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A FRAMEWORK FOR FUSED EXPERIMENTAL/NUMERICAL PLANT AND CONTROL SYSTEM OPTIMIZATION USING ITERATIVE G-OPTIMAL DESIGN OF EXPERIMENTS

机译:迭代G-最优实验设计的熔断实验/数值工厂与控制系统优化框架

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This paper presents a methodology for optimally fusing experiments and numerical simulations in the design of a combined plant and control system. The proposed methodology uses G-optimal Design of Experiments to balance the need for experimental data with the expense of collecting a multitude of experimental results. Specifically, G-optimal design is used to first select a batch of candidate experimental configurations, then determine which of those points to test experimentally and which to numerically simulate. The optimization process is carried out iteratively, where the set of candidate design configurations is shrunken at each iteration using a Z-test, and the numerical model is corrected according to the most recent experimental results. The methodology is presented on a model of an airborne wind energy system, wherein both the center of mass location (plant parameter) and trim pitch angle (controller parameter) are critical to system performance.
机译:本文提出了一种在工厂和控制系统组合设计中优化融合实验和数值模拟的方法。所提出的方法使用G优化实验设计来平衡对实验数据的需求与收集大量实验结果的费用。具体来说,G优化设计用于首先选择一批候选实验配置,然后确定要对哪些点进行实验测试以及对哪些点进行数值模拟。优化过程是反复进行的,其中使用Z检验在每次迭代中缩小候选设计配置的集合,并根据最新的实验结果对数值模型进行校正。该方法在机载风能系统的模型上进行了介绍,其中质量中心位置(设备参数)和纵倾角(控制器参数)都对系统性能至关重要。

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