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Automated generation of multiphysics simulation models to support multidisciplinary design optimization

机译:自动生成多物理场仿真模型,以支持多学科设计优化

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To ensure a consistent design representation for serving multidisciplinary analysis, this research study proposes an intelligent modeling system to automatically generate multiphysics simulation models to support multidisciplinary design optimization processes by using a knowledge based engineering approach. A key element of this system is a multiphysics information model (MIM), which integrates the design and simulation knowledge from multiple engineering domains. The intelligent modeling system defines classes with attributes to represent various aspects of physical entities. Moreover, it uses functions to capture the non-physical information, such as control architecture, simulation test maneuvers and simulation procedures. The challenge of system coupling and the interactions among the disciplines are taken into account during the process of knowledge acquisition. Depending on the domain requirements, the intelligent modeling system extracts the required knowledge from the MIM and uses this first to instantiate submodels and second to construct the multiphysics simulation model by combining all submodels. The objective of this research is to reduce the time and effort for modeling complex systems and to provide a consistent and concurrent design environment to support multidisciplinary design optimization. The development of an unstable and unmanned aerial vehicle, a multirotor UAV, is selected as test case. The intelligent modeling system is demonstrated by modeling thirty-thousand multirotor UAV designs with different topologies and by ensuring the automatic development of a consistent control system dedicated for each individual design. Moreover, the resulting multiphysics simulation model of the multirotor UAV is validated by comparing with the flight data of an actual quadrotor UAV. The results show that the multiphysics simulation model matches test data well and indicate that high fidelity models can be generated with the automatic model generation process.
机译:为了确保为多学科分析提供一致的设计表示,本研究提出了一种智能建模系统,该系统可以使用基于知识的工程方法自动生成多物理场仿真模型,以支持多学科设计优化过程。该系统的关键要素是多物理场信息模型(MIM),该模型集成了来自多个工程领域的设计和仿真知识。智能建模系统定义具有属性的类,以表示物理实体的各个方面。此外,它使用功能来捕获非物理信息,例如控制体系结构,模拟测试操作和模拟程序。在知识获取过程中,考虑了系统耦合和学科之间相互作用的挑战。根据领域要求,智能建模系统会从MIM中提取所需的知识,并首先使用该知识实例化子模型,然后通过组合所有子模型来构建多物理场仿真模型。这项研究的目的是减少对复杂系统进行建模的时间和精力,并提供一致且并行的设计环境以支持多学科设计优化。测试选择了一种不稳定的无人驾驶飞机多旋翼无人机。通过建模具有不同拓扑结构的3万多旋翼无人机设计并通过确保自动开发专用于每个单独设计的一致控制系统来演示智能建模系统。此外,通过与实际四旋翼无人机的飞行数据进行比较,验证了所得的多旋翼无人机的多物理场仿真模型。结果表明,多物理场仿真模型与测试数据匹配良好,表明可以通过自动模型生成过程生成高保真模型。

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