hemostatic instruments

The hemostatic device with a rotatable connector system for selective expansion member use addresses positioning challenges, ensuring correct placement on either hand and reducing connector-related issues, enhancing usability and safety.

JP7791069B2Active Publication Date: 2025-12-23TERUMO KK
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Patent Information

Application Number
JP2022157830
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-30
Publication Date
2025-12-23
Estimated Expiration
2042-09-30

AI Technical Summary

Technical Problem

Existing hemostatic devices with multiple expansion members face challenges in correctly positioning the expansion members for use on both the left and right hands, risking incorrect connections and reduced usability due to protruding connectors.

Method used

A hemostatic device with a support member and two expandable expansion members, featuring a connector portion with a rotatable first member and a second member that allows selective fluid injection into either expansion member, guided by a convex-protrusion and concave-recess mechanism, and a sealing member to prevent leakage.

Benefits of technology

The device enables selective expansion of either expansion member, ensuring correct positioning for left or right hand use, preventing incorrect connections and reducing the risk of accidental contact with connectors, thus enhancing usability and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a hemostatic device having excellent usability of being usable in both right and left hands and preventing occurrence of incorrect connection of an injection instrument.SOLUTION: A hemostatic device 10 includes a connector part 300 located on a support member to which a first expansion member 210 and a second expansion member 220 are connected and configured to selectively inject fluid into one of the first expansion member and the second expansion member. The connector part includes a first member 310 and a second member 320 disposed to enclose the first member in an airtight state. The first member is configured to be rotatable relative to the second member and configured to selectively inject air into one of the first expansion member and the second expansion member by aligning a hole 315 with one of a first lower opening 324a and a second lower opening 324b by rotation operation of the first member.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present invention relates to a hemostatic device. [Background technology]

[0002] One known catheterization procedure involves puncturing a blood vessel in a patient's arm or hand, forming a puncture site, and introducing various types of elongated medical objects into the blood vessel to diagnose or treat the lesion. For example, Patent Document 1 discloses a hemostatic device that stops bleeding at a puncture site formed to enable access to a blood vessel (including the distal radial artery) running through the hand.

[0003] The hemostatic device of Patent Document 1 includes an expansion member that applies pressure to a puncture site formed on the patient's hand, multiple bands that secure the expansion member to the patient's body, and a support member to which the expansion member is connected. In the hemostatic device of Patent Document 1, the expansion member is composed of a balloon that can expand and contract as air or other fluid is injected and discharged. When expanding and contracting the expansion member, a doctor or nurse (hereinafter referred to as the "operator") connects an injection tool such as a syringe to a connector portion (air injection port) attached to the hemostatic device. The operator injects and discharges fluid into and from the expansion member by operating the injection tool connected to the connector portion. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] US Patent Application Publication No. 2019 / 0133602 Summary of the Invention [Problem to be solved by the invention]

[0005] For example, in catheterization procedures, a puncture site may be formed on the patient's right hand or left hand to preserve one of the patient's hands. When starting hemostasis using the hemostatic device described in Patent Document 1, the surgeon places a support member connected to an expansion member so that it overlaps the puncture site formed on either the left or right hand, then connects multiple bands to secure the expansion member to the hand. In the hemostatic device described in Patent Document 1, the connection position of the expansion member on the support member cannot be changed. Therefore, when using the hemostatic device to stop hemostasis at both the puncture site formed on the patient's right hand and the puncture site formed on the patient's left hand, it is difficult to properly position the expansion member at each puncture site.

[0006] For example, one possible solution to the above-mentioned problems is to configure a hemostatic device with multiple expansion members arranged at different positions on a support member. When a hemostatic device is equipped with multiple expansion members, the surgeon can align and position one expansion member when staunching a puncture site formed on a patient's right hand, and align and position the other expansion member when staunching a puncture site formed on the patient's left hand. This allows the hemostatic device to be used on both the left and right hands.

[0007] However, when a hemostatic device is configured with multiple expansion members as described above, it is necessary to attach the same number of connectors to the hemostatic device so that each expansion member can be expanded individually. If multiple connectors are attached to a single hemostatic device, there is a risk that an operator may mistakenly connect an injection device to the connector when attempting to selectively expand one of the multiple expansion members. Furthermore, if multiple connectors are arranged to protrude from the support member, there is a greater risk of the patient's fingers or surrounding objects accidentally coming into contact with the connectors while using the hemostatic device to stop bleeding, thereby reducing usability.

[0008] An object of the present invention is to provide a hemostatic device that can be used with either the left or right hand and has excellent usability, preventing the occurrence of incorrect connection of an injection device. [Means for solving the problem]

[0009] (1) A hemostatic device includes a support member configured to cover a puncture site formed on a patient's hand, a first expansion member connected to the support member and configured to be expandable by injection of a fluid, a second expansion member connected to the support member at a position different from the first expansion member and configured to be expandable by injection of a fluid, a connector portion located on the support member and configured to be able to selectively inject a fluid into one of the first expansion member and the second expansion member, and a fixing member configured to fix the support member to the hand, wherein the connector portion includes a first member and a second member arranged to surround the first member in an airtight state, and the first member includes a valve member and a second member. and a hole portion communicating with the outside of the first member when the first member is open, the second member having an upper opening exposing the valve member of the first member to the outside, a first lower opening communicating with the first expansion member, and a second lower opening communicating with the second expansion member, the first member being positioned inside the second member so that the valve member is exposed from the upper opening and being rotatable relative to the second member, the connector portion being configured so that air can be selectively injected into one of the first expansion member and the second expansion member by rotating the first member to align the position of the hole portion with one of the first lower opening and the second lower opening.

[0010] (2) The hemostatic device according to (1) above, wherein the connector portion is disposed between the first expansion member and the second expansion member in a plan view of the support member.

[0011] (3) A hemostatic device as described in (1) or (2) above, wherein the connector portion has a guide portion that guides the movement of the first member relative to the second member, and the guide portion has a first convex portion or a first concave portion provided on the outer surface of the first member, and a second concave portion provided on the inner surface of the second member into which the first convex portion can be inserted, or a second convex portion that can be inserted into the first concave portion.

[0012] (4) A hemostatic device described in any of (1) to (3) above, wherein the connector portion has an elastic member that supports the first member at a position opposite to the position where the valve member is arranged, and the elastic member is configured to be expandable and contractible along the extension direction of the second member.

[0013] (5) A hemostatic device described in any of (1) to (4) above, wherein the first member has an alignment marker portion that indicates that the hole portion is aligned with the first lower opening or that the hole portion is aligned with the second lower opening.

[0014] (6) A hemostatic device described in any of (1) to (5) above, wherein the connector portion has a sealing member that prevents the air flowing from the hole portion into the first lower opening and the second lower opening from leaking outside the first member, and the sealing member is arranged on at least a portion of the outer surface of the first member and / or the inner surface of the second member. [Effects of the Invention]

[0015] In the hemostatic device of (1) above, when a fluid is injected through the valve member with the hole in the first member and the first lower opening of the second member aligned, the fluid is injected into the first expansion member through the hole and the first lower opening. Furthermore, in the hemostatic device described above, when a fluid is injected through the valve member with the hole in the first member and the second lower opening of the second member aligned, the fluid is injected into the second expansion member through the hole and the second lower opening. Therefore, the hemostatic device described above can selectively expand one of the first expansion member and the second expansion member by injecting a fluid with the hole in the first member aligned with one of the first lower opening of the second member and the second lower opening of the second member. Furthermore, the hemostatic device described above can be used on both left and right hands by selectively positioning the first expansion member or the second expansion member at a puncture site formed on the right hand or the left hand and expanding the first expansion member or the second expansion member. Furthermore, the hemostatic device described above can switch the communication state between the hole of the first member and each expansion member by rotating the first member of the connector portion, eliminating the need for a dedicated connector portion for expanding the first expansion member and a dedicated connector portion for expanding the second expansion member. This eliminates the problem of the surgeon incorrectly connecting an injection device when the hemostatic device has multiple connector portions, and the problem of reduced usability due to unintentional contact with the connector portion by the patient's fingers or surrounding objects, etc., caused by the multiple connector portions being arranged to protrude from the support member. Additionally, because the connector portion is configured such that the first member is located inside the second member, it is difficult to rotate the first member when the injection device is not connected to the first member. This prevents unintentional contact with the patient's fingers or surrounding objects, etc., and rotation of the first member relative to the second member during hemostasis treatment. [Brief explanation of the drawings]

[0016] [Figure 1] FIG. 2 is a view showing a hemostatic device according to an embodiment, and is a plan view seen from the outer surface side of a support member. [Figure 2]FIG. 2 is a view showing a hemostatic device according to an embodiment, and is a plan view seen from the inner surface side of a support member. [Figure 3] FIG. 2 is an enlarged plan view showing a portion of the hemostatic device as viewed from the outer surface side of the support member. [Figure 4] FIG. 2 is an enlarged plan view showing a portion of the hemostatic device as viewed from the inner surface side of the support member. [Figure 5] 5 is a view seen from the direction of arrow 5A shown in FIG. 3. [Figure 6] FIG. 10 is a diagram showing a state when the first expansion member is expanded. [Figure 7] FIG. 10 is a diagram showing the state when the second expansion member is expanded. [Figure 8] FIG. [Figure 9] 9A is a partial cross-sectional view taken along arrows 9A-9A shown in FIG. 8. [Figure 10] FIG. [Figure 11] FIG. 11A is a partial cross-sectional view taken along arrows 11A-11A shown in FIG. [Figure 12] FIG. [Figure 13] FIG. 13 is a partial cross-sectional view taken along arrows 13A-13A shown in FIG. [Figure 14] 1A and 1B are diagrams illustrating a simplified example of use of a hemostatic device according to an embodiment. [Figure 15] 1A and 1B are diagrams illustrating a simplified example of use of a hemostatic device according to an embodiment. [Figure 16] 16A is a partial cross-sectional view taken along arrows 16A-16A in FIG. 15, showing the state when the first expansion member is expanded. FIG. [Figure 17] 1A and 1B are diagrams illustrating a simplified example of use of a hemostatic device according to an embodiment. [Figure 18] 18A is a partial cross-sectional view taken along arrows 18A-18A in FIG. 17, showing the state when the second expansion member is expanded. FIG. [Figure 19] FIG. 10 is a diagram showing a hemostatic device according to a modified example. DETAILED DESCRIPTION OF THE INVENTION

[0017] Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings. The following description does not limit the technical scope or meaning of terms described in the claims. Furthermore, the dimensional proportions in the drawings are exaggerated for the convenience of explanation and may differ from the actual proportions.

[0018] (Embodiment) 1 to 13 are diagrams illustrating a hemostatic device 10 according to this embodiment. Figures 14 to 18 are diagrams illustrating an example of how the hemostatic device 10 is used.

[0019] The hemostatic device 10 can be used, for example, as shown in Figures 15, 16, 17, and 18, to stop bleeding at a puncture site p (hereinafter also referred to as "puncture site p") formed in a hand H located distal (toward the fingers) of a patient's forearm A when removing a sheath tube 710 of an introducer 700 that has been placed at the puncture site p.

[0020] In this embodiment, the puncture site p is exemplified by a first puncture site p1 and a second puncture site p2. The first puncture site p1 is a puncture site formed in artery B1 (hereinafter also referred to as "blood vessel B1"; see FIG. 16) located in the snuff box of the palmar artery running along the back side of the patient's right hand HR, located distal to the patient's forearm A. The second puncture site p2 is a puncture site formed in artery B2 (hereinafter also referred to as "blood vessel B2"; see FIG. 18) located in the snuff box of the palmar artery running along the back side of the patient's left hand HL, located distal to the patient's forearm A. The snuff box is a cavity in the hand located near the radius when the patient spreads the thumb of the hand H.

[0021] <Hemostasis device 10> As shown in Figures 1, 2, 15, 16, 17, and 18, the hemostatic device 10 generally comprises a support member 100 configured to cover the puncture site p, a first expansion member 210 connected to the support member 100 and configured to be expandable by injection of a fluid, a second expansion member 220 connected to the support member 100 at a position different from the first expansion member 210 and configured to be expandable by injection of a fluid, a connector portion 300 located on the support member 100 and configured to selectively inject a fluid into one of the first expansion member 210 and the second expansion member 220, and a fixing member 500 configured to fix the support member 100 to the hand H.

[0022] <Support member 100> As shown in FIGS. 5, 6, and 7, the support member 100 is made up of a plate-like member to which a first expansion member 210 and a second expansion member 220 are connected.

[0023] 5, 6, and 7, the first expansion member 210 and the second expansion member 220 are connected to the inner surface 100a of the support member 100. The inner surface 100a of the support member 100 is the surface that is placed on the body surface side of the patient's hand H when the hemostatic device 10 is attached to the patient's hand H (see FIGS. 16 and 18).

[0024] 5, 6, and 7, part of the upper end of connector portion 300 is disposed on the outer surface 100b side of support member 100, and part of the lower end of connector portion 300 is disposed on the inner surface 100a side of support member 100. Outer surface 100b of support member 100 is the surface located opposite to inner surface 100a.

[0025] As shown in Figures 3 and 4, the planar shape of support member 100 can be formed, for example, into a substantially trapezoidal shape with rounded corners. As shown in Figures 5, 6, and 7, the side shape (cross-sectional shape) along the width direction of support member 100 (left-right direction in Figures 3, 4, and 5) can be formed, for example, into a shape that is gently convexly curved toward substantially the center position c1 of support member 100 in the width direction. Note that the planar shape and cross-sectional shape of support member 100 are not particularly limited as long as they can be positioned to cover puncture site p when hemostatic device 10 is worn on a patient's hand H (see Figures 15 and 17).

[0026] The support member 100 can be made of, for example, a material having a predetermined hardness. Examples of materials that can be used to make the support member 100 include acrylic resin, polyvinyl chloride (particularly hard polyvinyl chloride), polyolefins such as polyethylene, polypropylene, and polybutadiene, polystyrene, poly-(4-methylpentene-1), polycarbonate, ABS resin, polymethyl methacrylate (PMMA), polyacetal, polyacrylate, polyacrylonitrile, polyvinylidene fluoride, ionomer, acrylonitrile-butadiene-styrene copolymer, and polyethylene terephthalate (PET).

[0027] <First expansion member 210> The first expansion member 210 can be configured, for example, by a resin balloon having an internal space 215 into which a fluid such as air can be injected. Fig. 5 shows the first expansion member 210 in an unexpanded state, and Fig. 6 shows the first expansion member 210 in an expanded state.

[0028] 5 and 6, the first expansion member 210 can be configured as a balloon, for example, by fixing the edge of a membrane-like member to the support member 100, thereby defining an internal space 215 into which a fluid can be injected between the balloon and the inner surface 100a of the support member 100. However, there are no particular limitations on the specific structure of the first expansion member 210. The first expansion member 210 can be configured as, for example, a member having a structure in which two membrane-like members are joined together and the internal space 215 is defined between the two membrane-like members, or as a single bag-like member in which the internal space 215 is defined inside.

[0029] 5 and 8 , the first expansion member 210 and the second member 320 are connected by a first tube 410 having an inner cavity. One end of the first tube 410 is constantly in communication with the internal space 215 of the first expansion member 210. The other end of the first tube 410 is constantly in communication with the first lower opening 324a of the second member 320 of the connector portion 300.

[0030] As shown in Figure 6, when the first member 310 of the connector portion 300 of the hemostatic device 10 is rotated so that the hole portion 315 of the first member 310 is aligned with the first lower opening 324a of the second member 320, the internal space 215 of the first expansion member 210 can be connected to the flow path 313 of the first member 310 via the hole portion 315 of the first member 310 and the first tube 410.

[0031] The first extension member 210 can be connected to the inner surface 100a of the support member 100 by, for example, welding or gluing.

[0032] 3 and 4, the first expansion member 210 can be configured to have a substantially trapezoidal shape in a plan view. The planar shape of the first expansion member 210 is not particularly limited as long as it can apply a predetermined compressive force to the puncture site p. There are also no particular limitations on the cross-sectional shape of the first expansion member 210 before and after expansion, the material of which the first expansion member 210 is made, the position at which the first expansion member 210 is disposed in the support member 100, etc.

[0033] 3, 4, 5, 14, and 15, the first expansion member 210 has a marker portion 218 for aligning the first expansion member 210 with the puncture site p. The marker portion 218 can be configured, for example, by printing a predetermined shape and color on the underside of the first expansion member 210 (the surface that is placed facing the body surface of the hand H), or by attaching a sticker that forms the marker portion 218.

[0034] The position of the first expansion member 210 that overlaps in plan view with the position where the marker portion 218 is formed can be formed transparent or semi-transparent. Furthermore, the position of the support member 100 that overlaps in plan view with the position where the marker portion 218 is formed can be formed transparent or semi-transparent. By forming predetermined positions of the first expansion member 210 and predetermined positions of the support member 100 transparent or semi-transparent as described above, the operator can easily visually confirm the position of the marker portion 218 from the outer surface 100b side of the support member 100 when placing the first expansion member 210 at the puncture site p, as shown in FIG. 14 .

[0035] <Second expansion member 220> The second expansion member 220 can be configured, for example, by a resin balloon having an internal space 225 into which a fluid such as air can be injected. Fig. 5 shows the second expansion member 220 in an unexpanded state, and Fig. 7 shows the second expansion member 220 in an expanded state.

[0036] As shown in FIGS. 5 and 7 , the second expansion member 220 can be configured as a balloon, for example, by fixing the edge of a membrane-like member to the support member 100, thereby defining an internal space 225 into which a fluid can be injected between the balloon and the inner surface 100a of the support member 100. However, there are no particular limitations on the specific structure of the second expansion member 220. The second expansion member 220 can be configured as, for example, two membrane-like members joined together, with the internal space 225 defined between the two membrane-like members, or as a single bag-like member with the internal space 225 defined inside. The second expansion member 220 may have the same structure as the first expansion member 210, or may have a different structure from the first expansion member 210.

[0037] 5 and 8 , the second expansion member 220 and the second member 320 are connected by a second tube 420 having an inner cavity. One end of the second tube 420 is constantly in communication with the internal space 225 of the second expansion member 220. The other end of the second tube 420 is constantly in communication with the second lower opening 324b of the second member 320 of the connector portion 300.

[0038] As shown in Figure 7, when the first member 310 of the connector portion 300 of the hemostatic device 10 is rotated so that the hole portion 315 of the first member 310 is aligned with the second lower opening 324b of the second member 320, the internal space 225 of the second expansion member 220 can be connected to the flow path 313 of the first member 310 via the hole portion 315 of the first member 310 and the second tube 420.

[0039] As shown in Figures 4, 5, 6 and 7, the second expansion member 220 can be positioned opposite the first expansion member 210 with the approximate center position c1 of the width direction of the support member 100 sandwiched therebetween.

[0040] The second extension member 220 can be connected to the inner surface 100a of the support member 100 by, for example, welding or gluing.

[0041] As shown in Figures 3 and 4, the second expansion member 220 can be configured to have a substantially trapezoidal shape in a plan view. The planar shape of the second expansion member 220 is not particularly limited as long as it is capable of applying a predetermined compressive force to the puncture site p. There are also no particular limitations on the cross-sectional shape of the second expansion member 220 before and after expansion, the material of which the second expansion member 220 is made, or the position at which the second expansion member 220 is disposed in the support member 100. For example, the second expansion member 220 may have a planar shape and / or cross-sectional shape that is different from that of the first expansion member 210.

[0042] 3, 4, 5, and 17, the second expansion member 220 has a marker part 228 for aligning the second expansion member 220 with the puncture site p. The marker part 228 can be configured, for example, by printing a predetermined shape and color on the underside of the second expansion member 220 (the surface that is placed facing the body surface of the hand H) or by attaching a sticker that forms the marker part 218.

[0043] For the same reasons as those explained above for the marker portion 218 of the first expansion member 210, the position that overlaps in a planar view with the position where the marker portion 228 is formed in the second expansion member 220, and the position that overlaps in a planar view with the position where the marker portion 228 is formed in the support member 100, can be formed to be transparent or translucent.

[0044] The material of the membrane-like members that make up the first expansion member 210 and the second expansion member 220 is not particularly limited, but examples include polyolefins such as polyvinyl chloride, polyethylene, polypropylene, polybutadiene, and ethylene-vinyl acetate copolymer (EVA), polyesters such as polyethylene terephthalate (PET) and polybutylene terephthalate (PBT), various thermoplastic elastomers such as polyvinylidene chloride, silicone, polyurethane, polyamide elastomer, polyurethane elastomer, and polyester elastomer, nylon, nylon elastomer, or any combination of these (blend resins, polymer alloys, laminates, etc.).

[0045] <Connector section 300> 8 to 13 are schematic diagrams illustrating the structure and operation of connector portion 300. Figures 8, 10, and 12 are perspective views showing states before and after aligning hole portion 315 of first member 310 with first lower opening 324a of second member 320. Figures 9, 11, and 13 are partial cross-sectional views taken along arrows 9A-9A, 11A-11A, and 13A-13A in Figures 8, 10, and 12.

[0046] As shown in FIGS. 8, 10 and 12, the connector section 300 includes a first member 310 and a second member 320 disposed so as to surround the first member 310 in an airtight manner.

[0047] The above phrase "surrounding the first member 310 in an airtight state" specifically means "surrounding the first member 310 so as to prevent the fluid passing through the hole 315 of the first member 310 from leaking to the outside through the gap between the first member 310 and the second member 320."

[0048] The first member 310 has a valve member 312 and a hole 315 that communicates with the outside of the first member 310 when the valve member 312 is in an open state.

[0049] Valve member 312 has a configuration that allows connection to the front cylindrical portion of an injection tool 600 such as a syringe. Valve member 312 can be configured, for example, as a check valve that is configured to be switchable from a closed state to an open state when injection tool 600 is connected.

[0050] The first member 310 has a main body 311 having a flow path 313 formed therein through which air can flow. The valve member 312 is held near the upper end of the main body 311. The flow path 313 extends continuously inside the main body 311 from the upper end side where the valve member 312 is disposed toward the hole 315.

[0051] As shown in FIG. 5, in the hemostatic device 10, the hole 315 of the first member 310 is disposed on the inner surface 100a side of the support member 100.

[0052] When valve member 312 of hemostatic device 10 is opened by connecting injection device 600, the inside of the tip tube part of injection device 600 communicates with flow path 313. With the inside of the tip tube part of injection device 600 in communication with flow path 313, the surgeon can inject air into flow path 313 and expel air via flow path 313 by operating injection device 600.

[0053] As shown in Figures 6 and 7, the hemostatic device 10 is configured so that when the injection device 600 is rotated with the tip of the injection device 600 connected to the valve member 312, the first member 310 rotates in conjunction with the rotation of the injection device 600.

[0054] The second member 320 has an upper opening 323 that exposes the valve member 312 of the first member 310 to the outside, a first lower opening 324a that communicates with the first expansion member 210, and a second lower opening 324b that communicates with the second expansion member 220.

[0055] As shown in FIGS. 5, 6, and 7, the upper opening 323 is disposed on the outer surface 100b side of the support member 100.

[0056] The upper opening 323 exposes a portion of the valve member 312 at the upper end side of the second member 320. Therefore, with the hemostatic device 10 attached to the patient's hand H, the surgeon can easily connect the injection device 600 to the valve member 312 from the outer surface 100b side of the support member 100 (see FIGS. 16 and 18).

[0057] As shown in FIGS. 3, 4, and 5, the first lower opening 324a and the second lower opening 324b are disposed at positions facing each other with the approximate center position c1 of the support member 100 in between.

[0058] As shown in Figures 8, 10, and 12, the first member 310 is positioned inside the second member 320 so that the valve member 312 is exposed from the upper opening 323, and is configured to be rotatable relative to the second member 320.

[0059] 8, 10, and 12, a cavity 321 that houses the first member 310 is formed inside the second member 320. The first member 310 is housed in the cavity 321 of the second member 320 with a portion of the main body 311 and a portion of the valve member 312 exposed from an upper opening 323.

[0060] As shown in Figures 6 and 7, the connector portion 300 is configured so that air can be selectively injected into either the first expansion member 210 or the second expansion member 220 by rotating the first member 310 to align the position of the hole portion 315 with either the first lower opening 324a or the second lower opening 324b.

[0061] 8 and 9 show a state in which the hole 315 is not aligned with either the first lower opening 324a or the second lower opening 324b. In this state, the flow path 313 of the first member 310 is not in communication with the expansion members 210, 220. Therefore, the hemostatic device 10 is in a state in which the expansion members 210, 220 cannot be expanded.

[0062] 12 and 13 show a state in which the first member 310 has been rotated from the state shown in Figures 8 and 9 to that shown in Figure 6, aligning the hole 315 with the first lower opening 324a. In this state, the flow path 313 and the first expansion member 210 communicate with each other via the hole 315 and the first lower opening 324a. In the hemostatic device 10, when the flow path 313 and the first expansion member 210 communicate with each other, air is injected from the injection device 600 to expand the first expansion member 210.

[0063] Although not shown, in the hemostatic device 10, the flow path 313 can be communicated with the second expansion member 220 via the hole 315 and the second lower opening 324b by rotating the first member 310 as shown in Fig. 7 and aligning the hole 315 with the second lower opening 324b. In the hemostatic device 10, when the flow path 313 is communicated with the second expansion member 220, air can be injected from the injection device 600 to expand the second expansion member 220.

[0064] As shown in FIGS. 3 and 4, the connector portion 300 is disposed between the first expansion member 210 and the second expansion member 220 when the support member 100 is seen in a plan view.

[0065] In the hemostatic device 10, the connector portion 300 is attached to the support member 100 so that the center position of the connector portion 300 in a plan view overlaps with the center position c1 of the support member 100 in the width direction.

[0066] As shown in FIGS. 8, 10, and 12, the connector section 300 has a guide section 360 that guides the movement of the second member 320 relative to the first member 310.

[0067] The guide portion 360 has a first protrusion 361 provided on the outer surface of the first member 310, and second recesses 362a and 362b provided on the inner surface of the second member 320 and into which the first protrusion 361 can be inserted.

[0068] The first protrusion 361 is disposed at a position closer to the upper end of the first member 310 than the hole 315. The first protrusion 361 protrudes from the outer surface of the first member 310 toward the inner surface of the second member 320.

[0069] The second recess 362a is disposed along the extension direction of the second member 320. The second recess 362a is configured as a concave groove formed on the inner surface of the second member 320.

[0070] The second recess 362b is disposed along the circumferential direction of the second member 320. The second recess 362a is configured as a concave groove formed on the inner surface of the second member 320. The second recess 362a is connected to the second recess 362a near the lower end of the second recess 362a.

[0071] 8, 9, 10, and 11, in the hemostatic device 10, when the hole 315 is not aligned with the lower openings 324a, 324b, the first protrusion 361 is positioned in the second recess 362a. When the first protrusion 361 is positioned in the second recess 362a, the first member 310 can move only along the extension direction of the second recess 362a, i.e., the extension direction of the second member 320. Therefore, in the hemostatic device 10, when the first protrusion 361 is positioned in the second recess 362a, the movement direction of the first member 310 can be restricted only to the up-down direction along the extension direction of the second member 320.

[0072] 10, 11, 12, and 13, in the hemostatic device 10, when the first convex portion 361 moves to near the lower end of the second concave portion 362a, the first convex portion 361 can be moved along the second concave portion 362b. With the first convex portion 361 positioned in the second concave portion 362b, the surgeon can move the first convex portion 361 along the second concave portion 362b, thereby rotating the first member 310, on which the first convex portion 361 is provided, relative to the second member 320.

[0073] The second recess 362b can be arranged, for example, along only a portion of the circumference of the second member 320. By arranging the second recess 362b along only a portion of the circumference of the second member 320, when aligning the hole 315 with each of the lower openings 324a, 324b as shown in Fig. 11, further rotation of the first member 310 from a state in which the hole 315 is aligned with each of the lower openings 324a, 324b can be restricted. The surgeon can easily know that the hole 315 is aligned with each of the lower openings 324a, 324b without visually checking by recognizing, for example, with the sensation of their fingers, that the first protrusion 361 has hit the end of the second recess 362b.

[0074] The guide portion 360 may include a locking mechanism that fixes the first member 310 to the second member 320 when the holes 315 are aligned with the lower openings 324a, 324b.

[0075] Guide portion 360 may be configured, for example, with a first recess provided on the outer surface of first member 310 and a second protrusion provided on the inner surface of second member 320 that can be inserted into the first recess. In other words, the guide portion may have a configuration in which the mechanisms of first protrusion 361 and second recesses 362a, 362b described above are swapped between the first member 310 side and the second member 320 side. Even when configured as described above, guide portion 360 can still fulfill its function of guiding the vertical movement and rotation of first member 310.

[0076] The first member 310 may be formed, for example, so that the upper end portion where the valve member 312 is disposed has a smaller cross-sectional area (outer diameter) than the lower end portion where the hole 315 is disposed. When the first member 310 is configured in this manner, the hemostatic device 10 has a smaller contact area between the outer surface of the first member 310 and the inner surface of the second member 320. Therefore, the hemostatic device 10 allows the first member 310 to rotate smoothly.

[0077] As shown in Figures 8, 10, and 12, the connector part 300 has an elastic member 350 that supports the first member 310 at a position opposite to the position where the valve member 312 is arranged (a position on the lower end side of the first member 310).

[0078] The elastic member 350 is configured to be stretchable along the direction in which the second member 320 extends.

[0079] 8, the elastic member 350 is disposed on the inner surface 100a side of the support member 100. The elastic member 350 is connected to the lower end surface of the second member 320.

[0080] 8, the hemostatic device 10 maintains the elastic member 350 in an uncompressed state when no force is applied to the first member 310 that would press the first member 310 down toward the elastic member 350. When the elastic member 350 is in an uncompressed state, the hemostatic device 10 maintains the valve member 312 of the first member 310 in an exposed state from the upper opening 323 of the second member 320.

[0081] 10 , when a force is applied to the first member 310 of the hemostatic device 10 that presses the first member 310 downward toward the elastic member 350, the elastic member 350 contracts in the extension direction of the second member 320. As a result, the first member 310, supported by the elastic member 350, of the hemostatic device 10 is pushed into the inner cavity 321 of the second member 320 along the extension direction of the second member 320. When the first member 310 of the hemostatic device 10 is pushed into the inner cavity 321 of the second member 320, the hole 315 of the first member 310 and the lower openings 324a, 324b of the second member 320 are aligned in the extension direction of the second member 320. The surgeon can selectively align the hole 315 with either the first lower opening 324a or the second lower opening 324b by rotating the first member 310 while the hole 315 of the first member 310 is aligned with each of the lower openings 324a, 324b of the second member 320 in the extension direction of the second member 320.

[0082] In hemostatic device 10, when the tip tubular portion of injection device 600 is connected to valve member 312, elastic member 350 is pressed down toward the body surface of the patient's hand H by first member 310, so that elastic member 350 comes into contact with the body surface of the patient's hand H. At this time, elastic member 350 functions as a buffer member, so that the pain felt by the patient when connecting the tip tubular portion of injection device 600 to valve member 312 can be reduced. Furthermore, because elastic member 350 functions as a buffer member as described above, it is possible to prevent support member 100 from being displaced by the impact generated when connecting the tip tubular portion of injection device 600 to valve member 312.

[0083] The elastic member 350 can be made of, for example, a resin material having a predetermined elasticity, etc. However, the specific structure and material of the elastic member 350 are not particularly limited.

[0084] As shown in Figures 3, 8, 10 and 12, the first member 310 has an alignment marker 317 that indicates whether the hole 315 is aligned with the first lower opening 324a or whether the hole 315 is aligned with the second lower opening 324b.

[0085] The alignment marker portion 317 can be arranged, for example, on any portion of the first member 310 that is exposed from the upper opening 323. In the hemostatic device 10, the alignment marker portion 317 is arranged on the upper surface portion of the main body portion 311 of the first member 310 that is exposed from the upper opening 323.

[0086] The alignment marker portions 317 are arranged at positions corresponding to the positions of the holes 315 in the circumferential direction of the first member 310. The alignment marker portions 317 can be configured, for example, in a triangular or arrow shape tapering outward from the center of the first member 310 in a plan view.

[0087] The alignment marker portion 317 can be configured by, for example, printing on the upper end surface of the first member 310 or by attaching a sticker that forms the alignment marker portion 317.

[0088] The alignment marker portion 317 may be configured as an arrow-shaped marker formed on the entire upper surface of the connector portion 300 including the first member 310 and the second member 320, for example.

[0089] As shown in Figures 8, 10, and 12, the connector part 300 has a sealing member 370 that prevents air flowing from the hole part 315 into the first lower opening 324a and the second lower opening 324b from leaking out to the outside of the connector part 300.

[0090] The seal member 370 can be disposed on at least a portion of the outer surface of the first member 310 and the inner surface of the second member 320. The seal member 370 is made of a rubber seal member disposed on the outer surface of the first member 310. The seal member 370 is disposed so as to surround the periphery of the hole 315.

[0091] 12 , when hole 315 is aligned with first lower opening 324a or second lower opening 324b, seal member 370 abuts against the inner surface of second member 320. Hole 315 and first lower opening 324a or second lower opening 324b are in communication with each other with their peripheries surrounded by seal member 370. Therefore, first member 310 can more reliably prevent air that flows from hole 315 through flow path 313 of first member 310 into each lower opening 324a, 324b from leaking out around hole 315 and further passing between first member 310 and second member 320 to the outside of connector unit 300.

[0092] Note that there are no particular limitations on the specific material or structure of sealing member 370, as long as it can prevent air flowing into first lower opening 324a or second lower opening 324b from leaking out of first member 310. For example, sealing member 370 can be made of silicone or the like. Furthermore, sealing member 370 may be configured, for example, to cover the periphery of each lower opening 324a, 324b of second member 320, or to be positioned above first protrusion 361 of first member 310 to prevent air from leaking out toward upper opening 323 of second member 320.

[0093] <Fixing member 500> As shown in FIGS. 1 and 2, the fixing member 500 has a first band 510 connected to the support member 100, a second band 520, and a third band 530.

[0094] One end of the first band 510, located on the support member 100 side, is connected to the outer surface 100b of the support member 100. As shown in FIG. 2, a first fixing portion 551 is arranged on the inner surface of the first band 510.

[0095] 14 and 15, when the hemostatic device 10 is worn on the patient's right hand HR, the first band 510 can be placed in the inter-finger space fb1 between the thumb and index finger of the right hand HR. Also, when the hemostatic device 10 is worn on the patient's left hand HL, the first band 510 can be placed in the inter-finger space fb2 between the thumb and index finger of the left hand HL, as shown in FIG.

[0096] One end of the second band 520, located on the support member 100 side, is connected to the outer surface 100b of the support member 100. The second band 520 extends in a direction different from the direction in which the first band 510 extends from the support member 100. As shown in FIG. 1, a second fixing portion 552 is located on the outer surface of the second band 520. As shown in FIG. 2, a third fixing portion 553 is located on the inner surface of the second band 520.

[0097] The third band 530 has one end located on the support member 100 side connected to the outer surface 100b of the support member 100. The third band 530 extends from the support member 100 in a direction different from the directions in which the first band 510 and the second band 520 extend. As shown in FIG. 1 , a fourth fixing portion 554 is located on the outer surface of the third band 530.

[0098] 14 and 15, when the hemostatic device 10 is worn on the patient's right hand HR, the second band 520 and the third band 530 can be arranged to wrap around the patient's right hand HR. Also, when the hemostatic device 10 is worn on the patient's left hand HL, the second band 520 and the third band 530 can be arranged to wrap around the patient's left hand HL.

[0099] A third fixing portion 553 arranged on the inner surface of the second band 520 can be connected to a fourth fixing portion 554 arranged on the outer surface of the third band 530. As shown in Figures 15 and 17, the surgeon can secure the second band 520 and the third band 530 to the patient's right hand HR or left hand HL by connecting the third fixing portion 553 and the fourth fixing portion 554 while wrapping the second band 520 and the third band 530 around the patient's right hand HR or left hand HL.

[0100] A first fixing portion 551 arranged on the inner surface of the first band 510 can be connected to a second fixing portion 552 arranged on the outer surface of the second band 520. As shown in Figures 15 and 17, the surgeon can fix the first band 510, together with the second band 520 and third band 530, to the patient's right hand HR or left hand HL by connecting the first fixing portion 551 arranged on the inner surface of the first band 510, which is arranged in the inter-finger portion fb1 of the right hand HR or the inter-finger portion fb2 of the left hand HL, to the second fixing portion 552 arranged on the outer surface of the second band 520.

[0101] The material of each of the bands 510, 520, 530 is not particularly limited, but may be made of, for example, vinyl chloride resin, polyurethane resin, polyester resin, or the like.

[0102] Each of the fixing sites 551, 552, 553, and 554 can be configured, for example, with the male or female side of a hook-and-loop fastener. The hook-and-loop fastener referred to here is a fastener that can be attached and detached from the surface, such as Magic Tape (registered trademark) or Velcro (registered trademark). The specific structure of each of the fixing sites 551, 552, 553, and 554 is not limited as long as the bands 510, 520, and 530 can be connected to each other with the hemostatic device 10 placed on the patient's hand H, thereby fixing the support member 100 in a state where it is placed over the puncture site p.

[0103] <Example of use of hemostatic device 10> Next, an example of how the hemostatic device 10 is used will be described with reference to FIGS.

[0104] The usage examples illustrate the procedure for using the hemostatic device 10 to stop bleeding at a first puncture site p1 formed in a patient's right hand HR using a first expansion member 210, as shown in Figures 14, 15, and 16, and the procedure for using the hemostatic device 10 to stop bleeding at a second puncture site p2 formed in a patient's left hand HL using a second expansion member 220, as shown in Figures 17 and 18.

[0105] FIG. 14 shows a state in which the sheath tube 710 of the introducer 700 has been inserted into the first puncture site p1 formed in the patient's right hand HR and various procedures have been performed.

[0106] When starting to stop bleeding at the first puncture site p1, the surgeon positions the support member 100 so as to cover the first puncture site p1. The surgeon can properly position the first expansion member 210 at the first puncture site p1 by positioning the marker portion 218 at the first puncture site p1 while visually checking the position of the marker portion 218 positioned on the first expansion member 210.

[0107] As shown in FIG. 15, the surgeon fastens the first band 510, the second band 520, and the third band 530 to the patient's right hand HR.

[0108] With each band 510, 520, 530 fixed to the patient's right hand HR, the surgeon connects the front tubular portion of the injection tool 600 to the valve member 312 of the first member 310. With the front tubular portion of the injection tool 600 connected to the valve member 312 of the first member 310, the surgeon aligns the hole 315 of the first member 310 with the first lower opening 324a of the second member 320 by pushing or rotating the injection tool 600 toward the support member 100 (see FIGS. 10 and 12).

[0109] 16 , the surgeon operates the injection device 600 while aligning the hole 315 of the first member 310 with the first lower opening 324a of the second member 320, and injects air from the injection device 600 into the flow path 313 of the first member 310. The hemostatic device 10 injects the air injected from the injection device 600 into the flow path 313 of the first member 310 through the hole 315, the first lower opening 324a, and the first tube 410 into the internal space 215 of the first expansion member 210. When the first expansion member 210 expands, the first expansion member 210 applies a compressive force to the first puncture site p1.

[0110] When the surgeon wishes to reduce the compression force applied by the first expansion member 210 to the first puncture site p1, he or she can operate the injection device 600 to expel the air injected into the internal space 215 of the first expansion member 210 to the outside of the connector portion 300 through the first tube 410, the first lower opening 324a, the hole portion 315, and the flow path 313.

[0111] Through the above procedure, the surgeon can stop bleeding at the first puncture site p1 formed in the patient's right hand HR using the first expansion member 210.

[0112] 17 and 18, when the surgeon uses the second expansion member 220 to stop bleeding at a second puncture site p2 formed on a patient's left hand HL, the surgeon places the second expansion member 220 at the second puncture site p2. The surgeon also secures the first band 510, the second band 520, and the third band 530 to the patient's left hand HL.

[0113] As shown in Figures 7 and 18, the surgeon connects the front tube portion of the injection device 600 to the valve member 312 of the first member 310, and then pushes or rotates the injection device 600 toward the support member 100 to align the hole portion 315 of the first member 310 with the second lower opening 324b of the second member 320.

[0114] The surgeon operates the injection device 600 while aligning the hole 315 of the first member 310 with the second lower opening 324b of the second member 320, and injects air from the injection device 600 into the flow path 313 of the first member 310. The hemostatic device 10 injects the air injected from the injection device 600 into the flow path 313 of the first member 310 into the internal space 225 of the second expansion member 220 via the hole 315, the second lower opening 324b, and the second tube 420. When the second expansion member 220 expands, the second expansion member 220 applies a compressive force to the second puncture site p2.

[0115] Through the above procedure, the surgeon can use the second expansion member 220 to stop bleeding at the second puncture site p2 formed in the patient's right hand HR.

[0116] The hemostatic device 10 includes multiple expansion members 210, 220 arranged at different positions in the width direction of the support member 100. Therefore, when stopping bleeding at a first puncture site p1 formed on the patient's right hand HR, the first expansion member 210 can be used to properly stop bleeding. Furthermore, when stopping bleeding at a second puncture site p2 formed on the patient's left hand HL, the hemostatic device 10 can properly stop bleeding using the second expansion member 220.

[0117] When starting hemostasis using the hemostatic device 10, the surgeon may inflate one of the expansion members 210, 220 that will not be used to stop hemostasis at the puncture site p by injecting a predetermined amount of air into it. For example, if the expansion member is composed of a balloon structure consisting of two sheet-like members joined together, the edge of the sheet-like member that will not be used to stop hemostasis may dig into the skin, causing pain to the patient. Specifically, when the expansion members 210, 220 are composed of two sheet-like members, the sheet-like members are expected to be joined together by fusion. In this case, the fused portions of the expansion members 210, 220 are harder than the other portions, and contact with the skin of such portions may cause pain to the patient. In such cases, by appropriately expanding the expansion member that will not be used to stop hemostasis at the puncture site p before starting hemostasis as described above, pain to the patient caused by contact with the edge of the sheet-like member can be prevented. Furthermore, even when each expansion member is made of a single sheet of material (for example, when the edge of a sheet-like member is fixed to a support member as shown in Figures 5, 6, and 7), if the material is thick, the hardness of the material will also increase in some areas, and it is possible that the patient may experience pain or discomfort when the edge of each expansion member comes into contact with the skin. In particular, unexpanded expansion members may be in a folded state when attached to the patient's hand H, and the partially hardened portions of the unexpanded expansion members may cause pain when pressed against the skin. Therefore, by appropriately expanding the expansion member that is not used to stop bleeding at the puncture site p before starting hemostasis as described above, it is possible to prevent the patient from experiencing pain when the edge of the sheet-like member or the folded portions of the unexpanded expansion member come into contact with the patient's skin. Furthermore, with respect to members other than the expansion members 210, 220 of the hemostatic device 10, for example, the support member 100, the end of the support member 100 in the width direction that is the expansion member side that is not used to stop bleeding at the puncture site p is positioned near the skin. Therefore, with the hemostatic device 10, the end of the support member 100 in the width direction that is the expansion member side that is not used to stop bleeding at the puncture site p may come into contact with the skin, possibly causing pain to the patient.Even in such a case, by appropriately expanding the expansion member that is not used to stop bleeding at the puncture site p before starting to stop bleeding as described above, it is possible to prevent the patient from feeling pain due to contact with the widthwise end of the support member 100.

[0118] The hemostatic device 10 includes a single connector 300 as a mechanism for controlling the expansion and contraction of each of the expansion members 210, 220. Therefore, even when the hemostatic device 10 is used to stop bleeding at a first puncture site p1 formed on a patient's right hand HR and a second puncture site p2 formed on a patient's left hand HL, the injection device 600 can be appropriately and easily connected to the single connector 300. This prevents improper connection of the injection device 600 to the wrong connector. Furthermore, because the hemostatic device 10 has a structure in which only a single connector 300 is attached, the connector 300 can be prevented from accidentally touching the patient's fingers or coming into contact with surrounding objects when the hemostatic device 10 is attached to the patient's right hand HR or left hand HL.

[0119] The connector portion 300 of the hemostatic device 10 is configured so that the first member 310 is located inside the second member 320. Therefore, the surgeon must perform operations to push or rotate the injection device 600 toward the support member 100 while the injection device 600 is connected to the first member 310. Therefore, the hemostatic device 10 can prevent the first member 310 from rotating relative to the second member 320 due to unintentional contact with the patient's fingers or surrounding objects during hemostasis treatment.

[0120] As described above, the hemostatic device 10 according to this embodiment comprises a support member 100 configured to cover a puncture site p formed on a patient's hand H, a first expansion member 210 connected to the support member 100 and configured to be expandable by injection of a fluid, a second expansion member 220 connected to the support member 100 at a position different from the first expansion member 210 and configured to be expandable by injection of a fluid, a connector unit 300 located on the support member 100 and configured to selectively inject a fluid into one of the first expansion member 210 and the second expansion member 220, and a fixing member 500 configured to fix the support member 100 to the hand H. The connector unit 300 comprises a first member 310 and a second member 320 disposed to surround the first member 310 in an airtight manner. The first member 310 comprises a valve member 312 and a hole 315 that communicates with the outside of the first member 310 when the valve member 312 is open. The second member 320 has an upper opening 323 that exposes the valve member 312 of the first member 310 to the outside, a first lower opening 324a that communicates with the first expansion member 210, and a second lower opening 324b that communicates with the second expansion member 220. The first member 310 is positioned inside the second member 320 so that the valve member 312 is exposed from the upper opening 323, and is configured to be rotatable relative to the second member 320. The connector unit 300 is configured to be able to selectively inject air into one of the first expansion member 210 and the second expansion member 220 by rotating the first member 310 to align the position of the hole 315 with one of the first lower opening 324a and the second lower opening 324b.

[0121] In the hemostatic device 10 configured as described above, when air is injected through the valve member 312 with the hole 315 of the first member 310 and the first lower opening 324a of the second member 320 aligned, the air is injected into the first expansion member 210 through the hole 315 and the first lower opening 324a. Furthermore, in the hemostatic device 10 configured as described above, when air is injected through the valve member 312 with the hole 315 of the first member 310 and the second lower opening 324b of the second member 320 aligned, the air is injected into the second expansion member 220 through the hole 315 and the second lower opening 324b. In the hemostatic device 10, when air is injected with the hole 315 of the first member 310 aligned with one of the first lower opening 324a of the second member 320 and the second lower opening 324b of the second member 320 as described above, the first expansion member 210 or the second expansion member 220 can be selectively expanded by injecting air. Furthermore, the surgeon can selectively place the first expansion member 210 or the second expansion member 220 at a first puncture site p1 formed on the right hand HR or a second puncture site p2 formed on the left hand HL, and then expand the first expansion member 210 or the second expansion member 220 to stop bleeding at each puncture site p1, p2 formed on either the left or right hand H. Therefore, the hemostatic device 10 can be used for both the left and right hands H. Furthermore, the hemostatic device 10 can switch the communication state between the hole 315 of the first member 310 and each of the expansion members 210, 220 by operating the rotation of the first member 310 of the connector portion 300, so there is no need to provide a connector portion dedicated to expanding the first expansion member 210 and a connector portion dedicated to expanding the second expansion member 220. Therefore, hemostatic device 10 can prevent problems such as an operator mistakenly connecting injection device 600 to the wrong connector when hemostatic device 10 is provided with multiple connectors, and can prevent a decrease in usability caused by unintentional contact of the patient's fingers or surrounding objects with connector 300 due to multiple connectors being arranged to protrude from support member 100. In addition, connector 300 is configured such that first member 310 is located inside second member 320, making it difficult to rotate first member 310 when injection device 600 is not connected to first member 310.Therefore, during hemostasis treatment, the patient's fingers or surrounding objects can be prevented from unintentionally coming into contact with the first member 310 of the connector section 300, and the first member 310 can be prevented from rotating relative to the second member 320.

[0122] Furthermore, the connector portion 300 is disposed between the first expansion member 210 and the second expansion member 220 when the support member 100 is seen in a plan view.

[0123] As described above, in the hemostatic device 10, the connector portion 300 is disposed between the first expansion member 210 and the second expansion member 220 in a plan view of the support member 100, and therefore, when placing each expansion member 210, 220 at the puncture site p, it is possible to prevent the connector portion 300 from obscuring the puncture site p from being visually confirmed. This allows the surgeon to appropriately place each expansion member 210, 220 at the puncture site p.

[0124] The connector unit 300 also has a guide unit 360 that guides the movement of the first member 310 relative to the second member 320. The guide unit 360 has a first convex portion 361 provided on the outer surface of the first member 310, and second concave portions 362a, 362b provided on the inner surface of the second member 320 and into which the first convex portion 361 can be inserted.

[0125] In hemostatic device 10, connector portion 300 has guide portion 360 configured as described above, so that when first member 310 is rotated relative to second member 320 or when first member 310 is moved along the extension direction of second member 320, guide portion 360 can guide the movement of first member 310. Therefore, even when connector portion 300 is configured so that the inside of connector portion 300 cannot be visually confirmed from the outside, the surgeon can easily operate the movement of first member 310.

[0126] The connector section 300 also has an elastic member 350 that supports the first member 310 at a position opposite to the position where the valve member 312 is disposed. The elastic member 350 is configured to be expandable and contractible along the extension direction of the second member 320.

[0127] In hemostatic device 10, connector portion 300 has elastic member 350 configured as described above, and therefore elastic member 350 comes into contact with the body surface of the patient's hand H when connecting the tip cylindrical portion of injection device 600 to valve member 312, and elastic member 350 functions as a buffer member. Therefore, hemostatic device 10 can reduce the pain felt by the patient when connecting the tip cylindrical portion of injection device 600 to valve member 312. Furthermore, in hemostatic device 10, elastic member 350 functions as a buffer member as described above, and therefore support member 100 can be prevented from shifting position due to the impact generated when connecting the tip cylindrical portion of injection device 600 to valve member 312.

[0128] The first member 310 also has an alignment marker 317 that indicates whether the hole 315 is aligned with the first lower opening 324a or whether the hole 315 is aligned with the second lower opening 324b.

[0129] In the hemostatic device 10, the first member 310 has the alignment marker portion 317 as described above, so the surgeon can easily determine whether the hole portion 315 and each lower opening 324a, 324b are aligned by visually checking the first member 310.

[0130] The connector unit 300 also has a seal member 370 that prevents air flowing from the hole 315 into the first lower opening 324a and the second lower opening 324b from leaking out of the connector unit 300. The seal member 370 is disposed on the outer surface of the first member 310 and / or the inner surface of the second member 320.

[0131] Because the connector portion 300 of the hemostatic device 10 has the sealing member 370 as described above, when air is injected into each expansion member 210, 220 through the hole portion 315 and each lower opening 324a, 324b, air can be more reliably prevented from leaking out of the first member 310 and further from passing between the first member 310 and the second member 320 to the outside of the connector portion 300.

[0132] Next, modified examples of the hemostatic device according to the present invention will be described. In the description of the modified examples, explanations of the components and the procedure for using the hemostatic device already explained in the description of the above-mentioned embodiment will be omitted as appropriate. Furthermore, content not specifically explained in each modified example can be the same as the above-mentioned embodiment.

[0133] (Variation) Fig. 19 shows a side view of a hemostatic device according to a modified example. Fig. 19 is a view corresponding to Fig. 6 of the embodiment described above. Fig. 19 shows a state in which the first expansion member 210 is expanded.

[0134] In the hemostatic device according to the modified example, the entire connector portion 300A is disposed on the outer surface 100b side of the support member 100.

[0135] Buried inside the second member 320 are the first member 310, an elastic member 350 that supports the first member 310, a first tube 410A that connects the internal space 215 of the first expansion member 210 with the first lower opening 324a of the second member 320, and a second tube 420A that connects the internal space 225 of the second expansion member 220 with the second lower opening 324b of the second member 320. A portion of the first tube 410A and a portion of the second tube 420A extend so as to penetrate the inside of the support member 100 in the thickness direction.

[0136] The first lower opening 324a and the second lower opening 324b are arranged on a side surface (inner side surface) of the second member 320 that faces the outer peripheral surface of the first member 310 so that they can be aligned with the hole portion 315.

[0137] In the hemostatic device according to the modified example, the first tube and the second tube may be disposed outside the connector portion rather than being embedded inside the connector portion. In such a configuration, the first tube and the second tube may be disposed so as to extend from the outer surface side of the support member toward the inner surface side of the support member.

[0138] As in the above-described embodiment, the hemostatic device of the modified example can selectively expand the first expansion member 210 and the second expansion member 220 by rotating the first member 310 and selectively aligning the hole portion 315 of the first member 310 with either the first lower opening 324a of the second member 320 or the second lower opening 324b of the second member 320.

[0139] The arrangement of the connector portion and each tube is not limited to the configurations described in the embodiment and modified examples. For example, the connector portion may be configured so that the hole of the first member is located on the outer surface side of the support member, and a structural part (e.g., an elastic member) located closer to the lower end of the connector portion than the hole of the first member penetrates the support member and is arranged from the outer surface side to the inner surface side of the support member. In this configuration, the first tube and the second tube can be arranged to lead out of the connector portion and extend from the outer surface side of the support member toward the inner surface side of the support member.

[0140] The hemostatic device according to the present invention has been described above through embodiments and modified examples, but the present invention is not limited to the content described in the specification and can be modified as appropriate based on the description of the claims. [Explanation of symbols]

[0141] 10 Hemostatic devices 100 support member 100a inner surface of support member 100b outer surface of support member 210 First expansion member 220 Second expansion member 300 Connector part 310 First member 311 Main body of first member 312 Valve member 313 Flow path 315 Hole 317 Alignment marker part 320 Second member 321 Lumen of second member 323 Upper opening 324a 1st lower opening 324b 2nd lower opening 350 Elastic member 360 Guide section 361 First convex part 362a Second recess 362b Second recess 370 Sealing material 410 1st Tube 410A 1st tube 420 2nd Tube 420A Second Tube 500 Fixing member 510 First Band 520 Second Band 530 Third Band 600 Injection equipment 700 Introducer A. Forearm B1 Blood vessels (arteries) B2 Blood vessels (arteries) H hand HL left hand HR right hand p Puncture site p1 1st puncture site p2 2nd puncture site

Claims

1. a support member configured to cover a puncture site formed on the patient's hand; a first expansion member connected to the support member and configured to be expandable by injection of a fluid; a second expansion member connected to the support member at a position different from that of the first expansion member and configured to be expandable by injection of a fluid; a connector portion located on the support member and configured to be able to selectively inject a fluid into one of the first expansion member and the second expansion member; a securing member configured to secure the support member to the hand, the connector portion includes a first member and a second member disposed to surround the first member in an airtight manner, the first member has a valve member and a hole portion that communicates with the outside of the first member when the valve member is in an open state, the second member has an upper opening that exposes the valve member of the first member to the outside, a first lower opening that communicates with the first expansion member, and a second lower opening that communicates with the second expansion member, the first member is positioned inside the second member so that the valve member is exposed from the upper opening, and is configured to be rotatable relative to the second member; The connector portion is configured to be able to selectively inject air into one of the first expansion member and the second expansion member by rotating the first member to align the position of the hole portion with one of the first lower opening and the second lower opening.

2. The hemostatic device according to claim 1 , wherein the connector portion is disposed between the first expansion member and the second expansion member in a plan view of the support member.

3. the connector portion has a guide portion that guides movement of the first member relative to the second member, 2. The hemostatic device according to claim 1, wherein the guide portion has a first convex portion or a first concave portion provided on the outer surface of the first member, and a second concave portion provided on the inner surface of the second member and into which the first convex portion can be inserted, or a second convex portion that can be inserted into the first concave portion.

4. the connector portion has an elastic member that supports the first member at a position opposite to a position where the valve member is disposed, The hemostatic device according to claim 1 , wherein the elastic member is configured to be expandable and contractible along an extending direction of the second member.

5. The hemostatic device of claim 1 , wherein the first member has an alignment marker portion that indicates that the hole portion is aligned with the first lower opening or that the hole portion is aligned with the second lower opening.

6. the connector portion has a seal member that prevents the air that flows from the hole portion into the first lower opening and the second lower opening from leaking out of the connector portion, The hemostatic device according to claim 1 , wherein the sealing member is disposed on at least a portion of an outer surface of the first member and / or an inner surface of the second member.

Citation Information

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