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首页> 外文期刊>Fusion Science and Technology >First Calibration of an IR Absorption Spectroscopy System for the Measurement of H_2, D_2, and HD Concentration in the Liquid Phase
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First Calibration of an IR Absorption Spectroscopy System for the Measurement of H_2, D_2, and HD Concentration in the Liquid Phase

机译:红外吸收光谱系统的首次校准,用于测量液相中的H_2,D_2和HD浓度

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摘要

Fusion facilities like ITER and DEMO will circulate several kilograms tritium and deuterium per day in their fuel cycle. For the separation of the hydrogen isotopologues the Isotope Separation System (ISS), based on cryogenic distillation, was developed at Tritium Laboratory Karlsruhe (TLK). One challenge is to find and develop an in situ and real time method to analyse the isotopologic composition of the column content. Calibration tests with IR absorption spectroscopy (FTIR) with chemically equilibrated samples have been performed at the Tritium absorption IR Spectroscopy Experiment (TApIR). From this previous work and from literature, it is known that the dependence between IR absorbance and the concentrations is non-linear. This makes it impossible to extrapolate the calibration from equilibrium to non-equilibrium samples. This work shows a full D_(2), H_(2), and HD calibration with samples in and off the high temperature. This enables us now to measure composition of inactive liquid hydrogen samples with an accuracy of better than 5%. In addition, one of the main challenges on the way to a calibration with tritiated mixtures is shown, the IR absorbance at molecular dimers, which tremendously increases the complexity of IR absorption spectra.
机译:ITER和DEMO等核聚变设施在其燃料循环中每天将循环传输数公斤的several和氘。为了分离氢同位素,在卡尔斯鲁厄he实验室(TLK)开发了基于低温蒸馏的同位素分离系统(ISS)。一个挑战是找到并开发一种原位实时方法来分析色谱柱内容物的同位素组成。在at吸收红外光谱实验(TApIR)上已对化学平衡的样品进行了红外吸收光谱(FTIR)的校准测试。从先前的工作和文献中可以知道,IR吸光度和浓度之间的关系是非线性的。这使得不可能将校准从平衡样本外推到非平衡样本。这项工作显示了在高温下进样和高温下样品的完整D_(2),H_(2)和HD校准。现在,这使我们能够以不超过5%的精度测量非活性液态氢样品的成分。此外,还显示了tri化混合物校准方法的主要挑战之一,即分子二聚体的红外吸收,这极大地增加了红外吸收光谱的复杂性。

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