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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Sustainable Ammonia and Advanced Symbiotic Fertilizer Production Using Catalytic Multi-Reaction-Zone Reactors with Nonthermal Plasma and Simultaneous Reactive Separation
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Sustainable Ammonia and Advanced Symbiotic Fertilizer Production Using Catalytic Multi-Reaction-Zone Reactors with Nonthermal Plasma and Simultaneous Reactive Separation

机译:可持续氨和先进的共生肥料生产具有催化多反应区反应器,具有非热血浆和同时反应分离

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摘要

The theoretical bases of a novel intensified catalytic multi-reaction-zone reactor (M-RZR) system are described. The M-RZR with two reaction zones (RZ-1 and RZ-2) was used for ammonia synthesis. In the catalytic nonthermal plasma reaction zone (RZ-1), ammonia was synthesized and it was immediately sequestrated by a highly porous polymeric solid acid absorbent in the ammonia neutralization reaction zone (RZ-2). The solid acid was a sulfonated cross-linked porous polystyrene foam known as polyHIPE polymer (s-PHP, HIPE = high internal phase emulsion). The s-PHP and its neutralized version (sn-PHP) were previously developed as an advanced symbiotic fertilizer (or synthetic root system) for agro-process intensification for the enhancement (50–300%) of crop yield and nitrogen fixation especially under water and nutrient stress. In this first ever “proof-of-concept” study of the M-RZR system, without any attempt for optimization, it was shown that the ammonia conversion per pass reached ca. 40% and ammonia concentration was ca. 20 vol %. The energy cost of ammonia was 0.76 MJ/g NH3 which was 2 times smaller than optimized systems in which the ammonia concentration in the product stream was ca. 1.5 vol %. Direct conversion of hydrogen enhanced clean syngas (a1CO + a2CO2 + a3H2 + a4N2 + a5CH4) to ammonia and its reversible sequestration by CO2 to form solid ammonium carbamate/carbonate was demonstrated. This method is not only useful for direct conversion of syngas to ammonium carbonate/urea fertilizers but also for obtaining anhydrous ammonia for fuel applications. The reactive in situ air separation was also demonstrated for the generation of nitrogen for ammonia synthesis and oxygen for the gasification of biomass as a sustainable source of hydrogen.]]>
机译:<!图像/中/ SC-2017-02962G_0015.gif“>描述了一种新型强化催化多反应区反应器(M-RZR)系统的理论碱基。具有两个反应区(RZ-1和RZ-2)的M-RZR用于氨合成。在催化性非热血浆反应区(RZ-1)中,合成氨,通过氨中和反应区(RZ-2)中的高度多孔聚合物固体酸吸收剂立即螯合。固体酸是称为聚合物聚合物(S-PHP,HIPE =高内相乳液)的磺化交联多孔聚苯乙烯泡沫。 S-PHP及其中和版(SN-PHP)以前作为一种晚期共生肥料(或合成根系统),用于农业生物产量和氮固定的农产品增强,尤其是水和营养压力。在第一个“概念上的验证”中的M-RZR系统的研究中,没有任何优化的尝试,结果表明每次通过的氨转换达到CA. 40%和氨浓度是Ca. 20体积%。氨的能量成本为0.76mJ / g NH 3 ,比优化系统小2倍,其中产物流中的氨浓度是Ca。 1.5体积%。直接转化氢增强清洁合成气( A <亚> 1 CO + A 2 CO 2 + a 3 h 2 + a 4 n 2 < /亚+ <亚> 5 ch 4 )至氨,其通过CO 2 形成固体铵的可逆螯合氨基甲酸酯/碳酸盐被证明。该方法不仅可用于将合成气直接转化为碳酸铵/尿素肥料,还可用于获得燃料应用的无水氨。还证明了原位空气分离的反应用于产生氨的氨合成和氧气的生物量作为氢气的可持续源。]>

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