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Intelligent system for the detection and diagnosis of spacecraft air contaminants

机译:用于扫描和诊断航天器空气污染物的智能系统

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In this paper, we report on the development of an intelligent system for air quality monitoring and early detection and diagnosis of air contaminants. Optimal identification of contaminants is based upon the use of an Implicit Kalman Filter that uses both experimental data and a theoretical model to obtain optimal estimates. We have developed a three-dimensional unsteady-state model of contaminant transport, which uses a flow field generated numerically for the cabin using a finite element mesh. The optimal contaminant estimates are used as the basis for the detection of a contamination event. The algorithm is shown to distinguish between sensor faults and process faults.
机译:在本文中,我们报告了空气质量监测和早期检测和诊断空气污染物的智能系统的发展。污染物的最佳识别是基于使用隐式卡尔曼滤波器,该滤波器使用实验数据和理论模型来获得最佳估计。我们已经开发了一种三维不稳定状态模型的污染物运输模型,它使用有限元网格对机舱数量产生的流场。最佳污染物估计用作检测污染事件的基础。算法显示在传感器故障和过程故障之间区分。

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