The Bresler–Pister yield criterion[1] is a function that was originally devised to predict the strength of concrete under multiaxial stress states. This yield criterion is an extension of the Drucker–Prager yield criterion and can be expressed on terms of the stress invariants as
where is the first invariant of the Cauchy stress, is the second invariant of the deviatoric part of the Cauchy stress, and are material constants.
The parameters have to be chosen with care for reasonably shaped yield surfaces. If is the yield stress in uniaxial compression, is the yield stress in uniaxial tension, and is the yield stress in biaxial compression, the parameters can be expressed as
Derivation of expressions for parameters A, B, C
The Bresler–Pister yield criterion in terms of the principal stresses is
If is the yield stress in uniaxial tension, then
If is the yield stress in uniaxial compression, then
If is the yield stress in equibiaxial compression, then
Solving these three equations for (using Maple) gives us
Alternative forms of the Bresler-Pister yield criterion
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