发明授权
EP0698205B1 A METHOD FOR MEASURING TEMPERATURE, MOLECULAR COMPOSITION OR MOLECULAR DENSITIES IN GASES
失效
法测量分子组成或分子密度选择在空气中的温度的
- 专利标题: A METHOD FOR MEASURING TEMPERATURE, MOLECULAR COMPOSITION OR MOLECULAR DENSITIES IN GASES
- 专利标题(中): 法测量分子组成或分子密度选择在空气中的温度的
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申请号: EP94906423.2申请日: 1994-02-03
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公开(公告)号: EP0698205B1公开(公告)日: 2001-11-28
- 发明人: BAATH, Lars, B.
- 申请人: MEFOS-STIFTELSEN FÖR METALLURGISK FORSKNING
- 申请人地址: Box 812 S-951 28 Lulea SE
- 专利权人: MEFOS-STIFTELSEN FÖR METALLURGISK FORSKNING
- 当前专利权人: MEFOS-STIFTELSEN FÖR METALLURGISK FORSKNING
- 当前专利权人地址: Box 812 S-951 28 Lulea SE
- 代理机构: Aslund, Roland
- 优先权: SE9300347 19930203
- 国际公布: WO9418550 19940818
- 主分类号: G01N22/00
- IPC分类号: G01N22/00
摘要:
A measuring technique and method are provided to simultaneously determine the molecular density of several molecular species and the temperature within a closed process room in a melting or combustion process. In such processes in the industry, e.g. in metallurgic process industry, it is important to determine the temperature and the contents within the gas or flame without physically connect to or disturb the process. This has shown to raise large problems especially at high temperatures. The radio signal over a frequency band is measured on the outside of the process room through a window in the mantel covering as a function of frequency and registered on a computer as a radio spectrum. The system is calibrated by using a known signal transmitted through the process room. The spectral lines are identified by their frequency from a database. The temperature is determined from several lines of the same molecular specie and the molecular densities are determined from the intensities of the lines. The method is suitable to determine vibrational and rotational excitation of molecular species in the radio wavelength range of 500 m et 30 mu m. The densities of molecular species and the temperature can be imaged in three dimensions inside the process room or exhaust channel if interferometers are used for simultaneous two dimensional imaging from several azimuth directions.
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