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Simulating reactive distillation of HIx (HI–H 2O–I 2) system in Sulphur-Iodine cycle for hydrogen production

机译:模拟硫中HIx(HI–H 2 O–I 2 )系统的反应蒸馏-碘循环制氢

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In this article, we develop a reactive distillation (RD) column configuration for the production of hydrogen. This RD column is in the HI decomposition section of the sulphur - iodine (SI) thermochemical cycle, in which HI decomposition and H2separation take place simultaneously. The section plays a major role in high hydrogen production efficiency (that depends on reaction conversion and separation efficiency) of the SI cycle. In the column simulation, the rigorous thermodynamic phase equilibrium and reaction kinetic model are used. The tuning parameters involved in phase equilibrium model are dependent on interactive components and system temperature. For kinetic model, parameter values are adopted from the Aspen flowsheet simulator. Interestingly, there is no side reaction (e.g., solvation reaction, electrolyte decomposition and polyiodide formation) considered aiming to make the proposed model simple that leads to a challenging prediction. The process parameters are determined on the basis of optimal hydrogen production as reflux ratio?=?0.87, total number of stages?=?19 and feeding point at 8th stage. With this, the column operates at a reasonably low pressure (i.e., 8?bar) and produces hydrogen in the distillate with a desired composition (H2?=?9.18?mol%, H2O?=?88.27?mol% and HI?=?2.54?mol%). Finally, the results are compared with other model simulations. It is observed that the proposed scheme leads to consume a reasonably low energy requirement of 327?MJ/kmol of H2.
机译:在本文中,我们开发了用于生产氢气的反应蒸馏(RD)色谱柱配置。该RD柱位于硫-碘(SI)热化学循环的HI分解段中,其中HI分解和H2分离同时发生。该部分对SI循环的高产氢效率(取决于反应转化率和分离效率)起着重要作用。在色谱柱模拟中,使用了严格的热力学相平衡和反应动力学模型。相平衡模型中涉及的调整参数取决于交互组件和系统温度。对于动力学模型,采用Aspen流程模拟器中的参数值。有趣的是,没有考虑到旨在使所提出的模型简单而导致具有挑战性的预测的副反应(例如,溶剂化反应,电解质分解和聚碘化物的形成)。工艺参数是根据最佳的氢气产生量来确定的,如回流比≤0.87,总级数≤19和第8级进料点。这样,塔在合理的低压下(即8巴)工作,并在馏出物中产生具有所需组成(H 2 = 9.18mol%,H 2 O = 88.27mol%,HI 2 = 3%)的氢气。 (2.54mol%)。最后,将结果与其他模型仿真进行比较。可以看出,提出的方案消耗了327?MJ / kmol的H2较低的能量。

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