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Fly ash zeolite catalyst support for Fischer-Tropsch synthesis.

机译:粉煤灰沸石催化剂载体用于费-托合成。

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摘要

This dissertation research aimed at evaluating a fly ash zeolite (FAZ) catalyst support for use in heterogeneous catalytic processes. Gas phase Fischer-Tropsch Synthesis (FTS) over a fixed-bed of the prepared catalyst/FAZ support was identified as an appropriate process for evaluation, by comparison with commercial catalyst supports (silica, alumina, and 13X). Fly ash, obtained from the Wabash River Generating Station, was first characterized using XRD, SEM/EDS, particle size, and nitrogen sorption techniques. Then, a parametric study of a two-step alkali fusion/hydrothermal treatment process for converting fly ash to zeolite frameworks was performed by varying the alkali fusion agent, agent:flyash ratio, fusion temperature, fused ash/water solution, aging time, and crystallization time. The optimal conditions for each were determined to be NaOH, 1.4 g NaOH: 1 g fly ash, 550 °C, 200 g/L, 12 hours, and 48 hours. This robust process was applied to the fly ash to obtain a faujasitic zeolite structure with increased crystallinity (40 %) and surface area (434 m2/g). Following the modification of fly ash to FAZ, ion exchange of H+ for Na+ and cobalt incipient wetness impregnation were used to prepare a FTS catalyst. FTS was performed on the catalysts at 250–300 °C, 300 psi, and with a syngas ratio H2:CO = 2. The HFAZ catalyst support loaded with 11 wt% cobalt resulted in a 75 % carbon selectivity for C5 – C18 hydrocarbons, while methane and carbon dioxide were limited to 13 and 1 %, respectively. Catalyst characterization was performed by XRD, N2 sorption, TPR, and oxygen pulse titration to provide insight to the behavior of each catalyst. Overall, the HFAZ compared well with silica and 13X supports, and far exceeded the performance of the alumina support under the tested conditions. The successful completion of this research could add value to an underutilized waste product of coal combustion, in the form of catalyst supports in heterogeneous catalytic processes.
机译:本论文旨在评估用于非均相催化过程的粉煤灰沸石(FAZ)催化剂载体。通过与工业催化剂载体(二氧化硅,氧化铝和13X)进行比较,将制备的催化剂/ FAZ载体固定床上的气相费-托合成(FTS)确定为合适的评估方法。从瓦巴什河发电站获得的粉煤灰首先使用XRD,SEM / EDS,粒度和氮吸附技术进行了表征。然后,通过改变碱熔剂,试剂:粉煤灰的比例,熔合温度,熔灰/水溶液,老化时间和温度,对将粉煤灰转化为沸石骨架的两步碱熔/水热处理工艺进行了参数研究。结晶时间。确定每种溶液的最佳条件为NaOH,1.4 g NaOH:1 g粉煤灰,550°C,200 g / L,12小时和48小时。将该稳健的过程应用于粉煤灰,从而获得具有增加的结晶度(40%)和表面积(434 m2 / g)的八面沸石结构。在将粉煤灰改性为FAZ之后,将H +与Na +进行离子交换并用钴进行初始湿润浸渍来制备FTS催化剂。在250–300°C,300 psi且合成气比H2:CO = 2的条件下对催化剂进行FTS。负载了11 wt%钴的HFAZ催化剂载体对C5 – C18烃的碳选择性为75%,而甲烷和二氧化碳分别限制在13%和1%。通过XRD,N2吸附,TPR和氧脉冲滴定进行催化剂表征,以深入了解每种催化剂的行为。总体而言,HFAZ与二氧化硅和13X载体相比性能良好,并且在测试条件下远远超过了氧化铝载体的性能。以异质催化过程中的催化剂载体形式,该研究的成功完成可以为煤炭燃烧利用不足的废物增加价值。

著录项

  • 作者

    Campen, Adam.;

  • 作者单位

    Southern Illinois University at Carbondale.;

  • 授予单位 Southern Illinois University at Carbondale.;
  • 学科 Engineering Chemical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 145 p.
  • 总页数 145
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:47

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