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作 者:赵建华[1] 高明亮[1] 魏周君[2] 武秀娟[1]
机构地区:[1]中国科学技术大学火灾科学国家重点实验室,合肥230027 [2]中国船舶重工集团第七二六研究所,上海201108
出 处:《安全与环境学报》2011年第1期131-135,共5页Journal of Safety and Environment
基 金:安徽省自然科学基金项目(070415221)
摘 要:基于傅里叶变换红外光谱技术,选取低浓度的CO、CO_2、NO、NO_2、SO_2、HCl、HBr、HCN 8种典型有毒有害气体进行定量分析。经过合理选择光谱区间、数据预处理、样本筛选以及确定模型参数后,建立PLS回归模型,并对模型回归曲线进行多项式修正。模型中各组分实际浓度与预测浓度的拟合回归系数达到0.99,校正集误差均方根S^(RMSEC)低于15×10^(-6)。利用验证集对模型的预测性能进行检验,样本各组分的预测浓度误差小于满量程的±2%,各组分的预测误差均方根S^(RMSEP)不超过20×10^(-6)。Abstract: The paper is concerned about a measuring method devel- oped by the present author based on FTIR for measuring the concentrations of components in the toxic gases harmful both to human health and the environment quality. The said experimental system was established based on the use of Fourier transform infrared spectrometer, gas compounding equipment, vacuum pump as well as other devices. To make the quantitative analysis kinds of classic toxic gases with successful, we have chosen eight low concentration, including CO, CO2, NO, NO2, SO2, HCl, HBr and HCN. The best calculated spectrum regions of the 8 components were analyzed in hoping to avoid the interference of vapor and carbon dioxide from the outside environment as the result of a series of trials and appropriate choice. The sample of calibration set has been tested and verified by the method of Mahalanobis distance (M) for the model to be soundly es-tablished. For example, we have deleted two samples due to their being less purposeful for our research goals. Then, two data matrixes were adopted to establish our model, one of which is infrared spectrum data matrix and the other of which is the gas concentration data matrix. And, finally, the partial least square (PLS) regression model was established after choice of an appropriate spectrum region, data pre-treating, standards selection and parameters setting. With the result of each component verified by the PLS model and regulated by the multinomial, the fitting regression coefficient between the actual concentrations and predicted concentrations of each component proved to be higher than 0.99, and the Root-mean Standard Error of Calibration ( SRMSEC ) proves lower than 15 × 10^-6 . With the expected performance of the model well verified by the standards in validation set, the error of the concentration prediction proves lower than ± 2% FS and the Root-mean Standard Error of Prediction (SRMSEe) is lower than 20± 10^-6. Thus, it can be seen that the proposed qualitative analysi
关 键 词:安全工程 气体定量分析 傅里叶变换红外光谱技术 混合毒性气体 PLS回归模型
分 类 号:TN247[电子电信—物理电子学] X924.2[环境科学与工程—安全科学]
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