Effect of carbon fiber inclusions on polymeric transfer film formation on steel
File(s)Supplementary Information_SI_20210821.pdf (2.08 MB)
Supporting information
Author(s)
Puhan, Debashis
Jiang, Shaoli
Wong, Janet
Type
Journal Article
Abstract
High performance polymers (HPPs) with good tribological properties are commonly used in dry contacts, where
their tribological performance often depends on properties of polymeric transfer materials (transfer layers) on
counterfaces. Most HPPs suffer from high temperature degradation due to frictional heating, leading to excessive
deformation and wear. Incorporating thermally conducting fillers increases their thermal conductivity and
mechanical strength. The impact of these fillers on formation and properties of transfer layers, however, is
unclear. In this work the effect of short carbon fiber fillers (CFs) on the nature of the transfer layers and
tribological performance of polyetheretherketone (PEEK) and polyetheretherketone-polybenzimidizole (PBP)
against steel were investigated at temperature up to 300 ◦C. Transfer layers of CF reinforced PEEK and PBP
contain CF-related materials, resulting in a reduction of friction as compared to neat PEEK and PBP, especially
around the glass transition temperature of PEEK (Tg− PEEK) when the transfer layer is relatively thick. While the
inclusion of CFs increases the bulk thermal conductivity of polymer composites, the average contact temperature
is not affected. Rather, local hot spots are generated. As a result, their transfer layers may have formed more
readily and have undergone more severe degradation than those from neat polymer. At 300 ◦C, the PBP + CF
transfer layer is thin possibly due to abrasion by CFs dislodged from the matrix. The improvement in the wear
resistance due to CF inclusion is observed with PBP up to 300 ◦C due to its improved mechanical strength. PEEK
+ CF however suffers higher wear than PEEK below Tg− PEEK. Above Tg− PEEK, a thick transfer layer is formed and
the wear of PEEK + CF reduces.
their tribological performance often depends on properties of polymeric transfer materials (transfer layers) on
counterfaces. Most HPPs suffer from high temperature degradation due to frictional heating, leading to excessive
deformation and wear. Incorporating thermally conducting fillers increases their thermal conductivity and
mechanical strength. The impact of these fillers on formation and properties of transfer layers, however, is
unclear. In this work the effect of short carbon fiber fillers (CFs) on the nature of the transfer layers and
tribological performance of polyetheretherketone (PEEK) and polyetheretherketone-polybenzimidizole (PBP)
against steel were investigated at temperature up to 300 ◦C. Transfer layers of CF reinforced PEEK and PBP
contain CF-related materials, resulting in a reduction of friction as compared to neat PEEK and PBP, especially
around the glass transition temperature of PEEK (Tg− PEEK) when the transfer layer is relatively thick. While the
inclusion of CFs increases the bulk thermal conductivity of polymer composites, the average contact temperature
is not affected. Rather, local hot spots are generated. As a result, their transfer layers may have formed more
readily and have undergone more severe degradation than those from neat polymer. At 300 ◦C, the PBP + CF
transfer layer is thin possibly due to abrasion by CFs dislodged from the matrix. The improvement in the wear
resistance due to CF inclusion is observed with PBP up to 300 ◦C due to its improved mechanical strength. PEEK
+ CF however suffers higher wear than PEEK below Tg− PEEK. Above Tg− PEEK, a thick transfer layer is formed and
the wear of PEEK + CF reduces.
Date Issued
2022-01-05
Date Acceptance
2021-10-01
Citation
Composites Science and Technology, 2022, 217, pp.1-10
ISSN
0266-3538
Publisher
Elsevier
Start Page
1
End Page
10
Journal / Book Title
Composites Science and Technology
Volume
217
Copyright Statement
© 2021 Elsevier Ltd. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Identifier
https://www.sciencedirect.com/science/article/pii/S0266353821004401?via%3Dihub
Subjects
Science & Technology
Technology
Materials Science, Composites
Materials Science
Polyetheretherketone (PEEK)
Polybenzimidazole (PBI)
Carbon fiber
Transfer film
Thermal conductivity
MECHANICAL-PROPERTIES
SLIDING FRICTION
COMPOSITES
PEEK
TEMPERATURE
PERFORMANCE
ORIENTATION
ABSORPTION
ENERGY
WEAR
Materials
09 Engineering
Publication Status
Published
Date Publish Online
2021-10-06