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Efficient GPU-computing simulation platform JAX-CPFEM for differentiable crystal plasticity finite element method
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作者 Fanglei Hu Stephen Niezgoda +1 位作者 Tianju Xue Jian Cao 《npj Computational Materials》 2025年第1期476-491,共16页
We present the formulation and applications of JAX-CPFEM,an open-source,GPU-accelerated,and differentiable 3-D crystal plasticity finite element method(CPFEM)software package.Leveraging the modern computing architectu... We present the formulation and applications of JAX-CPFEM,an open-source,GPU-accelerated,and differentiable 3-D crystal plasticity finite element method(CPFEM)software package.Leveraging the modern computing architecture JAX,JAX-CPFEM features high performance through array programming and GPU acceleration,achieving a 39×speedup in a polycrystal case with~52,000 degrees of freedom compared to MOOSE with MPI(8 cores).Furthermore,JAX-CPFEM utilizes the automatic differentiation technique,enabling users to handle complex,non-linear constitutive materials laws without manually deriving the case-specific Jacobian matrix.Beyond solving forward problems,JAX-CPFEM demonstrates its potential in an inverse design pipeline,where initial crystallographic orientations of polycrystal copper are optimized to achieve targeted mechanical properties under deformations.The end-to-end differentiability of JAX-CPFEM allows automatic sensitivity calculations and high-dimensional inverse design using gradient-based optimization.The concept of differentiable JAX-CPFEM provides an affordable,flexible,and multi-purpose tool,advancing efficient and accessible computational tools for inverse design in smart manufacturing. 展开更多
关键词 gpu accelerated jax cpfem crystal plasticity finite element method modern computing architecture automatic differentiation techniqueenabling array programming gpu accelerationachieving polycrystal
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