Coupling unit and method of assembling the same

The joint unit with a guide and fixing mechanism addresses the challenge of securely attaching small-diameter resin tubes by guiding and deforming the tube into position, ensuring easy assembly and reliable attachment without adhesives or ferrules.

JP7737147B2Active Publication Date: 2025-09-10SURPASS IND
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Patent Information

Application Number
JP2022034455
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-07
Publication Date
2025-09-10
Estimated Expiration
2042-03-07

AI Technical Summary

Technical Problem

Existing coupling structures for small-diameter resin tubes used in low-flow applications, such as cell culture, face challenges in inserting and securing the tubes due to high rigidity, making it difficult to visually align and securely attach them without adhesives or ferrules, which can lead to detachment or insufficient holding force.

Method used

A joint unit with a guide and fixing mechanism, featuring a protrusion, guide portion, and nut structure, allows easy alignment and secure attachment of resin tubes by guiding the tube into position and using deformable fixing portions to engage with the tube's outer surface, ensuring a reliable hold without adhesives or separate ferrules.

Benefits of technology

Enables easy insertion and secure attachment of resin tubes to flow paths, preventing detachment and ensuring sufficient holding force, even with small diameters, facilitating easy assembly and reuse of the coupling unit.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To make a holding force which is sufficient for fixing a resin-made tube so as not to come off from a protrusion reliably act.SOLUTION: A joint unit 500 comprises a resin-made tube 300, a joint structure 100 and a nut 200. The joint structure 100 has a guide part for guiding an external peripheral face 301 of the resin-made tube 300, a protrusion 130 forming an insertion groove 133 between the guide part and itself, and a fixing part 140 for fixing the resin-made tube 300 which is inserted into the insertion groove 133. A tip of the protrusion 130 is located in a position closer to a main body part 110 than a tip of the guide part. The nut 200 has a recess 230 having an inside diameter which is larger than a first outside diameter of the guide part, and smaller than a second outside diameter of the fixing part 140, and in a state in which the nut 200 is fastened to the joint structure 100, a tip of the fixing part 140 which contacts with the recess 230 bites into the external peripheral face 301 of the resin-made tube 300.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to a joint unit and a method for assembling the joint unit. [Background technology]

[0002] Conventionally, when circulating liquids using tubes for cell culture or other applications used in regenerative medicine, an extremely small flow rate (for example, about 0.01 ml / min to 1 ml / min) is sometimes required. Tubes used for such applications have an extremely small inner diameter of the flow path (for example, about 0.30 mm). Furthermore, when connecting a tube to another flow path, a joint structure is required that includes a joint that is partially inserted into the flow path of the tube.

[0003] However, when the inner diameter of the flow path is small compared to the thickness of the tube, it is difficult to elastically deform the flow path of the tube, which has high rigidity, to insert the coupling part.In particular, when the inner diameter of the flow path is extremely small, it is difficult to insert the coupling part while visually checking the flow path.

[0004] In Patent Document 1, a protrusion is provided that forms an insertion groove into which the resin tube is inserted between the protrusion and a cylindrical portion that holds the outer surface of the resin tube, and the tip of the protrusion is positioned closer to the main body than the tip of the cylindrical portion. Before the end of the resin tube comes into contact with the tip of the protrusion, the outer surface of the resin tube is held by the inner peripheral surface of the cylindrical portion. By holding the outer surface of the resin tube by the inner peripheral surface of the cylindrical portion, a liquid delivery flow path formed in the resin tube is positioned on the same axis as the central axis of the cylindrical portion.

[0005] In this state, when the worker presses the resin tube toward the main body of the fitting structure, the protrusion, which is arranged coaxially with the liquid supply flow path, is inserted. Thus, according to Patent Document 1, the worker can easily insert the protrusion into the liquid supply flow path without visually checking the liquid supply flow path formed in the resin tube. In Patent Document 1, the resin tube is fixed to the protrusion with an adhesive or a ferrule so that it does not come off. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Patent Publication No. 2021-55815 Summary of the Invention [Problem to be solved by the invention]

[0007] However, when a resin tube is fixed to a coupling structure using an adhesive, the resin tube adheres to the coupling structure, making it impossible to replace the resin tube and reuse the coupling structure. Furthermore, when a resin tube is fixed to a coupling structure using a ferrule, the amount of deformation of the cylindrical ferrule is limited, so there is a possibility that the holding force required to secure the resin tube and prevent it from slipping off the protrusion may not be sufficient. Furthermore, because the ferrule is a separate component from the coupling structure, workers may forget to attach the ferrule. In this case, there is a risk that the resin tube may slip off the protrusion.

[0008] The present invention has been made in consideration of the above circumstances, and aims to provide a coupling unit and a method for assembling a coupling unit that allows an operator to easily insert a protrusion into a liquid delivery flow path of a resin tube, and that can reliably apply sufficient holding force to secure the resin tube so that it does not slip out of the protrusion. [Means for solving the problem]

[0009] In order to solve the above problems, the present invention employs the following means. A joint unit according to one aspect of the present invention comprises a resin tube having a liquid supply flow path extending along an axis and a circular cross section perpendicular to the axis, a joint structure formed in an axial direction along the axis and having a male thread on an outer circumferential surface, the joint structure being attached to an end of the resin tube, and a nut formed in a cylindrical shape along the axis and having a female thread formed on an inner circumferential surface that engages with the male thread. The joint structure comprises a main body portion, a guide portion formed in an axial direction around the axis so as to protrude from the main body portion along the axis and guiding the outer circumferential surface of the resin tube, and a axial shape formed in an axial direction so as to protrude from the main body portion along the axis and interposing the resin tube between the guide portion and the nut. and a fixing portion that is formed in a part of the circumferential direction so as to protrude from the main body portion along the axis and that fixes the resin tube inserted into the insertion groove, the main body portion and the protrusion portion have a connecting flow path that extends along the axis and connects the liquid supply flow path to another flow path, the tip of the protrusion portion is located at a position closer to the main body portion than the tip of the guide portion, the nut has a recess that has an inner diameter that is larger than a first outer diameter of the guide portion and smaller than a second outer diameter of the fixing portion, and when the nut is fastened to the joint structure, the tip of the fixing portion that comes into contact with the recess is engaged with the outer peripheral surface of the resin tube.

[0010] According to one aspect of the present invention, the fitting unit includes a protrusion that forms an insertion groove into which the resin tube is inserted, between the protrusion and a guide that guides the outer surface of the resin tube, and the tip of the protrusion is positioned closer to the main body than the tip of the guide. Therefore, when the end of the resin tube is brought close to the fitting structure, the outer surface of the resin tube is guided by the inner surface of the guide before the end of the resin tube comes into contact with the tip of the protrusion. As the outer surface of the resin tube is guided by the inner surface of the guide, a liquid delivery channel formed in the resin tube is aligned with the central axis of the protrusion.

[0011] In this state, when the worker presses the resin tube toward the main body of the joint structure, the protrusion, which is arranged coaxially with the fluid delivery flow path, is inserted. In this way, the worker can easily insert the protrusion into the fluid delivery flow path without visually checking the fluid delivery flow path formed in the resin tube.

[0012] In addition, according to a coupling unit according to one aspect of the present invention, the nut has a recess having an inner diameter larger than the first outer diameter of the guide portion and smaller than the second outer diameter of the fixing portion. Because the inner diameter of the recess is larger than the first outer diameter of the guide portion, the guide portion is accommodated in the recess without contacting the inner circumferential surface of the recess when the nut is fastened to the coupling structure. On the other hand, because the inner diameter of the recess is smaller than the second outer diameter of the fixing portion, the fixing portion contacts the inner circumferential surface of the recess when the nut is fastened to the coupling structure.

[0013] When the nut is fastened to the joint structure, the tip of the fixing portion that comes into contact with the recess is engaged with the outer peripheral surface of the plastic tube. This is because the fixing portion, which is formed only in a portion of the circumferential direction, is easily deformed toward the inner peripheral side when the tip of the fixing portion comes into contact with the recess. By engaging the tip of the fixing portion with the outer peripheral surface of the plastic tube in this way, it is possible to reliably apply a sufficient holding force to secure the plastic tube so that it does not slip off the protrusion.

[0014] In a joint unit according to one aspect of the present invention, the joint structure preferably has a plurality of the guide portions arranged at intervals in the circumferential direction and a plurality of the fixing portions arranged at intervals in the circumferential direction, and the fixing portions are preferably arranged between a pair of the guide portions arranged adjacent to each other.

[0015] With this type of joint unit, the outer circumferential surface of the resin tube is reliably guided by the guide portions spaced apart in the circumferential direction, and the liquid delivery flow path can be positioned on the same axis as the central axis of the protrusion. Furthermore, the fixing portions are spaced apart in the circumferential direction and are positioned between a pair of adjacent guide portions, ensuring sufficient holding force to prevent the resin tube from slipping off the protrusion.

[0016] In the joint unit according to one aspect of the present invention, it is preferable that the recess has a bottom portion against which the tip of the guide portion abuts. With the joint unit of this configuration, when the nut is fastened to the joint structure, the tip of the guide portion abuts against the bottom of the recess, allowing the worker to easily recognize that the nut has been fastened to the joint structure and preventing the nut from being overtightened to the joint structure.

[0017] In the joint unit according to one aspect of the present invention, it is preferable that a tip of the fixing portion is located closer to the main body portion than a tip of the protrusion. With this coupling unit, the force acting when the tip of the fixing part is engaged with the outer surface of the resin tube does not act on an area farther from the main body than the tip of the protrusion, preventing the resin tube from being deformed and blocking the liquid delivery flow path due to the force acting when the tip of the fixing part is engaged with the outer surface of the resin tube.

[0018] In a coupling unit according to one aspect of the present invention, it is preferable that a biting portion be formed at the tip of the fixing portion, which protrudes toward the protrusion in a radial direction perpendicular to the axis and bites into the outer peripheral surface of the resin tube. With this type of joint unit, the biting portion that protrudes radially toward the protrusion is bitten into the outer surface of the plastic tube, thereby ensuring that a sufficient holding force is applied to secure the plastic tube so that it does not slip off the protrusion.

[0019] In the joint unit according to one aspect of the present invention, it is preferable that the length of the protrusion along the axis is three times or more the outer diameter of the protrusion. According to the coupling unit of this configuration, the length of the protrusion along the axis is three or more times the outer diameter of the protrusion, so that the protrusion is needle-shaped and protrudes from the main body. By inserting the needle-shaped protrusion into the liquid delivery flow path of the resin tube, a sealing area of ​​sufficient length can be provided between the outer surface of the protrusion and the liquid delivery flow path. Furthermore, although it is difficult for an operator to insert the needle-shaped protrusion into the liquid delivery flow path while visually checking it, because the protrusion is inserted into the liquid delivery flow path with the liquid delivery flow path and the protrusion aligned on the same axis, the operator can easily insert the protrusion into the liquid delivery flow path.

[0020] In the joint unit according to one aspect of the present invention, it is preferable that the length from the tip of the protrusion to the tip of the guide portion is at least 0.2 times the inner diameter of the guide portion. In this joint unit, the length from the tip of the protrusion to the tip of the guide is at least 0.2 times the inner diameter of the guide. Therefore, when the end of the resin tube is inserted a sufficient distance relative to the inner diameter of the guide, the end of the resin tube comes into contact with the tip of the protrusion. This allows the protrusion to be inserted into the liquid delivery flow path with the outer circumferential surface of the resin tube securely held by the inner circumferential surface of the guide.

[0021] In the joint unit according to one aspect of the present invention, the outer diameter of the resin tube is preferably 3 times or more and 15 times or less the inner diameter of the resin tube. With this coupling unit, the outer diameter of the resin tube is sufficiently large relative to the inner diameter, resulting in a resin tube with sufficient thickness. Therefore, even when durability against pressure is required, the resin tube can exhibit sufficient rigidity and the associated durability. Furthermore, when using a highly rigid resin tube, it is difficult to insert a protrusion and cause elastic deformation. However, because the protrusion can be inserted into the liquid delivery flow path while the outer surface of the resin tube is held by the inner surface of the guide, the protrusion can be easily inserted into the resin tube.

[0022] In the joint unit according to one aspect of the present invention, the resin tube preferably has an inner diameter of 0.1 mm or more and 1.0 mm or less. With this coupling unit, the inner diameter of the resin tube is extremely small, between 0.1 mm and 1.0 mm. Therefore, the flow rate of the liquid flowing through the flow path formed in the resin tube per unit time can be kept low. Furthermore, even if the inner diameter of the resin tube is extremely small, between 0.1 mm and 1.0 mm, the protrusion can be easily inserted into the flow path without visually checking the flow path formed in the resin tube.

[0023] A method for assembling a fitting unit according to one aspect of the present invention is a method for assembling a resin tube formed with a liquid delivery flow path extending along an axis and having a circular cross section perpendicular to the axis, and a fitting unit to be attached to an end of the resin tube, wherein the fitting unit comprises a fitting structure formed in an axial shape along the axis and having a male thread formed on an outer circumferential surface, and a nut formed in a cylindrical shape along the axis and having a female thread formed on an inner circumferential surface to engage with the male thread, and the fitting structure comprises a main body portion, a guide portion formed to protrude from the main body portion along the axis and to guide the outer circumferential surface of the resin tube, a protrusion formed in an axial shape protruding from the main body portion along the axis and forming an insertion groove into which the resin tube is inserted between the guide portion and the nut, and and a fixing portion that is formed to protrude from the main body portion along the axis and that fixes the resin tube inserted into the insertion groove, wherein the main body portion and the protrusion portion have a connecting flow path that extends along the axis and connects the liquid supply flow path to another flow path, the tip of the protrusion portion is positioned closer to the main body portion than the tip of the guide portion, and the nut has a recess that has an inner diameter that is larger than a first outer diameter of the guide portion and smaller than a second outer diameter of the fixing portion, and the fitting structure includes an insertion step of guiding the outer surface of the resin tube with the guide portion and inserting the protrusion portion into the liquid supply flow path, and a fixing step of fastening the nut to the fitting structure to bring the fixing portion into contact with the recess and engage the tip of the fixing portion with the outer surface of the resin tube.

[0024] According to a method for assembling a coupling unit according to one aspect of the present invention, during the insertion step, the outer peripheral surface of the resin tube is guided by the inner peripheral surface of the guide portion before the end of the resin tube contacts the tip of the protrusion. When the worker presses the resin tube toward the main body of the coupling structure in this state, the protrusion, which is arranged coaxially with the liquid delivery flow path, is inserted. In this way, the worker can easily insert the protrusion into the liquid delivery flow path without visually checking the liquid delivery flow path formed in the resin tube.

[0025] Furthermore, in a method for assembling a coupling unit according to one aspect of the present invention, the inner diameter of the recess is smaller than the second outer diameter of the fixing portion. Therefore, in the fixing step, the fixing portion contacts the inner circumferential surface of the recess when the nut is fastened to the coupling structure. Then, when the nut is fastened to the coupling structure, the tip of the fixing portion that contacts the recess is engaged with the outer circumferential surface of the resin tube. This is because the fixing portion, which is formed only in a portion in the circumferential direction, is easily deformed toward the inner circumferential side when the tip of the fixing portion contacts the recess. In this way, by engaging the tip of the fixing portion with the outer circumferential surface of the resin tube, a sufficient holding force can be reliably applied to secure the resin tube so that it does not slip off the protrusion. [Effects of the Invention]

[0026] According to the present invention, it is possible to provide a coupling unit and a method for assembling a coupling unit that allows an operator to easily insert a protrusion into a liquid delivery flow path of a resin tube and that can reliably apply sufficient holding force to secure the resin tube so that it does not come off the protrusion. [Brief explanation of the drawings]

[0027] [Figure 1] 1 is a longitudinal cross-sectional view showing a joint unit according to an embodiment of the present invention, illustrating a state before a resin tube is inserted into the joint structure. [Figure 2] 2 is a cross-sectional view of the joint structure shown in FIG. 1 taken along the line AA. [Figure 3] FIG. 2 is a partially enlarged view of the joint structure shown in FIG. [Figure 4] FIG. 2 is a side view of the joint structure shown in FIG. 1, viewed from the resin tube side. [Figure 5] 5 is a cross-sectional view of the joint structure shown in FIG. 4 taken along the line CC, showing a state in which the tip of the protrusion is inserted into the liquid-transport flow path of the resin tube. [Figure 6] 5 is a cross-sectional view of the joint structure shown in FIG. 4 taken along the arrow CC, showing a state in which the insertion of the resin tube has been completed. [Figure 7]5 is a cross-sectional view of the joint structure shown in FIG. 4 taken along the line BB, illustrating a state in which a nut is being fastened to the joint structure. [Figure 8] 5 is a cross-sectional view of the joint structure shown in FIG. 4 taken along the line CC, illustrating a state in which a nut is being fastened to the joint structure. [Figure 9] 5 is a cross-sectional view of the joint structure shown in FIG. 4 taken along the line BB, showing a state in which a nut is fastened to the joint structure. [Figure 10] 5 is a cross-sectional view of the joint structure shown in FIG. 4 taken along the line CC, showing a state in which a nut is fastened to the joint structure. [Figure 11] FIG. 10 is a side view showing a joint structure of a first modified example, as viewed from the resin tube side. [Figure 12] FIG. 10 is a side view showing a joint structure of a second modified example, as viewed from the resin tube side. DETAILED DESCRIPTION OF THE INVENTION

[0028] A joint unit 500 according to one embodiment of the present invention will be described below with reference to the drawings. Fig. 1 is a longitudinal cross-sectional view showing the joint unit 500 according to one embodiment of the present invention, illustrating a state before a resin tube 300 is inserted into the joint structure 100. Fig. 2 is a cross-sectional view of the joint structure 100 shown in Fig. 1 taken along the line AA. Fig. 3 is a partially enlarged view of the joint structure 100 shown in Fig. 1. Fig. 4 is a side view of the joint structure 100 shown in Fig. 1, viewed from the resin tube 300 side.

[0029] As shown in FIG. 1, the joint unit 500 of this embodiment includes a joint structure 100, a nut 200, a resin tube 300, and a resin tube 400.

[0030] The joint structure 100 is a structure in which an end of a resin tube 300 is attached to one end (the right side in FIG. 1) and an end of a resin tube 400 is attached to the other end (the left side in FIG. 1). The joint structure 100 connects the liquid supply flow path 310 of the resin tube 300 and the liquid supply flow path 410 of the resin tube 400 so that liquid flows between them.

[0031] The joint structure 100 is a member formed in an axial shape along the axis X, and is formed by connecting a first member 100a and a second member 100b. The first member 100a is a member formed in an axial shape along the axis X. The second member 100b is a member formed in a tubular shape along the axis X. Each of the first member 100a and the second member 100b is formed from a resin material (for example, PVC (polyvinyl chloride), polycarbonate).

[0032] As shown in FIG. 1, the first member 100a has an engaging portion 100a1 that engages with the end of the second member 100b on the resin tube 400 side. As shown in FIG. 2, the engaging portion 100a1 has a pair of flat surfaces 100a2 formed at positions facing each other across the axis X. As shown in FIG. 1, the second member 100b has a holding portion 100b1 that holds the engaging portion 100a1 of the first member 100a. As shown in FIG. 2, the holding portion 100b1 has a pair of flat surfaces 100b2 formed at positions facing each other across the axis X.

[0033] 2, the first member 100a is inserted into the second member 100b so that the pair of flat surfaces 100a2 faces the pair of flat surfaces 100b2. Because the pair of flat surfaces 100a2 faces the pair of flat surfaces 100b2, the first member 100a is fixed to the second member 100b so as not to rotate around the axis X. The first member 100a and the second member 100b are joined together by, for example, an ultraviolet curing adhesive.

[0034] 1, the joint structure 100 has a main body portion 110, a guide portion 120, a protrusion portion 130, a fixing portion 140, and a male thread portion 150. A connecting flow path 160 is formed in the main body portion 110, the protrusion portion 130, and the male thread portion 150, extending along the axis X and connecting the liquid supply flow path 310 of the resin tube 300 and the liquid supply flow path 410 of the resin tube 400.

[0035] The main body 110 is disposed between the protrusion 130 and the male thread 150, and has a connecting flow path 160 formed therein.

[0036] The guide portion 120 is formed to protrude from the main body portion 110 along the axis X toward the resin tube 300. As shown in FIG. 4, the guide portion 120 is formed in a part of the circumferential direction CD about the axis X. The joint structure 100 has two guide portions 120 arranged circumferentially at an interval of 180 degrees. The guide portion 120 has an arc-shaped inner circumferential surface 121 that guides the outer circumferential surface 301 of the resin tube 300. The pair of guide portions 120 has an outer diameter OD1.

[0037] The protrusion 130 is formed in an axial shape so as to protrude from the main body 110 toward the resin tube 300 along the axis X. As shown in FIG. 3 , the protrusion 130 has a base 131 with an outer diameter Dpo and a tip 132 whose outer diameter gradually decreases toward the tip. The protrusion 130 forms an insertion groove 133 between the guide part 120 and the fixing part 140, into which the resin tube 300 is inserted. A bottom 133a of the insertion groove 133 is located at the boundary between the main body 110 and the protrusion 130.

[0038] 3, the boundary position on the axis X between the main body 110 and the protrusion 130 is X1, the position on the axis X of the tip of the protrusion 130 is X2, and the position on the axis X of the tip of the guide 120 is X3. X2, which is the tip of the protrusion 130, is located closer to X1, which is the position of the end of the main body 110 on the protrusion 130 side, than X3, which is the tip of the guide 120.

[0039] As shown in Fig. 3, the length L2 from the tip of the protrusion 130 to the tip of the guide portion 120 is the length L2 in the direction of the axis X from X2 to X3. As shown in Fig. 4, the inner diameter of the pair of guide portions 120 is Dci. It is desirable that the length L2 from the tip of the protrusion 130 to the tip of the guide portion 120 be 0.2 times or more the inner diameter Dci of the pair of guide portions 120.

[0040] By setting the length L2 to be 0.2 times or more the inner diameter Dci, the end of the resin tube 300 comes into contact with the tip of the protrusion 130 when the end of the resin tube 300 is inserted a sufficient length L2 relative to the inner diameter Dci of the pair of guide parts 120. Therefore, the protrusion 130 can be inserted into the liquid delivery flow path 310 with the outer peripheral surface 301 of the resin tube 300 securely held by the inner peripheral surface of the guide part 120.

[0041] As shown in FIG. 3, the length of the protrusion 130 along the axis X is the length L1 in the direction of the axis X from X1 to X2. The outer diameter of the protrusion 130 is Dpo. The length L1 of the protrusion 130 is preferably three times or more the outer diameter Dpo of the protrusion 130. When the length L1 of the protrusion 130 is three times or more the outer diameter Dpo of the protrusion 130, the protrusion 130 becomes needle-shaped and protrudes from the main body 110. By inserting the needle-shaped protrusion 130 into the liquid supply flow path 310 of the resin tube 300, a sealing region of sufficient length can be provided between the outer circumferential surface of the protrusion 130 and the liquid supply flow path 310.

[0042] The fixing portion 140 is a member that fixes the resin tube 300 inserted into the insertion groove 133. As shown in Fig. 3, a biting portion 141 that protrudes toward the protruding portion 130 in the radial direction RD that is perpendicular to the axis X is formed at the tip of the fixing portion 140. The biting portion 141 is a member that bites into the outer peripheral surface 301 of the resin tube 300 when the nut 200 is fastened to the joint structure 100.

[0043] As shown in Fig. 4, the fixing portion 140 is formed in a part of the circumferential direction CD so as to protrude from the main body portion 110 along the axis X. The joint structure 100 has two fixing portions 140 arranged at an interval of 180 degrees in the circumferential direction CD. The fixing portion 140 is arranged between a pair of guide portions 120 arranged adjacent to each other. The guide portions 120 and the fixing portions 140 are arranged alternately along the circumferential direction CD.

[0044] In the joint structure 100 of this embodiment, the length in the circumferential direction CD of the guide portion 120 and the length in the circumferential direction CD of the fixed portion 140 may be the same. Furthermore, in the joint structure 100 of this embodiment, the length in the circumferential direction CD of the guide portion 120 and the length in the circumferential direction CD of the fixed portion 140 may be different. In the joint structure 100 of this embodiment, the length in the circumferential direction CD of the guide portion 120 is preferably longer than the length in the circumferential direction CD of the fixed portion 140. By making the length in the circumferential direction CD of the guide portion 120 longer than the length in the circumferential direction CD of the fixed portion 140, it is possible to ensure that the outer peripheral surface 301 of the resin tube 300 is securely held by the inner peripheral surface of the guide portion 120.

[0045] 3, the position of the tip of the fixing portion 140 on the axis X is X4. X4, which is the tip of the fixing portion 140, is located closer to X1, which is the position of the end of the main body 110 on the protrusion 130 side, than X2, which is the tip of the protrusion 130. The outer diameter of the pair of fixing portions 140 is OD2, which is larger than the outer diameter OD1 of the pair of guide portions 120.

[0046] The male threaded portion 150 is a member adjacent to the main body portion 110 and extending axially along the axis X. A male thread 151 is formed on the outer peripheral surface of the male threaded portion 150. A connecting portion 152 to which the end of the resin tube 400 is connected is formed on the end of the male threaded portion 150 on the resin tube 400 side along the axis X.

[0047] The nut 200 is a member that is detachably attached to the male thread portion 150 of the joint structure 100. When the nut 200 is fastened to the joint structure 100, the tip of the fixing portion 140 is engaged with the outer circumferential surface 301 of the resin tube 300. As shown in FIG. 1 , the nut 200 has, in order from the joint structure 100 side, a female thread portion 210, a connecting portion 220, a recessed portion 230, and a base end portion 240.

[0048] The female thread portion 210 is formed in a cylindrical shape along the axis X, and has a female thread 211 formed on its inner circumferential surface. An operator attaches the nut 200 to the joint structure 100 by rotating the nut 200 around the axis X and engaging the female thread 211 with the male thread 151. The female thread portion 210 has an inner diameter ID1.

[0049] The connecting portion 220 is a member that connects the female thread portion 210 and the recessed portion 230. The connecting portion 220 has a shape in which the inner diameter gradually decreases at a constant gradient from ID1 to ID2 as it approaches the recessed portion 230 from the female thread portion 210. When the tip of the fixing portion 140 of the joint structure 100 comes into contact with the connecting portion 220, the connecting portion 220 functions as an abutment surface that deforms the tip of the fixing portion 140 so as to approach the axis X.

[0050] The recess 230 is a member formed in a cylindrical shape along the axis X. The recess 230 has a constant inner diameter ID2 from the connecting portion 220 to the base end portion 240. The inner diameter ID2 of the recess 230 is larger than the outer diameter OD1 of the pair of guide portions 120 and smaller than the outer diameter OD2 of the pair of fixing portions 140.

[0051] The reason why the inner diameter ID2 of the recess 230 is larger than the outer diameter OD1 of the pair of guide portions 120 is that the recess 230 does not come into contact with the guide portions 120 when the nut 200 is fastened to the joint structure 100. The reason why the inner diameter ID2 of the recess 230 is smaller than the outer diameter OD2 of the pair of fixing portions 140 is that the recess 230 does not come into contact with the guide portions 120 when the nut 200 is fastened to the joint structure 100.

[0052] The base end portion 240 is a member formed in a cylindrical shape along the axis X, and is formed with a through hole 241 for inserting the resin tube 300 therein.

[0053] The resin tube 300 is a tubular body having a liquid supply flow path 310 formed therein and extending along the axis X, and having a circular cross section perpendicular to the axis X. The resin tube 300 is made of a resin material such as PVC (polyvinyl chloride), silicone, or PharMed. The resin tube 300 is attached to a protrusion 130 disposed at an end of the joint structure 100.

[0054] 1, in a non-inserted state where the protrusion 130 of the joint structure 100 is not inserted into the liquid supply flow path 310 of the resin tube 300, the outer diameter Dpo of the protrusion 130 is larger than the inner diameter Dti of the liquid supply flow path 310. The outer diameter Dto of the resin tube 300 is smaller than the inner diameter Dci of the guide portion 120 (see FIG. 4) and smaller than the inner diameter Dfi of the pair of fixing portions 140 (see FIG. 4). The inner diameter Dfi is the distance between the pair of biting portions 141. For example, the inner diameters Dci and Dfi are preferably smaller than the outer diameter Dto of the resin tube 300 by about 0.1 mm.

[0055] It is preferable that the inner diameter Dci of the guide portion 120 and the inner diameter Dfi of the fixing portion 140 are the same or approximately the same length. In this way, the resin tube 300 can be reliably guided so that the protrusion portion 130 is inserted into the liquid feeding flow path 310 by the guide portion 120 and the fixing portion 140 having the same or approximately the same inner diameter.

[0056] The thickness T1 of the resin tube 300 is (Dto-Dti) / 2. The distance L3 (see FIG. 4) between the inner circumferential surface of the guide portion 120 and the outer circumferential surface of the protrusion portion 130 is (Dci-Dpo) / 2. The thickness T1 of the resin tube 300 is the same as or slightly smaller than the distance L3. By achieving this relationship, when the resin tube 300 is inserted into the protrusion portion 130, the outer circumferential surface 301 of the resin tube 300 comes into contact with the inner circumferential surface of the guide portion 120 or comes close to it with a small gap therebetween.

[0057] In the non-inserted state, the outer diameter Dto of the resin tube 300 is 3 to 15 times the inner diameter Dti. Furthermore, the outer diameter Dto of the resin tube 300 is preferably 7 to 8 times the inner diameter Dti. Since the outer diameter Dto of the resin tube 300 is sufficiently larger than the inner diameter Dti, the resin tube 300 has a sufficient thickness T1.

[0058] The resin tube 300 has an inner diameter Dti of 0.1 mm or more and 1.0 mm or less. Because the inner diameter Dti of the resin tube 300 is extremely small, 0.1 mm or more and 1.0 mm or less, the flow rate of the liquid flowing per unit time through the liquid delivery flow path 310 formed in the resin tube 300 can be kept small.

[0059] The resin tube 400 is a tubular body having a liquid supply flow path 410 formed therein and extending along the axis X, and having a circular cross section perpendicular to the axis X. The resin tube 400 is made of a resin material such as PVC (polyvinyl chloride), silicone, or PharMed. The resin tube 400 is attached to the outer peripheral surface of the connection part 152 formed at the end of the joint structure 100.

[0060] Next, a method for assembling the joint unit 500 of this embodiment will be described with reference to Figures 5 to 10. In the method for assembling the joint unit 500 of this embodiment, the joint unit 500 is assembled by attaching an end of the resin tube 300 to one end side of the joint structure 100 (the right side in Figure 1).

[0061] The worker inserts the end of the resin tube 300 into the through hole 241 of the nut 200, resulting in the state shown in Fig. 1. Next, the worker holds both the resin tube 300 and the joint structure 100, and inserts the end of the resin tube 300 into the inner periphery of the guide portion 120 of the joint structure 100, resulting in the state shown in Fig. 5. Fig. 5 is a cross-sectional view of the joint structure 100 shown in Fig. 4 taken along the arrow CC, showing the state in which the tip of the protrusion 130 is inserted into the liquid delivery flow path 310 of the resin tube 300.

[0062] As shown in Fig. 5, the end of the resin tube 300 contacts the tip 132 of the protrusion 130 of the joint structure 100. In the state shown in Fig. 5, the outer peripheral surface 301 of the resin tube 300 is held by the inner peripheral surface of the guide portion 120. Therefore, even if the worker moves the resin tube 300 in a direction perpendicular to the axis X, the outer peripheral surface 301 of the resin tube 300 contacts the inner peripheral surface of the guide portion 120, and the state in which the resin tube is positioned on the inner peripheral side of the guide portion 120 is maintained.

[0063] Next, while holding both the resin tube 300 and the joint structure 100, the worker pushes the end of the resin tube 300 toward the bottom 133a of the insertion groove 133. As shown in Fig. 6, when the end of the resin tube 300 is pushed toward the bottom 133a of the insertion groove 133, the protrusion 130 of the joint structure 100 is inserted into the liquid delivery flow path 310 of the resin tube 300, and the end of the resin tube 300 comes into contact with the bottom 133a of the insertion groove 133 (insertion step). Fig. 6 is a cross-sectional view of the joint structure 100 shown in Fig. 4 taken along arrow CC, showing the state after insertion of the resin tube 300 has been completed.

[0064] When the end of the resin tube 300 is pushed toward the bottom 133a of the insertion groove 133, if the guide portion 120 is not present, the operator's action when pushing the resin tube 300 may cause the position of the tip portion 132 of the protrusion portion 130 to deviate from the position of the liquid supply flow path 310 of the resin tube 300. In this embodiment, the outer peripheral surface 301 of the resin tube 300 is held by the inner peripheral surface of the guide portion 120, so the position of the tip portion 132 of the protrusion portion 130 is prevented from deviating from the position of the liquid supply flow path 310 of the resin tube 300.

[0065] Next, the worker attaches the nut 200 to the male thread portion 150 of the joint structure 100 by engaging the female thread 211 with the male thread 151 while rotating the nut 200 around the axis X, resulting in the state shown in Figures 7 and 8. Figure 7 is a cross-sectional view of the joint structure 100 shown in Figure 4 taken along the line BB, showing the state in which the nut 200 is being fastened to the joint structure 100. Figure 8 is a cross-sectional view of the joint structure 100 shown in Figure 4 taken along the line CC, showing the state in which the nut 200 is being fastened to the joint structure 100.

[0066] 7, even if the tip of guide portion 120 penetrates up to the position of recessed portion 230 of nut 200, guide portion 120 does not come into contact with recessed portion 230. Guide portion 120 is housed inside recessed portion 230. On the other hand, as shown in FIG. 8, when the tip of fixing portion 140 penetrates up to the position of recessed portion 230 of nut 200, the tip of fixing portion 140 comes into contact with recessed portion 230.

[0067] As shown in Fig. 8, a contact surface 142 is formed at the tip of the fixing part 140, and the radial distance from the axis X gradually decreases toward the tip. The outer diameter of the contact surface 142 on the base end side (left side in Fig. 8) is larger than the inner diameter ID2 of the recessed part 230. The outer diameter of the contact surface 142 on the tip end side (right side in Fig. 8) is smaller than the inner diameter ID2 of the recessed part 230.

[0068] With a portion of the contact surface 142 inserted into the recess 230, the contact surface 142 contacts the end of the recess 230 on the connecting portion 220 side. When the nut 200 is rotated around the axis X to further engage the female thread 211 with the male thread 151, the contact surface 142 moves toward the axis X due to contact with the recess 230. Then, the biting portion 141 bites into the outer peripheral surface 301 of the resin tube 300, resulting in the state shown in FIGS. 9 and 10 (fixing process). FIG. 9 is a cross-sectional view of the joint structure 100 shown in FIG. 4 taken along the line BB, illustrating the state in which the nut 200 is fastened to the joint structure 100. FIG. 10 is a cross-sectional view of the joint structure 100 shown in FIG. 4 taken along the line CC, illustrating the state in which the nut 200 is fastened to the joint structure 100.

[0069] 9, when the nut 200 is fastened to the joint structure 100, the biting portion 141 provided at the tip of the fixing portion 140 that is in contact with the recess 230 bites into the outer peripheral surface 301 of the resin tube 300. By biting into the outer peripheral surface 301, the biting portion 141 presses the tip of the resin tube 300 toward the bottom 133a of the insertion groove 133. The contact area between the tip of the resin tube 300 and the bottom 133a forms an annular seal area, thereby reliably preventing liquid leakage from the liquid delivery channel 310.

[0070] Furthermore, even if the resin tube 300 is pulled in a direction away from the joint structure 100 (toward the right in FIG. 9 ), the biting portion 141 prevents the resin tube 300 from coming off the joint structure 100. This is because, even if a force to pull out the resin tube 300 acts on the biting portion 141, the fixing portion 140 is in contact with the recess 230, and therefore the biting portion 141 remains bitten into the outer circumferential surface 301 of the resin tube 300.

[0071] 10 , the recess 230 has a bottom 231 against which the tip of the guide portion 120 abuts. When the tip of the guide portion 120 abuts against the bottom 231, the nut 200 cannot be rotated in the direction of fastening to the joint structure 100. Therefore, when the tip of the guide portion 120 abuts against the bottom 231, the nut 200 is fastened to the joint structure 100. The worker can recognize that the nut 200 is fastened to the joint structure 100 by the fact that it can no longer be rotated in the direction of fastening to the joint structure 100.

[0072] In the above description, the joint structure 100 has a pair of guide portions 120 arranged at an interval of 180 degrees in the circumferential direction CD, a pair of fixing portions 140 arranged at an interval of 180 degrees in the circumferential direction CD, and the guide portions 120 and fixing portions 140 arranged alternately, but other configurations are also possible. For example, the guide portions 120 and fixing portions 140 may be arranged as shown in Fig. 11. Fig. 11 shows a joint structure 100A of a first modified example, and is a side view of the joint structure 100A as seen from the resin tube side.

[0073] 11, in the joint structure 100A of the first modified example, four guide portions 120 are arranged at 90-degree intervals in the circumferential direction CD, and four fixing portions 140 are arranged at 90-degree intervals in the circumferential direction CD. The guide portions 120 and fixing portions 140 are arranged alternately. Alternatively, instead of the joint structure 100A of the first modified example, a joint structure may be used in which three or five or more guide portions 120 and three or five or more fixing portions 140 are arranged alternately in the circumferential direction CD.

[0074] Furthermore, as shown in Fig. 12, a joint structure 100B of a second modified example may be provided in which a single guide portion 120 and a single fixing portion 140 are arranged. Fig. 12 shows the joint structure 100B of the second modified example, and is a side view of the joint structure 100A as viewed from the resin tube side. As shown in Fig. 12, the joint structure 100B of the second modified example has a guide portion 120 that is arranged in an arc shape over a range greater than 180 degrees in the circumferential direction CD, and a fixing portion 140 that is arranged in an arc shape over a range less than 180 degrees.

[0075] The functions and effects of the present embodiment described above will now be described. The joint unit 500 of this embodiment includes a protrusion 130 that forms an insertion groove 133 into which the resin tube 300 is inserted, between the protrusion 130 and the guide part 120 that guides the outer circumferential surface 301 of the resin tube 300, and the tip of the protrusion 130 is positioned closer to the main body part 110 than the tip of the guide part 120. Therefore, when the end of the resin tube 300 is brought closer to the joint structure 100, the outer circumferential surface 301 of the resin tube 300 is guided by the inner circumferential surface of the guide part 120 before the end of the resin tube 300 comes into contact with the tip part 132 of the protrusion 130. As the outer circumferential surface 301 of the resin tube 300 is guided by the inner circumferential surface of the guide part 120, a liquid supply flow path 310 formed in the resin tube 300 is positioned on the same axis X as the central axis of the protrusion 130.

[0076] In this state, when the worker presses the resin tube 300 toward the main body 110 of the joint structure 100, the protrusion 130, which is arranged coaxially with the liquid supply flow path 310, is inserted. In this way, the worker can easily insert the protrusion 130 into the liquid supply flow path 310 without visually checking the liquid supply flow path 310 formed in the resin tube 300.

[0077] Furthermore, according to the joint unit 500 of this embodiment, the nut 200 has a recess 230 having an inner diameter ID2 that is larger than the outer diameter OD1 of the guide portion 120 and smaller than the outer diameter OD2 of the fixing portion 140. Because the inner diameter ID2 of the recess 230 is larger than the outer diameter OD1 of the guide portion 120, the guide portion 120 is accommodated in the recess 230 without coming into contact with the inner circumferential surface of the recess 230 when the nut 200 is fastened to the joint structure 100. On the other hand, because the inner diameter ID2 of the recess 230 is smaller than the outer diameter OD2 of the fixing portion 140, the fixing portion 140 comes into contact with the inner circumferential surface of the recess 230 when the nut 200 is fastened to the joint structure 100.

[0078] Then, when the nut 200 is fastened to the joint structure 100, the tip of the fixing portion 140 that contacts the recess 230 is bitten into the outer peripheral surface 301 of the resin tube 300. This is because the tip of the fixing portion 140 contacts the recess 230, and the fixing portion 140 that is formed only in a part in the circumferential direction CD is easily deformed toward the inner peripheral side. By biting the tip of the fixing portion 140 into the outer peripheral surface 301 of the resin tube 300 in this way, it is possible to reliably apply a sufficient holding force to fix the resin tube 300 so that it does not come off the protrusion 130.

[0079] According to the joint unit 500 of this embodiment, the outer circumferential surface 301 of the resin tube 300 can be reliably guided by the plurality of guide parts 120 arranged at intervals in the circumferential direction CD, and the liquid supply flow path 310 can be positioned on the same axis X as the central axis of the protrusion 130. Furthermore, the fixing parts 140, which are arranged between a pair of adjacent guide parts 120, are arranged at intervals in the circumferential direction CD, and a sufficient holding force can be reliably applied to fix the resin tube 300 so that it does not come off the protrusion 130.

[0080] According to the joint unit 500 of this embodiment, when the nut 200 is fastened to the joint structure 100, the tip of the guide portion 120 abuts against the bottom 231 of the recess 230, allowing the worker to easily recognize that the nut 200 is fastened to the joint structure 100 and preventing the nut 200 from being overtightened to the joint structure 100.

[0081] According to the joint unit 500 of this embodiment, the force acting when the tip of the fixing part 140 is bitten into the outer peripheral surface 301 of the resin tube 300 does not act on an area that is farther from the main body part 110 than the tip part 132 of the protrusion part 130. Therefore, it is possible to prevent a problem in which the resin tube 300 is deformed by the force acting when the tip of the fixing part 140 is bitten into the outer peripheral surface 301 of the resin tube 300, causing the liquid delivery flow path 310 to become blocked.

[0082] According to the joint unit 500 of this embodiment, by engaging the biting portion 141 that protrudes radially toward the protrusion 130 with the outer surface 301 of the resin tube 300, it is possible to reliably apply a sufficient holding force to fix the resin tube 300 so that it does not come off the protrusion 130.

[0083] According to the joint unit 500 of this embodiment, the length of the protrusion along the axis is three or more times the outer diameter of the protrusion, and therefore the protrusion 130 is needle-shaped and protrudes from the main body 110. By inserting the needle-shaped protrusion 130 into the liquid feed flow path 310 of the resin tube 300, a sealing area of ​​sufficient length can be provided between the outer circumferential surface of the protrusion 130 and the liquid feed flow path 310. Furthermore, although it is a difficult task for an operator to insert the needle-shaped protrusion 130 into the liquid feed flow path 310 while visually checking it, because the protrusion 130 is inserted into the liquid feed flow path 310 with the liquid feed flow path 310 and the protrusion 130 aligned on the same axis, the operator can easily insert the protrusion 130 into the liquid feed flow path 310.

[0084] According to the joint unit 500 having this configuration, the length from the tip of the protrusion 130 to the tip of the guide part 120 is 0.2 times or more the inner diameter of the guide part 120. Therefore, when the end of the resin tube 300 is inserted a sufficient distance relative to the inner diameter of the guide part 120, the end of the resin tube 300 comes into contact with the tip part 132 of the protrusion 130. This allows the protrusion 130 to be inserted into the liquid feeding flow path 310 with the outer peripheral surface 301 of the resin tube 300 securely held by the inner peripheral surface of the guide part 120.

[0085] According to the joint unit 500 of this embodiment, the outer diameter Dto of the resin tube 300 is sufficiently larger than the inner diameter Dti, so that the resin tube 300 has a sufficient thickness. Therefore, even in cases where durability against pressing force is required, the resin tube 300 can exhibit sufficient rigidity and the associated durability. Furthermore, when a highly rigid resin tube 300 is used, it is difficult to insert the protrusion 130 and cause elastic deformation. However, since the protrusion 130 can be inserted into the liquid delivery flow path 310 while the outer peripheral surface 301 of the resin tube 300 is held by the inner peripheral surface of the guide portion 120, the protrusion 130 can be easily inserted into the resin tube 300.

[0086] According to the joint unit 500 of this embodiment, the inner diameter of the resin tube 300 is extremely small, not less than 0.1 mm and not more than 1.0 mm. Therefore, the flow rate of the liquid flowing per unit time through the flow path formed in the resin tube 300 can be kept small. Furthermore, even if the inner diameter Dti of the resin tube 300 is extremely small, not less than 0.1 mm and not more than 1.0 mm, the protrusion 130 can be easily inserted into the liquid supply flow path 310 formed in the resin tube 300 without visually checking the liquid supply flow path 310. [Explanation of symbols]

[0087] 100, 100A, 100B joint structure 110 Main body 120 Guide part 121 Inner surface 130 Protrusion 131 Base 132 Tip 133 Insertion groove 133a bottom 140 Fixed part 141 Biting part 142 Contact surface 150 Male thread 151 Male thread 152 Connection 160 Connecting Channel 200 nuts 210 Female thread 211 Internal thread 220 Connection part 230 recess 231 Bottom 240 Proximal end 241 through hole 300 Resin tube 301 Outer surface 310 Liquid delivery channel 400 Resin tube 410 Liquid delivery channel 500 fitting unit CD circumferential direction RD radial direction X axis

Claims

1. a resin tube having a liquid supply flow path extending along an axis and a circular cross section perpendicular to the axis; a joint structure formed in an axial shape along the axis line, having a male thread on an outer peripheral surface, and attached to an end of the resin tube; a nut formed in a cylindrical shape along the axis and having an internal thread formed on an inner circumferential surface thereof to engage with the external thread, The joint structure includes: a main body; a guide portion formed at a portion of a circumference around the axis so as to protrude from the main body portion along the axis and to guide an outer peripheral surface of the resin tube; a protrusion formed in an axial shape so as to protrude from the main body along the axis, the protrusion forming an insertion groove between the main body and the guide portion, into which the resin tube is inserted; a fixing portion formed in a part of the circumferential direction so as to protrude from the main body portion along the axis and configured to fix the resin tube inserted into the insertion groove, a connecting flow path extending along the axis and connecting the liquid supply flow path to another flow path is formed in the main body and the protrusion; a tip of the protrusion is disposed closer to the main body than a tip of the guide, the nut has a recess having an inner diameter larger than a first outer diameter of the guide portion and smaller than a second outer diameter of the fixing portion, A joint unit in which the tip of the fixing portion that contacts the recess when the nut is fastened to the joint structure is engaged with the outer peripheral surface of the resin tube.

2. The joint structure includes a plurality of the guide portions arranged at intervals in the circumferential direction and a plurality of the fixing portions arranged at intervals in the circumferential direction, The joint unit according to claim 1 , wherein the fixing portion is disposed between a pair of the guide portions that are disposed adjacent to each other.

3. 3. The coupling unit according to claim 1, wherein the recess has a bottom against which the tip of the guide portion abuts.

4. The coupling unit according to any one of claims 1 to 3, wherein a tip of the fixing portion is disposed closer to the main body portion than a tip of the protrusion.

5. 5. The coupling unit according to claim 1, wherein a biting portion is formed at a tip of the fixing portion, the biting portion protruding toward the protrusion in a radial direction perpendicular to the axis and biting into an outer peripheral surface of the resin tube.

6. 6. The joint unit according to claim 1, wherein the length of the protrusion along the axis is at least three times the outer diameter of the protrusion.

7. The coupling unit according to any one of claims 1 to 6, wherein a length from a tip of the protrusion to a tip of the guide portion is at least 0.2 times the inner diameter of the guide portion.

8. 8. The joint unit according to claim 1, wherein the resin tube has an outer diameter that is 3 times or more and 15 times or less the inner diameter of the resin tube.

9. 9. The joint unit according to claim 8, wherein the resin tube has an inner diameter of 0.1 mm or more and 1.0 mm or less.

10. A method for assembling a joint unit, comprising: The coupling unit comprises: a resin tube having a liquid supply flow path extending along an axis and a circular cross section perpendicular to the axis; a joint structure formed in an axial shape along the axis line, having a male thread on an outer peripheral surface, and attached to an end of the resin tube; a nut formed in a cylindrical shape along the axis and having an internal thread formed on an inner circumferential surface thereof to engage with the external thread, The joint structure includes: a main body; a guide portion formed to protrude from the main body portion along the axis and to guide an outer peripheral surface of the resin tube; a protrusion formed in an axial shape so as to protrude from the main body along the axis, the protrusion forming an insertion groove between the main body and the guide portion, into which the resin tube is inserted; a fixing portion formed to protrude from the main body portion along the axis and to fix the resin tube inserted into the insertion groove, a connecting flow path extending along the axis and connecting the liquid supply flow path to another flow path is formed in the main body and the protrusion; a tip of the protrusion is disposed closer to the main body than a tip of the guide, the nut has a recess having an inner diameter larger than a first outer diameter of the guide portion and smaller than a second outer diameter of the fixing portion, an insertion step of guiding an outer peripheral surface of the resin tube by the guide portion and inserting the protrusion portion into the liquid feeding flow path; a fixing step of fastening the nut to the joint structure to bring the fixing portion into contact with the recess and to bite a tip of the fixing portion into the outer peripheral surface of the resin tube.

Citation Information

Patent Citations

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