This manuscript presents the formulation, implementation, calibration and application of a multiscale reduced-order model to simulate a titanium panel structure subjected to thermo-mechanical loading associated with high-speed flight. The formulation is based on the eigenstrain-based reduced-order homogenization model (EHM) and further considers thermal strain as well as temperature dependent material properties and evolution laws. The material microstructure (i.e., at the scale of a polycrystalline representative volume element (RVE)) and underlying microstructural mechanisms are directly incorporated and fully coupled with a structural analysis, allowing concurrently probing the response at the structural scale and the material microscale. The proposed approach was fully calibrated using a series of uniaxial tension tests of Ti-6242S at a wide range of temperatures and two different strain rates. The calibrated model is then adopted to study the response of a generic aircraft skin panel subjected to thermo-mechanical loading associated with high-speed flight. The analysis focuses on demonstrating the capability of the model to predict not only the structural scale response, but simultaneously the microscale response, and further studies the effects of temperature and texture on the response.
翻译:本手稿介绍了模拟与高速飞行有关的热机械载荷的钛板面板结构的多级减序模型的拟订、实施、校准和应用,该模型以基于乙氧气的减序同质模型为基础,进一步审议热菌株以及温度依赖物质特性和演化法,材料微结构(即多晶体代表体积元素(REVE)的大小)和微结构机制直接纳入并充分结合结构分析,允许在结构尺度和材料微观尺度同时研究反应情况,拟议方法在广泛的温度和两种不同的压力速率对Ti-6242S进行一系列非轴力紧张度测试,然后采用校准模型研究受与高速飞行有关的热力-机械载荷(RVE)影响的一般飞机皮肤板的反应,分析的重点是展示模型的能力,不仅预测结构尺度反应,而且还同时预测微尺度反应,以及进一步研究温度和文字反应的影响。