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首页> 外文期刊>Journal of intelligent material systems and structures >A coupled layered thermomechanical shape memory alloy beam element with enhanced higher order temperature field approximations
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A coupled layered thermomechanical shape memory alloy beam element with enhanced higher order temperature field approximations

机译:具有增强的高阶温度场近似的耦合层状热机械形状记忆合金梁单元

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摘要

This article describes the development and validation of a new thermomechanically coupled multi-layered shape memory alloy beam finite element. The finite element is formulated, assuming coupled equilibrium equations for the mechanical and thermal problems. The constitutive shape memory alloy model of Lagoudas and coworkers is implemented in the formulation. Multi-field kinematic hypotheses are proposed, combining a first-order shear displacement field with a sixth-order polynomial temperature field through the thickness of the beam, enabling adequate representation of the temperature and phase transformation profiles due to rapid thermal loading, uneven thermal loading, and boundary conditions and multi-layered configurations with variable thermal properties. The non-linear transient discretized equations of motion of the shape memory alloy beam are synthesized and solved using the Newton-Raphson method with an implicit time integration scheme. Numerical results illustrate the time response of uniform and bi-layered NiTi beams under various thermomechanical loads predicted by the developed finite element. Correlations of the beam element predictions with those of plane stress two-dimensional finite element shape memory alloy models demonstrate excellent agreement in the calculated displacement, temperature, and phase transformation fields. Additionally, the developed beam finite element yields computationally fast simulations providing an effective tool for the design and simulation of rod, beam, and strip shape memory alloy actuators and active structures.
机译:本文介绍了新型热机械耦合多层形状记忆合金梁有限元的开发和验证。假设有限元是针对机械和热学问题的耦合平衡方程,则公式化了。在该公式中实现了Lagoudas和同事的本构形状记忆合金模型。提出了多场运动学假说,该理论通过梁的厚度将一阶剪切位移场与六阶多项式温度场组合在一起,从而能够充分表示由于快速热载荷,不均匀热载荷而引起的温度和相变曲线以及边界条件和具有可变热属性的多层配置。使用具有隐式时间积分方案的Newton-Raphson方法,合成并求解了形状记忆合金梁的非线性瞬态离散运动方程。数值结果说明了均匀的双层NiTi束在各种热机械载荷作用下的时间响应,这些载荷是由有限元预测的。梁单元预测与平面应力二维有限元形状记忆合金模型的相关性在计算的位移,温度和相变场中显示出极好的一致性。此外,已开发的梁有限元可提供快速计算仿真,从而为杆,梁和带状形状记忆合金执行器和活动结构的设计和仿真提供了有效的工具。

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