The subject matter disclosed herein relates to belts such as those used in elevator systems for suspension and/or driving of the elevator car and/or counterweight.
Conventional elevator systems use rope formed from steel wires as a lifting tension load bearing member. Other systems utilize a belt formed from a number of steel cords, formed from steel wires, retained in a polymer jacket formed from, for example, thermoplastic polyurethane. The cords act as the load supporting tension member, while the jacket holds the cords in a stable position relative to each other, and provides a frictional load path to provide traction for driving the belt.
Monolithic jacket materials used to encase tension members can pose manufacturing challenges. In addition, altering composition such as through the addition of fillers to gain performance enhancement such as fire resistance, corrosion resistance, wear resistance, traction and/or mechanical performance can have many challenges. Adding filler or otherwise changing material composition can make processing the resulting material much more challenging and issues with filler/polymer compatibility often occur. All of these issues must be addressed without sacrificing traction, durability, and other key performance metrics. One approach to alleviating these challenges is to take a composite approach which decouples certain critical performance properties. This can be achieved by replacing a monolithic polymer jacket with a composite fabric and coating system. The fabric predominantly functions as the structural component of the composite jacket while maintaining flexibility, and the coating, or multiplicity thereof, predominantly functions to provide traction and other performance properties.
The composite fabric typically includes yarns or other non-metallic fibers that are woven together with the steel cords, or otherwise used to position the cords. The fabric and cord structure is then typically coated with an elastomer. One challenge in the composite fabric belt is generating sufficient thickness in the fabric and coating layers to cover the steel cords to ensure durability and service life of both the fabric and the steel cords.
In one embodiment, a belt for suspending and/or driving an elevator car includes a plurality of tension elements extending longitudinally along a length of the belt, at least one tension element of the plurality of tension elements having one or more tension element coating layers applied thereto. A plurality of fibers are interlaced with the plurality of tension elements forming a composite belt structure. A belt coating at least partially encapsulates the composite belt structure.
Additionally or alternatively, in this or other embodiments the tension element is a cord formed from a plurality of wires.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes a polymeric material and/or a fiber material.
Additionally or alternatively, in this or other embodiments the fiber material includes one or more Kevlar, aramid, polyester, nylon, polyphenylene sulfide, glass, cotton, jute, hemp, or any combination or blends thereof.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes an adhesive layer to promote adhesion of the tension element coating layers to the tension element.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes a fiber adhesion layer to promote adhesion to the plurality of fibers and/or the belt coating.
In another embodiment, a method of forming a belt for suspending and/or driving an elevator car includes forming a plurality of tension elements and applying one or more coating layers to at least one tension element of the plurality of tension elements. A plurality of fibers are interlaced with the plurality of tension elements to form a composite belt structure. A belt coating is applied to the composite belt structure to at least partially encapsulate the composite belt structure.
Additionally or alternatively, in this or other embodiments each tension element of the plurality of tension elements is formed from a plurality of wires.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes polymeric material and/or a fiber material.
Additionally or alternatively, in this or other embodiments the fiber material includes one or more of Kevlar, aramid, polyester, nylon, polyphenylene sulfide, glass, cotton, jute, hemp, or any combination or blends thereof.
Additionally or alternatively, in this or other embodiments the one or more coating layers are applied to the plurality of tension elements via an extrusion, dip, spray, evaporation, roll-on, or thermal fusion process.
Additionally or alternatively, in this or other embodiments a first coating layer is applied to the plurality of tension elements to promote adhesion to the plurality of tension members.
Additionally or alternatively, in this or other embodiments a second coating layer is applied to the plurality of tension elements to promote adhesion of the belt coating.
Additionally or alternatively, in this or other embodiments the one or more coating layers are heated to adhere the one or more coating layers to the tension elements.
In yet another embodiment, an elevator system includes a hoistway, a drive machine having a traction sheave coupled thereto, an elevator car movable within the hoistway, a counterweight movable within the hoistway and at least one belt connecting the elevator car and the counterweight. The belt is arranged in contact with the traction sheave such that operation of the drive machine moves the elevator car between a plurality of landings. The at least one belt includes a plurality of tension elements extending longitudinally along a length of the belt and one or more tension element coating layers applied to a least one tension element of the plurality of tension elements. A plurality of fibers are interlaced with the plurality of tension elements forming a composite belt structure, and a belt coating at least partially encapsulates the composite belt structure.
Additionally or alternatively, in this or other embodiments the tension element is a cord formed from a plurality of wires.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes polymeric material and/or a fiber material.
Additionally or alternatively, in this or other embodiments the fiber material includes one or more of Kevlar, aramid, polyester, nylon, glass, cotton, jute, hemp, or any combination or blends thereof.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes an adhesive layer to promote adhesion of the tension element coating layers to the tension element.
Additionally or alternatively, in this or other embodiments the one or more tension element coating layers includes a fiber adhesion layer to promote adhesion to the plurality of fibers and/or the belt coating.
The subject matter which is regarded as the present disclosure is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
Referring now to
The elevator system 10 also includes a counterweight 15 configured to move vertically upwardly and downwardly within the hoistway 12. The counterweight 15 moves in a direction generally opposite the movement of the elevator car 14 as is known in conventional elevator systems. Movement of the counterweight 15 is guided by counterweight guide rails (not shown) mounted within the hoistway 12. In the illustrated, non-limiting embodiment, at least one belt 30, coupled to both the elevator car 14 and the counterweight 15 cooperates with a traction sheave 18 mounted to a drive machine 20. To cooperate with the traction sheave 18, at least one belt 30 bends in a first direction about the traction sheave 18. In one embodiment, any additional bends formed in the at least one belt 30 must also be in the same first direction.
The drive machine 20 of the elevator system 10 is positioned and supported at a mounting location atop a support member 22, such as a bedplate for example, in a portion of the hoistway 12 or a machine room. Although the elevator system 10 illustrated and described herein has a 1:1 roping configuration, elevator systems 10 having other roping configurations and hoistway layouts are within the scope of the present disclosure. In embodiments having alternative roping configurations, a twist may be arranged in the belts 30, as known in the art, to avoid reverse bends or other arrangements where all bending of the belts 30 occurs in the same direction.
In one embodiment, shown in
Referring to
Referring again to
While a cord coating layer 46 of elastomeric material is described above, it is to be appreciated that other cord coating layers 46 may be utilized as an alternative to, or in addition to the elastomeric material. In some embodiments, for example, the cord coating layer 46 may include a fiber, fabric or yarn material. Materials relevant to this structure may include but are not limited to Kevlar, aramid, polyester, nylon, polyphenylene sulfide, glass, cotton, jute, hemp, or any combination or blends thereof. Further, the cord coating layer 46 may vary across the cords 32 of the belt 30, depending on the desired performance properties of the belt 30. For example, some cords 32 may have a cord coating layer 46 of an elastomeric material, while other cords 32 may have a polyester braid cord coating layer 46.
The cord coating layer 46 may be applied to the steel cord 32 by a variety of processes, for example, by extruding the cord coating layer 46 over the cord 32 or by dipping the cord 32 into the cord coating layer 46 material. Further, in some embodiments the cord coating layer 46 may be applied relatively loosely to the cord 32 then heated to shrink the cord coating layer 46 and adhere the cord coating layer 46 to the cord 32. Additionally or alternatively, the coating layer 46 may be applied via a spray, evaporation or roll-on process. Further, in some embodiments, the coating layer 46 may be applied as a preformed thermoplastic film that is fused to the cord via the application of heat to the thermoplastic film. Further, in some embodiments, as shown in the cross-sectional view of
The belt 30 with coated cords 32 substantially improves belt service life compared to a comparable belt with uncoated cords due to reductions in contact stresses between the fabric and steel cords. Further, the belt 30 has improved corrosion resistance compared to a belt with uncoated steel cords.
While the disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the disclosure is not limited to such disclosed embodiments. Rather, the disclosure can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the disclosure. Additionally, while various embodiments have been described, it is to be understood that aspects of the disclosure may include only some of the described embodiments. Accordingly, the disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
This application is a divisional of U.S. patent application Ser. No. 16/083,567 filed Sep. 10, 2018, which is a national stage of International Patent Application No. PCT/US2017/021085 filed Mar. 7, 2017 which claims the benefit of U.S. Provisional Patent Application No. 62/305,667 filed Mar. 9, 2016 the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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62305667 | Mar 2016 | US |
Number | Date | Country | |
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Parent | 16083567 | Sep 2018 | US |
Child | 17820296 | US |