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Conceptual design of the iodine-sulfur process flowsheet with more than 50% thermal efficiency for hydrogen production

机译:碘硫工艺流程的概念设计,用于生产氢气的热效率超过50%

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A conceptual design of a practical large-scale plant of the thermochemical water splitting the iodine–sulfur (IS) process flowsheet was carried out as a heat application of Japan Atomic Energy Agency’s commercial Gas Turbine High Temperature Reactor 300 MW for Cogeneration (GTHTR300C) plant design. Innovative techniques proposed by JAEA were applied for improvement of hydrogen production thermal efficiency; depressurized flash concentration of H2SO4using waste heat from Bunsen reaction, prevention of H2SO4vaporization from a H2SO4distillation column by introduction of H2SO4solution from the 2nd flash bottom, and I2condensation heat recovery by direct contact heat exchange in an HI distillation column. A simulation of material and heat balance was made using PRO/II, a commercial chemical process simulator. The result demonstrated that hydrogen of about 31,900 Nm3/h would be produced by 170 MW heat from the GTHTR300C. A process thermal efficiency of 50.2% would be achievable with incorporation of the innovative techniques and the following high performance components expected in future R&D; an electro-electrodialysis cell stack, a reverse osmosis membrane, a HI decomposition reactor incorporated with a H2permselective membrane, and heat exchangers.
机译:作为日本原子能机构商用燃气轮机高温反应堆300 MW热电联产装置(GTHTR300C)的热应用,对热化学水分解碘硫(IS)工艺流程的实际大型工厂进行了概念设计。设计。 JAEA提出的创新技术被用于提高制氢热效率。使用本生反应产生的废热降低H2SO4的闪蒸浓缩浓度,通过从第二个闪蒸塔底引入H2SO4溶液防止H2SO4蒸馏塔中的H2SO4蒸发,并通过HI蒸馏塔中的直接接触热交换回收I2冷凝热。使用商业化学过程仿真器PRO / II对材料和热平衡进行了仿真。结果表明,来自GTHTR300C的170 MW热量将产生约31,900 Nm3 / h的氢气。结合创新技术和未来研发中预期的以下高性能组件,可达到50.2%的过程热效率;电渗析电池堆,反渗透膜,装有H2选择性渗透膜的HI分解反应器和热交换器。

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