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An Efficient Split-Plot Approach for Modeling Nonlinear Aerodynamic Effects

机译:建模空气动力学非线性效应的有效分割图方法

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摘要

An everyday challenge faced by experimenters across a variety of scientific disciplines is performing well-designed experiments in the presence of characteristics that pose restrictions on complete randomization of the experimental parameters. To mitigate these restrictions on complete randomization, a split-plot experimental design methodology can be employed. The current level of sophistication in split-plot designs is now sufficient to meet the demands of higher-order models in a manner straightforward enough for practitioners. A novel case of a second-order split-plot application was recently implemented in the field of aerodynamic engineering in wind tunnel testing. Wind tunnel environments often pose restrictions on complete randomization of the test runs when aircraft physical configuration changes are required. In addition, aerodynamic empirical models require second-order effects to fit the curvature often observed in response models. Traditionally, wind tunnel testing is performed using a one-factor-at-a-time approach, which prevents capturing factor interactions and quantifying system uncertainty. This article presents a case in which a micro air vehicle (MAV) was tested in the presence of randomization restrictions with expected second-order effects utilizing an efficient design of experiments (DOE) split-plot approach.
机译:跨各种科学学科的实验人员面临的日常挑战是,在存在对实验参数完全随机化构成限制的特征的情况下,进行精心设计的实验。为了减轻对完全随机化的这些限制,可以采用分裂图实验设计方法。现在,分割图设计中的当前复杂程度足以以对实践者足够直接的方式满足高阶模型的需求。最近在风洞测试中的空气动力学工程领域中实现了二阶分割图应用的新颖案例。当需要更改飞机的物理配置时,风洞环境通常会限制测试运行的完全随机化。此外,空气动力学经验模型需要二阶效应来拟合在响应模型中经常观察到的曲率。传统上,风洞测试是使用一次一因素方法进行的,这会阻止捕获因素相互作用并量化系统不确定性。本文介绍了一种情况,其中利用有效的实验设计(DOE)分裂图方法,在存在随机限制且具有预期二阶效应的情况下对微型飞行器(MAV)进行了测试。

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