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The Research of Quantitative Analysis for SF6 and Its Derivatives in GIS Based on Infrared Spectrum

机译:基于红外光谱的GIS中SF6及其衍生物定量分析的研究

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The concentration and types of SF_6 in Gas Insulated Switchgear (GIS) play a decisive role in the devices' insulating property. A quantitative analysis of SF_6 and its decompositions can help to find the reason of fault. In order to find the concentration information of some special ramifications of SF_6 from the infrared spectrum of GIS's gas, this paper proposes Particle Swarm Optimization combines with Support Vector Machine to analysis the insulating medium SF_6 and its ramifications quantitatively. This paper studies the spectrum of several ingredients that are mordant to the insulator instruments in the ramifications, such as HF and SO_2. The mixed spectrum is divided into 13 parts, and the area of every part is calculated. The centre of each part is the characteristic peaks, and contains 35 wave numbers both side. These areas are used as the inputs of Support Vector Machine; the outputs is volumes of the three gases. The Particle Swarm Optimization is used to train the Support Vector Machine. The experiment shows Support Vector Machine based on Particle Swarm Optimization is time saved and accurate, which has practical significance and application potentiality.
机译:气体绝缘开关设备(GIS)中SF_6的浓度和类型对设备的绝缘性能起着决定性的作用。 SF_6及其分解的定量分析可以帮助找到故障原因。为了从GIS气体的红外光谱中找到SF_6的一些特殊分支的浓度信息,提出了结合支持向量机的粒子群优化算法对绝缘介质SF_6及其分支进行定量分析。本文研究了分枝过程中与绝缘子仪器有关的几种成分的光谱,例如HF和SO_2。将混合频谱分为13个部分,并计算每个部分的面积。每个部分的中心是特征峰,两侧包含35个波数。这些区域用作支持向量机的输入;输出是三种气体的体积。粒子群优化用于训练支持向量机。实验表明,基于粒子群算法的支持向量机既省时又准确,具有实际意义和应用潜力。

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