Connection structure and guide wire having the connection structure
11654265 ยท 2023-05-23
Assignee
Inventors
Cpc classification
B21F15/04
PERFORMING OPERATIONS; TRANSPORTING
B21F45/008
PERFORMING OPERATIONS; TRANSPORTING
A61M2025/09175
HUMAN NECESSITIES
A61M2025/09133
HUMAN NECESSITIES
B21K25/00
PERFORMING OPERATIONS; TRANSPORTING
B21F15/06
PERFORMING OPERATIONS; TRANSPORTING
A61M2025/09141
HUMAN NECESSITIES
International classification
Abstract
A connection structure includes a multi-thread coil formed by winding first metal element wires formed of a first metal and second metal element wires formed of a second metal arranged between a first metal body including the first metal and a second metal body including the second metal. The first metal body is connected to the first metal element wires of the multi-thread coil, and the second metal body is connected to the second metal element wires of the multi-thread coil. The connection structure imparts improved flexibility to the connection between the first and second metal bodies, and an appropriate connection can be provided even when the first and second metal bodies are made of dissimilar metals.
Claims
1. A connection structure comprising: a first metal body comprising a first metal; a second metal body comprising a second metal; and a multi-thread coil wrapped around a portion of an outermost circumferential surface of a cylindrical distal end of the first metal body and an outermost circumferential surface of a cylindrical proximal end of the second metal body, the multi-thread coil comprising: a first element wire comprising the first metal; and a second element wire comprising the second metal, wherein: the first element wire is connected to the outermost circumferential surface of the distal end of first metal body, and the second element wire is connected to the outermost circumferential surface of the proximal end of the second metal body.
2. The connection structure according to claim 1, wherein: the first metal body is not connected to the second element wire, and the second metal body is not connected to the first element wire.
3. The connection structure according to claim 1, wherein: the first element wire and the second element wire are alternately disposed, and the first element wire is connected to the outermost circumferential surface of the distal end of the first metal body so as to sandwich the second element wire, and the second element wire is connected to the outermost circumferential surface of the proximal end of the second metal body so as to sandwich the first element wire.
4. The connection structure according to claim 2, wherein: the first element wire and the second element wire are alternately disposed, and the first element wire is connected to the outermost circumferential surface of the distal end of the first metal body so as to sandwich the second element wire, and the second element wire is connected to the outermost circumferential surface of the proximal end of the second metal body so as to sandwich the first element wire.
5. The connection structure according to claim 1, wherein the first metal is a stainless steel alloy, and the second metal is a nickel-titanium alloy.
6. The connection structure according to claim 2, wherein the first metal is a stainless steel alloy, and the second metal is a nickel-titanium alloy.
7. The connection structure according to claim 3, wherein the first metal is a stainless steel alloy, and the second metal is a nickel-titanium alloy.
8. The connection structure according to claim 4, wherein the first metal is a stainless steel alloy, and the second metal is a nickel-titanium alloy.
9. A guide wire comprising: a core shaft comprising the connection structure according to claim 1; and a coil body covering a distal portion of the core shaft.
10. A guide wire comprising: a core shaft comprising the connection structure according to claim 2; and a coil body covering a distal portion of the core shaft.
11. A guide wire comprising: a core shaft comprising the connection structure according to claim 3; and a coil body covering a distal portion of the core shaft.
12. A guide wire comprising: a core shaft comprising the connection structure according to claim 4; and a coil body covering a distal portion of the core shaft.
13. A guide wire comprising: a core shaft comprising the connection structure according to claim 5; and a coil body covering a distal portion of the core shaft.
14. The connection structure according to claim 1, wherein: the first element wire is connected to the outermost circumferential surface of the distal end of the first metal body by welding, and the second element wire is connected to the outermost circumferential surface of the proximal end of the second metal body by welding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(9) Below, embodiments of the present invention will be described with reference to the drawings.
(10)
(11) Note that in order to clearly indicate that a first rod 3 and first metal element wires 9 as described below comprise the same material, and a second rod 5 and second metal element wires 7 as described below comprise the same material, only portions corresponding to the second rod 5 and the second metal wires 7 are shaded in
(12) As shown in
(13) The multi-thread coil 4 in
(14) As shown in
(15) Further, with reference to
(16) On the other hand, the second rod 5 comprising the nickel-titanium alloy is welded to the second metal element wires 7 (7a, 7b, 7c, 7d, 7e, 7f) comprising the nickel titanium alloy, but is not welded to the first metal element wires 9 (9a, 9b, 9c, 9d, 9e, 9f) comprising the stainless steel alloy, as shown in
(17) Moreover, with reference to
(18) Note that the multi-thread coil 4 in
(19) Further, in the connection structure 1 described above, the first rod 3 comprises a stainless steel alloy, and the second rod 5 comprises a nickel-titanium alloy, and the multi-thread coil 4 is formed by winding the first metal element wires 9 comprising the stainless steel alloy and the second metal element wires 7 comprising the nickel-titanium alloy. However, the configuration is not limited to this.
(20) For example, the first rod 3 may comprise a cobalt-chromium alloy, and the second rod 5 may comprise a nickel-titanium alloy, and the multi-thread coil 4 may be formed by winding the first metal element wires 9 comprising the cobalt-chromium alloy and the second metal element wires 7 comprising the nickel-titanium alloy. Alternatively, the first rod 3 may comprise a stainless steel alloy, and the second rod 5 may comprise a cobalt-chromium alloy, and the multi-thread coil 4 may be formed by winding the first metal element wires 9 comprising the stainless steel alloy and the second metal element wires 7 comprising the cobalt-chromium alloy.
(21) In the connection structure 1 shown in
(22) Further, in the connection structure 1 according to
(23) Moreover, the connection structure 1 can improve the flexibility of the connected portion, and can also provide an appropriate connection even when dissimilar metals are used such as a stainless steel alloy and a nickel titanium alloy, which are difficult to directly connect to each other.
(24)
(25) Note that in order to clearly indicate that a third rod 23 and third metal element wires 29 as described below comprise the same material, and a fourth rod 25 and fourth metal element wires 27 as described below comprise the same material, only portions corresponding to the fourth rod 25 and the fourth metal wires 27 are shaded in
(26) As shown in
(27) The multi-thread coil 24 in
(28) The third rod 23 comprising the stainless steel alloy is welded to the third metal element wires 29 (29a, 29b, 29c, 29d, 29e, 29f) comprising the stainless steel alloy, but is not welded to the fourth metal element wires 27 (27a, 27b, 27c, 27d, 27e, 27f) comprising the nickel titanium alloy, as in the multi-thread coil 4.
(29) Further, the third metal element wires 29 (29a, 29b, 29c, 29d, 29e, 29f) are welded to the third rod 23 so as to sandwich two of the fourth metal element wires 27 (27a, 27b, 27c, 27d, 27e, 27f) from both sides of the pair of fourth metal element wires 27 at a connected portion between the third rod 23 and the multi-thread coil 24.
(30) On the other hand, the fourth rod 25 comprising the nickel-titanium alloy is welded to the fourth metal element wires 27 (27a, 27b, 27c, 27d, 27e, 27f) comprising the nickel titanium alloy, but is not welded to the third metal element wires 29 (29a, 29b, 29c, 29d, 29e, 29f) comprising the stainless steel alloy, as in the multi-thread coil 4.
(31) Further, the fourth metal element wires 27 (27a, 27b, 27c, 27d, 27e, 27f) are welded to the fourth rod 25 so as to sandwich two of the third metal element wires 29 (29a, 29b, 29c, 29d, 29e, 29f) from both sides of the pair of third metal element wires 29 at a connected portion between the fourth rod 25 and the multi-thread coil 24.
(32) Note that in the multi-thread coil 24, two of the third metal element wires 29 (29a, 29b, 29c, 29d, 29e, 29f) are paired, and two of the fourth metal element wires 27 (27a, 27b, 27c, 27d, 27e, 27f) are paired, but the configuration is not limited to this. Three of the third metal element wires 29 (29a, 29b, 29c, 29d, 29e, 29f) may be bundled, and three of the fourth metal element wires 27 (27a, 27b, 27c, 27d, 27e, 27f) may be bundled. However, the third metal element wires 29 and the fourth metal element wires 27 preferably cover the entire cross-sectional circumferences of the third rod 23 and the fourth rod 25 where connected.
(33) Further, in the connection structure 21 described above, the third rod 23 comprises a stainless steel alloy, and the fourth rod 25 comprises a nickel-titanium alloy, and the multi-thread coil 24 is formed by winding the third metal element wires 29 comprising the stainless steel alloy and the fourth metal element wires 27 comprising the nickel-titanium alloy. However, the configuration is not limited to this.
(34) For example, the third rod 23 may comprise a cobalt-chromium alloy, and the fourth rod 25 may comprise a nickel-titanium alloy, and the multi-thread coil 24 may be formed by winding the third metal element wires 29 comprising the cobalt-chromium alloy and the fourth metal element wires 27 comprising the nickel-titanium alloy. Alternatively, the third rod 23 may comprise a stainless steel alloy, and the fourth rod 25 may comprise a cobalt-chromium alloy, and the multi-thread coil 24 may be formed by winding the third metal element wires 29 comprising the stainless steel alloy and the fourth metal element wires 27 comprising the cobalt-chromium alloy.
(35) In the connection structure 21 shown in
(36) Moreover, the connection structure 21 can improve the flexibility of the connected portion, and can also provide an appropriate connection even when dissimilar metals are used such as a stainless steel alloy and a nickel-titanium alloy, which are difficult to directly connect to each other.
(37)
(38) Note that in order to clearly indicate that a first cylinder portion 33a, a first tapered portion 33b, a second cylinder portion 33c, a second tapered portion 33d, a third cylinder portion 33e, and fifth metal element wires 39 of a core shaft 33 as described below all comprise the same material, and that a fourth cylinder portion 33g and sixth metal element wires 37 of the core shaft 33 as described below all comprise the same material, only portions corresponding the fourth cylinder portion 33g and the sixth metal element wires 37 of the core shaft 33 are shaded in
(39) As shown in
(40) The coil body 48 is a single-thread coil body comprising a stainless steel alloy.
(41) The core shaft 33 comprises, as listed from its distal end, the first cylinder portion 33a, the first tapered portion 33b, the second cylinder portion 33c, the second tapered portion 33d, the third cylinder portion 33e, the fourth cylinder portion 33g, a multi-thread coil body 33f, and the fourth cylinder portion 33g.
(42) Here, the first cylinder portion 33a, the first tapered portion 33b, the second cylinder portion 33c, the second tapered portion 33d, and the third cylinder portion 33e form an elongated metal rod body with a round cross-section comprising a stainless steel alloy, and the fourth cylinder portion 33g is an elongated metal rod body with a round cross-section comprising a nickel-titanium alloy.
(43) Further, the multi-thread coil 33f is formed by winding 6 fifth metal element wires 39 (39a, 39b, 39c, 39d, 39e, 39f) and 6 sixth metal element wires 37 (37a, 37b, 37c, 37d, 37e, 37f).
(44) The coil body 48 is a single-thread coil body comprising the stainless steel alloy. A distal end of the coil body 48 is brazed to a distal end of the first cylinder portion 33a of the core shaft 33 to form a front brazing portion 42.
(45) Further, a proximal end part of the coil body 48 is brazed to the second cylinder portion 33c of the core shaft 33 to form a proximal end brazing portion 46, and an intermediate part (a middle part) of the coil body 48 is brazed to the first tapered portion 33b of the core shaft 33 to form a middle brazing portion 44.
(46) Further, in the multi-thread coil 33f, the fifth metal element wires 39 and the sixth metal element wires 37 are adjacently wound one by one.
(47) The third cylinder portion 33e comprising the stainless steel alloy is welded to the fifth metal element wires 39 (39a, 39b, 39c, 39d, 39e, and 39f) comprising the stainless steel alloy of the multi-thread coil 33f, but is not welded to the sixth metal element wires 37 (37a, 37b, 37c, 37d, 37e, 37f) comprising the nickel-titanium alloy of the multi-thread coil 33f.
(48) Further, the fifth metal element wires 39 (39a, 39b, 39c, 39d, 39e, 39f) are welded to the third cylinder portion 33e so as to sandwich the sixth metal element wires 37 (37a, 37b, 37c, 37d, 37e, 37f) from both sides of each sixth metal element wire 37 at a connected portion of the third cylinder portion 33e and the multi-thread coil 33f.
(49) On the other hand, the fourth cylinder portion 33g comprising the nickel-titanium alloy is welded to the sixth metal element wires 37 (37a, 37b, 37c, 37d, 37e, 37f) comprising the nickel-titanium alloy of the multi-thread coil 33f, but is not welded to the fifth metal element wires 39 (39a, 39b, 39c, 39d, 39e, 39f) comprising the stainless steel alloy of the multi-thread coil 33f.
(50) Further, the sixth metal element wires 37 (37a, 37b, 37c, 37d, 37e, 37f) are welded to the fourth cylinder portion 33g so as to sandwich the fifth metal element wires 39 (39a, 39b, 39c, 39d, 39e, 39f) from both sides of each fifth metal element wire 39 at a connected portion of the fourth cylinder portion 33g and the multi-thread coil 33f.
(51) Note that the multi-thread coil 33f shown in
(52) Further, in the guide wire 40 shown in
(53) For example, the third cylinder portion 33e of the core shaft 33 may comprise a cobalt-chromium alloy, and the fourth cylinder portion 33g of the core shaft 33 may comprise a nickel-titanium alloy, and the multi-thread coil 33f may be formed by winding the fifth metal element wires 39 comprising the cobalt-chromium alloy and the sixth metal element wires 37 comprising the nickel-titanium alloy. Alternatively, the third cylinder portion 33e of the core shaft 33 may comprise a stainless steel alloy, and the fourth cylinder portion 33g of the core shaft 33 may comprise a cobalt-chromium alloy, and the multi-thread coil 33f may be formed by winding the fifth metal element wires 39 comprising the stainless steel alloy and the sixth metal element wires 37 comprising the cobalt-chromium alloy.
(54) In the guide wire 40 shown in
(55) Further, in the guide wire 40 shown in
(56) Note that as described above, an example is presented where a connection structure corresponding to the connection structure 1 is used in the guide wire 40, but the configuration is not limited to this. The connection structure 24 may also be used in a guide wire. In that case, the advantageous effects of the connection structure 24 will be manifested therein.
(57) Guide wires according to the disclosed embodiments are described above, but the present invention shall not be limited to the above examples. Various modifications can be made to the above-described examples without departing from the spirit of the present invention.
(58) For example, the metal element wires 7, 9, 27, 29, 37, 39 of the multi-thread coil 4, 24, 33f are welded to the rod bodies 3, 5, 23, 25 or the elongated metal rod bodies forming the core shaft 33 in the embodiments described above, but they may be connected by a method other than welding. However, welding is preferred considering that metals can be easily connected.