Tension member and polymer jacket assembly including a geometry stabilizer in the jacket
09555579 ยท 2017-01-31
Assignee
Inventors
- Gopal R. Krishnan (Wethersfield, CT, US)
- Xiaomei Yu (Glastonbury, CT, US)
- John P. Wesson (Vernon, CT, US)
- John M. Milton-Benoit (West Suffield, CT, US)
Cpc classification
D07B1/22
TEXTILES; PAPER
B29C63/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An exemplary assembly includes at least one elongated tension member. A jacket covers at least some of the tension member. The polymer jacket comprises a polymer material including a melamine based geometry stabilizer that facilitates maintaining the jacket material near the tension member if the assembly is subjected to a high temperature condition.
Claims
1. A method of making an assembly having at least one elongated cord tension member at least partially covered by a polymer jacket, comprising the steps of: mixing a polymer base resin and a melamine-based geometry stabilizer to provide a batch of mixed material, the geometry stabilizer being operative to form a stable, intumescent shell on an exterior of the jacket of the assembly responsive to a fire condition; compounding said batch of mixed material with polyurethane to provide a batch of jacket material; and forming the jacket material into a desired shape of the jacket.
2. The method of claim 1, wherein the geometry stabilizer comprises phosphate.
3. The method of claim 1, wherein the geometry stabilizer comprises at least one of melamine-phosphate or melamine-polyphosphate.
4. The method of claim 1, wherein the mixing comprises using an amount corresponding up to 50% by weight of the geometry stabilizer in the batch of mixed material.
5. The method of claim 4, wherein the mixing comprises using an amount corresponding to between 20% and 50% by weight of the geometry stabilizer in the batch of mixed material.
6. The method of claim 1, wherein the mixing comprises using an amount corresponding to about 20% by weight of the geometry stabilizer in the batch of mixed material.
7. The method of claim 1, wherein the compounding comprises using an amount corresponding to between about 2% and about 20% by weight of the geometry stabilizer in the jacket material.
8. The method of claim 1, comprising applying the jacket material to the at least one elongated cord tension member while forming the jacket material.
9. The method of claim 1, wherein, the geometry stabilizer is capable of maintaining the jacket material near the tension member of the assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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(9) 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.
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(11) Another example is schematically shown in
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(13) As shown in
(14) The example of
(15) 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.
(16) In each of the above example assemblies, the jacket material includes a geometry stabilizer that facilitates maintaining the jacket material near the tension member or tension members even in high temperature conditions such as those associated with a fire in the vicinity of the assembly. The geometry stabilizer in some examples works by cross linking or forming a flow-resistant char or gel that inhibits flow of the thermoplastic polymer of the jacket material. Example geometry stabilizers include melamine phosphate and melamine polyphosphate, which are useful when the jacket comprises a base thermoplastic elastomer such as thermoplastic polyurethane. Another example geometry stabilizer is hydrocarbon phosphate, which is useful when the jacket comprises an elastomeric alloy, such as a melt-processible rubber.
(17) The example geometry stabilizers provide flame retardancy through intumescence and char formation that prevents the jacket material from melting and dripping away from the associated tension members. In other words, the geometry stabilizer provides an intumescent shell that reduces the likelihood of the jacket material dripping or flowing onto nearby surfaces. The example geometry stabilizers are useful in that they have chemistry similar to the base material of the jacket so that they do not reduce the flexibility of the jacket or otherwise interfere with the characteristics of the jacket that are selected for the particular installation.
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(19) 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 geometry stabilizer. One example includes using between 2% and 20% by weight of the geometry stabilizer in the jacket material.
(20) 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 whether the jacket is molded onto at least one exterior surface of the tension members 32 resulting in the desired assembly. In the case of
(21) 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.