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EXPERIMENTAL INVESTIGATION OF THE SOLAR CARBOTHERMIC REDUCTION OF ZnO USING A TWO-CAVITY SOLAR REACTOR

机译:使用双腔太阳能反应堆对ZnO太阳碳热降温的实验研究

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Zinc production by solar carbothermic reduction of ZnO offers a CO{sub}2 emission reduction by a factor of 5 vis-a-vis the conventional fossil-fuel-based electrolytic or Imperial Smelting processes. Zinc can serve as a fuel in Zn-air fuel cells or can be further reacted with H{sub}2O to form high-purity H{sub}2. In either case, the product ZnO is solar-recycled to Zn. We report on experimental results obtained with a 5 kW solar chemical reactor prototype that features two cavities in series, with the inner one functioning as the solar absorber and the outer one as the reaction chamber. The inner cavity is made of graphite and contains a windowed aperture to let in concentrated solar radiation. The outer cavity is well insulated and contains the ZnO-C mixture that is subjected to irradiation from the inner graphite cavity. With this arrangement, the inner cavity protects the window against particles and condensable gases and further serves as a thermal shock absorber. Tests were conducted at PSI's Solar Furnace and ETH's High-Flux Solar Simulator to investigate the effect of process temperature (range 1350-1600 K), reducing agent type (beech charcoal, activated charcoal, petcoke), and C:ZnO stoichiometric molar ratio (range 0.7-0.9) on the reactor's performance and chemical conversion. In a typical 40-min solar experiment at 1500 K, 500 g of a ZnO-C mixture were processed into Zn(g), CO, and CO{sub}2. Thermal efficiencies of up to 20% were achieved.
机译:由太阳能碳水化的ZnO产生锌的锌提供了CO {Sub} 2排放减少了5倍的Vis-A-Vis常规化石 - 燃料基电解或帝国冶炼过程。锌可以用作Zn-空气燃料电池中的燃料,或者可以进一步与H {Sub} 2o反应以形成高纯度H {Sub} 2。在任何一种情况下,产品ZnO都是太阳能循环到Zn。我们报告了用5 kW太阳能化学反应器原型获得的实验结果,该原型具有两个串联的空腔,内部用作太阳能吸收器和外部载体作为反应室。内腔由石墨制成,含有窗帘孔,以便浓缩太阳辐射。外腔具有绝缘良好的绝缘并含有从内石墨腔进行照射的ZnO-C混合物。利用这种布置,内腔保护窗口免受颗粒和可冷凝气体,并进一步用作热减震器。在PSI的太阳能炉和ETH的高磁通太阳能模拟器上进行测试,以研究工艺温度(范围1350-1600 k),还原剂类型(山毛榉木炭,活性炭,剥离)和C:ZnO化学计量摩尔比(范围为0.7-0.9)对反应堆的性能和化学转换。在1500k的典型40min太阳能实验中,将500g ZnO-C混合物加工成Zn(g),Co和Co {} 2。实现高达20%的热效率。

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