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CuCe0.75Zr0.25Oy催化剂上CO自持燃烧实验研究 被引量:2
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作者 李博 康润宁 +2 位作者 魏小林 王子兵 宾峰 《热科学与技术》 CAS CSCD 北大核心 2019年第4期333-339,共7页
针对转炉放散煤气传统的直燃排放造成严重的能源浪费和环境污染问题,采用溶胶凝胶法制备CuCe0.75Zr0.25Oy新型催化剂,研究了反应气体积分数对CO自持催化燃烧的影响规律。结果表明,CO自持燃烧发生的临界条件为3%CO+3%O2/N2;CO与O2体积分... 针对转炉放散煤气传统的直燃排放造成严重的能源浪费和环境污染问题,采用溶胶凝胶法制备CuCe0.75Zr0.25Oy新型催化剂,研究了反应气体积分数对CO自持催化燃烧的影响规律。结果表明,CO自持燃烧发生的临界条件为3%CO+3%O2/N2;CO与O2体积分数的增大均促进了CO完全转化温度的提前,有利于CO自持燃烧反应的进行;随CO2体积分数增大,导致CO完全转化所需炉温越来越高,不利于CO自持燃烧反应的进行。同时进行了CuCe0.75Zr0.25Oy催化剂的热稳定性实验研究,结果表明,10%CO+90%合成空气条件下,CuCe0.75Zr0.25Oy催化剂在100 h内具有高热稳定性,催化剂活性基本保持不变,催化剂表面反应温度保持在310.0±3.0℃。 展开更多
关键词 cuce0.75zr0.25oy催化剂 CO 自持燃烧 温度场 热稳定性
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Study on the mechanism of NH3-selective catalytic reduction over CuCexZr1-x/TiO2
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作者 Xujuan CHEN Xiaoliang SUN +2 位作者 Cairong GONG Gang LV Chonglin SONG 《Frontiers of Materials Science》 SCIE CSCD 2016年第2期211-223,共13页
Copper-cerium-zirconium catalysts loaded on Ti02 prepared by a wet impregnation method were investigated for NHz-selective catalytic reduction (SCR) of NOx. The reaction mechanism was proposed on the basis of result... Copper-cerium-zirconium catalysts loaded on Ti02 prepared by a wet impregnation method were investigated for NHz-selective catalytic reduction (SCR) of NOx. The reaction mechanism was proposed on the basis of results from in situ diffuse reflectance infrared transform spectroscopy (DRIFT). When NH3 is introduced, ammonia bonded to Lewis acid sites is more stable over CuCe0.25Zr0.75/TiO2 at high temperature, while Brensted acid sites are more important than Lewis acid sites at low temperature. For the NH3+NO+O2 co-adsorption, NH3 species occupy most of activity sites on CuCe0.25Zr0.75/TiO2 catalyst, and mainly exist in the forms of NH4+ (at low temperature) and NH3 coordinated (at high temperature), playing a crucial role in the NHz-SCR process. Two different reaction routes, the L-H mechanism at low temperature (〈 200℃) and the E-R mechanism at high temperature (〉200℃), are presented for the SCR reaction over C uCe0.25Zr0.75/TiO2 catalyst. 展开更多
关键词 cuce0.25zr0.75/TiO2 catalyst selective catalytic reduction (SCR) diffusereflectance infrared transform spectroscopy (DRIFT) reaction mechanism
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