执行机构
计算机科学
接口(物质)
热的
有限元法
实现(概率)
控制器(灌溉)
组分(热力学)
模拟
机械工程
结构工程
工程类
农学
统计
物理
数学
气泡
最大气泡压力法
人工智能
并行计算
气象学
生物
热力学
作者
Herta Montoya,Shirley J. Dyke,Christian E. Silva,Amin Maghareh,Jaewon Park,Davide Ziviani
出处
期刊:AIAA Journal
[American Institute of Aeronautics and Astronautics]
日期:2023-05-01
卷期号:61 (6): 2627-2639
摘要
Real-time hybrid simulation (RTHS) is an enabling technology that has transformed engineering experimentation and helped researchers expand modeling capabilities. However, breakthroughs are necessary to expand the range of hybrid simulation methods and, thus, enable experiments with loading conditions representing multiple hazards. This paper discusses the development of a new thermomechanical RTHS framework and a systematic approach to determining RTHS control requirements. First, the framework is established using a representative finite element model of a layered structural system subjected to thermal loading. A complete two-layer system model serves as the reference system, and it is then partitioned into a numerical layer and an experimental layer that share interface conditions. Next, a thermal actuator is introduced to impose dynamic thermal loading on the experimental subsystem, serving as a transfer system. Finally, control and performance metrics are defined to evaluate the realization of interface boundary conditions and map this to the RTHS execution. Through an illustrative example considering the influence of temperature on a lunar habitat, we demonstrate how to establish controller requirements for RTHS and demonstrate that this approach can be used to conduct RTHS on structures with thermomechanical loading.
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