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Interest of absorption spectroscopy for the control of industrial processes. Application to H_2 massive production

机译:吸收光谱对于控制工业过程的兴趣。在H_2大规模生产中的应用

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Absorption and TDLA spectroscopies find their applications in a lot of fields of research. The purpose of this article is to show how these methods can bring significant advances in chemical research projects. "H_2 massive production" using nuclear heat together with a thermochemical cycle is an important way to massively produce hydrogen, a potential energy vector. The sulfur-iodine cycle and the hybrid copper-chloride thermochemical cycles are some good candidates for water splitting.rnIn the case of the sulfur-iodine thermochemical cycle, the overall efficiency of the process essentially depends on the efficiency of HI section. Using optical techniques, such as a FTIR spectrometer for H_2O and HI concentrations determination, and a TDL spectrometer for I_2 measurements, it enables to get very significant results that will be useful to build a new thermodynamic model of the HI separation. This nonintrusive method has avoided any vapor change and prevented tedious experiments in harsh environments.rnThe same methodology is now applied for the study of the hydrolysis reaction of the thermochemical hybrid copper-chloride cycle. The study of this reaction is very important to assess the viability of this cycle because this reaction is not thermodynamically favored and it only occurs if a large excess of water is used. To better understand the influence of various parameters, such as water stoichiom-etry, temperature, reaction duration, an experimental setup has been designed and realized. The experimental setup uses two spectrometers to study the speciation of the gaseousrnphase and optimize the kinetics of the hydrolysis reaction. Concentrations of HCl and H_2O are obtained by fitting experimental FTIR spectra with calculated spectra. Parasitic reactions can appear leading to formation of Cl_2, measured by UV-Visible spectrophotometry.rnThe high temperature reaction at around 530℃ is the only reaction of this copper-chloride cycle which is thermodynamically favored. A better understanding of its kinetics and the influence of the experimental parameters on this kinetics are needed. For this purpose, an absorption spectrometer able to measure oxygen is under study. This instrument is based on a high-finesse cavity and a DFB diode in order to access an oxygen absorption line spectra, near 1.3 μm. Preliminary results of this work will be presented.
机译:吸收光谱和TDLA光谱学在许多研究领域中都有应用。本文的目的是说明这些方法如何在化学研究项目中带来重大进展。利用核能和热化学循环进行“ H_2大规模生产”是大规模生产氢的一种重要方法,氢是一种潜在的能量载体。硫碘热循环和氯化铜杂化热化学循环是水分解的一些很好的选择。在硫碘热化学循环的情况下,该工艺的整体效率主要取决于HI部分的效率。使用光学技术,例如用于H_2O和HI浓度测定的FTIR光谱仪,以及用于I_2测量的TDL光谱仪,它可以获得非常重要的结果,将有助于建立HI分离的新热力学模型。这种非侵入性方法避免了任何蒸汽变化,并避免了在恶劣环境中进行繁琐的实验。现在,该方法已用于研究热化学杂化氯化铜循环的水解反应。该反应的研究对于评估该循环的可行性非常重要,因为该反应在热力学上不受青睐,并且仅在使用大量过量的水时才会发生。为了更好地理解各种参数的影响,例如水化学计量,温度,反应持续时间,已经设计并实现了实验装置。实验装置使用两个光谱仪来研究气相的形态并优化水解反应的动力学。通过将实验FTIR光谱与计算得出的光谱进行拟合,可以获得HCl和H_2O的浓度。用紫外可见分光光度法测量,可能会出现寄生反应导致Cl_2的形成。530℃左右的高温反应是该氯化铜循环中唯一受到热力学欢迎的反应。需要对其动力学以及实验参数对该动力学的影响有更好的了解。为此,正在研究一种能够测量氧气的吸收光谱仪。该仪器基于高精细腔体和DFB二极管,以获取接近1.3μm的氧气吸收谱线。将介绍这项工作的初步结果。

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  • 来源
    《Applied physics》 |2010年第2期|P.409-415|共7页
  • 作者单位

    Department of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

    rnDepartment of Physical Chemistry, CEA, CE Saclay, 91191 Gif sur Yvette Cedex, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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