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The Art of Extracting One-Dimensional Flow Properties from Multi-Dimensional Data Sets

机译:从多维数据集提取一维流动性质的艺术

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The engineering design and analysis of air-breathing propulsion systems relies heavily on zero- or one-dimensional properties (eg, thrust, total pressure recovery, mixing and combustion efficiency, etc.) for figures of merit. The extraction of these parameters from experimental data sets and/or multi-dimensional computational data sets is therefore an important aspect of the design process. A variety of methods exist for extracting performance measures from multi-dimensional data sets. Some of the information contained in the multi-dimensional flow is inevitably lost when any one-dimensionalization technique is applied. Hence, the unique assumptions associated with a given approach may result in one-dimensional properties that are significantly different than those extracted using alternative approaches. The purpose of this effort is to examine some of the more popular methods used for the extraction of performance measures from multi-dimensional data sets, reveal the strengths and weaknesses of each approach, and highlight various numerical issues that result when mapping data from a multi-dimensional space to a space of one dimension.
机译:空气呼吸推进系统的工程设计和分析严重依赖于零或一维特性(例如,推力,总压力回收,混合和燃烧效率等)。因此,从实验数据集和/或多维计算数据集中提取这些参数是设计过程的一个重要方面。存在来自多维数据集的性能测量的各种方法。当应用任何一维化技术时,多维流中包含的一些信息不可避免地丢失。因此,与给定方法相关联的独特假设可能导致一维属性,其与使用替代方法提取的那些显着不同。这项努力的目的是研究一种用于从多维数据集提取性能措施的一些更流行的方法,揭示了每种方法的强度和弱点,并突出显示来自多个多个数据时导致的各种数值问题 - 一个尺寸的空间到一个维度的空间。

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