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首页> 外文期刊>International Journal of Fracture >An improved numerical manifold method incorporating hybrid crack element for crack propagation simulation
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An improved numerical manifold method incorporating hybrid crack element for crack propagation simulation

机译:混合裂纹单元的改进数值流形方法用于裂纹扩展仿真

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摘要

The numerical manifold method (NMM) simulates continuous and discontinuous problems in a unified framework; thus NMM has advantages in analysing crack propagation. However, calculation of the stress intensity factors (SIFs) when adopting the NMM requires additional procedures, such as the J-integral and the interaction integral. In this study, a hybrid crack element (HCE) method is incorporated into the NMM to directly obtain the SIFs; the new algorithm combines the merits of both the NMM and HCE method. In the proposed algorithm, the HCE is used in the crack-tip region while the NMM is applied in the remaining region. The SIFs at the crack-tip are calculated directly from the solution of the governing equation with less computational complexity relative to existing methods. The proposed algorithm does not require any changes to the initial mesh during crack propagation. It is verified by a few examples and the results show that the simulated crack propagation paths are in good agreement with the results from existing studies while the computational efficiency is improved due to the direct calculation of the SIFs and the consistency of the mesh system in the crack propagation process.
机译:数值流形方法(NMM)在统一框架中模拟连续和不连续的问题;因此,NMM在分析裂纹扩展方面具有优势。但是,采用NMM时,应力强度因子(SIF)的计算需要附加过程,例如J积分和相互作用积分。在这项研究中,将混合裂纹元素(HCE)方法结合到NMM中以直接获得SIF。新算法结合了NMM和HCE方法的优点。在提出的算法中,在裂纹尖端区域使用HCE,而在其余区域应用NMM。裂纹尖端的SIF直接从控制方程的解中进行计算,相对于现有方法而言,其计算复杂度较低。所提出的算法在裂纹扩展过程中不需要对初始网格进行任何更改。通过几个例子进行了验证,结果表明,模拟的裂纹扩展路径与现有研究的结果吻合良好,同时由于直接计算SIF和网格的一致性,提高了计算效率。裂纹扩展过程。

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