and 20. For example, the extension portions ET1 of the wiring 212 and the shield wiring 240a and 240b may be located in the +Z direction from the input electrode 210. Similarly, the extension portions ET2 of the wiring 222a and 222b and the shield wiring 240a and 240b may be located in the +Z direction from the detection electrode 220b. Even in this case, for example, the portion of the wiring 222a that overlaps with the detection electrode 220a in the Z direction can be reduced, thereby improving the detection accuracy of the stored amount of ink INK.
[0269] As described above, this modification can also achieve the same effects as the above-described embodiment and modification. Furthermore, in this modification, the wiring 212 includes an extension portion ET1a extending in the X direction. Furthermore, the wiring 222a includes an extension portion ET2a extending in the X direction, and the wiring 222b includes an extension portion ET2b extending in the X direction. The position of the extension portion ET1a of the wiring 212 in the Z direction is different from the position of the input electrode 210 in the Z direction. The position of the extension portion ET2a of the wiring 222a in the Z direction is different from the position of the detection electrode 220a in the Z direction, and the position of the extension portion ET2b of the wiring 222b in the Z direction is different from the position of the detection electrode 220b in the Z direction.
[0270] For example, in this modification, the extension portion ET1a of the wiring 212 is located in the -Z direction from the input electrode 210, and the extension portion ET2a of the wiring 222a is located in the -Z direction from the detection electrode 220a. Also, the extension portion ET2b of the wiring 222b is located in the -Z direction from the detection electrode 220b.
[0271] In this modification, the extension portion ET1a of the wiring 212 is located closer to the outlet Hd in the Z direction than the input electrode 210. The extension portion ET2a of the wiring 222a is located closer to the outlet Hd in the Z direction than the detection electrode 220b.
[0272] In this manner, in this modification, the wiring 212, 222a, and 222b and the shield wiring 240a and 240b are routed through positions in the -Z direction relative to both the input electrode 210 and the detection electrode 220a. Therefore, in this modification, the detection accuracy of the stored amount of ink INK can be improved compared to, for example, a case where the Z-direction range of the wiring 222a overlaps with the Z-direction range of the detection electrode 220a.
[0273] [Third Modification] In the above-described embodiment and modified example, the entire outer wall 120a is formed from a nylon film, but the present invention is not limited to this. For example, the outer wall 120a, except for the first arrangement portion PP1, may be formed from a plastic having a higher elastic modulus than a nylon film.
[0274] Figure 21 is a cross-sectional view showing an example of a cross section of an ink tank 100A and an FPC 200 according to a third modified example. The cross section of the ink tank 100A and the FPC 200 shown in Figure 21 corresponds to the cross section taken along line A1-A2 in Figure 2. As with Figure 7, elements located in the +Z direction from the partition wall 122b, the support portion 130, etc. are not shown in Figure 21 either. Elements similar to those described in Figures 1 to 20 are designated by the same reference numerals, and detailed description thereof will be omitted.
[0275] The ink tank 100A is similar to the ink tank 100 shown in Fig. 7, except that it has an outer wall 120Aa instead of the outer wall 120a shown in Fig. 7. The outer wall 120Aa includes a film portion FL formed of a film such as a nylon film, and a plastic portion PL formed of a plastic having a higher elastic modulus than the film portion FL. For example, the material of the plastic portion PL is the same as the material of the outer wall 120b.
[0276] The film portion FL is similar to the outer wall 120a shown in FIG. 7. However, the film portion FL is bonded to the plastic portion PL. The plastic portion PL is bonded to the outer walls 120c, 120d, 120e, etc., similar to the outer wall 120a shown in FIG. 7. That is, the plastic portion PL is located more inward than the film portion FL. The plastic portion PL has a through-hole Hpp1 formed in the first arrangement portion PP1 that penetrates the plastic portion PL. When the outer wall 120Aa is viewed from the -Y direction, the shape of the periphery of the through-hole Hpp1 is perceived as the same shape as the first arrangement portion PP1, e.g., a rectangular shape. Therefore, the thickness T1 of the film portion FL is the thickness of the first arrangement portion PP1 where the input electrode 210 and the like are provided. The thickness T1 of the film portion FL is thinner than, for example, the thickness T2 of the outer wall 120b made of plastic or the thickness T3 of the outer wall 120d shown in FIG. 5.
[0277] The configuration of the ink tank 100A is not limited to the example shown in FIG. 21. For example, the film part FL may be formed to a size that includes the first arrangement part PP1 and the surrounding area of the first arrangement part PP1, as long as the strength of the adhesion to the plastic part PL can be ensured. The inner circumferential surface of the through hole Hpp1 may be treated with a water-repellent coating. The inner circumferential surface of the through hole Hpp1 that is closer to the outer wall 120e may be inclined so that the opening in the +Y direction is larger than the opening in the -Y direction. In this case, it is possible to prevent ink INK from remaining in the through hole Hpp1.
[0278] Furthermore, for example, the outer wall 120b may have a film portion FL and a plastic portion PL, similar to the outer wall 120Aa or the outer wall 120Ba shown in FIG. 22, which will be described later. In this case, the plastic portion PL formed as part of the outer wall 120b has a through-hole formed in the second arrangement portion PP2 that penetrates the plastic portion PL. In this case, it is possible to reduce the influence of the capacitance C5 of the second arrangement portion PP2 on the capacitance CC between the input electrode 210 and the detection electrode 220a.
[0279] As described above, this modification also achieves the same effects as the above-described embodiment and modification. Furthermore, in this modification, the first arrangement portion PP1 of the outer wall 120Aa is thinner than the other portions of the outer wall 120Aa. In other words, the other portions of the outer wall 120Aa are thicker than the first arrangement portion PP1. Therefore, in this modification, the outer wall 120Aa is more prevented from deforming due to pressure inside the ink tank 100 than in a configuration in which the entire outer wall 120a is approximately the same thickness as the first arrangement portion PP1. In other words, this modification makes it possible to manufacture an ink tank 100 that is less likely to deform.
[0280] In this modification, the second arrangement portion PP2 may be thinner than at least a portion of the outer walls 120 other than the first arrangement portion PP1. That is, the outer wall 120b may include the second arrangement portion PP2 as a third portion that is thinner than at least a portion of the outer walls 120 other than the first arrangement portion PP1. The detection electrode 220a is provided in the second arrangement portion PP2. In this case, the first arrangement portion PP1 of the outer wall 120Aa is thinner than the portions of the outer walls 120 other than the first arrangement portion PP1 and the second arrangement portion PP2.
[0281] When the first arrangement portion PP1 and the second arrangement portion PP2 of the plurality of outer walls 120 are thinner than the other portions, the effect of the capacitance C1 of the first arrangement portion PP1 and the capacitance C5 of the second arrangement portion PP2 on the capacitance CC between the input electrode 210 and the detection electrode 220a is reduced. Therefore, when the first arrangement portion PP1 and the second arrangement portion PP2 of the plurality of outer walls 120 are thinner than the other portions, the detection accuracy of the stored amount of ink INK can be improved compared to when the second arrangement portion PP2 is not thinner than the other portions.
[0282] [Fourth Modification] In the third modified example described above, the film portion FL and the plastic portion PL included in the outer wall 120Aa are illustrated as being located on the inner side, but the present invention is not limited to this. For example, the film portion FL may be located on the inner side of the film portion FL and the plastic portion PL included in the outer wall 120Aa.
[0283] Figure 22 is a cross-sectional view showing an example of a cross section of an ink tank 100B and an FPC 200 according to a fourth modified example. The cross section of the ink tank 100B and the FPC 200 shown in Figure 22 corresponds to the cross section taken along line A1-A2 in Figure 2. As with Figure 7, elements located in the +Z direction from the partition wall 122b, the support portion 130, etc. are not shown in Figure 22 either. Elements similar to those described in Figures 1 to 21 are designated by the same reference numerals, and detailed description thereof will be omitted.
[0284] The ink tank 100B is similar to the ink tank 100 shown in Figure 7, except that it has an outer wall 120Ba instead of the outer wall 120a shown in Figure 7. The outer wall 120Ba includes a film portion FL made of a film such as a nylon film, and a plastic portion PL made of a plastic with a higher elastic modulus than the film portion FL. For example, the material of the plastic portion PL is the same as the material of the outer wall 120b.
[0285] The film portion FL is similar to the outer wall 120a shown in FIG. 7. For example, the film portion FL is bonded to the outer walls 120c, 120d, 120e, etc., similar to the outer wall 120a shown in FIG. 7. However, the surface of the film portion FL opposite the inner surface IF1 is bonded to the plastic portion PL. That is, the film portion FL is located more inward than the plastic portion PL. The plastic portion PL has a through-hole Hpp1 formed in the first arrangement portion PP1. When the outer wall 120Aa is viewed from the -Y direction, the shape of the periphery of the through-hole Hpp1 is perceived as the same shape as the first arrangement portion PP1, e.g., a rectangular shape. Therefore, the thickness T1 of the film portion FL is the thickness of the first arrangement portion PP1 where the input electrode 210, etc. are provided. The thickness T1 of the film portion FL is thinner than, for example, the thickness T2 of the outer wall 120b made of plastic or the thickness T3 of the outer wall 120d shown in FIG. 5.
[0286] As shown in FIG. 23, the inner circumferential surface SLP of the through-hole Hpp1 to which the FPC 200 is attached is inclined so that the opening in the -Y direction is larger than the opening in the +Y direction.
[0287] Figure 23 is a plan view showing an example of the ink tank 100B shown in Figure 22. Note that Figure 22 is a plan view of the ink tank 100B as seen from the -Y direction. For example, in Figure 16, the FPC 200 is omitted to make the drawing easier to see.
[0288] Of the inner circumferential surfaces of the through-hole Hpp1 that penetrates the plastic part PL included in the outer wall 120Ba, the inner circumferential surface SLP to which the FPC 200 is adhered is inclined so that the opening in the -Y direction is larger than the opening in the +Y direction. The shaded portion in the figure shows the inner circumferential surface SLP that is inclined so that the opening in the -Y direction is larger than the opening in the +Y direction. In this modified example, it is easier to adhere the FPC 200 to the first arrangement portion PP1 of the film part FL compared to when the inner circumferential surface SLP is approximately perpendicular to the first arrangement portion PP1 of the film part FL.
[0289] The configuration of the ink tank 100B is not limited to the examples shown in Figures 22 and 23. For example, the film part FL may be formed to a size that includes the first arrangement part PP1 and the surrounding area of the first arrangement part PP1, as long as the strength of the adhesion to the plastic part PL can be ensured.
[0290] Furthermore, for example, the outer wall 120b may have a film portion FL and a plastic portion PL, similar to the outer wall 120Ba or the outer wall 120Aa shown in Fig. 21. In this case, the plastic portion PL formed as part of the outer wall 120b has a through-hole formed in the second arrangement portion PP2 that penetrates the plastic portion PL. In this case, it is possible to reduce the influence of the capacitance C5 of the second arrangement portion PP2 on the capacitance CC between the input electrode 210 and the detection electrode 220a.
[0291] As described above, in this modification, the same effects as those of the above-described embodiment and modification can be obtained.
[0292] [Fifth Modification] In the above-described embodiment and modified example, the number of detection electrodes 220 is two, but the present invention is not limited to this. For example, the number of detection electrodes 220 may be one, or three or more.
[0293] Figure 24 is an explanatory diagram illustrating an overview of an ink tank 100C and an FPC 200C according to a fifth modified example. Note that Figure 24 is a plan view of the ink tank 100 and the FPC 200 as viewed from the +Y direction. To make the explanation easier to understand, Figure 24 omits the illustration of shield wiring 240e and the like. Elements similar to those explained in Figures 1 to 18 are given the same reference numerals, and detailed explanations will be omitted.
[0294] The tank unit 10 is similar to the tank unit 10 shown in Fig. 3 except that it has an ink tank 100C and an FPC 200C instead of the ink tank 100 and FPC 200 shown in Fig. 3. The ink tank 100C is similar to the ink tank 100 shown in Fig. 3 except that it has an FPC 200C attached instead of the FPC 200 and has positioning portions PT18 and PT19.
[0295] For example, the outer wall 120b of the ink tank 100C is provided with a positioning portion PT18 that determines the position of the underside of the FPC 200C and a positioning portion PT19 that determines the position of the edge of the FPC 200C. The positioning portions PT18 and PT19 protrude, for example, in the +Y direction. The positioning portion PT18 extends in the X direction, and the positioning portion PT19 extends in the Z direction.
[0296] Of the two sides of the FPC 200C along the X direction, a part of the side in the -Z direction functions as a positioning portion PT28. Also, of the two sides of the FPC 200C along the Z direction, a part of the side closer to the detection electrode 220 functions as a positioning portion 29.
[0297] 3 except that the FPC 200C includes a detection electrode 220c provided in the second placement portion PP2, a wiring 222c connected to the detection electrode 220c, and a shield wiring 240f. For example, the detection electrode 220c, the wiring 222c, and the shield wiring 240f are formed on the first conductive layer 202 using the same material as the input electrode 210. For example, the wiring 222c is formed integrally with the detection electrode 220c.
[0298] The shield wiring 240f is located between the wiring 222c formed integrally with the detection electrode 220c and the wiring 222b formed integrally with the detection electrode 220b. The shield wiring 240f can reduce interference between the detection electrodes 220b and 220c.
[0299] The detection electrode 220c is located between the shield wiring 240f and the shield wiring 240fb. Of the detection electrodes 220a, 220b, and 220c, the detection electrode 220c is the closest to the supply port 160. For example, the detection electrode 220c functions as an upper limit electrode for detecting whether the amount of ink INK stored in the ink tank 100C is at the upper limit. In this modification, the detection electrode 220c extends in the X direction. The position of the discharge port Hd in the X direction is different from the position of the detection electrode 220c in the X direction. For example, the X-direction range of the discharge port Hd does not overlap with the X-direction range of the detection electrode 220c. At least a portion of the X-direction range of the detection electrode 220c overlaps with at least a portion of the X-direction range of the supply port 160. Therefore, in this modified example, when the amount of stored ink INK exceeds the upper limit when the ink INK is supplied, the delay in detecting that the amount of stored ink INK has exceeded the upper limit can be reduced.
[0300] The configurations of the ink tank 100C and FPC 200C are not limited to the example shown in Fig. 24. For example, the positioning portions PT18 and PT19 may be omitted. Also, for example, the detection electrode 220c may be positioned so that its position in the X direction is the same as that of the detection electrodes 220a and 220b.
[0301] As described above, this modification can also achieve the same effects as the above-described embodiment and modification. Furthermore, in this modification, the tank unit 10 has a detection electrode 220c provided in the second placement portion PP2. This allows the amount of stored ink INK to be detected in multiple stages.
[0302] In this modification, the ink tank 100C has a supply port 160 for supplying ink INK to the space SP. The detection electrodes 220b and 220c include an upper limit electrode for detecting whether the amount of ink INK stored in the ink tank 100C is at the upper limit. Of the detection electrodes 220a, 220b, and 220c, the detection electrode 220 that functions as the upper limit electrode is closest to the supply port 160. In this modification, the detection electrode 220c can detect whether the amount of ink INK stored is at the upper limit.
[0303] Furthermore, in this modification, the detection electrode 220c extends in the X direction. The position of the discharge port Hd in the X direction and the position of the detection electrode 220c in the X direction are different from each other. At least a part of the range of the detection electrode 220c in the X direction overlaps with at least a part of the range of the supply port 160 in the X direction. Therefore, in this modification, when the storage amount of ink INK exceeds the upper limit storage amount during supply of ink INK, it is possible to reduce delay in detecting that the storage amount of ink INK has exceeded the upper limit storage amount.
[0304] [Sixth Modification] In the above-described embodiment and modified examples, a film such as a nylon film may be adhered to the outer surface OF2 of the outer wall 120b. That is, a film may be provided between the outer wall 120b and the FPC 200. Also, both the outer walls 120a and 120b may be formed of a film such as a nylon film. Alternatively, the outer wall 120b may be formed of a film such as a nylon film, and the outer wall 120a may be formed of a plastic having a higher elastic modulus than the outer wall 120b.
[0305] [Seventh Modification] In the above-described embodiment and modified example, an inkjet printer 1 in which the tank unit 10 is not mounted on the carriage 32 has been exemplified, but the present invention is not limited to such an embodiment. For example, the tank unit 10 may be mounted on the carriage 32, or on an ink server that supplies ink INK to the printing device. Furthermore, the "liquid ejection device" is not limited to the inkjet printer 1, but may be another printing device. Furthermore, the "storage device" is not limited to the tank unit 10 that stores ink INK. For example, the "storage device" may be a device that stores an object other than ink INK. In other words, the "object" is not limited to ink INK. For example, the "object" may be a liquid other than ink INK, or a fluid. For example, the "object" may be oil.
[0306] [Eighth Modification] In the above-described embodiment and modifications, the support portion 130 may be omitted. Also, a flexible flat cable may be used instead of the FPC 200.
[0307] [Ninth Variation] In the above-described embodiment and modified example, the case where the discharge outlet Hd is located near the center of the outer wall 120e has been illustrated, but the present invention is not limited to such an embodiment. For example, the discharge outlet Hd may be formed near one of the edge portions EP1 and EP2 of the outer wall 120e. Furthermore, an embodiment may be adopted in which the discharge outlet Hd is not located between the input electrode 210 and the detection electrode 220 when viewed from the -Z direction. Furthermore, even when the discharge outlet Hd is located near the center of the outer wall 120e, an embodiment may be adopted in which the discharge outlet Hd is not located between the input electrode 210 and the detection electrode 220 when viewed from the -Z direction. [Explanation of symbols]
[0308] 1...inkjet printer, 2...management unit, 4...control unit, 10...tank unit, 20...detection circuit, 21...selection circuit, 22...bias circuit, 23...buffer circuit, 24...BPF, 25...SH circuit, 26...LPF, 27...amplification circuit, 28...ADC, 30...head unit, 30a...ejection section, 32...carriage, 40...timing belt, 42...carriage guide shaft, 43...carriage transport mechanism, 44...transport roller, 45...media transport mechanism, 46...platen, 100, 100A, 100B, 100C, 100Z... ink tank, 120... outer wall, 122... partition wall, 130... support portion, 132... rod portion, 134... plate portion, 136... auxiliary support portion, 140... auxiliary portion, 150... discharge portion, 160... supply port, 170... connection portion, 180... adjustment port, 190... mounting portion, 200, 200A, 200B, 200C... FPC, 201... first cover film layer, 202... first conductive layer, 203... base material layer, 204... second conductive layer, 205... second cover film layer, 210... input electrode, 212...wiring, 220...detection electrode, 220a...detection electrode, 220b...detection electrode, 220c...detection electrode, 222a, 222b, 222c...wiring, 240, 240a, 240b, 240c, 240d, 240e, 240f...shield wiring, 242c, 242d, 242e...drawing wiring, 260...double-sided tape, 262...first adhesive layer, 264...base material, 266...second adhesive layer, BP1, BP2...folded portion, ET1, ET1a, ET1d, ET1e, ET2, ET2a, ET2b, ET2c, E T2d, ET2e...extension portion, IF1, IF1a, IF2, IF2a...inner surface, OF1, OF1a, OF2, OF2a...outer surface, PP1...first arrangement portion, PP2...second arrangement portion, PT10, PT12, PT18, PT19, PT20, PT22, PT22A, PT22B, PT24, PT26, PT28, PT29...positioning portion, TH1, TH2a, TH2b, TH4a, TH4b, TH4c...through hole, TW1, TW2a, TW2b, TW4a, TW4b, TW4c...through wiring.
Claims
1. a storage unit including a plurality of walls and configured to store an object in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion and a third positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a fourth positioning portion that fits into the third positioning portion; and the second positioning portion is fitted to the first positioning portion and is located between the first electrode and the second electrode on the flexible printed circuit board; The first positioning portion and the third positioning portion are different in shape and / or size, the first electrode is an electrode to which an input signal for detecting the amount of the object stored in the storage unit is input, the second electrode is electrically connected to a detection circuit that detects the amount of the object stored in the storage unit based on a detection signal; the detection signal corresponding to the amount of the object stored in the storage section and the input signal is input from the second electrode to the detection circuit; A storage device characterized by:
2. a storage unit including a plurality of walls and configured to store an object in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion, a third positioning portion, and a fifth positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a fourth positioning portion that fits into the third positioning portion; a sixth positioning portion that fits into the fifth positioning portion; and the second positioning portion is fitted to the first positioning portion and is located between the first electrode and the second electrode on the flexible printed circuit board; the sixth positioning portion has a center at a position shifted from a line passing through a center of the first positioning portion and a center of the third positioning portion on the flexible printed circuit board, the first electrode is an electrode to which an input signal for detecting the amount of the object stored in the storage unit is input, the second electrode is electrically connected to a detection circuit that detects the amount of the object stored in the storage unit based on a detection signal; the detection signal corresponding to the amount of the object stored in the storage section and the input signal is input from the second electrode to the detection circuit; A storage device characterized by:
3. the first positioning portion is provided on a third wall of the plurality of walls, The first positioning portion has a convex shape, the third wall and the first positioning portion are made of plastic.
3. A storage device according to claim 1 or 2.
4. The storage unit is a first end positioning portion; The flexible printed circuit board is a second end positioning portion that fits with the first end positioning portion; The second end positioning portion is In the flexible printed circuit board, the first electrode is located at an edge portion thereof.
4. A storage device according to any one of claims 1 to 3.
5. The storage unit is a third end positioning portion; The flexible printed circuit board is a fourth end positioning portion that fits with the third end positioning portion; The fourth end positioning portion is In the flexible printed circuit board, the second electrode is located at an edge portion thereof.
5. A storage device according to any one of claims 1 to 4.
6. the first positioning portion and the third positioning portion are provided on a third wall of the plurality of walls, the flexible printed circuit board has a first terminal electrically connected to the first electrode and in contact with an external first external contact, a second terminal electrically connected to the second electrode and in contact with an external second external contact, and a constant voltage terminal maintained at a constant voltage; In the flexible printed circuit board, at least a part of a terminal arrangement region including the first terminal, the second terminal, and the constant voltage terminal is located between the second positioning portion and the fourth positioning portion, the input signal is supplied to the first terminal via the first external contact; the second terminal is electrically connected to the detection circuit via the second external contact; 3. A storage device according to claim 1 or 2.
7. a storage unit including a plurality of walls and configured to store an object in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion and a first end positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a second end positioning portion that fits into the first end positioning portion; and the second end positioning portion is located at an edge of the flexible printed circuit board on which the first electrode is provided, the first electrode is an electrode to which an input signal for detecting the amount of the object stored in the storage unit is input, the second electrode is electrically connected to a detection circuit that detects the amount of the object stored in the storage unit based on a detection signal; the detection signal corresponding to the amount of the object stored in the storage section and the input signal is input from the second electrode to the detection circuit; A storage device characterized by:
8. a storage unit including a plurality of walls and configured to store an object in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion and a third end positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a fourth end positioning portion that fits with the third end positioning portion; and the fourth end positioning portion is located at an edge of the flexible printed circuit board on which the second electrode is provided, the first electrode is an electrode to which an input signal for detecting the amount of the object stored in the storage unit is input, the second electrode is electrically connected to a detection circuit that detects the amount of the object stored in the storage unit based on a detection signal; the detection signal corresponding to the amount of the object stored in the storage section and the input signal is input from the second electrode to the detection circuit; A storage device characterized by:
9. The second positioning portion is The first positioning portion is fitted to the first positioning portion. In the flexible printed circuit board, a conductive layer is located between the first electrode and the second electrode.
9. Storage device according to claim 7 or 8.
10. The storage section is Further, the third positioning portion is provided. The flexible printed circuit board is Further, the fourth positioning portion is fitted with the third positioning portion.
10. The storage device of claim 9.
11. In the flexible printed circuit board, a distance between the first electrode and the second electrode is larger than a width of the first electrode in a first direction intersecting with an extension direction of the flexible printed circuit board.
11. A storage device according to any one of claims 1 to 10.
12. a storage device that stores a liquid; a detection circuit that detects the amount of the liquid stored in the storage device based on a detection signal; and a discharge unit that discharges the liquid supplied from the storage device, The storage device comprises: a storage portion including a plurality of walls and configured to store the liquid in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion and a third positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a fourth positioning portion that fits into the third positioning portion; and the second positioning portion is fitted to the first positioning portion and is located between the first electrode and the second electrode on the flexible printed circuit board; The first positioning portion and the third positioning portion are different in shape and / or size, the first electrode is an electrode to which an input signal for detecting the amount of the liquid stored in the storage device is input, the second electrode is electrically connected to the detection circuit; the detection signal corresponding to the amount of the liquid stored in the storage section and the input signal is input from the second electrode to the detection circuit; A liquid ejection device characterized by:
13. a storage device that stores a liquid; a detection circuit that detects the amount of the liquid stored in the storage device based on a detection signal; and a discharge unit that discharges the liquid supplied from the storage device, The storage device comprises: a storage portion including a plurality of walls and configured to store the liquid in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion, a third positioning portion, and a fifth positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a fourth positioning portion that fits into the third positioning portion; a sixth positioning portion that fits into the fifth positioning portion; and the second positioning portion is fitted to the first positioning portion and is located between the first electrode and the second electrode on the flexible printed circuit board; the sixth positioning portion has a center at a position shifted from a line passing through a center of the first positioning portion and a center of the third positioning portion on the flexible printed circuit board, the first electrode is an electrode to which an input signal for detecting the amount of the liquid stored in the storage device is input, the second electrode is electrically connected to the detection circuit; the detection signal corresponding to the amount of the liquid stored in the storage section and the input signal is input from the second electrode to the detection circuit; A liquid ejection device characterized by:
14. a storage device that stores a liquid; a detection circuit that detects the amount of the liquid stored in the storage device based on a detection signal; and a discharge unit that discharges the liquid supplied from the storage device, The storage device comprises: a storage portion including a plurality of walls and configured to store the liquid in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion and a first end positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a second end positioning portion that fits into the first end positioning portion; and the second end positioning portion is located at an edge of the flexible printed circuit board on which the first electrode is provided, the first electrode is an electrode to which an input signal for detecting the amount of the liquid stored in the storage device is input, the second electrode is electrically connected to the detection circuit; the detection signal corresponding to the amount of the liquid stored in the storage section and the input signal is input from the second electrode to the detection circuit; A liquid ejection device characterized by:
15. a storage device that stores a liquid; a detection circuit that detects the amount of the liquid stored in the storage device based on a detection signal; and a discharge unit that discharges the liquid supplied from the storage device, The storage device comprises: a storage portion including a plurality of walls and configured to store the liquid in a space surrounded by the plurality of walls; a flexible printed circuit board fixed to the storage unit; Equipped with The storage unit is a first positioning portion and a third end positioning portion; The flexible printed circuit board is a first electrode provided on a first wall of the plurality of walls; a second electrode provided on a second wall of the plurality of walls; a first wiring connected to the first electrode; a second wiring connected to the second electrode; a second positioning portion that determines the position of the flexible printed circuit board by connecting to the first positioning portion; a fourth end positioning portion that fits with the third end positioning portion; and the fourth end positioning portion is located at an edge of the flexible printed circuit board on which the second electrode is provided, the first electrode is an electrode to which an input signal for detecting the amount of the liquid stored in the storage device is input, the second electrode is electrically connected to the detection circuit; the detection signal corresponding to the amount of the liquid stored in the storage section and the input signal is input from the second electrode to the detection circuit; A liquid ejection device characterized by:
Citation Information
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