Using the split Hopkinson pressure bar to validate material models

Author:

Church Philip1,Cornish Rory1,Cullis Ian1,Gould Peter2,Lewtas Ian1

Affiliation:

1. QinetiQ, Fort Halstead, Sevenoaks, Kent TN14 7BP, UK

2. QinetiQ, B240, Bristol Business Park, Bristol BS16 1FJ, UK

Abstract

This paper gives a discussion of the use of the split-Hopkinson bar with particular reference to the requirements of materials modelling at QinetiQ. This is to deploy validated material models for numerical simulations that are physically based and have as little characterization overhead as possible. In order to have confidence that the models have a wide range of applicability, this means, at most, characterizing the models at low rate and then validating them at high rate. The split Hopkinson pressure bar (SHPB) is ideal for this purpose. It is also a very useful tool for analysing material behaviour under non-shock wave loading. This means understanding the output of the test and developing techniques for reliable comparison of simulations with SHPB data. For materials other than metals comparison with an output stress v strain curve is not sufficient as the assumptions built into the classical analysis are generally violated. The method described in this paper compares the simulations with as much validation data as can be derived from deployed instrumentation including the raw strain gauge data on the input and output bars, which avoids any assumptions about stress equilibrium. One has to take into account Pochhammer–Chree oscillations and their effect on the specimen and recognize that this is itself also a valuable validation test of the material model.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

Reference13 articles.

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4. Gray GT. 1997 High strain rate testing ofmaterials: split Hopkinson pressure bar LANL report LA-UR-97-4419 Los Alamos USA.

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