An exemplary assembly includes at least one elongated tension member (32). A jacket covers at least some of the tension member (32). The jacket comprises a polymer material (68,64) including an adhesion enhancer (62) that facilitates adhesion between the tension member and the jacket.
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12. A method of making an assembly having at least one elongated cord tension member at least partially covered by a jacket, comprising the steps of:
mixing a thermoplastic polymer material base resin with a melamine-based adhesion enhancer to yield a thermoplastic polymer jacket material;
placing the thermoplastic polymer jacket material against the at least one elongated cord tension member to form a desired shape of a jacket including an exterior surface established by the thermoplastic polymer jacket material and to adhere the jacket to the at least one elongated cord tension member.
1. An elongated load bearing member configured to support a load that is suspended by the load bearing member, comprising:
at least one elongated tension member that supports the load in a longitudinal direction along the tension member; and
a jacket covering at least some of the at least one tension member, the jacket comprising a thermoplastic polymer material that establishes an exterior surface of the jacket, the thermoplastic polymer material comprises a base polymer resin and a melamine-based adhesion enhancer mixed in with the base polymer resin, the melamine-based adhesion enhancer facilitates adhesion between the at least one tension member and the jacket.
2. The assembly of
5. The assembly of
8. The assembly of
10. The assembly of
11. The assembly of
13. The method of
14. The method of
15. The method of
mixing a polymer base resin and said adhesion enhancer to provide a batch of mixed material; and
compounding said batch of mixed material with the polymer material to provide a batch of jacket material;
wherein said placing step uses said batch of jacket material.
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There are various uses for elongated flexible assemblies such as for elevator load bearing members or roping arrangements, drive belts for machines such as a passenger conveyor and handrails for passenger conveyors, for example. Such assemblies may be designed with a plurality of cords covered by a polyurethane jacket. For example, U.S. Pat. Nos. 6,295,799 and 6,739,433 show belts for use in suspending an elevator car and counterweight within an elevator system. An example passenger conveyor handrail construction is shown in U.S. Pat. No. 4,982,829. An example passenger conveyor drive belt is shown in U.S. Pat. No. 6,540,060.
One aspect of such assemblies is that having a polymer jacket associated with a tension member such as a steel cord typically requires some load transfer between the jacket material and the cord while the assembly is in use. The strength of the assembly is related to the pull-out strength that corresponds to a load at which separation will occur between the jacket material and the tension members. Improving the pull-out strength of such an assembly improves the overall strength of the assembly and the ability to withstand higher load conditions.
An exemplary assembly includes at least one elongated tension member. A jacket covers at least some of the tension member. The jacket comprises a polymer material including an adhesion enhancer that facilitates adhesion between the tension member and the jacket.
An exemplary method of making an assembly having at least one elongated cord tension member at least partially covered by a polymer jacket includes mixing an adhesion enhancer with a polymer base resin to provide a master batch of mixed material. The mixed material is then compounded with a base polymer material to yield a jacket material. The jacket material is then hot pressed against the tension member to form a desired shape of the jacket and to adhere the jacket to an exterior of the tension member.
The various features and advantages of the disclosed examples will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.
The load bearing assembly 26 supports the weight of the elevator car 22 and the counterweight 24 and facilitates movement of the elevator car 22 into desired positions by moving along sheaves 28 and 30. One of the sheaves will be a traction sheave that is moved by an elevator machine in a known manner to cause the desired movement and placement of the elevator car 22. The other sheave in this example is an idler sheave.
Another example is schematically shown in
The load on the example belt is carried by the tension members 32. The interaction between the jacket 34 and the sheaves 28, 30 involves transferring loads to the tension members 32. Greater adhesion between the jacket 34 and the tension members 32 provides enhanced load carrying performance. In each of the examples of
As shown in
The example of
In this example, the drive belt 56 includes a polymer jacket material with at least one adhesion enhancer that facilitates adhesion between the exterior of the tension members 32 and the jacket 34.
When a metal is used for the any of the example tension members 32, the metal material may be uncoated, coated, or plated with a protective metal. For example, a base ferrous metal may be coated or plated with zinc, tin or copper.
In one example, the amount of adhesion enhancer mixed with the base polymer resin in the master batch mixer 66 is between 20% and 50% by weight. The resulting master batch of mixed material in this example is then compounded with a base polymer material 68 in a jacket material mixer 70. The resulting jacket material after the mixing at 70 may contain up to 20% by weight of the adhesion enhancer. One example includes from 0.2% to 20% by weight of the adhesion enhancer in the jacket material. In one example, the resulting polymer material in the jacket material mixer 70 comprises between about 0.2% and about 10% by weight of the adhesion enhancer.
Providing a melamine-based or phosphate-based adhesion enhancer in an amount up to 20% by weight of the jacket polymer material increases the strength of the assembly by increasing the adhesion strength or pull-out strength as a result of increased adhesion between the tension members and the jacket material. In one example, the adhesion strength is increased up to twice that if the base polymer material does not have at least one of the example adhesion enhancers. Providing at least 0.2% by weight of the adhesion enhancer is believed to provide a useful increase in strength. Providing up to 20% by weight of the adhesion enhancer can provide additional strength increase without reducing the flexibility and other desirable characteristics of the base polymer material so that the jacket functions as desired for its particular application (e.g., is able to follow a guidance when the assembly comprises a passenger conveyor handrail, is able to transmit a sufficient drive force when the assembly comprises a drive member such as a belt or is able to wrap around sheaves and achieve sufficient traction for moving an elevator car when the assembly comprises an elevator load bearing member).
The jacket material is then formed in a jacket forming station 72 such as a molding device to provide the desired geometry of the jacket. In the illustrated example, a plurality of spools 74 supply tension members 32 to the jacket forming station 72 where the jacket is molded onto at least one exterior surface of the tension members 32 resulting in the desired assembly. In the case of
Having sufficient adhesion between the jacket and the tension member is useful for maintaining a desired strength of the assembly. Pull-out strength of an elevator load bearing member, for example, refers to the ability of the tension member to be pulled relative to the jacket material responsive to a load on the load bearing member. Higher pull-out strength is associated with better adhesion between the jacket material and the tension members. Higher pull-out strength provides a better strength characteristic of the load bearing assembly. The adhesion enhancer of the disclosed examples provides an increase in strength and stiffness so that there is a better interaction between the tension member exterior surface and the jacket.
The increased adhesion of the example assemblies increases load transfer between the jacket and the tension members, which results in improved load carrying performance. In some cases, increasing the adhesion between the jacket and the tension members increases the load carrying performance up to a tearing strength of the jacket material. If the adhesion at the interface between the jacket material and the tension members is weaker than the tearing strength of the structural elastomer used for the jacket, a decreased load carrying performance may not be experienced. Therefore, enhancing the adhesion between the jacket material and the tension members provides a stronger assembly.
The example adhesion enhancers provide unexpectedly increased adhesion compared to a polymer jacket material without one of them. In some examples, the adhesion strength is at least twice that which could be attained without the example adhesion enhancers.
With the example adhesion enhancers, the jacket of an assembly also has good thermal stability, hydrolytic stability, low hydrophilic characteristics and good compatibility to interact with other components such as an elevator sheave or a passenger conveyor step chain. The disclosed adhesion enhancers also provide flame-retardant properties to the jacket material.
The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this invention. The scope of legal protection given to this invention can only be determined by studying the following claims.
Krishnan, Gopal R., Wesson, John P., Yu, Xiaomei, Milton-Benoit, John M.
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