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A pilot-scale solar reactor for the production of hydrogen and carbon black from methane splitting

机译:中试规模的太阳能反应堆,用于从甲烷分解中生产氢气和炭黑

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A pilot-scale solar reactor was designed and operated at the 1 MW solar furnace of CNRS for H_2 and carbon black production from methane splitting. This constitutes the final objective of the SOLHYCARB EC project. The reaction of CH_4 dissociation produces H_2 and carbon nanoparticles without CO_2 emissions and with a solar upgrade of 8% of the high heating value of the products. The reactor was composed of 7 tubular reaction zones and of a graphite cavity-type solar receiver behaving as a black-body cavity. Temperature measurements around the cavity showed a homogeneous temperature distribution. The influence of temperature (1608K-1928K) and residence time (37-71 ms) on methane conversion, hydrogen yield, and carbon yield was especially stressed. For 900 g/h of CH_4 injected (50% molar, the rest being argon) at 1800K, this reactor produced 200 g/h H_2 (88% H_2 yield), 330 g/h CB (49% C yield) and 340 g/h C_2H_2 with a thermal efficiency of 15%. C_2H_2 was the most important by-product and its amount decreased by increasing the residence time. A 2D thermal model of the reactor was developed. It showed that the design of the reactor front face could be drastically improved to lower thermal losses. The optimised design could reach 77% of the ideal black-body absorption efficiency (86% at 1800K), i.e. 66%.
机译:在CNRS的1 MW太阳炉上设计并运行了一个中试规模的太阳能反应器,用于甲烷分解产生的H_2和炭黑。这构成了SOLHYCARB EC项目的最终目标。 CH_4离解的反应产生了H_2和碳纳米粒子,而没有CO_2的排放,并且其太阳热能提高了产品高热值的8%。该反应器由7个管状反应区和一个表现为黑体腔的石墨腔型太阳能接收器组成。腔周围的温度测量结果表明温度分布均匀。尤其要强调温度(1608K-1928K)和停留时间(37-71 ms)对甲烷转化率,氢产率和碳产率的影响。对于在1800K下注入900 g / h的CH_4(50%摩尔,其余为氩气),该反应器产生200 g / h H_2(88%H_2产率),330 g / h CB(49%C产率)和340 g / h C_2H_2,热效率为15%。 C_2H_2是最重要的副产物,其数量随停留时间的增加而减少。开发了反应器的二维热模型。结果表明,反应堆正面的设计可以大大改善以降低热损失。优化的设计可以达到理想黑体吸收效率的77%(在1800K时为86%),即66%。

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