The polytetrafluoroethylene-filled (PTFE) poly(m-phenylene isophalamide) (PMIA) composite blocks are prepared by compression molding. The friction and wear of PTFE-filled PMIA are investigated on a block-on-ring machine by running the PMIA composite block against plain carbon steel (AISI 1045 steel
The mechanical and tribological properties of PTFE filled with PTFE waste powders
✍ Scribed by Dinghan Xiang; Kemei Tao
- Publisher
- John Wiley and Sons
- Year
- 2006
- Tongue
- English
- Weight
- 613 KB
- Volume
- 103
- Category
- Article
- ISSN
- 0021-8995
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✦ Synopsis
Abstract
Polytetrafluoroethylene (PTFE) composites filled with PTFE waste offer interesting combination of tribological properties and low cost. PTFE composites waste was mechanically cut and sieved into powders. PTFE composites filled with PTFE waste powders were prepared by compression molding. Friction and wear experiments were carried out in a reciprocating sliding tribotester at a reciprocating frequency of 1.0 Hz, a contact pressure of 5.5 MPa, and a relative humidity of (60 ± 5)%. PTFE materials slid against a 45 carbon steel track. Results showed that a PTFE composite (B) filled with 20 wt % PTFE waste exhibited a coefficient of steady‐state friction slightly higher than that of unfilled PTFE (A), while wear resistance over two orders of magnitude higher than that of unfilled PTFE (A). Another PTFE composite filled with PTFE waste and alumina nanoparticles exhibited the highest wear resistance among the three PTFE materials. This behavior originates from the effective reinforcement of PTFE waste as a filler. It was experimentally confirmed that the low cost recycling of PTFE waste without by‐products is feasible. © 2006 Wiley Periodicals, Inc. J Appl Polym Sci 103: 1035–1041, 2007
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