用化学软件设计和模拟Rde冷剂中的分子干扰处理过程

Sriyono Sriyono, Atiqah Meutia Hilda, Mia Kamayani
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引用次数: 2

摘要

RDE10氦冷却剂的纯度应保持在各种杂质气体中,因为水/空气进入与反射器石墨(C)发生反应。这些杂质是CH4, CO, CO2, H2O, H2, O2和N2,它们会引发氧化腐蚀或增碳脱碳,因此浓度应保持在最低水平。氦气冷却剂由氦气净化系统(HPS)净化。HPS的一个阶段是分子筛吸附CO2和H2O分子。本文讨论了压力对分子筛吸附能力的影响,即变压吸附(PSA),旨在确定在分子筛柱上操作的最有效压力。分子筛用CHEMCAD计算机代码分为两列,一列用于吸附过程,另一列用于再生(脱附)过程。分析中采用的吸附方法是Langmuir法。已建立的模型通过提供输入进行模拟:总流量10.5 kg/h, 30℃,孔隙度0.7,床层高度2 m,孔径5 A, O2和N2杂质量各1 g/s。在5 ~ 50 bar的压力范围内,对分子筛的吸附性能进行了分析。模拟结果表明,当压力增加5 ~ 50 bar时,分子筛对CO2和H2O的吸收能力分别增加了15.90%和15.80%。在SPH设计中,必须将进入分子筛的输入流压缩至50bar,以获得对CO2和H2O的高吸收能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pemodelan dan Simulasi Proses Adsorpsi Gas Pengotor oleh Molecular Sieve pada Pendingin Rde dengan Software Chemcad
The purity of RDE10 helium coolant should be maintained from various impurities gas due to water/air ingress that reacts with the reflector graphite (C). These impurities are CH4, CO, CO2, H2O, H2, O2, and N2 which can initiate oxidation corrosion or carburization-decarburization so the concentration should be maintain to be a minimum. The helium coolant is purified by Helium Purification System (HPS). One of the stages in HPS is adsorption by Molecular Sieve mainly for CO2 and H2O molecules. This paper discusses the influence of pressure, known as pressure swing adsorption (PSA) on the adsorption ability of the Molecular Sieve aims to determine the most effective pressure that will be operated on Molecular Sieve column. Molecular Sieve is modeled with CHEMCAD computer code in two columns, one column for the adsorption process, and the other for the regeneration (desorption). Adsorption methods used in the analysis is the Langmuir method. Models that have been developed simulated by providing input: total flow rate of 10.5 kg/hour, 30 °C, porosity 0.7, bed height 2 m, pore diameter 5 A, and the amount of O2 and N2 impurities respective each 1 g/s. The pressure varies between 5 to 50 bars, and the Molecular Sieve adsorption capability is analyzed. Simulation results show that with the increase in pressure of 5 to 50 bar, indicating an increase in Molecular Sieve absorption capacity to CO2 is 15.90% and to H2O is 15.80%. In the SPH design, the input stream to the Molecular Sieve must be compressed until 50 bar to obtain high absorption capability of the CO2 and H2O.
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