Indentation Plastometry of Particulate Metal Matrix Composites, Highlighting Effects of Microstructural Scale

Author:

Reiff-Musgrove Rebecca1ORCID,Gaiser-Porter Marcus2,Gu Wenchen1ORCID,Campbell Jimmy E.1ORCID,Lewis Peter3,Frehn Andreas4,Tarrant Andrew D.3,Tang Yuanbo T.5,Burley Max1ORCID,Clyne Trevor William12ORCID

Affiliation:

1. Plastometrex Ltd. 204 Science Park, Milton Road Cambridge CB4 0GZ UK

2. Department of Materials Science 27 Charles Babbage Road Cambridge CB3 0FS UK

3. Materion Ltd. 1 RAE Road Farnborough Hampshire GU14 6XE UK

4. Materion Brush GmbH Motorstraße 34 70499 Stuttgart Germany

5. Department of Materials Parks Road Oxford OX2 3PH UK

Abstract

Herein, it is concerned with the use of profilometry‐based indentation plastometry (PIP) to obtain mechanical property information for particulate metal matrix composites (MMCs). This type of test, together with conventional uniaxial testing, has been applied to four different MMCs (produced with various particulate contents and processing conditions). It is shown that reliable stress–strain curves can be obtained using PIP, although the possibility of premature (prenecking) fracture should be noted. Close attention is paid to scale effects. As a consequence of variations in local spatial distributions of particulate, the “representative volume” of these materials can be relatively large. This can lead to a certain amount of scatter in PIP profiles and it is advisable to carry out a number of repeat PIP tests in order to obtain macroscopic properties. Nevertheless, it is shown that PIP testing can reliably detect the relatively minor (macroscopic) anisotropy exhibited by forged materials of this type.

Funder

Engineering and Physical Sciences Research Council

Leverhulme Trust

Innovate UK

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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