The phase field approach is widely used to model fracture behaviors due to the absence of the need to track the crack topology and the ability to predict crack nucleation and branching. In this work, the asynchronous variational integrators (AVI) is adapted for the phase field approach of dynamic brittle fractures. The AVI is derived from Hamilton's principle and allows each element in the mesh to have its own local time step that may be different from others'. While the displacement field is explicitly updated, the phase field is implicitly solved, with upper and lower bounds strictly and conveniently enforced. In particular, the AT1 and AT2 variants are equally easily implemented. Three benchmark problems are used to study the performances of both AT1 and AT2 models and the results show that AVI for phase field approach significantly speeds up the computational efficiency and successfully captures the complicated dynamic fracture behavior.
翻译:相位外观方法被广泛用来模拟骨折行为,因为不需要跟踪克状表层以及预测裂变和分流的能力。在这项工作中,对不同步变异集成器(AVI)进行了调整,以适应动态骨质断裂的相位外观。AVI源自汉密尔顿原则,允许网格中每个元素都有可能不同于其他元素的本地时间步骤。虽然对流位字段进行了明确更新,但该相位字段被隐含地解决,严格和方便地执行上下限。特别是,AT1和AT2变异器同样容易实施。使用三个基准问题来研究AT1和AT2模型的性能,结果显示,相位外观的AVI大大加快了计算效率,并成功捕捉到复杂的动态骨折行为。