Catheter handle and catheter equipped with same
The catheter handle with a gear and pulley system provides precise control over the catheter's bending, addressing the lack of flexibility in existing handles and improving catheter manipulation in body cavities.
Patent Information
- Application Number
- JP2021206497
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-20
- Publication Date
- 2025-11-27
- Estimated Expiration
- 2041-12-20
AI Technical Summary
Existing catheter handles lack a novel structure that efficiently controls the bending of the catheter's distal end, limiting their operational flexibility and precision.
A catheter handle with a unique gear and pulley system, including a rotation knob, drive gear, first and second gears, and first and second pulleys, allows for precise control of the catheter's bending by rotating the knob, converting rotational motion into perpendicular motion through engaging gears and linear members.
Enables precise and controlled bending of the catheter's distal end, enhancing operational flexibility and user control, facilitating the insertion and manipulation of the catheter in body cavities.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a handle used for a catheter and a catheter equipped with the handle. [Background technology]
[0002] A catheter typically comprises a tube for insertion into a body cavity such as a blood vessel, the digestive tract, or the urinary tract, and a handle provided on the proximal side of the tube. Some catheters are known that are configured so that the distal end of the tube can be bent by manipulating the handle on the proximal side. In such catheters, a wire is disposed within the lumen of the tube, the distal end of the wire is fixed to the distal end of the tube, and the proximal end of the wire is connected to the handle, so that the distal end of the tube can be bent by manipulating the handle. For example, in a catheter having two wires disposed within the lumen of the tube, the distal end of the tube can be bent to one side by pulling one of the two wires proximally, and the distal end of the tube can be bent to the other side by pulling the other wire.
[0003] As an example of such a catheter handle, Patent Document 1 discloses a catheter handle having two control wires whose distal ends are connected to a distal region of a catheter, the catheter handle comprising: a housing; a sliding assembly disposed within the housing and configured to linearly translate within the housing; and a control knob rotatably provided relative to the housing, wherein the proximal ends of the two control wires are disposed within the housing; the sliding assembly is configured to operate each of the two control wires separately by linearly translating the sliding assembly; and wherein rotating the control knob in a first rotational direction causes the sliding assembly to displace distally and apply tension to one of the two control wires, thereby deflecting the catheter in a first deflection direction; and rotating the control knob in a second rotational direction causes the sliding assembly to displace proximally and apply tension to the other of the two control wires, thereby deflecting the catheter in a second deflection direction. Patent Document 2 discloses a catheter handle for deflecting a distal portion of a catheter, the catheter handle comprising a first rotating member having a first diameter and to which a first wire is connected, and a second rotating member having a second diameter smaller than the first diameter and to which a second wire is connected, the second rotating member being connected to the first rotating member such that the center point of the second rotating member is offset from the center point of the first rotating member, and the first and second rotating members being configured such that rotation of the first rotating member via the first wire rotates the second rotating member and the second wire, thereby deflecting the distal portion of the catheter. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Special Publication No. 2015-523892 [Patent Document 2] Special Publication No. 2018-515215 Summary of the Invention [Problem to be solved by the invention]
[0005] As described above, various catheter handles have been proposed in the past, and an object of the present invention is to provide a catheter handle with a novel structure and a catheter equipped with the same. [Means for solving the problem]
[0006] The catheter handle of the present invention, which has been able to solve the above problems, is a handle for operating a catheter tube, comprising: a handle body having a lumen extending in the longitudinal direction; a rotation knob provided rotatably relative to the handle body with the longitudinal direction as a rotation axis; a first linear member disposed in the lumen of the handle body; a second linear member disposed in the lumen of the handle body; a first wire having a distal portion disposed in the lumen of the tube and a proximal portion disposed in the lumen of the handle body; and a second linear member disposed in the lumen of the handle body. a second wire; a shaft disposed in the lumen of the handle body, extending in the longitudinal direction, and fixed to the handle body; a drive gear disposed on the outside of the shaft, having a rotation axis extending in the longitudinal direction, and rotatable in conjunction with the rotation of the rotation knob; a first gear having a rotation axis extending perpendicular to the longitudinal direction (hereinafter referred to as the "first vertical rotation axis"), having an engagement portion that engages with the drive gear and an abutment portion with which the first linear member abuts around the first vertical rotation axis; and a second gear having the first vertical rotation axis as its rotation axis, disposed on the opposite side of the shaft from the first gear, and adapted to engage with the drive gear. a second gear having an engaging portion that engages with the first linear member and an abutting portion that the second linear member abuts around the first vertical rotation axis; a first pulley that is disposed proximal or distal to the first gear, has a rotation axis (hereinafter referred to as the "second vertical rotation axis") that extends parallel to the first vertical rotation axis, and has an abutting portion that the first linear member abuts around the second vertical rotation axis; and a second pulley that is disposed proximal or distal to the second gear, has a rotation axis (hereinafter referred to as the "third vertical rotation axis") that extends parallel to the first vertical rotation axis, and has an abutting portion that the second linear member abuts around the third vertical rotation axis. the first linear member is arranged in a circular shape, spanning the first gear and the first pulley; the second linear member is arranged in a circular shape, spanning the second gear and the second pulley; the proximal portion of the first wire is a portion of the circular first linear member between the first gear and the first pulley, and is fixed to a portion on one side of an imaginary plane formed by the extension direction of the shaft and the extension direction of the first vertical rotation axis; and the proximal portion of the second wire is a portion of the circular second linear member between the second gear and the second pulley, and is fixed to a portion on one side of the imaginary plane.
[0007] It is preferable that the catheter handle further has a first fixture attached to a portion of the first annular linear member between the first gear and the first pulley, on one side of the imaginary plane, and a second fixture attached to a portion of the second annular linear member between the second gear and the second pulley, on one side of the imaginary plane, and that the proximal portion of the first wire is fixed to the first fixture and the proximal portion of the second wire is fixed to the second fixture.
[0008] It is preferable that the third vertical rotation axis is an extension of the second vertical rotation axis. Also, it is preferable that the gear ratio of the first gear to the drive gear is greater than 1, and the gear ratio of the second gear to the drive gear is greater than 1.
[0009] The present invention also provides a catheter comprising a catheter handle of the present invention and a tube disposed distally of the catheter handle. [Effects of the Invention]
[0010] According to the catheter handle and catheter of the present invention, the tube provided on the distal side of the catheter handle can be operated by rotating the rotation knob. [Brief explanation of the drawings]
[0011] [Figure 1] 1 shows an example of an overall view of a catheter with a catheter handle. [Figure 2] 2 shows an example of the internal structure of a catheter handle provided in the catheter shown in FIG. 1, and is a side view of the internal structure. FIG. [Figure 3] FIG. 3 shows a top view of the internal structure of the catheter handle shown in FIG. 2. [Figure 4] FIG. 3 is a cross-sectional view showing the internal structure of the catheter handle shown in FIG. 2, with the drive gear, first gear, second gear, first pulley, and second pulley partially cut away along the longitudinal direction. [Figure 5] FIG. 3 is an enlarged view of the drive gear, first gear, and second gear of the internal structure of the catheter handle shown in FIG. 2. [Figure 6] 6 shows modified examples of the drive gear, first gear, and second gear shown in FIG. 5. [Figure 7] 6 shows modified examples of the drive gear, first gear, and second gear shown in FIG. 5. [Figure 8] 1 shows another example of an overall view of a catheter with a catheter handle. [Figure 9] 9 shows an example of the internal structure of a catheter handle provided in the catheter shown in FIG. 8, and is a side view of the internal structure. [Figure 10] FIG. 10 shows a top view of the internal structure of the catheter handle shown in FIG. DETAILED DESCRIPTION OF THE INVENTION
[0012] The catheter handle of the present invention and a catheter equipped with said handle will be specifically described below based on the following embodiments. However, the present invention is not limited to the following embodiments, and can be implemented with appropriate modifications within the scope of the spirit described above and below, and all such modifications are included within the technical scope of the present invention. For convenience, hatching and component symbols may be omitted in the drawings. In such cases, reference should be made to the specification or other drawings. The dimensions of various components in the drawings may differ from their actual dimensions, as priority is given to helping understand the features of the present invention.
[0013] The entire catheter including a catheter handle will be described with reference to Figures 1 and 8. Figure 1 shows an overall view of a catheter according to one embodiment of the present invention, and Figure 8 shows an overall view of a catheter according to another embodiment of the present invention.
[0014] A catheter 31 according to an embodiment of the present invention has a catheter handle 1 (hereinafter referred to as "handle 1") and a tube 32 provided distal to the handle 1. The catheter 31 is used for treatment or examination, for example, by inserting the tube 32 into a body cavity such as a patient's blood vessel or digestive tract.
[0015] In the present invention, the proximal side of the catheter refers to the direction toward the user's hand relative to the extending direction of the catheter, and the distal side refers to the opposite side of the proximal side, i.e., the direction toward the treatment target side.
[0016] The tube 32 has a flexible tubular structure and can be made of, for example, synthetic resins such as polyolefin resins (e.g., polyethylene and polypropylene), polyamide resins (e.g., nylon), polyester resins (e.g., PET), aromatic polyether ketone resins (e.g., PEEK), polyether polyamide resins, polyurethane resins, polyimide resins, and fluororesins (e.g., PTFE, PFA, and ETFE), or metals such as stainless steel, carbon steel, and nickel-titanium alloys. Metal materials can also be used as metal wires embedded in the synthetic resin tube. The axial length of the tube 32 (near-to-far direction) is several to several tens of times longer than the length of the handle 1 in that direction, and is, for example, approximately 500 mm to 1200 mm. The outer diameter of the tube 32 may be, for example, approximately 0.6 mm to 5 mm, and preferably 0.6 mm to 3 mm.
[0017] The tube 32 has an internal lumen, and may be either a single-lumen structure having one internal lumen or a multi-lumen structure having multiple internal lumen. The tube 32 may also have a coaxial structure having multiple coaxial lumens. A wire for manipulating the tube 32 is disposed in the internal lumen of the tube 32. The wire is disposed, for example, to control the bending of the distal end of the tube 32. In this case, the distal end of the wire is preferably fixed to the distal end of the tube 32, for example, the distal one-third portion of the tube 32. A conducting wire, an optical fiber, an endoscope, etc. may be disposed in the internal lumen of the tube 32. A lumen for inserting a guidewire or another treatment tool, or a lumen for passing a drug, a contrast agent, or any fluid may also be disposed in the internal lumen of the tube 32.
[0018] The handle 1 is provided on the proximal side of the tube 32, and when assembled into a catheter, the proximal end of a wire arranged in the lumen of the tube 32 is connected to the handle 1.
[0019] The catheter handle will be described in detail with reference to Figures 2 to 4, 9, and 10. Figures 2 to 4 show an example of the internal structure of a catheter handle provided in the catheter shown in Figure 1, and Figures 9 and 10 show an example of the internal structure of a catheter handle provided in the catheter shown in Figure 8. Figures 2 and 9 show side views of the internal structure of the catheter handle, Figures 3 and 10 show top views of the internal structure of the catheter handle, and Figure 4 shows a cross-sectional view of the internal structure of the catheter handle shown in Figure 2, in which the drive gear, first gear, second gear, first pulley, and second pulley are partially removed along the longitudinal direction. Figures 2 to 4, 9, and 10 show a catheter handle in which the handle body and rotation knob, which form the housing of the catheter handle, have been removed along the axial direction to expose the internal structure. Figure 5 shows an enlarged view of the drive gear, first gear, and second gear of the internal structure of the catheter handle shown in Figure 2.
[0020] A handle 1 according to an embodiment of the present invention comprises a handle body 2 having an inner cavity extending in a longitudinal direction x, a rotation knob 3 rotatable relative to the handle body 2 with the longitudinal direction x as its rotation axis, and a shaft 4 disposed in the inner cavity of the handle body 2, extending in the longitudinal direction x, and fixed to the handle body 2. In the handle 1, the longitudinal direction x corresponds to the direction in which the rotation axis of the rotation knob 3 extends, and the proximal side and the distal side are defined as one side and the other side relative to the longitudinal direction x. Furthermore, the radial direction is defined as the direction perpendicular to the longitudinal direction x. In the handle 1 shown in the drawings, the right side of the drawing corresponds to the proximal side, and the left side of the drawing corresponds to the distal side.
[0021] The handle body 2 has an inner cavity extending in the longitudinal direction x. The inner cavity of the handle body 2 is preferably formed in a shape that is long in the longitudinal direction x, and preferably has a portion formed in a cylindrical (columnar) or polygonal prism shape with the longitudinal direction x as its axis.
[0022] The rotation knob 3 is provided to be rotatable relative to the handle body 2 with the longitudinal direction x as the rotation axis. The handle body 2 is preferably open on at least one of the distal and proximal sides, and the rotation knob 3 is disposed on the distal or proximal side of the open handle body 2. In the handle 1 shown in Figures 2 to 4, the distal side of the handle body 2 is open, and the rotation knob 3 is disposed on the distal side of the handle body 2. In the handle 1 shown in Figures 9 and 10, the proximal side of the handle body 2 is open, and the rotation knob 3 is disposed on the proximal side of the handle body 2. In the handle 1, the handle body 2 and the rotation knob 3 are exposed to the outside, and the handle 1 can be operated, for example, by holding the handle body 2 with one hand and holding the rotation knob 3 with the other hand and rotating it relative to the handle body 2. A portion of the rotation knob 3 may be disposed in the inner cavity of the handle body 2.
[0023] The shaft 4 is disposed in the lumen of the handle body 2 so as to extend in the longitudinal direction x. The shaft 4 is fixed to the handle body 2 so as not to rotate or move relative to the handle body 2. The shaft 4 may be formed integrally with the handle body 2. The shaft 4 is preferably disposed at a position that serves as the rotation axis of the rotation knob 3. The shaft 4 is preferably disposed from the handle body 2 to the rotation knob 3 in the longitudinal direction x, and may be disposed so as to extend distally and / or proximally beyond the handle body 2 and the rotation knob 3. Therefore, it is preferable that the rotation knob 3 has a lumen extending in the longitudinal direction x, and the shaft 4 is disposed in this lumen.
[0024] A tube 32 is preferably connected to the distal side of the shaft 4. The connection between the shaft 4 and the tube 32 may be located within the interior space of the handle 1, may be located distal to the interior space of the handle 1, or may be located outside the handle 1. The shaft 4 may be formed integrally with the tube 32.
[0025] The shaft 4 may be solid or hollow. Preferably, the shaft 4 is hollow and its lumen is connected to the lumen of the tube 32. This allows a treatment tool to be delivered to a treatment target area or a drug or contrast agent to be injected from the proximal side of the catheter 31 through the lumen of the shaft 4 and the lumen of the tube 32. Examples of treatment tools include electrode catheters, ablation catheters, mapping catheters, balloon catheters, microcatheters, forceps, laser probes, fiberscopes, high-frequency treatment tools, and electrohydraulic impact fragmentation probes. To allow for the insertion of such treatment tools, the shaft 4 preferably has a proximal opening outside the handle 1. The shaft 4 may have a branch, and a switch cock may be provided at the branch. This allows, for example, separate insertion ports for treatment tools and injection ports for drugs or the like to be provided.
[0026] Inside the handle 1, a drive gear 5 having a rotation axis extending in the longitudinal direction x is provided outside the shaft 4. The drive gear 5 has engagement portions that engage with a first gear 7 and a second gear 9, which will be described later. The drive gear 5 is provided so as to be rotatable in conjunction with the rotation of the rotary knob 3, and by rotating the rotary knob 3, the drive gear 5 can rotate around the longitudinal direction x as its rotation axis, i.e., around the shaft 4 as its rotation axis.
[0027] In the handle 1 shown in the drawings, the drive gear 5 is joined to the rotatable knob 3, thereby allowing the drive gear 5 to rotate around the longitudinal direction x as an axis of rotation in conjunction with the rotation of the rotatable knob 3. Specifically, the drive gear 5 includes a tubular member 6 extending in the longitudinal direction x. The shaft 4 is inserted into the inner cavity of the tubular member 6, and the drive gear 5 is rotatable relative to the shaft 4 around the longitudinal direction x as an axis of rotation. The tubular member 6 is disposed in the inner cavity of the rotatable knob 3 with the shaft 4 inserted into the inner cavity of the tubular member 6, and the tubular member 6 is non-rotatably attached to the rotatable knob 3. This allows the drive gear 5 to rotate together with the rotatable knob 3. The drive gear 5 may be formed integrally with the rotatable knob 3. Although not shown in the drawings, another gear may be provided between the rotatable knob 3 and the drive gear 5, and the drive gear 5 may be configured to rotate in conjunction with the rotation of the rotatable knob 3 via the other gear.
[0028] The handle 1 is provided with a first gear 7 having a rotation axis extending perpendicular to the longitudinal direction x and an engagement portion that engages with the drive gear 5. The drive gear 5 and the first gear 7 are formed so that teeth provided on the engagement portion of the drive gear 5 and teeth provided on the engagement portion of the first gear 7 engage with each other. By providing the drive gear 5 and the first gear 7 in this manner, rotational movement of the drive gear 5 about its rotation axis in the longitudinal direction x can be converted into rotational movement of the first gear 7 about its rotation axis in the direction perpendicular to the longitudinal direction x. Hereinafter, the rotational axis of the first gear 7 will be referred to as the "first vertical rotational axis Q1." The first vertical rotational axis Q1 is preferably formed so that the shaft 4 exists on its extension.
[0029] The handle 1 is further provided with a second gear 9 having a first vertical rotation axis Q1, disposed on the opposite side of the shaft 4 from the first gear 7, and having an engagement portion that engages with the drive gear 5. The drive gear 5 and the second gear 9 are formed so that teeth provided on the engagement portion of the drive gear 5 and teeth provided on the engagement portion of the second gear 9 engage with each other. By providing the drive gear 5 and the second gear 9 in this manner, it is possible to convert rotational movement of the drive gear 5 about its longitudinal direction x as its rotation axis into rotational movement of the second gear 9 about its rotation axis in a direction perpendicular to the longitudinal direction x. The drive gear 5 rotates about the shaft 4 as its rotation axis, and the second gear 9 is disposed opposite the first gear 7 across the shaft 4. Therefore, when the drive gear 5 is rotated, the second gear 9 rotates in the opposite direction to the first gear 7.
[0030] The types of the drive gear 5, the first gear 7, and the second gear 9 are not particularly limited as long as the rotation axes of the first gear 7 and the second gear 9 can be arranged so as to intersect perpendicularly with the rotation axis of the drive gear 5. Examples of combinations of the drive gear 5, the first gear 7, and the second gear 9 (more specifically, the combination of the engagement portion of the drive gear 5, the engagement portion of the first gear 7, and the engagement portion of the second gear 9) include a combination where the drive gear 5 is a bevel gear and the first gear 7 and the second gear 9 are bevel gears, a combination where the drive gear 5 is a spur gear and the first gear 7 and the second gear 9 are crown gears, and a combination where the drive gear 5 is a crown gear and the first gear 7 and the second gear 9 are spur gears. The gears may be straight gears whose teeth extend parallel to the rotation axis, helical gears whose teeth extend obliquely to the rotation axis, or spiral gears whose teeth are curved. For example, the bevel gear may be a helical bevel gear, and helical bevel gears are included in the category of bevel gears. Also, spur gears whose teeth do not extend parallel to the rotation axis are also included in the spur gear. Figures 5 to 7 show configuration examples of the drive gear 5, first gear 7, and second gear 9. Figure 5 shows an example in which the drive gear 5 is a bevel gear and the first gear 7 and second gear 9 are bevel gears, Figure 6 shows an example in which the drive gear 5 is a spur gear and the first gear 7 and second gear 9 are crown gears, and Figure 7 shows an example in which the drive gear 5 is a crown gear and the first gear 7 and second gear 9 are spur gears.
[0031] The gear ratio of the first gear 7 to the drive gear 5 and the gear ratio of the second gear 9 to the drive gear 5 are not particularly limited, but in order to enable more precise control when the rotary knob 3 is rotated, it is preferable that the gear ratio of the first gear 7 to the drive gear 5 and the gear ratio of the second gear 9 to the drive gear 5 be greater than 1. In other words, it is preferable that the number of rotations of the first gear 7 and the second gear 9 per one rotation of the drive gear 5 is less than 1. The gear ratio of the first gear 7 to the drive gear 5 and the gear ratio of the second gear 9 to the drive gear 5 are more preferably 1.2 or greater, and even more preferably 1.5 or greater. There are no particular upper limits to the gear ratio of the first gear 7 to the drive gear 5 and the gear ratio of the second gear 9 to the drive gear 5, and they may be, for example, 6.0 or less, 5.0 or less, or 4.0 or less. The gear ratio of the first gear 7 to the drive gear 5 can be calculated by dividing the number of teeth of the first gear 7 by the number of teeth of the drive gear 5, and the gear ratio of the second gear 9 to the drive gear 5 can be calculated by dividing the number of teeth of the second gear 9 by the number of teeth of the drive gear 5. In view of the ease of setting the gear ratio, the preferred combination of the drive gear 5, the first gear 7, and the second gear 9 is that the drive gear 5 is a bevel gear and the first gear 7 and the second gear 9 are bevel gears, or that the drive gear 5 is a spur gear and the first gear 7 and the second gear 9 are crown gears.
[0032] It is preferable that the gear ratio of the first gear 7 to the drive gear 5 and the gear ratio of the second gear 9 to the drive gear 5 are substantially the same. The gear ratio of the first gear 7 to the drive gear 5 is preferably 0.90 times or more, more preferably 0.95 times or more, and is preferably 1.10 times or less, more preferably 1.05 times or less, of the gear ratio of the second gear 9 to the drive gear 5.
[0033] The first gear 7 is preferably disposed in the inner cavity of the handle body 2. For example, it is preferable that a first shaft member 8 is provided at a position that serves as the rotation axis of the first gear 7, and that the first shaft member 8 is fixed to the inner surface of the handle body 2 and / or the shaft 4 in the inner cavity of the handle body 2. In this case, the first gear 7 is provided rotatable relative to the first shaft member 8. Alternatively, the first gear 7 may have a shaft portion that rotates integrally with the first gear 7, and a fitting portion (e.g., a recess) for the shaft portion of the first gear 7 may be provided on the inner surface of the handle body 2 and / or the shaft 4, and the shaft portion of the first gear 7 may be fitted into the fitting portion.
[0034] The second gear 9 is preferably disposed in the inner cavity of the handle body 2. For example, it is preferable that a second shaft member 10 is provided at a position that serves as the rotation axis of the second gear 9, and that the second shaft member 10 is fixed to the inner surface of the handle body 2 and / or the shaft 4 in the inner cavity of the handle body 2. In this case, the second gear 9 is provided rotatable relative to the second shaft member 10. The second shaft member 10 may be formed integrally with the first shaft member 8. Alternatively, the second gear 9 may have a shaft portion that rotates integrally with the second gear 9, and a fitting portion (e.g., a recess) for the shaft portion of the second gear 9 may be provided on the inner surface of the handle body 2 and / or the shaft 4, and the shaft portion of the second gear 9 may be fitted into the fitting portion.
[0035] The handle 1 is provided with a first pulley 11, the first pulley 11 having a rotation axis parallel to the first vertical rotation axis Q1, located proximally or distally of the first gear 7. When the rotation knob 3 is located distally of the handle body 2, as in the handle 1 shown in FIGS. 2 to 4, the first pulley 11 is preferably located proximally of the first gear 7. On the other hand, when the rotation knob 3 is located proximally of the handle body 2, as in the handle 1 shown in FIGS. 9 and 10, the first pulley 11 is preferably located distally of the first gear 7. The first pulley 11 is preferably located at a position overlapping with the first gear 7 when the handle 1 is viewed from the distal or proximal side. Hereinafter, the rotation axis of the first pulley 11 will be referred to as the "second vertical rotation axis Q2."
[0036] The first pulley 11 is a member that is rotatable about the second vertical rotation axis Q2. It is preferable that the shaft 4 exists on the extension of the second vertical rotation axis Q2. The first pulley 11 is preferably formed in a cylindrical shape with the second vertical rotation axis Q2 as its axis, and more preferably in a disk shape with a short height (for example, a length of 1 / 2 or less of the diameter of the cylindrical circle).
[0037] The first pulley 11 is preferably disposed in the inner cavity of the handle body 2. For example, it is preferable that a third shaft member 12 is provided at a position that corresponds to the second vertical rotation axis Q2 of the first pulley 11, and that the third shaft member 12 is fixed to the inner surface of the handle body 2 and / or the shaft 4 in the inner cavity of the handle body 2. In this case, the first pulley 11 is provided rotatable relative to the third shaft member 12. Alternatively, the first pulley 11 may have a shaft portion that rotates integrally with the first pulley 11, and a fitting portion (e.g., a recess) for the shaft portion of the first pulley 11 may be provided on the inner surface of the handle body 2 and / or the shaft 4, and the shaft portion of the first pulley 11 may be fitted into the fitting portion.
[0038] A first linear member 15 is disposed in the inner cavity of the handle body 2, and is provided in an annular shape, spanning the first gear 7 and the first pulley 11. Therefore, the first gear 7 has an abutment portion 7A with which the first linear member 15 abuts around the first vertical rotation axis Q1, and the first pulley 11 has an abutment portion with which the first linear member 15 abuts around the second vertical rotation axis Q2. The first linear member 15 is preferably spanned between the first gear 7 and the first pulley 11 so as to extend in the longitudinal direction x between them. Furthermore, the first linear member 15 is preferably spanned between the first gear 7 and the first pulley 11 under tension.
[0039] In the first gear 7, the abutment portion 7A is preferably formed at a position offset from the engagement portion that engages with the drive gear 5 in the extension direction of the first vertical rotation axis Q1. In the first gear 7, the engagement portion is preferably formed closer to the shaft 4 than the abutment portion 7A, which prevents the first linear member 15 from being caught in the engagement portion of the drive gear 5 or the engagement portion of the first gear 7 when the drive gear 5 and the first gear 7 rotate. In particular, when the engagement portion of the first gear 7 is a bevel gear or a crown gear, it is preferable that the engagement portion of the first gear 7 be located closer to the shaft 4 than the abutment portion 7A.
[0040] The first gear 7 is preferably formed in a cylindrical shape with its axis on the first vertical rotation axis Q1 at the portion where the abutment portion 7A of the first linear member 15 is formed, and a groove is preferably formed on the circumferential surface of the cylindrical shape, and this groove serves as the abutment portion 7A of the first linear member 15. As described above, the first pulley 11 is preferably formed in a cylindrical or disc shape with its axis on the second vertical rotation axis Q2, and a groove is preferably formed on the circumferential surface of the cylindrical or disc shape, and this groove serves as the abutment portion of the first linear member 15.
[0041] The first linear member 15, which is looped between the first gear 7 and the first pulley 11, can move while rotating between the first gear 7 and the first pulley 11 by rotating the rotary knob 3. That is, by rotating the rotary knob 3, the drive gear 5 rotates about the longitudinal direction x as its rotation axis, and the first gear 7, which is engaged with the drive gear 5, rotates about the first vertical rotation axis Q1. The first linear member 15 abuts against the abutment portion 7A of the first gear 7, and moves together with the abutment portion 7A of the first gear 7 as the first gear 7 rotates. Because the first linear member 15 is looped between the first gear 7 and the first pulley 11, when the first linear member 15 moves together with the abutment portion 7A of the first gear 7, the first linear member 15 moves together with the abutment portion of the first pulley 11 at the abutment portion of the first gear 7 accordingly. As a result, the first linear member 15, which is looped between the first gear 7 and the first pulley 11, can move between the first gear 7 and the first pulley 11 while rotating.
[0042] The handle 1 is provided with a second pulley 13, the second pulley 13 having a rotation axis parallel to the first vertical rotation axis Q1, located proximally or distally of the second gear 9. When the rotation knob 3 is located distally of the handle body 2, as in the handle 1 shown in FIGS. 2 to 4, the second pulley 13 is preferably located proximally of the second gear 9. On the other hand, when the rotation knob 3 is located proximally of the handle body 2, as in the handle 1 shown in FIGS. 9 and 10, the second pulley 13 is preferably located distally of the second gear 9. The second pulley 13 is preferably located at a position overlapping with the second gear 9 when viewed from the distal or proximal side of the handle 1. Hereinafter, the rotation axis of the second pulley 13 will be referred to as the "third vertical rotation axis Q3."
[0043] The second pulley 13 is a member that is rotatable about the third vertical rotation axis Q3. It is preferable that the shaft 4 exists on the extension of the third vertical rotation axis Q3. The second pulley 13 is preferably formed in a cylindrical shape with the third vertical rotation axis Q3 as its axis, and more preferably in a disk shape with a short height (for example, a length of 1 / 2 or less of the diameter of the cylindrical circle).
[0044] The second pulley 13 is preferably disposed in the inner cavity of the handle body 2. For example, it is preferable that a fourth shaft member 14 is provided at a position that corresponds to the third vertical rotation axis Q3 of the second pulley 13, and that the fourth shaft member 14 is fixed to the inner surface of the handle body 2 and / or the shaft 4 in the inner cavity of the handle body 2. In this case, the second pulley 13 is provided rotatable relative to the fourth shaft member 14. Alternatively, the second pulley 13 may have a shaft portion that rotates integrally with the second pulley 13, and a fitting portion (e.g., a recess) for the shaft portion of the second pulley 13 may be provided on the inner surface of the handle body 2 and / or the shaft 4, and the shaft portion of the second pulley 13 may be fitted into the fitting portion.
[0045] The third vertical rotation axis Q3 of the second pulley 13 may be an extension of the second vertical rotation axis Q2 of the first pulley 11, or may be located closer to or closer to the proximal side than the second vertical rotation axis Q2 of the first pulley 11. When the first pulley 11 and the second pulley 13 are provided as in the former embodiment, the third shaft member 12 of the first pulley 11 and the fourth shaft member 14 of the second pulley 13 can be made common, and the third shaft member 12 and the fourth shaft member 14 can be constructed from a single member. This reduces the number of parts in the handle 1, making it easier to manufacture the handle 1.
[0046] A second linear member 16 is disposed in the inner cavity of the handle body 2, and is provided in an annular shape, spanning the second gear 9 and the second pulley 13. Therefore, the second gear 9 has an abutment portion 9A with which the second linear member 16 abuts around the first vertical rotation axis Q1, and the second pulley 13 has an abutment portion with which the second linear member 16 abuts around the third vertical rotation axis Q3. The second linear member 16 is preferably spanned between the second gear 9 and the second pulley 13 so as to extend in the longitudinal direction x between them. Furthermore, the second linear member 16 is preferably spanned between the second gear 9 and the second pulley 13 under tension.
[0047] In the second gear 9, the abutment portion 9A is preferably formed at a position offset from the engagement portion that engages with the drive gear 5 in the extension direction of the first vertical rotation axis Q1. In the second gear 9, the engagement portion is preferably formed closer to the shaft 4 than the abutment portion 9A, which prevents the second linear member 16 from being caught in the engagement portion of the drive gear 5 or the engagement portion of the second gear 9 when the drive gear 5 and the second gear 9 rotate. In particular, when the engagement portion of the second gear 9 is a bevel gear or a crown gear, it is preferable that the engagement portion of the second gear 9 be located closer to the shaft 4 than the abutment portion 9A.
[0048] The second gear 9 is preferably formed in a cylindrical shape with its axis on the first vertical rotation axis Q1 at a portion where the abutment portion 9A of the second linear member 16 is formed, and preferably has a groove formed on the circumferential surface of the cylindrical shape, which groove serves as the abutment portion 9A of the second linear member 16. As described above, the second pulley 13 is preferably formed in a cylindrical or disc shape with its axis on the third vertical rotation axis Q3, and preferably has a groove formed on the circumferential surface of the cylindrical or disc shape, which groove serves as the abutment portion of the second linear member 16.
[0049] The second linear member 16, which is looped between the second gear 9 and the second pulley 13, can move while rotating between the second gear 9 and the second pulley 13 by rotating the rotary knob 3. That is, by rotating the rotary knob 3, the drive gear 5 rotates about the longitudinal direction x as its rotation axis, and the second gear 9 engaged with the drive gear 5 rotates about the first vertical rotation axis Q1. The second linear member 16 abuts against the abutment portion 9A of the second gear 9, and moves together with the abutment portion 9A of the second gear 9 as the second gear 9 rotates. Because the second linear member 16 is looped between the second gear 9 and the second pulley 13, when the second linear member 16 moves together with the abutment portion 9A of the second gear 9, the second linear member 16 moves together with the abutment portion of the second pulley 13 at the abutment portion of the second gear 9 accordingly. As a result, the second linear member 16, which is looped between the second gear 9 and the second pulley 13, can move while rotating between the second gear 9 and the second pulley 13. However, the rotation direction of the second linear member 16 is opposite to the rotation direction of the first linear member 15. That is, in a state where the first linear member 15 and the second linear member 16 can be seen in a loop as shown in Figures 3 and 10, when the first linear member 15 rotates clockwise, the second linear member 16 rotates counterclockwise, and when the first linear member 15 rotates counterclockwise, the second linear member 16 rotates clockwise.
[0050] A first wire 17 and a second wire 18 are disposed in the lumen of the handle body 2. The distal portions of the first wire 17 and the second wire 18 are disposed in the lumen of the tube 32 and the proximal portions thereof are disposed in the lumen of the handle body 2. The distal end of the first wire 17 is preferably fixed to the distal end of the tube 32, and the distal end of the second wire 18 is preferably fixed to the distal end of the tube 32. In this case, by operating the handle 1 to pull the first wire 17 proximally, the distal end of the tube 32 can be bent in one direction, and by operating the handle 1 to pull the second wire 18 proximally, the distal end of the tube 32 can be bent in the other direction. The distal end of the first wire 17 can be defined, for example, as the portion within 100 mm proximally of the distal end of the first wire 17, and the distal end of the second wire 18 can be defined, for example, as the portion within 100 mm proximally of the distal end of the second wire 18. The distal end of the tube 32 can be defined as, for example, the portion within 100 mm proximal to the distal end of the tube 32 .
[0051] The proximal portions of the first wire 17 and the second wire 18 preferably extend from the lumen of the shaft 4 or the tube 32 to the outside within the lumen of the handle body 2, and more preferably extend from the lumen of the shaft 4 or the tube 32 distal to the midpoint between the first vertical rotation axis Q1 of the first gear 7 and the second vertical rotation axis Q2 of the first pulley 11. When the first gear 7 is disposed distal to the first pulley 11 and the second gear 9 is disposed distal to the second pulley 13 as shown in Figures 2 and 3, the proximal portions of the first wire 17 and the second wire 18 preferably extend from the lumen of the shaft 4 or the tube 32 proximal to the drive gear 5. On the other hand, when the first pulley 11 is positioned distal to the first gear 7 and the second pulley 13 is positioned distal to the second gear 9 as shown in Figures 9 and 10, the proximal portions of the first wire 17 and the second wire 18 may extend outward from the inner cavity of the shaft 4 or the tube 32 proximal to the second vertical rotation axis Q2 of the first pulley 11 or the third vertical rotation axis Q3 of the second pulley 13, or may extend outward from the inner cavity of the shaft 4 or the tube 32 distal to the second vertical rotation axis Q2 of the first pulley 11 or the third vertical rotation axis Q3 of the second pulley 13.
[0052] In the lumen of the handle body 2, the proximal portion of the first wire 17 is fixed to the first linear member 15, and the proximal portion of the second wire 18 is fixed to the second linear member 16. More specifically, in the lumen of the handle body 2, when an imaginary plane is imagined to be formed by the extension direction of the shaft 4 and the extension direction of the first vertical rotation axis Q1, the proximal portion of the first wire 17 is fixed to a portion of the annular first linear member 15 between the first gear 7 and the first pulley 11, on one side of the imaginary plane, and the proximal portion of the second wire 18 is fixed to a portion of the annular second linear member 16 between the second gear 9 and the second pulley 13, on the same side of the imaginary plane. In other words, the proximal portions of the first wire 17 and the second wire 18 are fixed to portions of the first linear member 15 and the second linear member 16, respectively, that are on the same side of the imaginary plane. For example, in a state in which the first linear member 15 and the second linear member 16 can be seen in a ring shape as shown in Figures 3 and 10, the proximal portion of the first wire 17 is fixed to a part of the first linear member 15 on one side of the shaft 4, and the proximal portion of the second wire 18 is fixed to a part of the second linear member 16 on the same side of the shaft 4.
[0053] The proximal portion of the first wire 17 may be fixed directly to the first linear member 15, or as shown in the drawings, the proximal portion of the first wire 17 may be fixed to a first fixture 19 attached to the first linear member 15. The proximal portion of the second wire 18 may be fixed directly to the second linear member 16, or as shown in the drawings, the proximal portion of the second wire 18 may be fixed to a second fixture 20 attached to the second linear member 16. Methods of fixing the first wire 17 to the first linear member 15, the second wire 18 to the second linear member 16, the first wire 17 to the first fixture 19, the second wire 18 to the second fixture 20, the first fixture 19 to the first linear member 15, and the second fixture 20 to the second linear member 16 include bonding with an adhesive, welding, tying, fitting, crimping, screwing, etc.
[0054] The handle 1 configured as described above can pull the first wire 17 proximally or the second wire 18 proximally by rotating the rotary knob 3. When the rotary knob 3 is rotated, the first linear member 15 moves while rotating between the first gear 7 and the first pulley 11, and the second linear member 16 moves while rotating in the opposite direction to the first linear member 15 between the second gear 9 and the second pulley 13. Therefore, in the handle 1 shown in the drawings, when the rotation knob 3 is rotated in one direction (counterclockwise as viewed from the proximal side in FIGS. 2 and 3, and clockwise as viewed from the proximal side in FIGS. 9 and 10), the first wire 17 fixed to the first linear member 15 is pulled proximally, and when the rotation knob 3 is rotated in the other direction (clockwise as viewed from the proximal side in FIGS. 2 and 3, and counterclockwise as viewed from the proximal side in FIGS. 9 and 10), the second wire 18 fixed to the second linear member 16 is pulled proximally. As a result, for example, it is possible to control the bending of the distal end of the tube 32.
[0055] It is preferable that the fixed portion of first wire 17 to first linear member 15 and the fixed portion of second wire 18 to second linear member 16 are always located on one side of shaft 4 (i.e., the above-described imaginary plane) regardless of the rotation of rotary knob 3. When first wire 17 is fixed to first fixture 19, it is preferable that first fixture 19 is always located on one side of shaft 4 (i.e., the above-described imaginary plane) regardless of the rotation of rotary knob 3. When second wire 18 is fixed to second fixture 20, it is preferable that second fixture 20 is always located on one side of shaft 4 (i.e., the above-described imaginary plane) regardless of the rotation of rotary knob 3. Note that, from the viewpoint of ease of control of first linear member 15, it is preferable that first wire 17 is fixed to first fixture 19 and second wire 18 is fixed to second fixture 20. With first fastener 19 attached to first linear member 15 and second fastener 20 attached to second linear member 16, even if the rotation knob 3 continues to be turned in one direction or the other, first fastener 19 gets caught on first gear 7 or first pulley 11, and second fastener 20 gets caught on second gear 9 or second pulley 13, preventing further rotation of the rotation knob 3 in one direction or the other. Therefore, the proximal portions of first fastener 19 and first wire 17 are always located on one side of the shaft 4, and similarly, the proximal portions of second fastener 20 and second wire 18 are always located on one side of the shaft 4.
[0056] The first linear member 15, the second linear member 16, the first wire 17, and the second wire 18 may be made of metal wires such as stainless steel, carbon steel, or nickel-titanium alloy, or resin wires (i.e., fiber materials) made of synthetic resins such as polyamide resins (e.g., nylon), polyolefin resins (e.g., polyethylene and polypropylene), polyester resins (e.g., PET), aromatic polyether ketone resins (e.g., PEEK), polyimide resins, aromatic polyamide resins (e.g., aramid), or fluororesins (e.g., PTFE, PFA, FEP, and ETFE). These metal wires and resin wires may have a monofilament structure or a multifilament structure. The first linear member 15, the second linear member 16, the first wire 17, and the second wire 18 may be covered by a cylindrical body made of a coiled metal or synthetic resin. The diameters (diameters) of the first linear member 15, the second linear member 16, the first wire 17, and the second wire 18 can be, for example, about 100 μm to 1500 μm.
[0057] The first linear member 15 and the second linear member 16 are preferably made of rope. This ensures the strength of the first linear member 15 and the second linear member 16, while making it easier to smoothly bend the first linear member 15 at the abutment portion 7A of the first gear 7 or the abutment portion of the first pulley 11, and easier to smoothly bend the second linear member 16 at the abutment portion 9A of the second gear 9 or the abutment portion of the second pulley 13. The rope may be a fiber rope made of a fibrous material or a wire rope made of a metal material, but a fiber rope is preferable. This makes it easier to smoothly bend the first linear member 15. The fiber rope is preferably made of a high-strength fiber material to prevent breakage, and is preferably made of so-called super fiber. Examples of super fiber include aramid fiber, ultra-high molecular weight polyethylene fiber, polyarylate fiber, ultra-high strength polyvinyl alcohol fiber, polyparaphenylene benzobisoxazole (PBO) fiber, and polyphenylene sulfide (PPS) fiber. The super fiber preferably has, for example, a tensile strength of 1 GPa or more, preferably 2 GPa or more, and an elastic modulus of 25 GPa or more, preferably 50 GPa or more.
[0058] 9 and 10 , when the first pulley 11 is positioned distal to the first gear 7 and the second pulley 13 is positioned distal to the second gear 9, the proximal portions of the first wire 17 and the second wire 18 preferably extend outward from the lumen of the shaft 4 or the tube 32 distal to the second vertical rotation axis Q2 of the first pulley 11 and the third vertical rotation axis Q3 of the second pulley 13. The handle 1 configured in this manner can smoothly pull the first wire 17 and the second wire 18 proximally, even when the rotation knob 3 is rotated to move the fixed portion of the first wire 17 to the first linear member 15 and the first fixture 19 from their distal-most positions to the proximal side, and when the fixed portion of the second wire 18 to the second linear member 16 and the second fixture 20 are moved from their distal-most positions to the proximal side.
[0059] The catheter handle of the present invention has been described above, but the catheter handle of the present invention is not limited to one that controls the bending of the distal end of the tube, as long as it displaces the first wire and the second wire distally or proximally within the lumen of the tube. For example, the catheter handle may be one that allows the first wire and / or the second wire to be inserted and removed from the distal end of the tube by operating the catheter handle. Alternatively, the catheter handle may be one in which a treatment tool such as a knife or snare is attached to the distal end of the first wire or the distal end of the second wire, and the treatment tool attached to the distal end of the first wire or the distal end of the second wire can be inserted and removed from the distal end of the tube by operating the catheter handle. [Explanation of symbols]
[0060] 1: Catheter handle 2: Handle body 3: Rotary knob 4: Shaft 5: Drive gear 6: Cylindrical member 7: First gear, 7A: Contact part 8:First shaft member 9: Second gear, 9A: Contact part 10:Second shaft member 11: First pulley 12:Third shaft member 13: Second pulley 14: 4th shaft member 15: First linear member 16: Second linear member 17: First wire 18: Second wire 19:First fixture 20:Second fixture Q1: First vertical rotation axis Q2: 2nd vertical rotation axis Q3: 3rd vertical rotation axis 31: Catheter 32: Tube
Claims
1. A handle for manipulating a catheter tube, a handle body having a longitudinally extending lumen; a rotation knob provided rotatably with respect to the handle body with the longitudinal direction as a rotation axis; a first linear member disposed in an inner cavity of the handle body; a second linear member disposed in the inner cavity of the handle body; a first wire having a distal portion disposed within the lumen of the tube and a proximal portion disposed within the lumen of the handle body; a second wire having a distal portion disposed within the lumen of the tube and a proximal portion disposed within the lumen of the handle body; a shaft disposed within a lumen of the handle body, extending in the longitudinal direction, and fixed to the handle body; a drive gear disposed outside the shaft, having a rotation axis extending in the longitudinal direction, and rotatable in conjunction with rotation of the rotary knob; a first gear having a rotation axis (hereinafter referred to as a "first vertical rotation axis") extending in a direction perpendicular to the longitudinal direction, an engagement portion that engages with the drive gear, and an abutment portion that the first linear member abuts around the first vertical rotation axis; a second gear having the first vertical rotation axis as a rotation axis, disposed on the opposite side of the shaft from the first gear, having an engaging portion that engages with the drive gear and an abutting portion with which the second linear member abuts around the first vertical rotation axis; a first pulley disposed proximally or distally of the first gear, having a rotation axis (hereinafter referred to as a "second vertical rotation axis") extending parallel to the first vertical rotation axis, and having an abutment portion around the second vertical rotation axis with which the first linear member abuts; a second pulley that is disposed proximal or distal to the second gear, has a rotation axis (hereinafter referred to as a "third vertical rotation axis") that extends parallel to the first vertical rotation axis, and has an abutment portion around the third vertical rotation axis with which the second linear member abuts; the first linear member is provided in an annular shape and extends between the first gear and the first pulley, the second linear member is provided in an annular shape and extends between the second gear and the second pulley, a proximal portion of the first wire is fixed to a portion of the annular first linear member between the first gear and the first pulley, the portion being on one side of an imaginary plane formed by an extension direction of the shaft and an extension direction of the first vertical rotation axis; A catheter handle in which the proximal portion of the second wire is the portion of the annular second linear member between the second gear and the second pulley, and is fixed to the portion on one side of the imaginary plane.
2. a first fixture attached to a portion of the annular first linear member between the first gear and the first pulley, the portion being on the one side with respect to the imaginary plane; a second fixture attached to a portion of the annular second linear member between the second gear and the second pulley, the second fixture being attached to the portion on the one side with respect to the imaginary plane, a proximal portion of the first wire is fixed to the first fixture; The catheter handle of claim 1 , wherein a proximal portion of the second wire is fixed to the second fixture.
3. 3. The catheter handle according to claim 1, wherein the third vertical rotation axis is an extension of the second vertical rotation axis.
4. a gear ratio of the first gear to the drive gear is greater than 1; 4. The catheter handle according to claim 1, wherein the gear ratio of the second gear to the drive gear is greater than 1.
5. A catheter handle according to any one of claims 1 to 4; and a tube disposed distal to the catheter handle.
Citation Information
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