Structural analysis in Julia for dynamic systems in OpenModelica

Liubomyr Vytvytskyi, B. Lie
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Abstract

In control theory for dynamic systems, the information about observability and controllability of states plays a key role to evaluate the possibility to observe states from outputs, and use inputs to move states to a desired position, respectively. Th automatic determination of observability and controllability is possible, in particular for linear models where typically observability and controllability grami-ans are considered. In the case of large scale systems, e.g., complex models of regional energy systems, standard analysis becomes challenging. For large scale systems, structural analysis based on directed graphs is an interesting alternative: structural observability (or: controlla-bility) is a necessary requirement for actual observability (or: controllability). Directed graphs can be set up directly for linear models, but can also be extracted from nonlinear models. Modelica is a suitable language for describing large scale models, but does not support graph algorithms. One possibility is to integrate the Modelica model into a language supporting graph algorithms, e.g., Julia: this integration can be done using package OMJulia which works with the free tool OpenModelica. OMJulia does not give direct access to the nonlinear model in Modelica, but a linear model approximation can be extracted and used for setting up the system graph. In this study, an experimental implementation of automated structural analysis is done in Julia using the LightGraphs.jl package. As an example, this structural analysis is tested on hydropower models of different complexity that are modelled in OpenModelica using our in-house hydropower Modelica library — OpenHPL, where different models for hydropower systems are assembled.
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OpenModelica动态系统的Julia结构分析
在动态系统的控制理论中,状态的可观察性和可控性信息对评估从输出观察状态的可能性和利用输入将状态移动到期望位置的可能性起着关键作用。自动确定可观察性和可控性是可能的,特别是对于线性模型,其中通常考虑可观察性和可控性语法。在大型系统的情况下,例如,区域能源系统的复杂模型,标准分析变得具有挑战性。对于大型系统,基于有向图的结构分析是一个有趣的选择:结构可观察性(或:可控性)是实际可观察性(或:可控性)的必要要求。有向图可以直接建立线性模型,但也可以从非线性模型中提取。Modelica是一种适合描述大规模模型的语言,但不支持图算法。一种可能性是将Modelica模型集成到一种支持图算法的语言中,例如Julia:这种集成可以使用OMJulia包来完成,它与免费工具OpenModelica一起工作。OMJulia不能直接访问Modelica中的非线性模型,但是可以提取线性模型近似值并用于设置系统图。在本研究中,使用LightGraphs在Julia中完成了自动结构分析的实验实现。杰包。作为一个例子,这种结构分析在不同复杂性的水电模型上进行了测试,这些模型是使用我们内部的水电模型库- OpenHPL在OpenModelica中建模的,其中组装了不同的水电系统模型。
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