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Carbon molecular sieve membranes for natural gas separations.

机译:用于天然气分离的碳分子筛膜。

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摘要

A new innovative polymer pyrolysis method was proposed for creation of attractive carbon molecular sieve (CMS) membranes. Oxygen exposure at ppm levels during pyrolysis was hypothesized and demonstrated to make slit-like CMS structures more selective and less permeable, which I contrary to ones expectation. Indeed prior to this work, any exposure to oxygen was expected to result in removal of carbon mass and increase in permeability. The results of this study indicated that the separation performance and CMS structure may be optimized for various gas separations by careful tuning of the oxygen level. This finding represents a breakthrough in the field of CMS membranes. Simple replacement of pyrolysis atmospheres from vacuum to inert can enable scale-up. The deviation in CMS membrane performance was significantly reduced once oxygen levels were carefully monitored and controlled. The method was shown to be effective and repeatable not only with dense films but also with asymmetric hollow fiber membranes. As a result, this work led the development of the "inert" pyrolysis method which has overcome the challenges faced with previously studied pyrolysis method to prepare attractive CMS membranes.;The effect of oxygen exposure during inert pyrolysis was evaluated by a series of well-controlled experiments using homogeneous CMS dense films. Results indicated that the oxygen "doping" process on selective pores is likely governed by equilibrium limited reaction rather than (i) an external or (ii) internal transport or (iii) kinetically limited reaction. This significant finding was validated with two polyimide precursors: synthesized 6FDA/BPDA-DAM and commercial MatrimidRTM, which implies a possibility of the "inert" pyrolysis method application extending towards various precursors. The investigation was further extended to prepare CMS fibers. Despite the challenge of two different morphologies between homogeneous films and asymmetric hollow fibers, the "inert" pyrolysis method was successfully adapted and shown that separation performance can be tuned by changing oxygen level in inert pyrolysis atmosphere. Moreover, resulting CMS fibers were shown to be industrially viable. Under the operating condition of ∼80 atm high pressure 50/50 CO2/CH4 mixed gas feed, the high separation performance of CMS fibers was shown to be maintained. In addition, elevated permeate pressures of ∼20 atm did effect the theoretically predicted separation factor. While high humidity exposures (80%RH) resulted in reduced permeance, high selectivity was sustained in the fibers. Recommendations to overcome such negative effects as well as future investigations to help CMS membranes to be commercialized are provided.
机译:提出了一种新的创新的聚合物热解方法来创建有吸引力的碳分子筛(CMS)膜。假设在热解过程中以ppm的水平暴露在氧气中,并证明其使狭缝状CMS结构具有更高的选择性和更低的渗透性,这与我的预期相反。实际上,在这项工作之前,任何与氧气的接触都将导致碳质量的去除和渗透率的提高。这项研究的结果表明,通过仔细调节氧气含量,可以优化各种气体分离的分离性能和CMS结构。这一发现代表了CMS膜领域的一项突破。简单地将热解气氛从真空替换为惰性气体可以扩大规模。一旦仔细监测和控制了氧气水平,CMS膜性能的偏差就会大大降低。该方法不仅对致密膜而且对不对称中空纤维膜均有效且可重复。结果,这项工作带动了“惰性”热解方法的开发,该方法克服了以前研究的热解方法制备有吸引力的CMS膜所面临的挑战。均质CMS致密膜进行对照实验结果表明,选择性孔上的氧“掺杂”过程可能受平衡受限反应的支配,而不是(i)外部或(ii)内部传输或(iii)动力学受限的反应。这项重要发现得到了两种聚酰亚胺前体的验证:合成的6FDA / BPDA-DAM和商业MatrimidRTM,这意味着“惰性”热解方法的应用可能会扩展到各种前体。研究进一步扩展以制备CMS纤维。尽管在均质薄膜和不对称中空纤维之间存在两种不同形态的挑战,“惰性”热解方法还是成功地应用了,并表明可以通过改变惰性热解气氛中的氧含量来调节分离性能。而且,显示出所得的CMS纤维在工业上是可行的。在〜80 atm高压50/50 CO2 / CH4混合气体进料的操作条件下,CMS纤维的高分离性能得以保持。此外,约20 atm的较高渗透压确实会影响理论上预测的分离系数。尽管高湿度(80%RH)暴露会降低渗透性,但纤维仍保持高选择性。提供了克服此类负面影响的建议以及有助于CMS膜商业化的未来研究。

著录项

  • 作者

    Kiyono, Mayumi.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Chemical.;Engineering Materials Science.;Energy.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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