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Acidity and catalytic activity of zeolite catalysts bound with silica and alumina.

机译:与二氧化硅和氧化铝结合的沸石催化剂的酸度和催化活性。

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摘要

Zeolites ZSM-5 (SiO2/Al2O3 = 30∼280) and Y(SiO2/Al2O3 = 5.2∼80) are bound with silica gel (Ludox HS-40 and Ludox AS-40) and alumina (γ-Al 2O3 and boehmite) by different binding methods, namely, gel-mixing, powder-mixing and powder-wet mixing methods. The acidities of the bound catalysts and the zeolite powder are determined by NH3-TPD and FTIR. The textures of these catalysts are analyzed on a BET machine with nitrogen as a probe molecule. The micropore surface area and micropore volume are determined by t-plot method. Micropore volume distribution is determined by Horvath-Kawazoe approach with a cylindrical pore model. Mesopore volume distribution is determined by BJH method from the nitrogen desorption isotherm.; Silica from the binder may react with extra-framework alumina in zeolites to form a new protonic acid. SiO2-bound catalysts have less strong acidity, Bronsted acidity and Lewis acidity than the zeolite powder. Also, the strength of strong acid sites of the zeolites is reduced when silica is embedded. Micropore surface area and micropore volume are reduced by about 19% and 18%, respectively, indicating some micropores of ZSM-5 are blocked on binding with silica. SiO2-bound ZSM-5 catalysts have less catalytic activity for butane transformation (cracking and disproportionation) and ethylene oligomerization than ZSM-5 powder.; When alumina is used as a binder, both the total acid sites and Lewis acid sites are increased. Micropore surface area and micropore volume of ZSM-5 powder are reduced by 26% and 23%, respectively, indicating some micropores of ZSM-5 are blocked by the alumina binder. Alumina-bound catalysts showed a lower activity for butane transformation and ethylene oligomerization than ZSM-5 powder.; Alkaline metals content in the binder is a crucial factor that influences the acidity of a bound catalyst. The metal cations neutralize more selectively Bronsted acid sites than Lewis acid sites. Alkaline metal cations in the binder and micropore blockage cause the bound catalysts to have a lower catalytic activity than the zeolite powder.
机译:沸石ZSM-5(SiO 2 / Al 2 O 3 = 30〜280)和Y(SiO 2 / Al 2 O 3 = 5.2〜80)与硅胶(Ludox HS-40和Ludox AS-40)和氧化铝(γ-Al 2 O 3 和勃姆石)通过不同的结合方法,即凝胶混合,粉末混合和粉末湿混方法。通过NH 3 -TPD和FTIR测定结合催化剂和沸石粉的酸度。这些催化剂的质构以氮气为探针分子在BET机器上进行分析。微孔表面积和微孔体积通过t-图法确定。微孔体积分布是通过Horvath-Kawazoe方法用圆柱孔模型确定的。中孔体积分布通过BJH方法由氮解吸等温线确定。粘合剂中的二氧化硅可能会与沸石中的骨架外氧化铝反应形成新的质子酸。 SiO 2 键合的催化剂比沸石粉末具有较低的强酸性,布朗斯台德酸性和路易斯酸性。而且,当包埋二氧化硅时,沸石的强酸位的强度降低。微孔表面积和微孔体积分别减少了约19%和18%,表明某些ZSM-5的微孔在与二氧化硅结合时被封闭。与ZSM-5粉末相比,SiO 2 键结合的ZSM-5催化剂对丁烷转化(裂化和歧化)和乙烯低聚的催化活性较小。当使用氧化铝作为粘合剂时,总酸位和路易斯酸位都增加。 ZSM-5粉末的微孔表面积和微孔体积分别减少了26%和23%,这表明ZSM-5的一些微孔被氧化铝粘合剂阻塞了。与ZSM-5粉末相比,氧化铝结合的催化剂显示出较低的丁烷转化和乙烯低聚活性。粘合剂中碱金属的含量是影响结合催化剂的酸度的关键因素。与路易斯酸位点相比,金属阳离子更能选择性地中和布朗斯台德酸位。粘合剂中的碱性金属阳离子和微孔阻塞导致结合的催化剂的催化活性低于沸石粉末。

著录项

  • 作者

    Wu, Xianchun.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Chemical.; Chemistry Physical.; Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 p.6211
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程);
  • 关键词

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