WIRE ROPE
20170328000 · 2017-11-16
Assignee
Inventors
Cpc classification
D07B5/007
TEXTILES; PAPER
D07B2207/4045
TEXTILES; PAPER
D07B1/066
TEXTILES; PAPER
D07B2207/4045
TEXTILES; PAPER
International classification
Abstract
A wire rope having improved durability and that can be used in a medical device to be inserted into a patient's body. The wire rope includes a core wire and side wires. The core wire is a special metal element wire that has a hardness at an outer periphery in a cross-section thereof that is higher than that at a center in the cross-section thereof. The wire rope does not include grease.
Claims
1. A wire rope comprising multiple metal element wires wound together, wherein the multiple metal element wires include at least one special metal element wire that has a first hardness at an outer periphery in a cross-section thereof that is higher than a second hardness at a center in the cross-section thereof.
2. The wire rope according to claim 1, wherein the at least one special metal element wire is arranged at a center of the wire rope.
3. The wire rope according to claim 2, wherein the multiple metal element wires consist of the at least one special metal element wire and multiple side metal element wires in contact with the at least one special metal element wire.
4. The wire rope according to claim 3, wherein the at least one special metal element wire has a circular cross-section, and the multiple side metal element wires each have an approximately trapezoidal cross-section.
5. A bundled wire rope formed by twisting together a plurality of the wire rope according to claim 4.
6. The wire rope according to claim 1, wherein: the at least one special metal element wire comprises multiple special metal element wires, and a twisted wire in which the multiple special metal element wires are twisted together is arranged at a center of the wire rope.
7. The wire rope according to claim 1, wherein the wire rope contains no grease.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF EMBODIMENTS
[0026] Below, embodiments of the present invention will be described with reference to the drawings.
[0027]
[0028] With reference to
[0029] The core wire 3 is a metal element wire having a circular cross-section. There is no particular limitation for the material of the core wire 3, but stainless steel is used for purposes of this discussion.
[0030] A peripheral part (outer periphery, or outer edge) of the core wire 3 in a cross-section has a higher hardness than a center of the core wire 3 in the cross-section. That is, the core wire 3 is configured to have a structure where only the surface region (surface) of the core wire 3 is hardened, but the inside of the core wire 3 is not hardened. This structure allows the core wire 3 to have both flexibility and improved resistance to abrasion due to contact between the core wire 3 and the side wires 5.
[0031] Note that conventionally known methods such as swaging and wire drawing can be used in order to obtain a metal element wire (e.g., the core wire 3) in which a hardness of the peripheral part in a cross-section of the metal element wire is higher than that of the center in the cross-section.
[0032] Further, the hardness of the core wire 3 may increase in a second-order fashion toward the outer periphery from the center in a cross-section of the core wire 3 as shown in
[0033] Note that the hardness described in
[0034] The hardness of the center of the core wire 3 in
[0035] Note that the experiments performed by the present applicant demonstrated that the flexibility and abrasion resistance were improved even when the hardness at the center in a cross-section was only 550 HV, and the hardness at the outer periphery in the cross-section was only 580 HV.
[0036] In contrast, the flexibility of the wire rope 1 was impaired and the durability decreased when the hardness of the entire region in a cross-section of the core wire 3 was, for example, 700 HV.
[0037] The side wires 5 (5a, 5b, 5c, 5d, 5e, and 5f), which are metal element wires each having a circular cross-section, are spirally wound around the core wire 3 in the longitudinal direction. There is no particular limitation for the material of the side wires 5 (5a, 5b, 5c, 5d, 5e, and 5f) as well, but stainless steel is used for purposes of this discussion. Tungsten may also be used.
[0038] In the wire rope 1, the core wire 3 having a hardness of the peripheral part in a cross-section higher than that of the center is arranged at the center of the wire rope 1 such that the multiple side wires 5 (5a, 5b, 5c, 5d, 5e, and 5f) all make contact with the core wire 3. This can improve the durability of the wire rope 1.
[0039] Below, another wire rope of the disclosed embodiments will be described with reference to
[0040] With reference to
[0041] The side wires 15 (15a, 15b, 15c, 15d, 15e, and 15f), which are metal element wires each deforestation-processed into an approximately trapezoidal shape, are spirally wound around the core wire 3 in the longitudinal direction. There is no particular limitation for the material of the side wires 15 (15a, 15b, 15c, 15d, 15e, and 15f), but stainless steel is used for purposes of this discussion. Tungsten may also be used.
[0042] In the wire rope 11, the core wire 3 having a hardness of the peripheral part in a cross-section higher than that of the center is arranged at the center of the wire rope 11 such that the 6 side wires 15 (15a, 15b, 15c, 15d, 15e, and 15f) each having an approximately trapezoidal cross-section all make surface contact with the core wire 3. The wire rope 11 has an approximately circular cross-sectional outer periphery. This can improve not only the torque transmissibility of the wire rope 11 (the torque transmissibility to one end of a wire rope when the other end of the wire rope is rotated), but also the durability of the wire rope.
[0043]
[0044] With reference to
[0045] The side wire ropes 21, 31, 41, 51, 61, and 71 each have a similar structure to that of the core wire rope 11, and are spirally wound around the core wire rope 11 in the longitudinal direction.
[0046] That is, the side wire rope 21 comprises a core wire 3a located at the center (which corresponds to the “special metal element wire”) and 6 side wires 25 (25a, 25b, 25c, 25d, 25e, and 25f) wound around the core wire 3a; the side wire rope 31 comprises a core wire 3b (which corresponds to the “special metal element wire”) located at the center and 6 side wires 35 (35a, 35b, 35c, 35d, 35e, and 35f) wound around the core wire 3b; the side wire rope 41 comprises a core wire 3c (which corresponds to the “special metal element wire”) located at the center and 6 side wires 45 (45a, 45b, 45c, 45d, 45e, and 45f) wound around the core wire 3c; the side wire rope 51 comprises a core wire 3d (which corresponds to the “special metal element wire”) located at the center and 6 side wires 55 (55a, 55b, 55c, 55d, 55e, and 55f) wound around the core wire 3d; the side wire rope 61 comprises a core wire 3e (which corresponds to the “special metal element wire”) located at the center and 6 side wires 65 (65a, 65b, 65c, 65d, 65e, and 65f) wound around the core wire 3e; and the side wire rope 71 comprises a core wire of 3f (which corresponds to the “special metal element wire”) located at the center and 6 side wires 75 (75a, 75b, 75c, 75d, 75e, and 75f) wound around the core wire 3f.
[0047] The wire rope 101 is formed by twisting a plurality of wire ropes, each of which has arranged at its center a core wire having a hardness of the peripheral part in a cross-section higher than that of the center such that 6 side wires each having an approximately trapezoidal cross-section all make contact with the core wire, each wire rope being configured to have an approximately circular cross-sectional outer periphery. This can further improve not only the torque transmissibility of the wire rope 101 (the torque transmissibility to one end of a wire rope when the other end of the wire rope is rotated), but also the durability of the wire rope 101.
[0048]
[0049] The core twisted wire 13 comprises 4 metal element wires (13a, 13b, 13c, and 13d (each corresponds to the “special metal element wire”), and each metal element wire has a circular cross-section. There is no particular limitation for the material of the metal element wires (13a, 13b, 13c, and 13d), but stainless steel is used for purposes of this discussion.
[0050] Here, the metal element wires (13a, 13b, 13c, and 13d), which constitute the core twisted wire 13, each have a hardness of the peripheral part in a cross-section higher than that of the center in the cross-section. That is, each metal element wire (13a, 13b, 13c, and 13d) has a structure in which only the surface of the metal element wire is hardened, but the inside of the metal element wire is not hardened. Further, the core twisted wire 13 is formed by twisting four of these metal element wires. This can improve the flexibility and durability of the core twisted wire 13.
[0051] Moreover, 4 inner side wires 82 (82a, 82b, 82c, and 82d) are arranged at the outside of the core twisted wire 13. Each of the inner side wires 82 (82a, 82b, 82c, and 82d) has a circular cross-section and a diameter smaller than that of each metal element wire (13a, 13b, 13c, and 13d) of the core twisted wire 13. Note that there is no particular limitation for the material of the inner side wires 82 (82a, 82b, 82c, and 82d), but stainless steel is used for purposes of this discussion.
[0052] Further, 8 outer side wires 85 (85a, 85b, 85c, 85d, 85e, 85f, 85g, and 85h), which are metal element wires each having a circular cross-section, are arranged at the outside of the core twisted wire 13 and the inner side wires 82 (82a, 82b, 82c, and 82d). Note that there is no particular limitation for the material of the outer side wires 85 (85a, 85b, 85c, 85d, 85e, 85f, 85g, and 85h), but stainless steel is used for purposes of this discussion.
[0053] In the wire rope 81, the core twisted wire 13 (formed by twisting 4 metal element wires each having a hardness of the peripheral part in a cross-section higher than that of the central part) is arranged at the center. This can further improve the flexibility and durability of the wire rope 81.
[0054]
[0055] The core twisted wire 23 comprises 4 metal element wires (23a, 23b, 23c, and 23d, and each of the metal element wire has a circular cross-section. There is no particular limitation for the material of the metal element wires (23a, 23b, 23c, and 23d), but stainless steel is used for purposes of the discussion.
[0056] Here, among the metal element wires (23a, 23b, 23c, and 23d) of the core twisted wire 23, the metal element wire 23d has a hardness of the peripheral part in a cross-section higher than that of the center in the cross-section. That is, the metal element wire 23d is configured to have a structure in which only the surface of the metal element wire is hardened, but the inside of the metal element wire is not hardened (the metal element wire 23d corresponds to the “special metal element wire”). On the other hand, the metal element wires 23a, 23b, and 23c each have an approximately constant hardness profile throughout a cross-section.
[0057] Further, the core twisted wire 23 is formed by twisting the 4 metal element wires. This can further improve the flexibility of the core twisted wire 23.
[0058] Moreover, 4 inner side wires 92 (92a, 92b, 92c, and 92d) are arranged at the outside of the core twisted wire 23. Each of the inner side wires 92 (92a, 92b, 92c, and 92d) has a circular cross-section and a diameter smaller than that of each metal element wire (23a, 23b, 23c, and 23d) of the core twisted wire 23. Note that there is no particular limitation for the material of the inner side wires 92 (92a, 92b, 92c, and 92d), but stainless steel is used for purposes of this discussion.
[0059] Furthermore, 8 outer side wires 95 (95a, 95b, 95c, 95d, 95e, 95f, 95g, and 95h), which are metal element wires each having a circular cross-section, are arranged at the outside of the core twisted wire 23 and the inner side wires 92 (92a, 92b, 92c, and 92d). Note that there is no particular limitation for the material of the outer side wires 95 (95a, 95b, 95c, 95d, 95e, 95f, 95g, and 95h), but stainless steel is used for purposes of this discussion.
[0060] In the wire rope 91, the core twisted wire 23 formed with the metal element wires each having a hardness of the peripheral part in a cross-section higher than that of the central part is arranged at the center of the wire rope 91. This can improve the flexibility and durability of the wire rope 91.
[0061] Although disclosed embodiments of wire ropes are described above, the present invention shall not be limited to these embodiments. The present invention can be practiced with various modifications made without departing from the scope of the present invention.
[0062] For example, as described above, the side wires 5, 15, 25, 35, 45, 55, 65, and 75 in the wire ropes 1, 11, and 101 are each formed with 6 metal element wires. The number of metal element wires is, however, not limited to 6, and 3 or more may be sufficient.
[0063] Moreover, the core twisted wires 13 and 23 are described as being formed by twisting 4 metal element wires. The number of metal element wires is, however, not limited to 4, and two or more may be sufficient.
[0064] Moreover, the outer side wires 85 and 95 in the wire ropes 81 and 91 each comprise 8 metal element wires. The number of metal element wires is, however, not limited to 8, and any number may be used as long as the core twisted wire 13 or 23 is covered.
[0065] Moreover, the inner side wires 82 and 92 are provided in the wire ropes 81 and 91, but the inner side wires 82 and 92 may not be present.