Structure, processing and performance of ultra-high molecular weight polyethylene (IUPAC Technical Report). Part 4: sporadic fatigue crack propagation

Author:

Bucknall Clive1,Altstädt Volker2,Auhl Dietmar3,Buckley Paul4,Dijkstra Dirk5,Galeski Andrzej6,Gögelein Christoph7,Handge Ulrich A.8,He Jiasong9,Liu Chen-Yang9,Michler Goerg10,Piorkowska Ewa6,Slouf Miroslav11,Vittorias Iakovos12,Wu Jun Jie13

Affiliation:

1. B 61 School of Aerospace, Transport & Manufacturing , Cranfield University , Bedford, MK43 0AL , UK

2. Department of Polymer Engineering , Universität Bayreuth , Bayreuth , Germany

3. Fakultät III – Werkstoffwissenschaft Technische , Universität Berlin , D-10623, Berlin , Germany

4. Department of Engineering Science , University of Oxford , Oxford, OX1 3PJ , UK

5. Covestro Deutschland AG , Leverkusen , Germany

6. Centre for Molecular and Macromolecular Sciences , Polish Academy of Sciences , Lodz , Poland

7. Arlanxeo Deutschland GmbH , Dormagen , Germany

8. Institute of Polymer Research , Helmholtz-Zentrum Geesthacht , Max-Planck-Strasse 1 , Geesthacht, 21502 , Germany

9. Chinese Academy of Sciences , Laboratory of Polymer Science and Materials , Beijing , China

10. Martin-Luther-Universität Halle-Wittenberg , Halle-Wittenberg , Germany

11. Institute of Macromolecular Chemistry CAS , Prague , Czech Republic

12. Omya International AG , Baslerstrasse 42 , CH-4665, Oftringen , Switzerland

13. Department of Engineering , Durham University , Stockton Road , Durham, DH1 3LE , UK

Abstract

Abstract Fatigue tests were carried out on compression mouldings supplied by a leading polymer manufacturer. They were made from three batches of ultra-high molecular weight polyethylene (UHMWPE) with weight-average relative molar masses, M ¯ W ${\overline{M}}_{\mathrm{W}}$ , of about 0.6 × 106, 5 × 106 and 9 × 106. In 10 mm thick compact tension specimens, crack propagation was so erratic that it was impossible to follow standard procedure, where crack-tip stress intensity amplitude, ΔK, is raised incrementally, and the resulting crack propagation rate, da/dN, increases, following the Paris equation, where a is crack length and N is number of cycles. Instead, most of the tests were conducted at fixed high values of ΔK. Typically, da/dN then started at a high level, but decreased irregularly during the test. Micrographs of fracture surfaces showed that crack propagation was sporadic in these specimens. In one test, at ΔK = 2.3 MPa m0.5, there were crack-arrest marks at intervals Δa of about 2 μm, while the number of cycles between individual growth steps increased from 1 to more than 1000 and the fracture surface showed increasing evidence of plastic deformation. It is concluded that sporadic crack propagation was caused by energy-dissipating crazing, which was initiated close to the crack tip under plane strain conditions in mouldings that were not fully consolidated. By contrast, fatigue crack propagation in 4 mm thick specimens followed the Paris equation approximately. The results from all four reports on this project are reviewed, and the possibility of using fatigue testing as a quality assurance procedure for melt-processed UHMWPE is discussed.

Funder

IUPAC

Publisher

Walter de Gruyter GmbH

Subject

General Chemical Engineering,General Chemistry

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