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首页> 外文期刊>Fuel Processing Technology >Response surface modeling of H2S conversion by catalytic oxidation reaction over catalysts based on SiC nanoparticles using Box — Behnken experimental design
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Response surface modeling of H2S conversion by catalytic oxidation reaction over catalysts based on SiC nanoparticles using Box — Behnken experimental design

机译:基于Box-Behnken实验设计的SiC纳米颗粒在催化剂上催化氧化反应转化H2S的响应面建模。

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Catalysts of sodium silicate and cadmium oxide supported on silicon carbide nanopowders were synthesized and used in catalytic oxidation of H2S to elemental sulfur. The effect of temperature (from 150 to 250 °C); gas hour space velocity (from 2000 to 4000 h ~(-1)) and sodium: cadmium weight ratio (from 1 to 5), on the conversion of H2S were studied by a Box-Behnken experimental design method. A quadratic regression equation was developed to describe relationship between the operating conditions and the response. The significance of main factors and their quadratic interactions on the conversion of H2S in catalytic oxidation were examined by means of the analysis of variance (ANOVA). The results showed that temperature had the most significant effect on H2S conversion compared with other two variables. F value of 29.46, coefficient of determination (R~2) of 0.9779, adjusted-R2 of 0.9447, absolute average deviation (MD) of 0.29% and, coefficient of variation (CV) of 0.59%, implied the satisfactory adjustment of the quadratic model. The results indicated that up to 100% H2S conversion was obtained at the optimum conditions.
机译:合成了负载在碳化硅纳米粉上的硅酸钠和氧化镉催化剂,并将其用于将H2S催化氧化为元素硫。温度的影响(从150到250°C);利用Box-Behnken实验设计方法研究了气体时空速(2000〜4000 h〜(-1))和钠:镉的重量比(1〜5)对硫化氢的转化率。开发了二次回归方程来描述操作条件和响应之间的关系。通过方差分析(ANOVA)检验了主要因素及其二次相互作用对H2S催化氧化转化的意义。结果表明,与其他两个变量相比,温度对H2S转化的影响最大。 F值为29.46,确定系数(R〜2)为0.9779,调整后的R2为0.9447,绝对平均偏差(MD)为0.29%,变异系数(CV)为0.59%,这意味着二次方的调整令人满意。模型。结果表明,在最佳条件下可获得高达100%的H2S转化率。

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