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Impact of coal derived impurities on the performance of hydrogen separation membranes.

机译:煤衍生杂质对氢分离膜性能的影响。

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摘要

In order to facilitate the use of hydrogen in integrated gasification combined-cycle (IGCC) applications or as a transportation fuel, hydrogen-from-coal technologies that are capable of managing carbon will be needed. Many technologies are under development for the separation of hydrogen from coal-derived syngas, and among the most promising are hydrogen separation membranes. Studies indicate a significant IGCC plant efficiency increase can be realized if warm-gas cleanup and hydrogen separation membranes are used in place of conventional technologies. These membranes provide the potential to produce hydrogen while simultaneously separating CO2 at system pressure. Membrane development to date has primarily occurred on bottle-derived syngas, and the impact of coal-derived impurities is largely unknown. Gasification syngas typically has many impurities that, if not removed, will poison most hydrogen separation materials. In order to commercialize this promising technology, scale-up to bench- and pilot-scale gasifiers is required so that the impact of impurities can be evaluated.;Sulfur and other coal derived impurities such as chlorine, sodium, mercury, and arsenic have the potential to deteriorate the performance of hydrogen separation membranes. It is unknown if species such as mercury will have an impact on the membrane performance, but mercury does remain in the gas phase and can cause environmental concerns. Commercially available technologies exist today to remove the contaminants from the syngas prior to exposure to the membranes. The goal of this work was to determine if the warm gas clean up techniques available today are adequate to protect hydrogen separation membranes from performance degradations caused by the impurities found in coal. To test this hypothesis, pilot-scale gasifiers at the Energy & Environmental Research Center (EERC) were used to produce coal-derived syngas, and solid sorbents were used for warm-gas cleanup and water-gas shift. Three hydrogen separation membranes were exposed to coal-derived syngas for several hundred hours. Membrane materials that were exposed to coal derived syngas during the testing were acquired and analyzed for contaminants. This work explores whether the warm gas cleanup techniques employed were adequate to prevent performance degradation of hydrogen separation membranes. The U.S. Department of Energy's National Energy Technology Laboratory and the State of Wyoming funded the experimental effort.
机译:为了促进氢气在整体气化联合循环(IGCC)应用中的使用或作为运输燃料,将需要能够管理碳的煤制氢技术。从煤衍生的合成气中分离氢的许多技术正在开发中,最有前途的是氢分离膜。研究表明,如果使用热气净化和氢分离膜代替传统技术,则可以显着提高IGCC工厂的效率。这些膜提供了在系统压力下同时分离CO2的同时产生氢气的潜力。迄今为止,膜的发展主要发生在源自瓶的合成气上,而源自煤的杂质的影响在很大程度上尚不清楚。气化合成气通常具有许多杂质,如果不去除它们,将使大多数氢分离材料中毒。为了使这项有前途的技术商业化,需要扩大到台式和中型气化炉,以便可以评估杂质的影响。硫和其他煤衍生的杂质,例如氯,钠,汞和砷,具有可能会破坏氢分离膜的性能。诸如汞之类的物质是否会影响膜的性能尚不清楚,但汞的确会残留在气相中并会引起环境问题。当今存在可商购的技术,以在暴露于膜之前从合成气中除去污染物。这项工作的目的是确定当今可用的暖气净化技术是否足以保护氢分离膜免受煤中杂质引起的性能下降。为了验证这一假设,能源与环境研究中心(EERC)使用了中试规模的气化炉来生产煤制合成气,并使用固体吸附剂进行热气净化和水煤气变换。将三个氢分离膜暴露于煤衍生的合成气数百小时。获取在测试过程中暴露于煤制合成气的膜材料,并分析污染物。这项工作探讨了采用的暖气净化技术是否足以防止氢分离膜的性能下降。美国能源部国家能源技术实验室和怀俄明州资助了这项实验工作。

著录项

  • 作者

    Stanislowski, Joshua Jerry.;

  • 作者单位

    The University of North Dakota.;

  • 授予单位 The University of North Dakota.;
  • 学科 Engineering Chemical.
  • 学位 M.S.
  • 年度 2012
  • 页码 189 p.
  • 总页数 189
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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