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Infrared optical imaging techniques for gas visualization and measurement.

机译:用于气体可视化和测量的红外光学成像技术。

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摘要

Advancement in infrared imaging technology has allowed the thermal imaging to detect and visualize several gases, mostly hydrocarbon gases. In addition, infrared cameras could potentially be used as a non-contact temperature measurement for gas and vapor. However, current applications of infrared imaging techniques for gas measurements are still limited due to several uncertainties in their performance parameters. The aim of this research work was to determine the key factors in the application of infrared imaging technology for gas visualization and a non-contact temperature measurement. Furthermore, the concentration profile and emission rate of the gas are predicted by combining the application of the infrared imaging method with gas dispersion modeling.;In this research, infrared cameras have been used to visualize liquefied natural gas (LNG) plumes from LNG spills on water. The analyses of the thermograms showed that the apparent temperatures were different from the thermocouple measurement which occurred due to the assumption of that the object emissivity was always equal to unity. The emissivity for pure methane gas and a mixture of methane and atmospheric gases were then evaluated in order to obtain the actual temperature distribution of the gas cloud. The results showed that by including the emissivity value of the gas, the temperature profile of the dispersed gas obtained from a thermal imaging measurement was in good agreement with the measurement using the thermocouples. Furthermore, the temperature distribution of the gas was compared to the concentration of a dispersed LNG vapor cloud to obtain a correlation between the temperature and the concentration of the cloud.;Other application of infrared imaging technique was also conducted for leak detection of natural gas from a pipeline. The capability of an infrared camera to detect a fugitive gas leak was combined with the simulation of vapor discharge and dispersion in order to obtain a correlation between the emission rates and the sizes of the gas plume to the minimum detectable concentration. The relationship of the methane gas cloud size to the gas emission rate was highly dependent to the prevailing atmospheric condition. The results showed that the correlation were best to predict the emission rate less than 0.2 kg/s. At higher emission rate, the increase in gas release rate did not change the size of the cloud significantly.
机译:红外成像技术的进步已使热成像技术能够检测和可视化多种气体,其中大部分为烃类气体。另外,红外热像仪有可能被用作气体和蒸汽的非接触式温度测量。但是,由于红外成像技术在性能参数方面存在一些不确定性,因此目前在气体测量中的应用仍然受到限制。这项研究工作的目的是确定将红外成像技术应用于气体可视化和非接触式温度测量的关键因素。此外,通过结合红外成像方法与气体扩散模型的应用来预测气体的浓度分布和排放速率。;在这项研究中,红外摄像头已用于可视化来自LNG泄漏的液化天然气(LNG)羽流。水。对热分析图的分析表明,表观温度与热电偶测量结果不同,这是由于假设对象的发射率始终等于1所致。然后评估纯甲烷气体以及甲烷与大气气体混合物的发射率,以获得气体云的实际温度分布。结果表明,通过包括气体的发射率值,从热成像测量获得的分散气体的温度分布与使用热电偶进行的测量非常吻合。此外,将气体的温度分布与分散的LNG蒸气云的浓度进行比较,以获得温度和云浓度之间的相关性;还进行了红外成像技术的其他应用,以检测天然气中的泄漏一条管道。红外摄像机检测逃逸性气体泄漏的能力与蒸汽排放和分散的模拟相结合,以便获得排放速率和气体羽流大小之间的相关性,以检测到最小浓度。甲烷气云大小与气体排放速率之间的关系高度依赖于当前的大气条件。结果表明,相关性最能预测排放速率小于0.2 kg / s。在较高的排放速率下,气体释放速率的增加并未显着改变云的大小。

著录项

  • 作者

    Safitri, Anisa.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Environmental Management.;Engineering Environmental.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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