hemostatic instruments
The hemostatic device addresses flexibility and positioning issues by using adjustable bands connected via non-linear holes, ensuring stable hemostasis and hand mobility across different puncture sites.
Patent Information
- Application Number
- JP2022544028
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-21
- Filing Date
- 2021-08-20
- Publication Date
- 2026-01-28
- Estimated Expiration
- 2041-08-20
AI Technical Summary
Existing hemostatic devices are inflexible in positioning the wrapping band, leading to restricted hand movement and potential slippage when used at different puncture sites on a patient's hand, limiting their effectiveness in stopping bleeding.
A hemostatic device with a pressing member and multiple bands that can be connected to a support member via holes of varying sizes and shapes, allowing the bands to be positioned at different angles radially around the pressing portion, enabling adjustable attachment to the patient's hand without restricting movement.
The device allows for stable and effective hemostasis at various puncture sites by accommodating anatomical variations, preventing band slippage and maintaining hand mobility.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a hemostatic device. [Background technology]
[0002] One known catheterization technique 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 perform treatment or therapy on the lesion site. 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 a pressing member with a balloon that applies pressure to a puncture site formed on a patient's hand, and multiple bands for fixing the pressing member to the patient's hand. The multiple bands also include a wrapping band that is placed so as to wrap around the outer periphery of the hand, and a finger loop band that is placed in the interdigital region between adjacent fingers of the hand. [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] When a surgeon such as a doctor (hereinafter referred to as "the surgeon") uses the hemostatic device of Patent Document 1 to stop bleeding at a puncture site formed on a patient's hand, the surgeon wraps the wrapping band around the outer periphery of the hand and also places the finger loop band in the interdigital space between the thumb and index finger. By using the bands to fix the hemostatic device with the pressing members positioned at the puncture site formed on the patient's hand and its surrounding area, the surgeon can prevent the pressing members from shifting from the puncture site formed on the patient's hand.
[0006] However, the hemostatic device described in Patent Document 1 may have the following problems.
[0007] Because the positions of blood vessels running through the hand vary from patient to patient and because there are differences in physical size from patient to patient, the surgeon may create a puncture site at a different position on the patient's hand for each procedure. For example, the surgeon may create a puncture site in the anatomical snuff box located on the back of the hand, or in a position more distal to the snuff box (closer to the fingertips than the snuff box).
[0008] The hemostatic device of Patent Document 1 is not intended to be used simultaneously for puncture sites formed in different positions on the hand. Therefore, the connection position where the wrapping band and the pressing member are connected is fixed. Therefore, the hemostatic device of Patent Document 1 has limited flexibility in the position where the wrapping band is attached to the hand.
[0009] When the hemostatic device of Patent Document 1 is used to stop bleeding at puncture sites formed in different positions on the hand, when stopping bleeding at one puncture site (e.g., a puncture site formed in a snuff box), it is considered possible to position the wrapping band at an appropriate position on the patient's hand so as not to interfere with the patient's hand movements, etc. On the other hand, when the hemostatic device of Patent Document 1 is used to stop bleeding at another puncture site (e.g., a puncture site formed in a position more distal to the snuff box), the wrapping band ends up being wrapped at a position where it is not originally intended to be worn (e.g., a position closer to the distal side of the hand than the snuff box). If the wrapping band is wrapped at a position closer to the distal side of the hand than the snuff box, the wrapping band restricts hand movement. If the patient moves their hand, such as spreading their hand, while wearing the wrapping band as described above, the wrapping band will slip off the hand. If the wrapping band slips off the hand, the pressing member connected to the wrapping band will slip off the puncture site formed on the hand. Therefore, the hemostatic device of Patent Document 1 has difficulty in appropriately and stably stopping bleeding at a puncture site formed on the hand.
[0010] In view of the above problems, the present invention aims to provide a hemostatic device that can prevent the movement of the patient's hand from being restricted when a pressing member is placed at a puncture site formed on the patient's hand, and that can be easily attached to the patient's hand. [Means for solving the problem]
[0011] A hemostatic device according to the present invention comprises a pressing member configured to apply pressure to a puncture site formed in a patient, a first band configured to be connectable to the pressing member, a second band configured to be connectable to the pressing member, and a third band configured to be connectable to the pressing member, wherein the pressing member has a pressing portion configured to apply pressure to the puncture site and a support member configured to fix the pressing portion, and the support member has a first region in which the pressing portion is located and a second region located outside the first region and configured to be connectable to the first band, the second band, and the third band, wherein the first band, the second band, and the third band are configured to be connectable to a plurality of holes provided in the second region, at least two of the plurality of holes being larger than the width of the band and configured in a non-linear shape so that any of the first band, the second band, and the third band connected to the hole can be positioned at different angles radially around the pressing portion in the first region. the plurality of holes include a pair of first holes facing each other with the pressing portion therebetween, and a pair of second holes facing each other at a position different from the first holes with the pressing portion therebetween, the first holes and the second holes being arranged on an imaginary circle along the outer shape of the support member, the first band, the second band, and the third band are each arranged in a different hole of either the first hole or the second hole, the pair of first holes having one first hole and the other first hole arranged at a position distal to the patient's hand or at a position proximal to the patient's hand with the pressing portion therebetween, and the pair of second holes are arranged at a position proximal to the patient's hand with the pressing portion therebetween, The device has one second hole portion and another second hole portion arranged with the pressing portion sandwiched between them in a direction intersecting a straight line connecting the first hole portion and the other first hole portion, the first band is connected to the one first hole portion or the other first hole portion, the second band is connected to the one second hole portion in a slidable state, and the third band is connected to the other second hole portion in a slidable state, the hole length of each of the pair of second hole portions is longer than the hole length of each of the pair of first hole portions, and the width of a first end portion of the first band connected to the one first hole portion or the other first hole portion is approximately the same as the hole length of the one first hole portion and the other first hole portion. [Effects of the Invention]
[0012] In the hemostatic device of the present invention, at least two of the multiple holes are larger than the width of the band and have a non-linear shape so that the bands connected to those holes can be positioned at different angles radially around the pressing portion in the first region. Therefore, while placing the pressing member at a puncture site on the patient's hand, the bands connected to the two holes can be moved radially around the pressing portion, adjusting the angle and position of the two bands relative to the patient's hand. This allows the two bands to be positioned on the patient's hand without restricting hand movement, and the hemostatic device can be easily worn by the patient. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 2 is a diagram showing a hemostatic device according to an embodiment, and is a plan view of each band viewed from the outer surface side. [Figure 2] FIG. 2 is a diagram showing a hemostatic device according to an embodiment, and is a plan view seen from the inner surface side of each band. [Figure 3] FIG. 10 is an enlarged plan view of a portion of the hemostatic device as viewed from the outer surface side of each band. [Figure 4] FIG. 10 is an enlarged plan view of a portion of the hemostatic device as viewed from the inner surface side of each band. [Figure 5] FIG. 10 is an enlarged plan view of a portion of the hemostatic device as viewed from the inner surface side of each band. [Figure 6] 6A is a cross-sectional view of the hemostatic device taken along arrows 6A-6A in FIG. 5, showing the state when the expansion member is expanded. FIG. [Figure 7] 7A is a cross-sectional view of the hemostatic device taken along arrows 7A-7A in FIG. 5, showing the state when the expansion member is expanded. FIG. [Figure 8] FIG. 10 is a plan view of the hemostatic device as seen from the outer surface side of each band, showing the state before and after the second and third bands connected to the pressing member are slid. [Figure 9] FIG. 4 is a perspective view showing a support member provided in the pressing member. [Figure 10]FIG. 4 is a perspective view showing a support member provided in the pressing member. [Figure 11] FIG. 1 shows a patient's hand (right hand) on which the hemostatic device is to be used. [Figure 12] FIG. 1 is a diagram showing a first example of use of a hemostatic device in a simplified manner. [Figure 13] FIG. 1 is a diagram showing a first example of use of a hemostatic device in a simplified manner. [Figure 14] FIG. 1 is a diagram showing a first example of use of a hemostatic device in a simplified manner. [Figure 15] FIG. 15A is a partial cross-sectional view taken along the arrows 15A-15A shown in FIG. [Figure 16] FIG. 16A is a partial cross-sectional view taken along the arrows 16A-16A shown in FIG. [Figure 17] FIG. 10 is a diagram showing a second example of use of the hemostatic device in a simplified manner. [Figure 18] FIG. 1 shows a patient's hand (left hand) on which the hemostatic device is to be used. [Figure 19] FIG. 10 is a diagram showing a third example of use of the hemostatic device in a simplified manner. [Figure 20] FIG. 10 is a diagram illustrating a fourth example of use of the hemostatic device. [Figure 21] 10 is an enlarged plan view showing a portion of a hemostatic device according to Modification 1. FIG. [Figure 22] FIG. 1 shows a patient's hand (right hand) on which the hemostatic device is to be used. [Figure 23] FIG. 10 is a plan view showing a simplified example of use of a hemostatic device according to Modification 1. [Figure 24] FIG. 10 is a plan view showing a simplified example of use of a hemostatic device according to Modification 1. DETAILED DESCRIPTION OF THE INVENTION
[0014] 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.
[0015] 1 to 10 are diagrams illustrating a hemostatic device 100 according to this embodiment, and FIGS. 11 to 20 are diagrams illustrating an example of how the hemostatic device 100 is used.
[0016] As shown in Figures 11, 14 to 16, the hemostatic device 100 can be used to stop bleeding at a puncture site (e.g., puncture sites p1, p2, p3, and p4 described below) formed in a patient's hand H located distal (toward the fingers) from the forearm A when removing a sheath tube of an introducer 200 that has been placed at the puncture site.
[0017] The specific location of the puncture site to be stopped by hemostatic device 100 is not particularly limited, but in this embodiment, the following first puncture site p1, second puncture site p2, third puncture site p3, and fourth puncture site p4 are exemplified. Note that in this specification, the structure of each part of hemostatic device 100 will be described mainly through an example in which hemostatic device 100 is used to stop bleeding at first puncture site p1.
[0018] 11 and 14, the first puncture site p1 is a puncture site formed in artery B (hereinafter also referred to as "blood vessel B") located in the snuff box of the palmar artery running on the Hb side of the back of the patient's right hand H1 (hand H), 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 hand H.
[0019] The second puncture site p2 is a puncture site formed in the distal radial artery located distal to the snuffbox of the palmar artery running on the back Hb side of the patient's right hand H1, as shown in Figures 11 and 17. The second puncture site p2 is located distal to the first puncture site p1 on the right hand H1, based on the extensor pollicis longus tendon t1 located on the back Hb of the patient's right hand H1.
[0020] As shown in FIGS. 18 and 19, the third puncture site p3 is a puncture site formed in the artery located in the snuffbox of the palmar artery running on the back Hb side of the patient's left hand H2 (hand H).
[0021] 18 and 20, the fourth puncture site p4 is a puncture site formed in the distal radial artery located distal to the snuffbox of the palmar artery running on the back Hb side of the patient's left hand H2. The fourth puncture site p4 is located distal to the third puncture site p3 on the left hand H2, based on the extensor pollicis longus tendon t2 located on the back Hb of the patient's left hand H2.
[0022] The hemostatic device 100 will now be described in detail.
[0023] 1, 2, 14, 15, and 16, the hemostatic device 100 generally comprises a pressing member 110 configured to apply pressure to a first puncture site p1 formed on a patient's right hand H1, a first band 150 configured to be connectable to the pressing member 110, a second band 160 configured to be connectable to the pressing member 110, and a third band 170 configured to be connectable to the pressing member 110. As shown in FIGS. 1, 2, 14, 15, and 16, the first band 150, the second band 160, and the third band 170 are connected to the pressing member 110. In detail, the first band 150, the second band 160, and the third band 170 are connected to the pressing member 110 via a plurality of holes (first hole 145a, second hole 147a, 147b) provided in the second region 142 of the support member 140.
[0024] As described below, the hemostatic device 100 is configured such that of the three bands, the first band 150, the second band 160, and the third band 170, the second band 160 and the third band 170, can be arranged at different angles radially around the pressing portion 120 located in the first region 141. Therefore, of the multiple holes provided in the second region 142, the two holes forming a pair of second holes 147a, 147b are larger than the width of the second band 160 and the third band 170 and are configured in a non-linear shape. The shapes of these holes 147a, 147b are preferably curved. The second band 160 and the third band 170 are arranged so as to wrap around through the respective holes 147a, 147b, and their connection to the respective holes 147a, 147b is maintained by connecting portions of their components by a method such as fusion bonding. The size of holes 147a, 147b (the length of holes 147a, 147b in the extension direction) is larger than the width of bands 160, 170, so holes 147a, 147b are provided with play that allows bands 160, 170 to slide left and right. Furthermore, because holes 147a, 147b have non-linear shapes such as curved or bent shapes, bands 160, 170 can change their angle in the extension direction relative to pressing portion 120 (the angle in the radial direction from pressing portion 120 as the center) by changing their positions within holes 147a, 147b. 8, in hemostatic device 100, of the three bands, first band 150, second band 160, and third band 170, second band 160 and third band 170 are configured to be slidable along holes 147a and 147b around pressing portion 120. Furthermore, second band 160 and third band 170 can be positioned radially at different angles around center point R provided in first region 141.
[0025] As shown in FIG. 14, when the hemostatic device 100 is worn on the patient's right hand H1, the first band 150 can be positioned so that it is hooked onto the interdigital area fb located between two adjacent fingers (e.g., the thumb and index finger).
[0026] As shown in Figures 12, 13, and 14, when the hemostatic device 100 is worn on the patient's right hand H1, the second band 160 and the third band 170 can be positioned so that they are wrapped around the outer circumference of the right hand H1.
[0027] <Pressing member> As shown in Figures 5, 6, and 7, the pressing member 110 has a pressing portion 120 configured to press the first puncture site p1 formed on the patient's right hand H1, and a support member 140 configured to fix the pressing portion 120.
[0028] 6 and 7, the pressing portion 120 can be configured with an expansion member 130 having an inner cavity 133 into which a fluid such as air can flow. Note that Figs. 6 and 7 show cross-sectional views of the expansion member 130 in an expanded state. Figs. 6 and 7 also show partial cross-sectional views obtained by turning upside down the cross sections along arrows 6A-6A and 7A-7A shown in Fig. 5.
[0029] The expansion member 130 can be configured, for example, by a resin balloon. A tube 193, which will be described later, is connected to the lumen 133 of the expansion member 130.
[0030] As shown in Figures 6, 7, 15, and 16, the expansion member 130 is disposed on one surface 140a of the support member 140. The one surface 140a of the support member 140 is the surface that is disposed on the body surface side of the patient's hand H when the hemostatic device 100 is attached to the patient's hand H. The other surface 140b of the support member 140 is the surface located opposite the one surface 140a.
[0031] The expansion member 130 can be connected to the support member 140 via a predetermined connecting member 139, as shown in FIGS.
[0032] The connecting member 139 can be made of, for example, a resin plate. The connecting member 139 is connected to one surface 140a of the support member 140. The extension member 130 is connected to the connecting member 139.
[0033] The connection between the connecting member 139 and the support member 140 and the connection between the expansion member 130 and the connecting member 139 can be achieved by, for example, fusion or adhesion. Note that the expansion member 130 may be connected directly to one surface 140a of the support member 140 without the intermediary of the connecting member 139.
[0034] The expansion member 130 has a circular shape in the plan view shown in Figures 1 to 5. However, the shape of the expansion member 130 in the plan view is not limited to a circular shape. Furthermore, there are no particular limitations on the cross-sectional shape of the expansion member 130 before and after expansion, the constituent material of the expansion member 130, the specific structure of the expansion member 130, etc.
[0035] As shown in FIGS. 4, 5, 6, 7, 15, and 16, the expansion member 130 is provided with a marker 135 for aligning the expansion member 130 with the first puncture site p1.
[0036] The marker 135 is placed on the surface opposite to the surface on which the support member 140 of the expansion member 130 is placed (the surface that is placed on the body surface side of the patient's hand H when the hemostatic device 100 is attached to the patient's hand H).
[0037] 5, the marker 135 is placed at approximately the center position in the planar direction of the expansion member 130. The marker 135 is also placed so as to overlap with the approximately center position in the planar direction of the support member 140.
[0038] The marker 135 may be formed, for example, as a rectangular marker that is entirely colored. The specific shape, color, formation method, position, etc. of the marker 135 are not particularly limited. For example, the marker 135 may be composed of a transparent center portion and a colored linear frame portion that surrounds the center portion. Furthermore, for example, the marker 135 may be provided on the support member 140.
[0039] The specific configuration of pressing unit 120 is not limited as long as it is capable of applying a compressive force to first puncture site p1 formed on the patient's right hand H1. Pressing unit 120 can be configured, for example, from a member made of a resin material such as plastic or gel, a member containing gel whose moisture content decreases over time and gradually reduces compressive force, an elastic material such as a sponge-like substance, an aggregate of fibers such as cotton, metal, a member with a specific three-dimensional shape (such as a sphere, ellipsoid, or triangular pyramid), or an appropriate combination of these.
[0040] <Supporting member> As shown in Figures 3, 5, 6, and 7, the support member 140 has a first region 141 in which the expansion member 130 is arranged, and a second region 142 located outside the first region 141 and configured to allow the first band 150, second band 160, and third band 170 to be connected.
[0041] The support member 140 has a circular shape in the plan view shown in FIG.
[0042] The first region 141 is a region that overlaps with the pressing portion 120 in the plan view shown in Fig. 5. The second region 142 is a region that is located outside the first region 141 in the plan view shown in Fig. 5.
[0043] The first region 141 can be arbitrarily defined based on the outer shape and size of the pressing portion 120 arranged on the support member 140. The second region 142 can be defined based on the relative positional relationship with the first region 141. Therefore, the first region 141 and the second region 142 can be appropriately changed depending on the outer shape and size of the pressing portion 120 arranged on the support member 140.
[0044] As shown in Figures 5, 6, 7, and 8, the first region 141 has a center point R that serves as the center when the second band 160 and the third band 170 slide along the second hole portions 147a and 147b and are arranged radially.
[0045] As shown in Figures 5, 6, 7, 9, and 10, the second region 142 is formed with a pair of first hole portions 145a, 145b facing each other with the pressing portion 120 therebetween, and a pair of second hole portions 147a, 147b facing each other with the pressing portion 120 therebetween at positions different from the pair of first hole portions 145a, 145b.
[0046] In the description of this specification, the first hole 145a is also referred to as "one first hole 145a." The first hole 145b is also referred to as "another first hole 145b." The second hole 147a is also referred to as "one second hole 147a." The second hole 147b is also referred to as "another second hole 147b."
[0047] 5, the one first hole portion 145a and the other first hole portion 145b are arranged on the distal side (fingertip side) or proximal side (forearm A side) of the hand H, with the pressing portion 120 sandwiched therebetween. In this embodiment, when the hemostatic device 100 is attached to the patient's right hand H1, the one first hole portion 145a is arranged on the distal side of the hand H relative to the pressing portion 120, and the other first hole portion 145b is arranged on the proximal side of the hand H relative to the pressing portion 120 (see FIG. 14).
[0048] When changing the attachment position of the hemostatic device 100 on the patient's hand H as will be described in a modified example below, the one first hole portion 145a and the other first hole portion 145b can be arranged by switching their positional relationship with respect to the pressing portion 120 (see FIG. 24). In other words, the one first hole portion 145a may be arranged closer to the proximal side of the hand H than the pressing portion 120, and the other first hole portion 145b may be arranged closer to the distal side of the hand H than the pressing portion 120.
[0049] 3, 4, and 5, the one first hole portion 145a and the other first hole portion 145b are arranged on an imaginary circle that follows the outer shape of the support member 140. In this embodiment, the support member 140 has a circular shape in the plan view shown in Fig. 5. Therefore, the one first hole portion 145a and the other first hole portion 145b are arranged along the circumferential direction of the second region 142 that is located further outward on the support member 140 than the first region 141.
[0050] The above phrase "arranged on an imaginary circle" means that, assuming that holes are formed continuously in the circumferential direction of the second region 142 of the support member 140, one first hole portion 145a and another first hole portion 145b are arranged with a gap between them at any position occupying a part of the holes. The positional relationship between one second hole portion 147a and another second hole portion 147b arranged on an imaginary circle, which will be described later, is also defined in the same way as above.
[0051] As shown in FIGS. 3, 4, 5, and 7, a first band 150 can be connected to one of the first holes 145a.
[0052] In this embodiment, the width W1 (width in a direction perpendicular to the extension direction of the first band 150) of the first end 151 of the first band 150 is approximately the same as the hole length L1 of one of the first holes 145a (see FIG. 5). Therefore, when the first band 150 is connected to the support member 140 via one of the first holes 145a, the sliding movement of the first band 150 about the center point R provided in the first region 141 of the support member 140 is limited. In other words, when the first band 150 is connected to the support member 140 via one of the first holes 145a, the sliding movement of the first band 150 about the pressing portion 120 is limited.
[0053] In this specification, the hole length of each of the holes 145a, 145b, 147a, and 147b means the linear distance between the ends of each of the holes 145a, 145b, 147a, and 147b located in the circumferential direction of the support member 140.
[0054] The width W1 of one first hole 145a is formed to be substantially the same as the hole length L2 of the other first hole 145b (see FIG. 5). Therefore, when the first band 150 is connected to the support member 140 via the other first hole 145b, the sliding movement of the first band 150 around the center point R provided in the first region 141 of the support member 140 is restricted (see FIG. 24 of the modified example described later). In other words, when the first band 150 is connected to the support member 140 via the other first hole 145b, the sliding movement of the first band 150 around the pressing portion 120 is restricted.
[0055] As shown in Figures 3, 4, and 5, one second hole portion 147a and the other second hole portion 147b are arranged with the pressing portion 120 sandwiched between them in a direction intersecting the straight line connecting one first hole portion 145a and the other first hole portion 145b (virtual line C shown in Figure 5).
[0056] The one second hole portion 147a and the other second hole portion 147b are arranged on an imaginary circle that follows the outer shape of the support member 140, as shown in FIGS.
[0057] As shown in Figure 12, when one first hole portion 145a of the hemostatic device 100 is positioned distal to the patient's right hand H1 relative to the pressing portion 120 and the other first hole portion 145b is positioned proximal to the patient's right hand H1 relative to the pressing portion 120, one second hole portion 147a can be positioned circumferentially inside the patient's right hand H1 (the side where the patient's torso is positioned), and the other second hole portion 147b can be positioned circumferentially outside the patient's right hand H1.
[0058] The hole length L3 of one second hole portion 147a is longer than the hole lengths L1, L2 of each of the first hole portions 145a, 145b (see FIG. 5). Similarly, the hole length L4 of the other second hole portion 147b is longer than the hole lengths L1, L2 of each of the first hole portions 145a, 145b. The hole length L3 of one second hole portion 147a and the hole length L4 of the other second hole portion 147b are formed to be approximately the same length.
[0059] As shown in FIGS. 3, 4, 5 and 7, a second band 160 is connected to one of the second holes 147a.
[0060] The width W2 of the second end 161 of the second band 160 (the width in the direction perpendicular to the extension direction of the second band 160) is shorter than the hole length L3 of one of the second holes 147a (see FIG. 5). Therefore, as shown in FIG. 8, the second band 160 can slide radially around a center point R provided in the first region 141 of the support member 140, changing its angle within a range of a predetermined slide angle θ1, while the second band 160 is connected to the pressing member 110 via one of the second holes 147a.
[0061] The sliding angle θ1 of the second band 160 can be arbitrarily defined by the width W2 of the second end portion 161 of the second band 160 and the hole length L3 of one of the second holes 147a. The sliding angle θ1 of the second band 160 is not particularly limited, but can be set, for example, to 1° to 45° around the center point R provided in the first region 141.
[0062] As shown in FIGS. 3, 4, 5 and 7, a third band 170 is connected to the other second hole 147b.
[0063] The width W3 of the third end portion 171 of the third band 170 (the width in the direction perpendicular to the extension direction of the third band 170) is shorter than the hole length L4 of the other second hole portion 147b (see FIG. 5). Therefore, as shown in FIG. 8, the third band 170 can slide radially around a center point R provided in the first region 141 of the support member 140, changing its angle within a range of a predetermined sliding angle θ2, while the third band 170 is connected to the other second hole portion 147b.
[0064] The sliding angle θ2 of the third band 170 can be arbitrarily defined by the width W3 of the third end portion 171 of the third band 170 and the hole length L4 of the other second hole portion 147b. The sliding angle θ2 of the third band 170 is not particularly limited, but can be set, for example, to 1° to 45° around the center point R provided in the first region 141.
[0065] 5, the first holes 145a, 145b and the second holes 147a, 147b can be arranged on imaginary concentric circles centered on a central point R provided in the first region 141 of the support member 140. However, the first holes 145a, 145b and the second holes 147a, 147b do not have to be arranged on imaginary concentric circles.
[0066] Furthermore, one first hole 145a and another first hole 145b may have different shapes or hole lengths, and one second hole 147a and another second hole 147b may have different shapes or hole lengths.
[0067] Furthermore, the hole length L1 of one first hole 145a and / or the hole length L2 of the other first hole 145b may be formed to be greater than the width W1 of the first end portion 151 of the first band 150. In this configuration, the first band 150 is slidable so as to change angle radially around a center point R provided in the first region 141 of the support member 140 when the first band 150 is connected to the support member 140 via the one first hole 145a or the other first hole 145b.
[0068] As shown in Figures 6, 9, 10, and 16, in the portion of the second region 142 of the support member 140 where the pair of first hole portions 145a, 145b are arranged, a first curved region 148a is formed which is convexly curved toward the side away from the pressing portion 120 arranged on one surface 140a of the support member 140.
[0069] The above-mentioned "side away from the pressing portion 120" is the side away from the body surface of the patient's hand H when the hemostatic device 100 is attached to the patient's hand H, as shown in FIG. 16 (the upper side in FIG. 16).
[0070] As shown in Figures 6, 9, 10, and 15, in the portion of the second region 142 of the support member 140 where the pair of second hole portions 147a, 147b are arranged, a second curved region 148b is formed that is convexly curved toward the pressing portion 120 arranged on one surface 140a of the support member 140.
[0071] The above-mentioned "pressure section 120 side" is the side that comes close to the body surface of the patient's hand H when the hemostatic device 100 is attached to the patient's hand H, as shown in FIG. 15 (the lower side in FIG. 15).
[0072] The support member 140 is preferably made of a material with a predetermined hardness. If the support member 140 is configured to have a predetermined hardness, the support member 140 can press the pressing portion 120 against the patient's right hand H1 when the pressing portion 120 applies a compressive force to the first puncture site p1 formed on the patient's right hand H1 as shown in Figures 15 and 16. This prevents the pressing portion 120 from lifting up from the patient's right hand H1.
[0073] Examples of materials that can be used to form the support member 140 having the hardness described above include acrylic resin, polyvinyl chloride (particularly rigid polyvinyl chloride), polyethylene, polypropylene, polyolefins such as polybutadiene, polystyrene, poly-(4-methylpentene-1), polycarbonate, ABS resin, polymethyl methacrylate (PMMA), polyacetal, polyacrylate, polyacrylonitrile, polyvinylidene fluoride, ionomer, acrylonitrile-butadiene-styrene copolymer, polyethylene terephthalate (PET), etc.
[0074] In each of the pressing portion 120 and the support member 140, the portions that overlap each other in the plan view shown in Figures 4 and 5 can be made transparent. When the pressing portion 120 and the support member 140 are configured in this manner, as shown in Figures 12, 13, and 14, when attaching the hemostatic device 100 to the patient's right hand H1, the surgeon can more easily visually confirm the position of the marker 135 and / or the first puncture site p1 via the pressing portion 120 and the support member 140. Note that the above term "transparent" includes colored transparent, colorless transparent, and translucent.
[0075] <Belt> As shown in Figures 1, 2, 3, and 4, the first band 150 has a first main body portion 155, a first end portion 151 configured to be connectable to one of the first hole portions 145a of the support member 140, and a free first other end portion 153.
[0076] In this specification, the "free other end" means an end that is not directly or indirectly connected to any other component when the hemostatic device 100 is not attached (when the hemostatic device is not attached to the patient).
[0077] As shown in FIGS. 1 and 2, the first main body portion 155 extends along the longitudinal direction of the first band 150.
[0078] 7, the first end portion 151 of the first band 150 can be inserted into and wrapped around one of the first hole portions 145a of the support member 140. The first band 150 is connected to the support member 140 via the first end portion 151 and the one of the first hole portions 145a.
[0079] As described above, in this embodiment, the width W1 of the first end portion 151 of the first band 150 is formed to be substantially the same as the hole length L1 of one of the first hole portions 145a (see FIG. 5). Therefore, when the first band 150 is connected to the support member 140, sliding movement of the first band 150 around the center point R provided in the first region 141 of the support member 140 is limited.
[0080] The structure connecting first end 151 of first band 150 to support member 140 is not particularly limited. For example, a fixing member (e.g., a hook-and-loop fastener) that can hold and release the state in which first band 150 is wrapped around one of first holes 145a can be disposed on first end 151 of first band 150. When first band 150 is configured in this manner, first band 150 can be connected to and separated from support member 140.
[0081] As shown in Figures 1, 2, 3, and 4, the second band 160 has a second main body portion 165, a second end portion 161 configured to be connectable to one of the second hole portions 147a of the support member 140, and a free second end portion 163.
[0082] As shown in FIGS. 1 and 2, the second main body portion 165 extends along the longitudinal direction of the second band 160.
[0083] 6, the second end portion 161 of the second band 160 can be inserted into and wrapped around one of the second hole portions 147a of the support member 140. The second band 160 is connected to the support member 140 via the second end portion 161 and the one of the second hole portions 147a.
[0084] As described above, the width W2 of the second end portion 161 of the second band 160 is shorter than the hole length L3 of one of the second holes 147a (see FIG. 5). Therefore, when the second band 160 is connected to the support member 140, the second band 160 can slide radially around a center point R located in the first region 141 of the support member 140, changing the angle (see FIG. 8).
[0085] The structure connecting second end 161 of second band 160 to support member 140 is not particularly limited. For example, a fixing member (e.g., a hook-and-loop fastener) that can hold and release the state in which second band 160 is wrapped around one of second holes 147a can be disposed on second end 161 of second band 160. When second band 160 is configured in this manner, second band 160 can be connected to and separated from support member 140.
[0086] As shown in Figures 1, 2, 3, and 4, the third band 170 has a third main body portion 175, a third end portion 171 configured to be connectable to the other second hole portion 147b of the support member 140, and a free third end portion 173.
[0087] As shown in FIGS. 1 and 2, the third main body portion 175 extends along the longitudinal direction of the third band 170.
[0088] 6, the third end portion 171 of the third band 170 can be inserted into and wrapped around the other second hole portion 147b of the support member 140. The third band 170 is connected to the support member 140 via the third end portion 171 and the other second hole portion 147b.
[0089] As described above, the width W3 of the third end portion 171 of the third band 170 is shorter than the hole length L4 of the other second hole portion 147b (see FIG. 5). Therefore, when the third band 170 is connected to the support member 140, the third band 170 can slide radially around a center point R located in the first region 141 of the support member 140 so as to change the angle (see FIG. 8).
[0090] The structure connecting the third end portion 171 of the third band 170 to the support member 140 is not particularly limited. For example, a fixing member (e.g., a hook-and-loop fastener) that can hold and release the state in which the third band 170 is wrapped around the other second hole portion 147b can be disposed on the third end portion 171 of the third band 170. When the third band 170 is configured in this manner, the third band 170 can be connected to and separated from the support member 140.
[0091] The constituent material of each of the bands 150, 160, 170 is not particularly limited, but may be, for example, vinyl chloride resin, polyurethane resin, polyester resin, etc. Furthermore, there are no particular limitations on the shape, length, thickness, etc. of each of the bands 150, 160, 170.
[0092] <Fixing material> As shown in FIGS. 1, 2, 3, and 4, the hemostatic device 100 includes four fixing members: a first fixing member 181, a second fixing member 182, a third fixing member 183, and a fourth fixing member 184.
[0093] 1 and 3, a first fixing member 181 is disposed on the outer surface of the second band 160. A second fixing member 182 is disposed on the outer surface of the third band 170.
[0094] 2 and 4, a third fixing member 183 is disposed on the inner surface of the third band 170. A fourth fixing member 184 is disposed on the inner surface of the first band 150.
[0095] The inner surface of each band 150, 160, 170 is the surface that faces the patient's body surface when the hemostatic device 100 is attached to the patient, and the outer surface of each band 150, 160, 170 is the surface that is located opposite the inner surface.
[0096] First fixing member 181 and second fixing member 182 are made up of the male side of a hook-and-loop fastener. Third fixing member 183 and fourth fixing member 184 are made up of the female side of a hook-and-loop fastener. The hook-and-loop fastener in this specification is a fastener that can be attached and detached from the surface, such as Magic Tape (registered trademark) or Velcro (registered trademark).
[0097] The specific structure of each of the fixing members 181, 182, 183, and 184 is not limited as long as the bands 150, 160, and 170 can be connected together while the hemostatic device 100 is placed on the patient's right hand H1, thereby fixing the pressing portion 120 to the right hand H1. For example, some of the fixing members may be omitted, or the positions of the fixing members on the bands 150, 160, and 170 may be changed as desired. Furthermore, when each of the fixing members 181, 182, 183, and 184 is formed of a hook-and-loop fastener, the male and female sides of the hook-and-loop fastener may be reversed. Furthermore, each of the fixing members 181, 182, 183, and 184 may be, for example, a snap, a button, a clip, or a frame member with a hole formed therein. Furthermore, for example, a fixing member (third fixing member) may also be disposed on the inner surface of the second band 160.
[0098] <Injection part> As shown in FIGS. 1 and 2, the hemostatic device 100 has an injection portion 191 for injecting a fluid into the expansion member 130.
[0099] Injection part 191 is configured with a connector having a check valve (not shown) built in. Injection part 191 can be connected to a syringe (not shown).
[0100] A buffer member 192 having an expandable space is disposed between injection part 191 and expansion member 130. The buffer member 192 is made of a flexible bag-shaped member with an internal space. An arrow-shaped marker indicating the insertion direction of the syringe into injection part 191 may be provided on buffer member 192.
[0101] Injection part 191 is connected to one end side of buffer member 192. The inner cavity of injection part 191 communicates with the space in buffer member 192. However, while the check valve built into injection part 191 is closed, communication between the inner cavity of injection part 191 and the space in buffer member 192 is blocked.
[0102] A flexible tube 193 is connected to the other end of the buffer member 192. The inner cavity of the tube 193 communicates with the space in the buffer member 192. The other end of the tube 193, opposite to the one end connected to the buffer member 192, is connected to the expansion member 130. The inner cavity of the tube 193 communicates with the inner cavity 133 of the expansion member 130.
[0103] When expanding the expansion member 130, the surgeon inserts the tip of a syringe (not shown) into the injection part 191 to open the check valve. With the check valve of the injection part 191 open, the surgeon presses the plunger of the syringe to inject air from the syringe into the lumen 133 of the expansion member 130.
[0104] When air is injected into the lumen 133 of the expansion member 130, the expansion member 130 expands. When the expansion member 130 expands, the buffer member 192, which communicates with the lumen 133 of the expansion member 130 via the tube 193, expands. By visually confirming the expansion of the buffer member 192, the surgeon can easily determine that the expansion member 130 has expanded without any air leakage.
[0105] When contracting the expansion member 130, the surgeon inserts the tip of the syringe into the injection part 191 and pulls the plunger of the syringe. By performing the above operation, the surgeon can discharge the air in the lumen 133 of the expansion member 130 into the syringe.
[0106] <Examples of hemostatic device use> Next, a first example of use of the hemostatic device 100 will be described with reference to FIGS.
[0107] In the first use example, a procedure for using the hemostatic device 100 when stopping bleeding at a first puncture site p1 formed on a patient's right hand H1 will be described.
[0108] FIG. 12 shows a state in which the sheath tube of the introducer 200 has been inserted into the first puncture site p1 and various procedures have been performed.
[0109] 12, the surgeon places the pressing member 110 so that it overlaps the back Hb of the patient's right hand H1. At this time, the surgeon visually checks the position of the marker 135 placed on the expansion member 130 and places the marker 135 at the first puncture site p1, thereby enabling the pressing member 110 to be appropriately positioned at the first puncture site p1.
[0110] After completing the procedure using the introducer 200, the surgeon may pull out a portion of the sheath tube of the introducer 200 from the first puncture site p1 formed in the patient's right hand H1 before attaching the hemostatic device 100 to the patient's right hand H1. For example, with the sheath tube of the introducer 200 remaining indwelled in the blood vessel B, the surgeon can pull out the sheath tube by about 2 to 3 cm toward the surgeon's hand, and then start the operation of attaching the hemostatic device 100.
[0111] 12 and 13, the surgeon wraps second band 160 and third band 170 around the outer circumference of the patient's right hand H1. The surgeon brings third fixing member 183 (see FIG. 2) located on the inner surface of third band 170 into contact with first fixing member 181 (see FIG. 1) located on the outer surface of second band 160, thereby fixing second band 160 and third band 170 via fixing members 181, 183.
[0112] When wrapping the second band 160 and the third band 170 around the outer circumference of the patient's right hand H1, the surgeon can slide the second band 160 radially or the third band 170 radially around a center point R located in the first region 141 of the support member 140. By sliding the second band 160 and the third band 170 radially to change the angle, the surgeon can adjust the wrapping position of each band 160, 170 on the patient's right hand H1. For example, the surgeon can slide each band 160, 170 within the range of sliding angles θ1 and θ2 (see FIG. 8 ) so that each band 160, 170 is wrapped around the patient's right hand H1 at a position closer to the forearm A (proximal side) than the first puncture site p1.
[0113] 14, the surgeon places a portion of first band 150 on the palm side of the patient's right hand H1 while passing it through the interdigital space fb located between the thumb and index finger of the patient's right hand H1. At this time, the surgeon brings the fourth fixing member 184 (see FIG. 2) located on the inner surface of first band 150 into contact with the second fixing member 182 (see FIG. 1) located on the outer surface of third band 170, thereby fixing first band 150 and third band 170 via the fixing members 182, 184.
[0114] As described above, the surgeon positions the second band 160 and the third band 170 so that they are wrapped around the outer circumference of the patient's right hand H1, and further positions the first band 150 so that a portion of it is hooked onto the interdigital region fb between the thumb and index finger of the patient's right hand H1, thereby effectively preventing the hemostatic device 100 from shifting out of position from the patient's right hand H1.
[0115] With a syringe connected to the injection section 191, the surgeon injects air into the expansion member 130 to expand the expansion member 130. As shown in Figures 15 and 16, when the expansion member 130 expands, the expansion member 130 applies a compressive force to the first puncture site p1 of the patient's right hand H1 in the hemostatic device 100.
[0116] As shown in FIGS. 14 and 16 , when the surgeon wears the hemostatic device 100 on a patient's hand H, the surgeon can position the first curved region 148a formed near one of the first hole portions 145a at a position distal to the patient's right hand H1. The surgeon can also position the other first curved region 148a formed near the other first hole portion 145b at a position proximal to the patient's right hand H1. By positioning the hemostatic device 100 in this manner, when the patient wears the hemostatic device 100 on the patient's right hand H1 and twists their wrist to move their right hand H1 up and down or left and right, the first curved region 148a prevents the peripheral portion of the support member 140 from contacting the patient's right hand H1. Similarly, when the patient moves their right hand H1 as described above, the first curved region 148a formed near the other first hole portion 145b of the hemostatic device 100 prevents the peripheral portion of the support member 140 from contacting the patient's right hand H1. As a result, while the hemostatic device 100 is stopping bleeding at the first puncture site p1 formed in the patient's right hand H1, it is possible to prevent the patient from feeling discomfort or pain due to the peripheral edge of the support member 140 abutting against or digging into the patient's right hand H1.
[0117] 14 and 15, when the surgeon attaches the hemostatic device 100 to the patient's hand H, the surgeon can fix the pressing portion 120 to the patient's right hand H1 so that the second curved region 148b formed in the support member 140 is positioned along part of the outer circumference of the patient's right hand H1. When the pressing portion 120 expands while the hemostatic device 100 is attached to the patient's right hand H1 in this manner, the second curved region 148b of the support member 140 presses the pressing portion 120 along part of the outer circumference of the patient's right hand H1. This prevents the pressing portion 120 from lifting up from the patient's right hand H1. Therefore, the hemostatic device 100 can effectively apply a compressive force to the first puncture site p1 using the expansion member 130.
[0118] After expanding the expansion member 130, the surgeon removes the sheath tube of the introducer 200 from the first puncture site p1 formed in the patient's right hand H1, as shown in Figure 14. While using the hemostatic device 100 to stop bleeding, the surgeon checks to see if there is any bleeding from the first puncture site p1 formed in the patient's right hand H1. If there is bleeding from the first puncture site p1 formed in the patient's right hand H1, the surgeon adjusts the amount of air injected into the expansion member 130.
[0119] By following the above procedure, the surgeon can use the hemostatic device 100 to stop bleeding at the first puncture site p1 formed in the patient's right hand H1.
[0120] 17 shows a second example of use of the hemostatic device 100. The second example of use is an example of use of the hemostatic device 100 when stopping bleeding at a second puncture site p2 formed in the patient's right hand H1.
[0121] As shown in FIG. 17, when stopping bleeding at a second puncture site p2 formed on a patient's right hand H1, the surgeon attaches the hemostatic device 100 to the patient's right hand H1. The second puncture site p2 formed on the patient's right hand H1 is located distal to the first puncture site p1 (see FIG. 11). When wrapping each band 160, 170 around the patient's right hand H1, the surgeon slides each band 160, 170 around a center point R provided on the first region 141 of the support member 140. For example, the surgeon slides each band 160, 170 so that each band 160, 170 is wrapped around the patient's right hand H1 at a position closer to the forearm A (proximal side) than the first puncture site p1. By wrapping each band 160, 170 around the proximal position of the patient's right hand H1, the surgeon can prevent the distal portion of the patient's right hand H1 from being restricted by each band 160, 170.
[0122] Figure 19 shows a third use example of hemostatic device 100. Figure 20 shows a fourth use example of hemostatic device 100. The third use example is an example of use of hemostatic device 100 when stopping bleeding at a third puncture site p3 formed in a patient's left hand H2. The fourth use example is an example of use of hemostatic device 100 when stopping bleeding at a fourth puncture site p4 formed in a patient's left hand H2.
[0123] In the third and fourth use examples, hemostatic device 100 can be attached to the patient's left hand H2 using the same procedures as in the first and second use examples described above. The surgeon can adjust the position at which each band 160, 170 is wrapped around left hand H2 by sliding each band 160, 170 around center point R located in first region 141 of support member 140, depending on the positions of puncture sites p3, p4 on the patient's left hand H2. By adjusting the position at which each band 160, 170 is wrapped around left hand H2, the surgeon can prevent the distal portion of the patient's left hand H2 from being restricted by each band 160, 170 when performing hemostasis at puncture sites p3, p4.
[0124] As described in each use example, the hemostatic device 100 can be worn on either the patient's right hand H1 or left hand H2. Furthermore, when the hemostatic device 100 is used to stop bleeding at puncture sites p1 and p2 formed at different positions on the patient's right hand H1, and when the hemostatic device 100 is used to stop bleeding at puncture sites p3 and p4 formed at different positions on the patient's left hand H2, the hemostatic device 100 can be worn on the patient's hand H so that the distal portion of the patient's hand H is not restricted by the bands 160 and 170.
[0125] As described above, the hemostatic device 100 according to this embodiment includes a pressing member 110 configured to press against a first puncture site p1 formed in a patient, a first band 150 configured to be connectable to the pressing member 110, a second band 160 configured to be connectable to the pressing member 110, and a third band 170 configured to be connectable to the pressing member 110. The pressing member 110 has a pressing section 120 configured to press against the first puncture site p1, and a support member 140 configured to fix the pressing section 120. The support member 140 has a first region 141 in which the pressing section 120 is disposed, and a second region 142 located outside the first region 141 and configured to be connectable to the first band 150, the second band 160, and the third band 170. First band 150, second band 160, and third band 170 are configured so that they can be connected to multiple holes (first hole 145a, second hole 147a, 147b) provided in second region 142. Of the multiple holes, second hole 147a, 147b are larger than the width of bands 160, 170 (the width of second end 161 of second band 160 is longer than the hole length of one second hole 147a, and the width of third end 171 of third band 170 is longer than the hole length of the other second hole 147b) and are configured in a non-linear shape so that second band 160 and third band 170 connected to second hole 147a, 147b can be arranged at different angles radially around pressing portion 120 located in first region 141.
[0126] In the hemostatic device 100 configured as described above, the pair of second holes 147a, 147b among the plurality of holes are larger than the width of the bands 160, 170 and are configured in a non-linear shape so that the second band 160 and the third band 170 connected to the second holes 147a, 147b can be positioned at different angles radially around the pressing portion 120 located in the first region 141. Therefore, in the hemostatic device 100, while the pressing member 110 is positioned at the first puncture site p1 formed on the patient's right hand H1, the bands 160, 170 connected to the second holes 147a, 147b can be moved radially around the pressing portion 120 along the respective holes 147a, 147b, thereby adjusting the angle and position of the bands 160, 170 with respect to the patient's right hand H1. This allows the bands 160, 170 of the hemostatic device 100 to be placed on the patient's right hand H1 so that the movement of the patient's right hand H1 is not restricted, and the hemostatic device 100 can be easily worn on the patient's right hand H1.
[0127] The second region 142 of the support member 140 has a pair of first holes 145a, 145b facing each other with the pressing portion 120 therebetween, and a pair of second holes 147a, 147b facing each other with the pressing portion 120 therebetween but at positions different from the first holes 145a, 145b. The first holes 145a, 145b and the second holes 147a, 147b are arranged on an imaginary circle that follows the outline of the support member 140. The first band 150, the second band 160, and the third band 170 are each arranged in a different hole of either the first holes 145a, 145b or the second holes 147a, 147b.
[0128] In the hemostatic device 100 configured as described above, for example, the first band 150 can be connected to the first hole 145a, the second band 160 can be connected to the second hole 147a, and the third band 170 can be connected to the second hole 147b. The first holes 145a, 145b and the second holes 147a, 147b are arranged on an imaginary circle that follows the outer shape of the support member 140. Therefore, the second band 160 can be arranged so that its angle changes radially around the pressing portion 120 when connected to a second hole 147a that is different from the first holes 145a, 145b and the second hole 147b. Similarly, the third band 170 can be arranged so that its angle changes radially around the pressing portion 120 when connected to a second hole 147b that is different from the first holes 145a, 145b and the second hole 147a. Therefore, when attaching the hemostatic device 100 to the patient's right hand H1, the surgeon can easily fine-tune the position of each band 160, 170 relative to the right hand H1 using the pressing portion 120 as a fulcrum, preventing the pressing portion 120 from shifting out of position from the first puncture site p1 formed on the patient's right hand H1.
[0129] The pair of first holes includes one first hole 145a and another first hole 145b, which are disposed at a position distal to the patient's right hand H1 or at a position proximal to the patient's right hand H1, with the pressing portion 120 sandwiched between them. The pair of second holes includes one second hole 147a and another second hole 147b, which are disposed at a position sandwiching the pressing portion 120 in a direction intersecting a line C connecting the one first hole 145a and the other first hole 145b. The first band 150 is connected to the one first hole 145a or the other first hole 145b. The second band 160 is slidably connected to the one second hole 147a. The third band 170 is slidably connected to the other second hole 147b.
[0130] In the hemostatic device 100 configured as described above, the one second hole portion 147a and the other second hole portion 147b are arranged with the pressing portion 120 therebetween in a direction intersecting with a line C connecting a distal position of the patient's right hand H1 and a proximal position of the patient's right hand H1. Therefore, when the hemostatic device 100 is worn on the patient's right hand H1, the second band 160 slidably connected to the one second hole portion 147a and the third band 170 slidably connected to the other second hole portion 147a can be wrapped around the outer periphery of the patient's right hand H1 while pressing the side of the pressing portion 120 against the body surface of the patient's right hand H1. Furthermore, when wrapping the second band 160 and the third band 170 around the outer circumference of the patient's right hand H1, the positions of the bands 160, 170 can be easily adjusted by sliding each band 160, 170 around the center point R provided in the first region 141 of the support member 140 so that the movement of the patient's right hand H1 is not restricted.
[0131] Furthermore, the hole lengths L3 and L4 of the pair of second hole portions 147a and 147b are longer than the hole lengths L1 and L2 of the pair of first hole portions 145a and 145b, respectively.
[0132] In hemostatic device 100 configured as described above, hole lengths L3, L4 of each of the pair of second hole portions 147a, 147b are longer than hole lengths L1, L2 of each of the pair of first hole portions 145a, 145b, so that sliding angles θ1, θ2 of each of bands 160, 170 connected to each of second hole portions 147a, 147b can be increased. Therefore, when hemostatic device 100 is worn on a patient's right hand H1, the positions of each of bands 160, 170 can be easily adjusted while preventing displacement of pressing portion 120 from the first puncture site p1 formed on the patient's right hand H1.
[0133] In addition, in the portion of the second region 142 of the support member 140 where the pair of first hole portions 145a, 145b are arranged, a first curved region 148a is formed which is convexly curved toward the side away from the pressing portion 120 arranged on one surface 140a of the support member 140.
[0134] With the hemostatic device 100 configured as described above, when attaching the hemostatic device 100 to a patient's hand H, the surgeon can position the first curved region 148a formed near one of the first hole portions 145a at a position distal to the patient's right hand H1, and can position the other first curved region 148a formed near the other first hole portion 145b at a position proximal to the patient's right hand H1. By positioning the hemostatic device 100 in this manner, when the patient twists their wrist to move their right hand H1 up and down or left and right with the hemostatic device 100 attached to the patient's right hand H1, the first curved region 148a prevents the peripheral portion of the support member 140 from abutting against or digging into the patient's right hand H1, which could cause discomfort or pain to the patient, while the hemostatic device 100 is performing hemostasis at the first puncture site p1 formed in the patient's right hand H1.
[0135] In addition, in the portion of the second region 142 of the support member 140 where the pair of second hole portions 147a, 147b are arranged, a second curved region 148b is formed which is convexly curved toward the pressing portion 120 arranged on one surface 140a of the support member 140.
[0136] With the hemostatic device 100 configured as described above, when the surgeon wears the hemostatic device 100 on the patient's hand H, the surgeon can fix the pressing portion 120 to the patient's right hand H1 so that the second curved region 148b formed on the support member 140 is positioned along part of the outer circumference of the patient's right hand H1. When the pressing portion 120 expands while the hemostatic device 100 is worn on the patient's right hand H1 in this manner, the second curved region 148b of the support member 140 presses the pressing portion 120 along part of the outer circumference of the patient's right hand H1. This prevents the pressing portion 120 from lifting up from the patient's right hand H1. Therefore, the hemostatic device 100 can effectively apply a compressive force to the first puncture site p1 using the expansion member 130.
[0137] 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 that of the above-mentioned embodiment.
[0138] <Modification> FIG. 21 shows an enlarged view of a portion of a hemostatic device 100A according to a modified example.
[0139] As shown in FIG. 21, the pressing portion 120A (expansion member 130A) of the hemostatic device 100A according to the modified example is configured so that its width gradually decreases from the other first hole portion 145b side toward the one first hole portion 145a side.
[0140] Specifically, pressing portion 120A has an isosceles triangle shape with vertex 126 located on the one first hole portion 145a side in the plan view shown in Fig. 21. The width of pressing portion 120A is the dimension in the direction perpendicular to line C connecting one first hole portion 145a and the other first hole portion 145b (the left-right direction in Fig. 21).
[0141] Furthermore, in hemostatic device 100A according to this modification, first band 150 is configured to be connectable and detachable to one first hole 145a and the other first hole 145b. First end 151 of first band 150 is provided with a fixing member (e.g., a hook-and-loop fastener) that can hold and release first end 151 in a wrapped state around each of holes 145a, 145b. The fixing member is not shown in the figure.
[0142] Figure 22 illustrates a first puncture spot s1 including a first puncture site p1 formed on the patient's right hand H1 and its surrounding area, and a second puncture spot s2 including a second puncture site p2 formed on the patient's right hand H1 and its surrounding area.
[0143] The first puncture spot s1 includes a predetermined area around the snuff box. The first puncture spot s1 has a generally isosceles triangular shape that tapers toward the distal end of the patient's right hand H1. When the patient spreads the thumb of the right hand H1, the first puncture spot s1 forms a recess that is recessed inward of the patient's right hand H1 relative to the extensor pollicis longus tendon t1.
[0144] The second puncture spot s2 includes a predetermined range on the distal side of the snuffbox of the patient's right hand H1 based on the extensor pollicis longus tendon t1. The second puncture spot s2 has a generally isosceles triangular shape that tapers toward the proximal side of the patient's right hand H1. When the patient spreads the thumb of the right hand H1, the second puncture spot s2 forms a recess that is recessed inward of the extensor pollicis longus tendon t1 toward the inside of the patient's right hand H1.
[0145] When using hemostatic device 100A to stop bleeding at a first puncture site p1 formed on a patient's right hand H1, the surgeon places pressing portion 120A at first puncture spot s1. When placing pressing portion 120A at the first puncture spot s1, the surgeon places apex 126 of pressing portion 120A distal to the patient's right hand H1. By placing pressing portion 120A as described above, the surgeon can position pressing portion 120A so that it overlaps first puncture spot s1. This enables pressing portion 120A to effectively apply a compressive force to first puncture spot s1, including first puncture site p1 and its surrounding area, in hemostatic device 100A. In addition, the hemostatic device 100A can prevent the pressing portion 120A from shifting out of position from the first puncture site p1 formed on the patient's right hand H1 by positioning the pressing portion 120A at the first puncture spot s1, which forms a recess on the inside of the patient's right hand H1 when the patient spreads the thumb of the right hand H1.
[0146] When using hemostatic device 100A to stop bleeding at a second puncture site p2 formed on a patient's right hand H1, the surgeon changes the orientation of hemostatic device 100A and attaches hemostatic device 100A to the patient's right hand H1, as shown in FIG. 23 . Specifically, the surgeon flips the orientation of hemostatic device 100A up and down in FIG. 23 so that apex 126 of pressing portion 120A is positioned proximal to the patient's right hand H1. By flipping the orientation of hemostatic device 100A as described above, the surgeon can position pressing portion 120A so that it overlaps with second puncture spot s2. This allows the surgeon to effectively apply compression force to second puncture spot s2, including second puncture site p2 and its surrounding area. Furthermore, the surgeon can prevent pressing portion 120A from shifting from the second puncture spot s2.
[0147] With the hemostatic device 100A turned over as described above, the surgeon removes the first end 151 of the first band 150 from one of the first holes 145a and connects it to the other first hole 145b, as shown in FIG. 24. The surgeon can then place the first band 150, connected to the support member 140 via the other second hole 147b, in the interdigital region fb between the thumb and index finger of the patient's right hand H1 (see FIG. 22). The surgeon can then radially slide the bands 160, 170 around the center point R on the first region 141 of the support member 140, thereby positioning the bands 160, 170 on the patient's right hand H1 without restricting the movement of the patient's right hand H1. This allows the surgeon to firmly secure the hemostatic device 100A to the patient's right hand H1.
[0148] In the above example, an example of applying hemostatic device 100A to each puncture spot s1, s2 on the patient's right hand H1 was described, but it is also possible to apply hemostatic device 100A to each puncture spot, including each puncture site p3, p4 (see Figure 18), on the patient's left hand H2 using a similar procedure.
[0149] In hemostatic device 100A according to the modified example, pressing portion 120A is configured so that its width gradually decreases from the other first hole portion 145b side toward one first hole portion 145a side, but pressing portion 120A may also be configured so that its width gradually decreases from the one first hole portion 145a side toward the other first hole portion 145b side. When pressing portion 120A is configured so that its width gradually decreases from the one first hole portion 145a side toward the other first hole portion 145b side, when pressing portion 120A is placed at first puncture spot s1, the other first hole portion 145b can be placed at a position on the peripheral side of the patient's hand H.
[0150] Furthermore, the outer shape of the pressing portion 120A of the hemostatic device 100A according to the modified example is not limited to an isosceles triangle, and may be, for example, a trapezoid.
[0151] The hemostatic device according to the present invention has been described above through embodiments, 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.
[0152] In the description of the embodiments, a hemostatic device has been exemplified in which the second and third bands can be positioned at different angles radially around the pressing part, and the first band cannot be positioned at a different angle radially around the pressing part. However, the hemostatic device may be configured such that at least two of the first, second, and third bands can be positioned at different angles radially around the pressing part.
[0153] In the description of the embodiment, each band is configured to be slidable around a center point provided in the first region of the support member while connected to each hole of the support member. However, the structure for connecting each band to the support member is not limited to holes provided in the support member. The structure for connecting each band to the support member can also be configured, for example, by a protrusion provided on one of the support member or each band, and a groove provided on the other of the support member or each band that slidably holds the protrusion.
[0154] In the description of the embodiment, the support member is circular in plan view, and the holes are arranged on an imaginary circle that follows the outer shape of the support member. However, the outer shape of the support member and the arrangement and shape of the holes are not particularly limited as long as at least two of the first, second, and third bands can be arranged at different angles radially around the pressing portion. For example, if the pressing portion is elliptical, the two bands may be arranged at different angles radially around different center points in the first region.
[0155] In the description of the embodiments, a hemostatic device for staunching a puncture site formed on the back of a hand has been exemplified. However, the hemostatic device can also be used to staunch a puncture site formed on a palm. Furthermore, the placement of each band when attaching the hemostatic device to a patient is not limited to the positions illustrated and can be changed as appropriate. For example, the first band can also be placed in an interdigital area other than the area between the thumb and index finger. Furthermore, the hemostatic device may also be used on the foot, which, like the hand, has many moving parts such as the fingers. For example, the hemostatic device may be used to staunch a puncture site formed on a patient's foot (e.g., the dorsum of the foot, the sole, etc.).
[0156] The shape and dimensions of each part of the hemostatic device are not particularly limited as long as the expansion member can be placed at the site where bleeding is to be stopped, and can be changed as appropriate.
[0157] This application is based on Japanese Patent Application No. 2020-139907, filed on August 21, 2020, the disclosure of which is incorporated herein by reference in its entirety. [Explanation of symbols]
[0158] 100, 100A Hemostatic Device 110 Pressing member 120, 120A pressing part 126 Apex of pressing part 130, 130A extension member 133 Lumen 135 Marker 139 Connecting member 140 Support member 140a one surface of the support member 140b Other surface of support member 141 first region of support member 142 second region of support member 145a One first hole portion (a pair of first hole portions) 145b Other first hole portion (pair of first hole portions) 147a One second hole portion (a pair of second hole portions) 147b Other second hole portion (pair of second hole portions) 148a First curved region 148b Second curved region 150 First Band 151 first end 153 First other end 155 First body part 160 Second Band 161 Second end 163 Second other end 165 Second body 170 Third Band 171 Third end 173 Third other end 175 Third Body 181 first fixing member 182 Second fixing member 183 Third fixing member 184 Fourth fixing member 191 Injection part 192 Buffer material 193 tubes 200 Introducer A. Forearm B Blood vessels (arteries) H hand H1 right hand H2 left hand Hb back of hand L1: Hole length of one first hole L2: Hole length of other first hole L3: Hole length of one second hole L4 Other second hole length fb finger space p1 First puncture site (puncture site) p2 Second puncture site (puncture site) p3 Third puncture site (puncture site) p4 Fourth puncture site (puncture site) s1 1st puncture スポット s2 2nd puncture スポット t1, t2 Extensor tendon of the thumb R center point θ1, θ2 angle
Claims
1. a pressing member configured to press against a puncture site formed on the patient's hand; a first band that is connectable to the pressing member and is placed in an interdigital region between the thumb and index finger of the patient's hand; a second band configured to be connectable to the pressing member; a third band body configured to be connectable to the pressing member, the pressing member has a pressing portion configured to press the puncture site and a support member configured to fix the pressing portion, the support member has a first region in which the pressing portion is arranged, and a second region located outside the first region and configured to allow the first band, the second band, and the third band to be connected to each other; the first band, the second band, and the third band are configured to be connectable to a plurality of holes provided in the second region, respectively; at least two of the plurality of holes are larger than the width of the band and are configured in a non-linear shape so that any one of the first band, the second band, and the third band connected to the hole can be arranged at different angles radially around the pressing portion located in the first region; the plurality of hole portions include a pair of first hole portions opposed to each other with the pressing portion therebetween, and a pair of second hole portions opposed to each other with the pressing portion therebetween at positions different from the first hole portions, the first hole portion and the second hole portion are arranged on a virtual circle that follows the outer shape of the support member, the first band, the second band, and the third band are each disposed in a different hole portion of either the first hole portion or the second hole portion; the pair of first hole portions includes one first hole portion and another first hole portion that are arranged at a distal position of the patient's hand or a proximal position of the patient's hand with the pressing portion sandwiched therebetween, the pair of second hole portions includes one second hole portion and another second hole portion arranged with the pressing portion therebetween in a direction intersecting a straight line connecting the one first hole portion and the other first hole portion, the first band is connected to the one first hole portion or the other first hole portion, the second band is slidably connected to the one second hole portion, the third band is slidably connected to the other second hole portion, a hole length of each of the pair of second hole portions is longer than a hole length of each of the pair of first hole portions; A hemostatic device, wherein the width of a first end portion of the first band that is connected to the one first hole portion or the other first hole portion is approximately the same as the hole length of the one first hole portion and the other first hole portion.
2. The hemostatic device according to claim 1 , wherein the pressing portion has a shape such that the width thereof decreases from one of the pair of first hole portions toward the other of the pair of first hole portions.
3. 3. The hemostatic device according to claim 1, wherein a first curved region is formed in the second region of the support member in a portion where the pair of first hole portions are arranged, the first curved region being convexly curved toward a side away from the pressing portion arranged on one surface of the support member.
4. The hemostatic device according to any one of claims 1 to 3, wherein a second curved region that is convexly curved toward the pressing portion that is arranged on one surface of the support member is formed in the portion of the second region of the support member where the pair of second hole portions are arranged.
Citation Information
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