EP1837301A1 - Rope for elevator and method for producing the same - Google Patents

Rope for elevator and method for producing the same Download PDF

Info

Publication number
EP1837301A1
EP1837301A1 EP05703629A EP05703629A EP1837301A1 EP 1837301 A1 EP1837301 A1 EP 1837301A1 EP 05703629 A EP05703629 A EP 05703629A EP 05703629 A EP05703629 A EP 05703629A EP 1837301 A1 EP1837301 A1 EP 1837301A1
Authority
EP
European Patent Office
Prior art keywords
strand
covering
inner layer
outer layer
strands
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP05703629A
Other languages
German (de)
French (fr)
Other versions
EP1837301A4 (en
Inventor
Takenobu c/o Mitsubishi Denki Kabushiki HONDA
Atsushi c/o Mitsubishi Denki Kabushiki MITSUI
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Mitsubishi Electric Corp
Original Assignee
Mitsubishi Electric Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Mitsubishi Electric Corp filed Critical Mitsubishi Electric Corp
Publication of EP1837301A1 publication Critical patent/EP1837301A1/en
Publication of EP1837301A4 publication Critical patent/EP1837301A4/en
Withdrawn legal-status Critical Current

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B66HOISTING; LIFTING; HAULING
    • B66BELEVATORS; ESCALATORS OR MOVING WALKWAYS
    • B66B7/00Other common features of elevators
    • B66B7/06Arrangements of ropes or cables
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B1/00Constructional features of ropes or cables
    • D07B1/16Ropes or cables with an enveloping sheathing or inlays of rubber or plastics
    • D07B1/162Ropes or cables with an enveloping sheathing or inlays of rubber or plastics characterised by a plastic or rubber enveloping sheathing
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B1/00Constructional features of ropes or cables
    • D07B1/16Ropes or cables with an enveloping sheathing or inlays of rubber or plastics
    • D07B1/165Ropes or cables with an enveloping sheathing or inlays of rubber or plastics characterised by a plastic or rubber inlay
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B1/00Constructional features of ropes or cables
    • D07B1/16Ropes or cables with an enveloping sheathing or inlays of rubber or plastics
    • D07B1/165Ropes or cables with an enveloping sheathing or inlays of rubber or plastics characterised by a plastic or rubber inlay
    • D07B1/167Ropes or cables with an enveloping sheathing or inlays of rubber or plastics characterised by a plastic or rubber inlay having a predetermined shape
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B2201/00Ropes or cables
    • D07B2201/10Rope or cable structures
    • D07B2201/1028Rope or cable structures characterised by the number of strands
    • D07B2201/1036Rope or cable structures characterised by the number of strands nine or more strands respectively forming multiple layers
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B2201/00Ropes or cables
    • D07B2201/20Rope or cable components
    • D07B2201/2015Strands
    • D07B2201/2042Strands characterised by a coating
    • D07B2201/2044Strands characterised by a coating comprising polymers
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B2201/00Ropes or cables
    • D07B2201/20Rope or cable components
    • D07B2201/2015Strands
    • D07B2201/2046Strands comprising fillers
    • DTEXTILES; PAPER
    • D07ROPES; CABLES OTHER THAN ELECTRIC
    • D07BROPES OR CABLES IN GENERAL
    • D07B2501/00Application field
    • D07B2501/20Application field related to ropes or cables
    • D07B2501/2007Elevators

Definitions

  • the present invention relates to an elevator rope having a resin outer layer covering body provided in an outer peripheral portion thereof, and to a method of manufacturing the same.
  • an inner layer rope has a plurality of inner layer strands formed of a plurality of steel wires twisted together.
  • the outer periphery of the inner layer rope is covered with an inner layer covering body formed of a resin.
  • An outer layer is provided in the outer peripheral portion of the inner layer covering body.
  • the outer layer has a plurality of outer layer strands formed of a plurality of steel wires twisted together.
  • the outer periphery of the outer layer is covered with an outer layer covering body formed of a high-friction resin material (see, for example, Patent Document 1).
  • Patent Document 1 WO 03/050348 A1
  • the present invention has been made with a view toward solving the above problems. It is an object of the present invention to provide an elevator rope which makes it possible to secure a stable resin thickness between the layers and between the strands and which helps to more reliably prevent the strands from coming into contact with each other, to thereby achieve an increase in the service life, and a method of manufacturing such an elevator rope.
  • An elevator rope includes: a core strand having a core strand main body formed of a plurality of steel wires twisted together, and a resin strand covering body covering the core strand main body; an inner layer strand assembly composed of a plurality of inner layer strands twisted together in an outer periphery of the core strand around the core strand, each inner layer strand having an inner layer strand main body formed of a plurality of steel wires twisted together and a resin inner layer covering body covering the inner layer strand main body; an outer layer strand assembly composed of a plurality of outer layer strands twisted together in an outer periphery of the inner layer strand assembly, each outer layer strand having an outer layer strand main body formed of a plurality of steel wires twisted together; and a resin outer layer covering body covering the outer layer strand assembly, in which the inner layer strand main bodies and the inner strand covering bodies are glued to each other through the intermediation of an adhesive, and the outer layer strands and the outer
  • the elevator rope according to the present invention includes: a core strand having a core strand main body formed of a plurality of steel wires twisted together, and a resin strand covering body covering the core strand main body; an inner layer strand assembly composed of a plurality of inner layer strands twisted together in an outer periphery of the core strand around the core strand, each inner layer strand having an inner layer strand main body formed of a plurality of steel wires twisted together and a resin inner layer covering body covering the inner layer strand main body; an outer layer strand assembly composed of a plurality of outer layer strands twisted together in an outer periphery of the inner layer strand assembly, each outer layer strand having an outer layer strand main body formed of a plurality of steel wires twisted together; and a resin outer layer covering body covering the outer layer strand assembly, in which the inner layer strand main bodies and the inner strand covering bodies are glued to each other through the intermediation of an adhesive, and the outer layer strand main body
  • a method of manufacturing the elevator rope includes: a first step of producing a plurality of strands by covering strand main bodies, each of which is formed of a plurality of steel wires twisted together, with resin strand covering bodies; a second step of twisting together the strands; and a third step of covering an assembly of the strands with a resin outer covering body after the second step.
  • Fig. 1 is a diagram schematically showing the construction of an elevator apparatus according to Embodiment 1 of the present invention.
  • a support beam 2 is horizontally fixed to the upper portion of the interior of a hoistway 1.
  • a driving machine (hoist) 3 is mounted on the support beam 2.
  • the driving machine 3 has a driving machine main body 4 including a motor, and a driving sheave 5 rotated by the driving machine main body 4.
  • the driving machine 3 is arranged horizontally so that a rotation shaft of the driving sheave 5 may extend vertically.
  • FIG. 1 shows one main rope 6.
  • the end portions of the main ropes 6 are connected to the support beam 2.
  • a car 7 and a counterweight 8 are suspended in the hoistway 1 by the main ropes 6, and are caused to ascend and descend by the driving machine 3.
  • a pair of car sash pulleys 9 around which the main ropes 6 are wrapped.
  • a pair of counterweight sash pulleys 10 around which the main ropes 6 are wrapped.
  • Mounted on the support beam 2 are a first pulley 11 for guiding the main ropes 6 from the driving sheave 5 to the car sash pulleys 9 and a second pulley 12 for guiding the main ropes 6 from the driving sheave 5 to the counterweight sash pulleys 10.
  • Fig. 2 is a cross-sectional view of the main rope 6 of Fig. 1.
  • the core strand 21 has a core strand main body 22 formed of a plurality of steel wires twisted together, and a resin core strand covering body 23 covering the core strand main body 22.
  • the sectional configuration of the steel wires situated in the outer peripheral portion of the core strand main body 22 is deformed by compressing the core strand main body 22 from the outer periphery thereof.
  • the core strand covering body 23 is formed of a hard resin, such as polyethylene resin.
  • an inner layer strand assembly 25 composed of a plurality of (eight, in this example) inner layer strands 24.
  • the inner layer strands 24 are twisted together around the core strand 21, that is, in the outer periphery of the core strand 21.
  • Each inner layer core strand 24 has an inner layer strand main body 26 formed of a plurality of steel wires twisted together, and a resin inner layer strand covering body 27 covering the inner layer strand main body 26.
  • the sectional configuration of the steel wires situated in the outer peripheral portion of the inner layer strand main body 26 is deformed by compressing the inner layer strand main body 26 from the outer periphery thereof.
  • each inner layer strand 24 undergoes a stabilization treatment for causing the adhesion performance of the adhesive to be exerted more reliably.
  • the stabilization treatment is a treatment in which the inner layer strand is heated by being left to stand for several minutes to several days in a furnace at a temperature of approximately 50 to 150°C to thereby enhance the adhesion force.
  • the diameter of each inner layer strand 24 is smaller than that of the core strand 21. That is, the number of steel wires contained in each inner layer strand main body 26 is smaller than the number of constituent strands contained in the core strand main body 22.
  • the inner layer strand covering bodies 27 are formed of a hard resin, such as polyethylene resin.
  • each outer layer strand 29 is composed solely of an outer layer strand main body, which is formed of a plurality of steel wires twisted together.
  • the diameter of each outer layer strand 29 is smaller than that of the inner layer strands 24. That is, the number of constituent wires contained in the outer layer strands 29 is smaller than the number of constituent wires contained in the inner layer strand main bodies 26.
  • the outer periphery of the outer layer strand assembly 30 is covered with a resin outer layer covering body 31.
  • the inner layer covering body 28 is formed of the same kind of material as the outer layer covering body 31 (a material whose ingredients and mechanical characteristics are the same or alike), and is integrated with the outer layer covering body 31. That is, the inner layer covering body 28 and the outer layer covering body 31 are formed of a high-friction resin material exhibiting high wear resistance and a coefficient of friction of 0.2 or more, for example, polyurethane resin.
  • An adhesive is applied to the outer periphery of each outer layer strands 29, and the outer layer strands 29, the inner layer covering body 28, and the outer layer covering body 31 are glued to each other through the intermediation of the adhesive. It is also possible to apply an adhesive to the outer periphery of each inner layer strand 24, gluing the inner layer strands 24 and the inner layer covering body 28 to each other through the intermediation of the adhesive. Like the inner layer strands 24, the outer layer strands 29 undergo a stabilization treatment after the application of the adhesive.
  • suitable examples of the adhesive to be used for the gluing of the covering bodies 28, 31 and the strands 24, 29 include an epoxy type adhesive, a phenol type adhesive, and an urethane type adhesive.
  • the core strand 21 is provided with the core strand covering body 23
  • the inner layer strands 24 are provided with the inner layer strand covering bodies 27, and the outer layer strand assembly 30 is covered with the outer layer covering body 31, so that it is possible to secure a stable resin thickness between the layers and between the strands, and the strands are more reliably prevented from coming into contact with each other, thereby achieving an increase in service life.
  • the inner layer strand main bodies 26 and the inner layer strand covering bodies 27 are glued to each other through the intermediation of the adhesive, and the outer layer strands 29 and the outer layer covering body 31 are glued to each other through the intermediation of the adhesive, which also helps to secure a stable resin thickness between the layers and between the strands, thereby achieving an increase in service life. That is, even if the main rope 6 is repeatedly bent and stretched, the covering bodies 27, 28, 31 are not deviated in position, making it possible to maintain a stable sectional configuration.
  • the rope as a whole does not easily get out of shape either, so it is also possible to secure a stable resin thickness between the layers and between the strands, making it possible to achieve an increase in service life.
  • the inner layer strands 24 are twisted together in the outer periphery of the core strand 21 (second step), and further, the outermost layer is covered with the outer layer covering body 31 (third step). That is, after the strands 21, 24 have been respectively covered with the covering bodies 23, 27, the inner layer strands 24 are twisted together around the core strand 21. As a result, it is possible to secure a stable resin thickness between the core strand 21 and the inner layer strands 24 and between the adjacent inner layer strands 24.
  • the inner layer covering body 28 and the inner layer strand covering bodies 27 are fusion-bonded to each other, so that it is possible to further stabilize the sectional configuration of the rope as a whole.
  • the inner layer covering body 28 is formed of the same kind of material as the outer layer covering body 31, and is integrated with the outer layer covering body 31, so that it is possible to further stabilize the sectional configuration and to achieve an increase in the service life of the rope as a whole.
  • the outer layer and the inner layer are integrated with each other, making it possible to bear the load burden and geometrical deformation/displacement with respect to external forces with the entire section.
  • Fig. 3 is a sectional view of an elevator rope according to Embodiment 2 of the present invention.
  • an outer layer strand assembly 33 composed of a plurality of (twenty, in this example) outer layer strands 32.
  • the outer layer strands 32 are twisted together in the outer periphery of the inner layer covering body 28.
  • each outer layer strand 32 has an outer layer strand main body 34 formed of a plurality of steel wires twisted together, and a resin outer layer strand covering body 35 covering the outer layer strand main body 34.
  • Fig. 4 is an enlarged sectional view of one of the outer layer strand 32 of Fig. 3.
  • gluing is effected by an adhesive 36.
  • the adhesive 36 is applied to the outer periphery of each outer layer strand 32, that is, to the outer periphery of each outer layer strand covering body 35. Further, a stabilization treatment is executed on the adhesive 36. Otherwise, this embodiment is of the same construction as Embodiment 1.
  • the covering bodies 23, 27, 35 are provided in the outer periphery of all the strands 21, 24, 32, so that it is possible to secure a stable resin thickness between the layers and between the strands, thereby achieving an increase in service life. Further, due to the heat when effecting covering with the outer layer covering body 31, the outer layer covering body 31 and the outer layer strand covering bodies 35 are fusion-bonded to each other, so it is possible to stabilize the sectional configuration of the rope as a whole. Further, since the adhesive 36 is also applied to the outer periphery of each outer layer strand 32, it is possible to integrate the outer layer strands 32 and the covering bodies 28, 31 with each other more reliably.
  • Fig. 6 is a cross-sectional view of an elevator rope according to Embodiment 3 of the present invention.
  • very thin resin films exist between the adjacent inner layer strands 24, or the adjacent inner layer strands 24 are in direct contact with each other.
  • very thin resin films exist between the adjacent outer layer strands 32, or the adjacent outer layer strands 32 are in direct contact with each other.
  • the sectional configuration of the inner layer strand covering bodies 27 and the outer layer strand covering bodies 35 is a substantially trapezoidal configuration with the four corners thereof rounded in order to sufficiently secure the contact area between the adjacent covering bodies 27, 35.
  • This sectional structure can be realized by, for example, applying heat and pressure when twisting together the inner layer strands 24 and the outer layer strands 32. Otherwise, this embodiment is of the same construction as Embodiment 2.
  • Fig. 1 shows an elevator apparatus of the 2:1 roping system
  • the elevator rope of the present invention can also be applied to an elevator apparatus of the 1:1 roping system.
  • the position of the driving machine is not restricted to the upper portion of the hoistway; it may also be arranged in the lower portion of the hoistway.
  • the elevator rope of the present invention is applicable to both a machine-room-less elevator and an elevator with a machine room.

Landscapes

  • Ropes Or Cables (AREA)
  • Lift-Guide Devices, And Elevator Ropes And Cables (AREA)

Abstract

An elevator rope includes a core strand, which has a core strand main body and a resin core strand covering body covering the core strand main body. An inner layer strand assembly is composed of a plurality of inner layer strands twisted together in the outer periphery of the core strand around the core strand. Each inner layer strand has an inner layer strand main body and a resin inner layer strand covering body covering the inner layer strand main body. An outer layer strand assembly is composed of a plurality of outer layer strands twisted together in the outer periphery of the inner layer strand assembly. Each outer layer strand has an outer layer strand main body. The outer layer strand assembly is covered with a resin outer layer covering body. The inner layer strand main bodies and the inner layer strand covering bodies are glued to each other through the intermediation of an adhesive, and the outer layer strand and the outer layer covering body are glued to each other through the intermediation of an adhesive.

Description

    TECHNICAL FIELD
  • The present invention relates to an elevator rope having a resin outer layer covering body provided in an outer peripheral portion thereof, and to a method of manufacturing the same.
  • BACKGROUND ART
  • In the conventional elevator ropes, an inner layer rope has a plurality of inner layer strands formed of a plurality of steel wires twisted together. The outer periphery of the inner layer rope is covered with an inner layer covering body formed of a resin. An outer layer is provided in the outer peripheral portion of the inner layer covering body. The outer layer has a plurality of outer layer strands formed of a plurality of steel wires twisted together. The outer periphery of the outer layer is covered with an outer layer covering body formed of a high-friction resin material (see, for example, Patent Document 1).
  • Patent Document 1: WO 03/050348 A1
  • DISCLOSURE OF THE INVENTION PROBLEMS TO BE SOLVED BY THE INVENTION
  • In such the conventional elevator rope, the strands of the layers come into contact with each other to cause wear and breakage of the wires, so there is a fear of the service life of the rope as a whole being reduced. Further, at the time of manufacture, it is rather difficult to secure a stable resin thickness between the layers and between the strands.
  • The present invention has been made with a view toward solving the above problems. It is an object of the present invention to provide an elevator rope which makes it possible to secure a stable resin thickness between the layers and between the strands and which helps to more reliably prevent the strands from coming into contact with each other, to thereby achieve an increase in the service life, and a method of manufacturing such an elevator rope.
  • MEANS FOR SOLVING PROBLEMS
  • An elevator rope according to the present invention includes: a core strand having a core strand main body formed of a plurality of steel wires twisted together, and a resin strand covering body covering the core strand main body; an inner layer strand assembly composed of a plurality of inner layer strands twisted together in an outer periphery of the core strand around the core strand, each inner layer strand having an inner layer strand main body formed of a plurality of steel wires twisted together and a resin inner layer covering body covering the inner layer strand main body; an outer layer strand assembly composed of a plurality of outer layer strands twisted together in an outer periphery of the inner layer strand assembly, each outer layer strand having an outer layer strand main body formed of a plurality of steel wires twisted together; and a resin outer layer covering body covering the outer layer strand assembly, in which the inner layer strand main bodies and the inner strand covering bodies are glued to each other through the intermediation of an adhesive, and the outer layer strands and the outer layer covering body are glued to each other through the intermediation of an adhesive.
    Further, the elevator rope according to the present invention includes: a core strand having a core strand main body formed of a plurality of steel wires twisted together, and a resin strand covering body covering the core strand main body; an inner layer strand assembly composed of a plurality of inner layer strands twisted together in an outer periphery of the core strand around the core strand, each inner layer strand having an inner layer strand main body formed of a plurality of steel wires twisted together and a resin inner layer covering body covering the inner layer strand main body; an outer layer strand assembly composed of a plurality of outer layer strands twisted together in an outer periphery of the inner layer strand assembly, each outer layer strand having an outer layer strand main body formed of a plurality of steel wires twisted together; and a resin outer layer covering body covering the outer layer strand assembly, in which the inner layer strand main bodies and the inner strand covering bodies are glued to each other through the intermediation of an adhesive, and the outer layer strand main body and the outer layer strand covering body are glued to each other through the intermediation of an adhesive.
    Further, a method of manufacturing the elevator rope includes: a first step of producing a plurality of strands by covering strand main bodies, each of which is formed of a plurality of steel wires twisted together, with resin strand covering bodies; a second step of twisting together the strands; and a third step of covering an assembly of the strands with a resin outer covering body after the second step.
  • BRIEF DESCRIPTION OF THE DRAWINGS
    • Fig. 1 is a front view of an elevator apparatus according to Embodiment 1 of the present invention.
    • Fig. 2 is a cross-sectional view of a main rope of Fig. 1.
    • Fig. 3 is a cross-sectional view of an elevator rope according to Embodiment 2 of the present invention.
    • Fig. 4 is an enlarged sectional view of an outer layer strand of Fig. 3.
    • Fig. 5 is a sectional view of the outer layer strand of Fig. 4 with an adhesive applied to the outer periphery thereof.
    • Fig. 6 is a cross-sectional view of an elevator rope according to Embodiment 3 of the present invention.
    BEST MODE FOR CARRYING OUT THE INVENTION
  • Preferred embodiments of the present invention will now be described with reference to the drawings.
  • Embodiment 1
  • Fig. 1 is a diagram schematically showing the construction of an elevator apparatus according to Embodiment 1 of the present invention. In the drawing; a support beam 2 is horizontally fixed to the upper portion of the interior of a hoistway 1. A driving machine (hoist) 3 is mounted on the support beam 2. The driving machine 3 has a driving machine main body 4 including a motor, and a driving sheave 5 rotated by the driving machine main body 4. The driving machine 3 is arranged horizontally so that a rotation shaft of the driving sheave 5 may extend vertically.
  • A plurality of main ropes 6, serving as elevator ropes, are wrapped around the driving sheave 5. For the sake of simplicity, Fig. 1 only shows one main rope 6. The end portions of the main ropes 6 are connected to the support beam 2. A car 7 and a counterweight 8 are suspended in the hoistway 1 by the main ropes 6, and are caused to ascend and descend by the driving machine 3.
  • Under the car 7, there are provided a pair of car sash pulleys 9 around which the main ropes 6 are wrapped. On top of the counterweight 8, there are provided a pair of counterweight sash pulleys 10 around which the main ropes 6 are wrapped. Mounted on the support beam 2 are a first pulley 11 for guiding the main ropes 6 from the driving sheave 5 to the car sash pulleys 9 and a second pulley 12 for guiding the main ropes 6 from the driving sheave 5 to the counterweight sash pulleys 10.
  • Fig. 2 is a cross-sectional view of the main rope 6 of Fig. 1. At the center of the main rope 6, there is arranged a core strand 21. The core strand 21 has a core strand main body 22 formed of a plurality of steel wires twisted together, and a resin core strand covering body 23 covering the core strand main body 22. The sectional configuration of the steel wires situated in the outer peripheral portion of the core strand main body 22 is deformed by compressing the core strand main body 22 from the outer periphery thereof. The core strand covering body 23 is formed of a hard resin, such as polyethylene resin.
  • In the outer periphery of the core strand 21, there is arranged an inner layer strand assembly 25 composed of a plurality of (eight, in this example) inner layer strands 24. The inner layer strands 24 are twisted together around the core strand 21, that is, in the outer periphery of the core strand 21. Each inner layer core strand 24 has an inner layer strand main body 26 formed of a plurality of steel wires twisted together, and a resin inner layer strand covering body 27 covering the inner layer strand main body 26. The sectional configuration of the steel wires situated in the outer peripheral portion of the inner layer strand main body 26 is deformed by compressing the inner layer strand main body 26 from the outer periphery thereof.
  • An adhesive is applied to the outer periphery of the inner layer strand main body 26, and the inner layer strand main body 26 and the inner layer strand covering body 27 are glued to each other through the intermediation of the adhesive. Further, after the inner layer strand main body 26 has been with the inner layer strand covering body 27, each inner layer strand 24 undergoes a stabilization treatment for causing the adhesion performance of the adhesive to be exerted more reliably. The stabilization treatment is a treatment in which the inner layer strand is heated by being left to stand for several minutes to several days in a furnace at a temperature of approximately 50 to 150°C to thereby enhance the adhesion force. The diameter of each inner layer strand 24 is smaller than that of the core strand 21. That is, the number of steel wires contained in each inner layer strand main body 26 is smaller than the number of constituent strands contained in the core strand main body 22.
  • Furthermore, after the core strand main body 22 has been covered with the core strand covering body 23, and the inner layer strand main bodies 26 have been covered with the inner layer strand covering bodies 27, the inner layer strands 24 are twisted together in the outer periphery of the core strand 21. The inner layer strand covering bodies 27 are formed of a hard resin, such as polyethylene resin.
  • The outer periphery of an inner layer strand assembly 25 is covered with a resin inner layer covering body 28. In the outer periphery of the inner layer covering body 28, there is arranged an outer layer strand assembly 30 composed of a plurality of (twenty, in this example) outer layer strands 29. The outer layer strands 29 are twisted together in the outer periphery of the inner layer covering body 28. In Embodiment 1, each outer layer strand 29 is composed solely of an outer layer strand main body, which is formed of a plurality of steel wires twisted together. The diameter of each outer layer strand 29 is smaller than that of the inner layer strands 24. That is, the number of constituent wires contained in the outer layer strands 29 is smaller than the number of constituent wires contained in the inner layer strand main bodies 26.
  • The outer periphery of the outer layer strand assembly 30 is covered with a resin outer layer covering body 31. The inner layer covering body 28 is formed of the same kind of material as the outer layer covering body 31 (a material whose ingredients and mechanical characteristics are the same or alike), and is integrated with the outer layer covering body 31. That is, the inner layer covering body 28 and the outer layer covering body 31 are formed of a high-friction resin material exhibiting high wear resistance and a coefficient of friction of 0.2 or more, for example, polyurethane resin.
  • An adhesive is applied to the outer periphery of each outer layer strands 29, and the outer layer strands 29, the inner layer covering body 28, and the outer layer covering body 31 are glued to each other through the intermediation of the adhesive. It is also possible to apply an adhesive to the outer periphery of each inner layer strand 24, gluing the inner layer strands 24 and the inner layer covering body 28 to each other through the intermediation of the adhesive. Like the inner layer strands 24, the outer layer strands 29 undergo a stabilization treatment after the application of the adhesive.
  • When using polyurethane resin for the inner layer covering body 28 and the outer layer covering body 31, suitable examples of the adhesive to be used for the gluing of the covering bodies 28, 31 and the strands 24, 29 include an epoxy type adhesive, a phenol type adhesive, and an urethane type adhesive.
  • In this elevator rope, the core strand 21 is provided with the core strand covering body 23, the inner layer strands 24 are provided with the inner layer strand covering bodies 27, and the outer layer strand assembly 30 is covered with the outer layer covering body 31, so that it is possible to secure a stable resin thickness between the layers and between the strands, and the strands are more reliably prevented from coming into contact with each other, thereby achieving an increase in service life.
  • Further, the inner layer strand main bodies 26 and the inner layer strand covering bodies 27 are glued to each other through the intermediation of the adhesive, and the outer layer strands 29 and the outer layer covering body 31 are glued to each other through the intermediation of the adhesive, which also helps to secure a stable resin thickness between the layers and between the strands, thereby achieving an increase in service life. That is, even if the main rope 6 is repeatedly bent and stretched, the covering bodies 27, 28, 31 are not deviated in position, making it possible to maintain a stable sectional configuration.
  • Further, due to the strand structure which does not easily get out of shape and due to the arrangement at the section center of the core strand 21 covered with a hard resin, the rope as a whole does not easily get out of shape either, so it is also possible to secure a stable resin thickness between the layers and between the strands, making it possible to achieve an increase in service life.
  • Here, after covering the core strand main body 22 with the core strand covering body 23 (first step), and after covering the inner layer strand main bodies 26 with the inner layer strand covering bodies 27 (first step), the inner layer strands 24 are twisted together in the outer periphery of the core strand 21 (second step), and further, the outermost layer is covered with the outer layer covering body 31 (third step). That is, after the strands 21, 24 have been respectively covered with the covering bodies 23, 27, the inner layer strands 24 are twisted together around the core strand 21. As a result, it is possible to secure a stable resin thickness between the core strand 21 and the inner layer strands 24 and between the adjacent inner layer strands 24.
  • Due to a thickness error in the inner layer strand covering bodies 27, and due to an error in the pressing force applied when twisting together the inner layer strands 24, some protrusions and recesses may be generated in the outer periphery of the inner layer strand assembly 25. However, since the outer periphery of the inner layer strand assembly 25 is covered with the inner layer covering body 28, it is possible to achieve a stable sectional configuration (circular configuration) for the core rope. As a result, it is also possible to stabilize the sectional configuration of the rope as a whole.
  • Further, due to the heat when effecting covering with the inner layer covering body 28, the inner layer covering body 28 and the inner layer strand covering bodies 27 are fusion-bonded to each other, so that it is possible to further stabilize the sectional configuration of the rope as a whole.
    Furthermore, the inner layer covering body 28 is formed of the same kind of material as the outer layer covering body 31, and is integrated with the outer layer covering body 31, so that it is possible to further stabilize the sectional configuration and to achieve an increase in the service life of the rope as a whole. Further, the outer layer and the inner layer are integrated with each other, making it possible to bear the load burden and geometrical deformation/displacement with respect to external forces with the entire section.
  • Embodiment 2
  • Next, Fig. 3 is a sectional view of an elevator rope according to Embodiment 2 of the present invention. As shown in the drawing, in the outer periphery of the inner layer covering body 28, there is arranged an outer layer strand assembly 33 composed of a plurality of (twenty, in this example) outer layer strands 32. The outer layer strands 32 are twisted together in the outer periphery of the inner layer covering body 28. In Embodiment 2, each outer layer strand 32 has an outer layer strand main body 34 formed of a plurality of steel wires twisted together, and a resin outer layer strand covering body 35 covering the outer layer strand main body 34.
  • Fig. 4 is an enlarged sectional view of one of the outer layer strand 32 of Fig. 3. Between the outer layer strand main body 34 and the outer layer strand covering body 35, and between the steel wires constituting the outer layer strand main body 34, gluing is effected by an adhesive 36. Further, as shown in Fig. 5, prior to the twisting of the outer layer strands 32, the adhesive 36 is applied to the outer periphery of each outer layer strand 32, that is, to the outer periphery of each outer layer strand covering body 35. Further, a stabilization treatment is executed on the adhesive 36. Otherwise, this embodiment is of the same construction as Embodiment 1.
  • In such an elevator rope, the covering bodies 23, 27, 35 are provided in the outer periphery of all the strands 21, 24, 32, so that it is possible to secure a stable resin thickness between the layers and between the strands, thereby achieving an increase in service life.
    Further, due to the heat when effecting covering with the outer layer covering body 31, the outer layer covering body 31 and the outer layer strand covering bodies 35 are fusion-bonded to each other, so it is possible to stabilize the sectional configuration of the rope as a whole.
    Further, since the adhesive 36 is also applied to the outer periphery of each outer layer strand 32, it is possible to integrate the outer layer strands 32 and the covering bodies 28, 31 with each other more reliably.
  • While in Embodiments 1 and 2 no particular statement is given regarding the twisting directions of the inner layer strands 24 and the outer layer strands 29, 32, by twisting the inner layer strands 24 and the outer layer strands 29, 32 in directions opposite to each other, it is possible to achieve a well-balanced inner rotational torque, making it possible to reduce the backward twisting torque of the rope as a whole.
  • Embodiment 3
  • Next, Fig. 6 is a cross-sectional view of an elevator rope according to Embodiment 3 of the present invention. In this example, very thin resin films exist between the adjacent inner layer strands 24, or the adjacent inner layer strands 24 are in direct contact with each other. Further, very thin resin films exist between the adjacent outer layer strands 32, or the adjacent outer layer strands 32 are in direct contact with each other. The sectional configuration of the inner layer strand covering bodies 27 and the outer layer strand covering bodies 35 is a substantially trapezoidal configuration with the four corners thereof rounded in order to sufficiently secure the contact area between the adjacent covering bodies 27, 35. This sectional structure can be realized by, for example, applying heat and pressure when twisting together the inner layer strands 24 and the outer layer strands 32. Otherwise, this embodiment is of the same construction as Embodiment 2.
  • In this elevator rope, even if it is repeatedly bent and stretched, displacement of the inner layer strands 24 and the outer layer strands 32 is suppressed, and a change in the load burden balance in each layer is prevented. Further, a change in the sectional dimension is also suppressed, making it possible to maintain a stable strength for a long period of time and to achieve an increase in the service life of the rope as a whole.
  • While Fig. 1 shows an elevator apparatus of the 2:1 roping system, there are no particular limitations regarding the roping system. For example, the elevator rope of the present invention can also be applied to an elevator apparatus of the 1:1 roping system.
    Further, the position of the driving machine is not restricted to the upper portion of the hoistway; it may also be arranged in the lower portion of the hoistway.
    Further, the elevator rope of the present invention is applicable to both a machine-room-less elevator and an elevator with a machine room.

Claims (9)

  1. An elevator rope, comprising:
    a core strand having a core strand main body formed of a plurality of steel wires twisted together, and a resin strand covering body covering the core strand main body;
    an inner layer strand assembly composed of a plurality of inner layer strands twisted together in an outer periphery of the core strand around the core strand, each inner layer strand having an inner layer strand main body formed of a plurality of steel wires twisted together and a resin inner layer covering body covering the inner layer strand main body;
    an outer layer strand assembly composed of a plurality of outer layer strands twisted together in an outer periphery of the inner layer strand assembly, each outer layer strand having an outer layer strand main body formed of a plurality of steel wires twisted together; and
    a resin outer layer covering body covering the outer layer strand assembly,
    wherein the inner layer strand main bodies and the inner strand covering bodies are glued to each other through the intermediation of an adhesive, and wherein the outer layer strands and the outer layer covering body are glued to each other through the intermediation of an adhesive.
  2. An elevator rope, comprising:
    a core strand having a core strand main body formed of a plurality of steel wires twisted together, and a resin strand covering body covering the core strand main body;
    an inner layer strand assembly composed of a plurality of inner layer strands twisted together in an outer periphery of the core strand around the core strand, each inner layer strand having an inner layer strand main body formed of a plurality of steel wires twisted together and a resin inner layer covering body covering the inner layer strand main body;
    an outer layer strand assembly composed of a plurality of outer layer strands twisted together in an outer periphery of the inner layer strand assembly, each outer layer strand having an outer layer strand main body formed of a plurality of steel wires twisted together and a resin outer layer covering body covering the outer layer strand main body; and
    a resin outer layer covering body covering the outer layer strand assembly,
    wherein the inner layer strand main bodies and the inner strand covering bodies are glued to each other through the intermediation of an adhesive, and wherein the outer layer strand main body and the outer layer strand covering body are glued to each other through the intermediation of an adhesive.
  3. An elevator rope according to Claim 1 or 2, wherein, after covering the core strand main body with the core strand covering body, and after covering the inner layer strand main bodies with the inner layer strand covering bodies, the inner layer strands are twisted together in the outer periphery of the core strand.
  4. An elevator rope according to Claim 1 or 2, wherein the outer periphery of the inner layer strand assembly is covered with a resin inner layer covering body, and wherein the inner layer covering body is formed of the same kind of material as the outer layer covering body and is integrated with the outer layer covering body.
  5. An elevator rope according to Claim 1, wherein resin films are provided between the adjacent inner layer strands and between the outer layer strands.
  6. An elevator rope according to Claim 1, wherein the adjacent inner layer strands are in direct contact with each other, and wherein the adjacent outer layer strands are in direct contact with each other.
  7. An elevator rope manufacturing method, comprising:
    a first step of producing a plurality of strands by covering strand main bodies, each of which is formed of a plurality of steel wires twisted together, with resin strand covering bodies;
    a second step of twisting together the strands; and
    a third step of covering an assembly of the strands with a resin outer covering body after the second step.
  8. An elevator rope manufacturing method according to Claim 7, wherein, in the first step, the strand main bodies and the strand covering bodies are glued to each other through intermediation of an adhesive.
  9. An elevator rope manufacturing method according to Claim 8, wherein, after the strand main bodies and the strand covering bodies are glued to each other, a stabilizing treatment for stabilizing the adhesive through heating is conducted.
EP05703629A 2005-01-14 2005-01-14 ROPE FOR LIFT AND MANUFACTURING METHOD THEREFOR Withdrawn EP1837301A4 (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/JP2005/000390 WO2006075384A1 (en) 2005-01-14 2005-01-14 Rope for elevator and method for producing the same

Publications (2)

Publication Number Publication Date
EP1837301A1 true EP1837301A1 (en) 2007-09-26
EP1837301A4 EP1837301A4 (en) 2012-11-28

Family

ID=36677420

Family Applications (1)

Application Number Title Priority Date Filing Date
EP05703629A Withdrawn EP1837301A4 (en) 2005-01-14 2005-01-14 ROPE FOR LIFT AND MANUFACTURING METHOD THEREFOR

Country Status (4)

Country Link
EP (1) EP1837301A4 (en)
JP (1) JPWO2006075384A1 (en)
CN (1) CN1930074B (en)
WO (1) WO2006075384A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3233702B1 (en) * 2014-12-19 2023-06-07 Bekaert Advanced Cords Aalter NV Elevator rope and method of manufacturing said elevator rope

Families Citing this family (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5322404B2 (en) * 2007-06-07 2013-10-23 クリサンセマム株式会社 Coated wire rope for operation
EP2511219A1 (en) * 2009-12-08 2012-10-17 Mitsubishi Electric Corporation Rope for elevator
EP2634130A1 (en) * 2010-10-27 2013-09-04 Mitsubishi Electric Corporation Rope for elevator
KR101635468B1 (en) * 2010-12-22 2016-07-01 오티스 엘리베이터 컴파니 Elevator system belt
KR101088834B1 (en) 2011-04-12 2011-12-06 디에스알 주식회사 Synthetic fiber rope for crane and manufacturing method thereof
US9550653B2 (en) * 2011-06-10 2017-01-24 Otis Elevator Company Elevator tension member
CN102242508B (en) * 2011-07-14 2013-02-06 南通海迅电梯部件有限公司 Braided Elevator Balance Compensation Cable
JP5768568B2 (en) * 2011-08-01 2015-08-26 三菱電機ビルテクノサービス株式会社 Elevator hoisting rope
CN103161085A (en) * 2011-12-15 2013-06-19 康力电梯股份有限公司 Elevator device cable rope
KR101601894B1 (en) * 2014-06-19 2016-03-09 고려제강 주식회사 Elevator Rope and Method for manufacturing the same
DE102015103115A1 (en) * 2015-03-04 2016-09-08 Casar Drahtseilwerk Saar Gmbh Rope and method of making the rope
KR101667991B1 (en) * 2015-03-19 2016-10-21 고려제강 주식회사 Wire rope for elevator
CN107780267A (en) * 2017-11-20 2018-03-09 江苏赛福天钢索股份有限公司 A kind of super high speed elevator steel wire rope
CN109826032A (en) * 2019-04-09 2019-05-31 贵州钢绳股份有限公司 A kind of resistance rotating wire rope and its manufacturing method
KR102781202B1 (en) * 2020-10-14 2025-03-14 미쓰비시덴키 가부시키가이샤 Elevator rope and its manufacturing method

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1334943B1 (en) * 2000-07-27 2011-03-09 Mitsubishi Denki Kabushiki Kaisha Elevator system
JP3827610B2 (en) * 2001-05-21 2006-09-27 東京製綱株式会社 Multilayer twisted wire rope
EP1426482B8 (en) 2001-09-12 2016-09-07 Hitachi, Ltd. Rope
JP4108607B2 (en) * 2001-12-12 2008-06-25 三菱電機株式会社 Elevator rope and elevator equipment
JP4110139B2 (en) * 2002-06-27 2008-07-02 三菱電機株式会社 Elevator rope and manufacturing method thereof

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3233702B1 (en) * 2014-12-19 2023-06-07 Bekaert Advanced Cords Aalter NV Elevator rope and method of manufacturing said elevator rope

Also Published As

Publication number Publication date
WO2006075384A1 (en) 2006-07-20
EP1837301A4 (en) 2012-11-28
JPWO2006075384A1 (en) 2008-06-12
CN1930074A (en) 2007-03-14
CN1930074B (en) 2010-05-05

Similar Documents

Publication Publication Date Title
EP1837301A1 (en) Rope for elevator and method for producing the same
US7036298B2 (en) Rope for elevator and method for manufacturing the rope
TWI420009B (en) Synthetic fibre cable and producing method thereof, lift installation with such a synthetic fibre cable, and synthetic fiber cable for supporting and drive means for the lift
EP3127850A1 (en) A method a rope terminal arrangement and an elevator
WO2003050348A1 (en) Elevator rope and elevator device
JP6452839B2 (en) Elevator rope and manufacturing method thereof
JP2007536186A (en) Speed governor cables and belts and associated pulleys
EP1426482B1 (en) Rope
JP5859138B2 (en) Elevator system belt
JP2005529043A (en) Elevator with coated hoisting rope
JP5463931B2 (en) Hoisting rope for elevator
TW201111265A (en) Traction member for a counterweightless elevator
JP2014507348A (en) Elevator suspension and / or drive device
KR100837466B1 (en) Elevator ropes and its manufacturing method
EP2511219A1 (en) Rope for elevator
KR20250111180A (en) Wire rope for elevators and method of numbering elevators
KR101477345B1 (en) Rope for elevator and the manufacture method
JP7749879B1 (en) Elevator wire rope and elevator device
JP7638450B2 (en) Elevator ropes and elevator equipment
WO2013089723A1 (en) Elevator system belt
HK1237385A1 (en) Hoisting rope and elevator

Legal Events

Date Code Title Description
PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

17P Request for examination filed

Effective date: 20060904

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): DE

DAX Request for extension of the european patent (deleted)
RBV Designated contracting states (corrected)

Designated state(s): DE

A4 Supplementary search report drawn up and despatched

Effective date: 20121029

RIC1 Information provided on ipc code assigned before grant

Ipc: B66B 7/06 20060101AFI20121023BHEP

Ipc: D07B 1/16 20060101ALI20121023BHEP

17Q First examination report despatched

Effective date: 20130118

GRAP Despatch of communication of intention to grant a patent

Free format text: ORIGINAL CODE: EPIDOSNIGR1

RIN1 Information on inventor provided before grant (corrected)

Inventor name: MITSUI, ATSUSHI

Inventor name: HONDA, TAKENOBU

INTG Intention to grant announced

Effective date: 20130926

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN

18D Application deemed to be withdrawn

Effective date: 20140207