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Early Insights on FMI-based Co-Simulation of Aircraft Vehicle Systems

机译:基于FmI的飞机车辆系统协同仿真的早期见解

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摘要

Modelling and Simulation is extensively used for aircraft vehicle system development at Saab Aeronautics in Linköping, Sweden. There is an increased desire to simulate interacting sub-systems together in order to reveal, and get an understanding of, the present cross-coupling effects early on in the development cycle of aircraft vehicle systems. The co-simulation methods implemented at Saab require a significant amount of manual effort, resulting in scarcely updated simulation models, and challenges associated with simulation model scalability, etc. The Functional Mock-up Interface (FMI) standard is identified as a possible enabler for efficient and standardized export and co-simulation of simulation models developed in a wide variety of tools. However, the ability to export industrially relevant models in a standardized way is merely the first step in simulating the targeted coupled sub-systems. Selecting a platform for efficient simulation of the system under investigation is the next step. Here, a strategy for adapting coupled Modelica models of aircraft vehicle systems to TLM-based simulation is presented. An industry-grade application example is developed, implementing this strategy, to be used for preliminary investigation and evaluation of a cosimulation framework supporting the Transmission Line element Method (TLM). This application example comprises a prototype of a small-scale aircraft vehicle systems simulator. Examples of aircraft vehicle systems are environmental control systems, fuel systems, and hydraulic systems. The tightly coupled models included in the application example are developed in Dymola, OpenModelica, and Matlab/Simulink. The application example is implemented in the commercial modelling tool Dymola to provide a reference for a TLM-based master simulation tool, supporting both FMI and TLM. The TLM-based master simulation tool TLMSimulator is investigated in terms of model import according to the FMI standard with respect to a specified set of industrial needs and requirements.
机译:建模和仿真已在瑞典林雪平的萨博航空广泛用于飞机系统的开发。人们越来越希望将相互作用的子系统一起仿真,以便在飞机系统开发周期的早期揭示并了解当前的交叉耦合效应。萨博(Saab)实施的协同仿真方法需要大量的人工工作,从而导致仿真模型的更新很少,以及与仿真模型可伸缩性相关的挑战等。功能模拟接口(FMI)标准被确定为可能的实现方法高效,标准化的导出以及使用多种工具开发的仿真模型的协同仿真。但是,以标准化方式导出与工业相关的模型的能力仅仅是模拟目标耦合子系统的第一步。下一步是选择一个平台来对正在研究的系统进行有效的仿真。在这里,提出了一种使飞机车辆系统的耦合Modelica模型适应基于TLM的仿真的策略。开发了一个工业级应用示例,以实施该策略,以用于初步研究和评估支持传输线元素方法(TLM)的协同仿真框架。该应用示例包括小型飞机系统仿真器的原型。飞机系统的例子是环境控制系统,燃料系统和液压系统。应用示例中包含的紧密耦合模型是在Dymola,OpenModelica和Matlab / Simulink中开发的。该应用示例在商业建模工具Dymola中实现,可为同时支持FMI和TLM的基于TLM的主仿真工具提供参考。对于基于TLM的主仿真工具TLMSimulator,根据FMI标准针对一组特定的工业需求和要求,在模型导入方面进行了研究。

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