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Membrane contact reactors for three-phase catalytic reactions.

机译:用于三相催化反应的膜接触反应器。

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摘要

Membrane contact reactors (MCRs) have been evaluated for the selective hydro-treating of model reactions; the partial hydrogenation of soybean oil (PHSO), and the conversion of lactic acid into commodity chemicals. Membranes were rendered catalytically active by depositing metal catalyst onto the polymer "skin" of an asymmetric membrane. Hydrogen was supplied to the support side of the membrane and permeated from the support side to the skin side, where it adsorbed directly onto the metal surface. Liquid reactant was circulated over the membrane, allowing the liquid to come into direct contact with the metal coated surface of the membrane, where the reaction occurred. Our membrane contact reactor approach replaces traditional three-phase batch slurry reactors. These traditional reactors possess inherent mass transfer limitations due to low hydrogen solubility in liquid and slow diffusion to the catalyst surface. This causes hydrogen starvation at the catalyst surface, resulting in undesirable side reactions and/or extreme operating pressures of 100 atmospheres or more. By using membrane reactors, we were able to rapidly supply hydrogen to the catalyst surface.;When the PHSO is performed in a traditional slurry reactor, the aforementioned hydrogen starvation leads to a high amounts of trans-fats. Using a MCR, we were able to reduce trans-fats by over 50% for equal levels of hydrogenation. It was further demonstrated that an increase in temperature had minimal effects on trans-fat formation, while significantly increasing hydrogenation rates; allowing the system to capture higher reaction rates without adversely affecting product quality. Additionally, high temperatures favors the hydrogenation of polyenes over monoenes, leading to low amounts of saturated fats. MCRs were shown to operator at high temperatures and: (1) capture high reaction rates, (2) minimize saturated fats, and (3) minimize trans-fats.;We also demonstrated lactic acid conversion into commodity chemicals using MCRs. Our results show that all MCR experiments had faster reaction rate than all of our controls, indicating that MCRs have high levels of hydrogen coverage at the catalyst. It was also demonstrated that changing reaction conditions (pressure and temperature) changed the product selectivities; giving the potential for MCRs to manipulate product selectivity.
机译:已经对膜接触反应器(MCR)进行了模型反应的选择性加氢处理进行了评估。大豆油(PHSO)的部分加氢,以及将乳酸转化为商品化学品。通过将金属催化剂沉积到不对称膜的聚合物“皮肤”上,使膜具有催化活性。氢被供应到膜的支撑侧,并从支撑侧渗透到皮肤侧,在那里氢直接吸附到金属表面上。液体反应物在膜上循环,使液体与发生反应的膜的金属涂层表面直接接触。我们的膜接触反应器方法替代了传统的三相间歇式淤浆反应器。这些传统的反应器由于在液体中的低氢溶解度和缓慢扩散到催化剂表面而具有固有的传质限制。这在催化剂表面引起氢饥饿,导致不希望的副反应和/或100大气压或更高的极端工作压力。通过使用膜反应器,我们能够将氢迅速供应到催化剂表面。当在传统的淤浆反应器中进行PHSO时,上述氢饥饿导致大量的反式脂肪。使用MCR,我们能够在氢化水平相同的情况下将反式脂肪减少50%以上。进一步证明,温度升高对反式脂肪的形成影响很小,而氢化率却显着提高。使系统能够捕获更高的反应速率,而不会不利地影响产品质量。另外,高温比单烯更有利于多烯的氢化,从而导致少量的饱和脂肪。向操作人员展示了在高温下使用MCR的情况:(1)捕获高反应速率,(2)减少饱和脂肪,(3)减少反式脂肪。;我们还证明了使用MCR可以将乳酸转化为商品化学品。我们的结果表明,所有MCR实验的反应速率都比我们所有对照都要快,这表明MCR在催化剂上的氢覆盖率很高。还证明了改变反应条件(压力和温度)会改变产物的选择性。提供了MCR操纵产品选择性的潜力。

著录项

  • 作者

    Wales, Michael Dean.;

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Chemical engineering.;Polymer chemistry.;Materials science.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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