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Novel methods for landfill gas and biogas clean-up.

机译:垃圾填埋气和沼气净化的新方法。

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摘要

In this study a novel catalytic oxidation technology appropriate for landfill gas (LFG) clean-up based on the flow-through catalytic membrane reactor (FTCMR) concept has been studied. For the experiments, a model LFG stream has been used with a volatile organic compound (VOC) composition which was shown previously by the authors to simulate well the behavior of real LFG in field-scale investigations. Asymmetric tubular alumina membranes were used in the research and were rendered catalytic by wet impregnation. Their pore-structure characteristics were measured with single-gas permeation tests, as they are important in determining the transport mechanisms of the VOC through the catalytically active membrane layer. When comparing the FTCMR with the more conventional reactors the "yardstick" of success is the ability of the FTCMR to operate under lower temperature for a given level of conversion, and/or attain higher conversion under the same conditions and catalyst loading. For the LFG application, light-off temperature experiments showed promising results when compared to the monolith reactor. Also, no catalyst deactivation was observed during the time-on-stream experiments, proving that the FTCMR is robust towards corrosive by-products (e.g., HCl) produced during the oxidation reactions.;Siloxanes are another major class of compounds detected in LFG. This Thesis is also a study on the impact of siloxanes on various types of equipment using LFG which is not treated for siloxanes. Specifically, in this study an internal combustion engine and a residential furnace operating on natural gas (NG) spiked with siloxanes have been studied experimentally with the goal of understanding the impact of siloxane impurities on their performance. These impurities are shown to completely decompose during NG combustion in the engine to form silica microparticulates. These coat the internal metal surfaces in the equipment and severely reduce their efficiency and damage important components, such as furnace flame sensors and engine oxygen sensors. A method to remove these siloxane impurities has also been studied in this thesis based on UV Photodecomposition. Specifically, this Thesis also describes efforts to evaluate the technical feasibility and environmental implications of a novel technology for the treatment of biogas and LFG which involves the in situ conversion of the siloxanes, typically found in the gas, into inert silicon dioxide via a photochemical conversion process. The approach involves using high energy UV light to convert the siloxanes into SiO2 powder, which can be conveniently removed from the biogas via a downstream filter. The technique is shown to be very effective with high siloxane conversions attained in the laboratory.
机译:在这项研究中,研究了一种基于流式催化膜反应器(FTCMR)概念的适用于垃圾填埋气(LFG)净化的新型催化氧化技术。对于实验,模型LFG流已与挥发性有机化合物(VOC)组合物一起使用,作者先前已展示了该模型以很好地模拟实际LFG在现场规模研究中的行为。不对称管状氧化铝膜被用于研究中,并通过湿浸渍使其催化。它们的孔结构特征通过单气体渗透测试进行了测量,因为它们对于确定VOC通过催化活性膜层的传输机制很重要。当将FTCMR与更常规的反应器进行比较时,成功的“标准”是FTCMR在较低温度下运行给定转化率的能力,和/或在相同条件和催化剂负载下达到较高转化率的能力。对于LFG应用,与整体反应器相比,起燃温度实验显示出令人鼓舞的结果。另外,在运行时间实验中未观察到催化剂失活,证明FTCMR对氧化反应期间产生的腐蚀性副产物(例如HCl)具有较强的抵抗力。硅氧烷是LFG中检测到的另一类主要化合物。本论文也是对使用未经过硅氧烷处理的LFG的硅氧烷对各种类型设备的影响的研究。具体而言,在本研究中,通过实验研究了内燃机和在掺有硅氧烷的天然气(NG)上运行的住宅炉,目的是了解硅氧烷杂质对其性能的影响。这些杂质显示出在发动机中的NG燃烧过程中会完全分解,形成二氧化硅微粒。这些会覆盖设备内部的金属表面,并严重降低其效率并损坏重要的组件,例如炉膛火焰传感器和发动机氧气传感器。本文还研究了基于紫外光分解的去除这些硅氧烷杂质的方法。具体而言,本论文还描述了评估新型技术处理沼气和LFG的技术可行性和环境影响的方法,该技术涉及通过光化学转化将通常存在于气体中的硅氧烷原位转化为惰性二氧化硅处理。该方法涉及使用高能紫外光将硅氧烷转化为SiO2粉末,可通过下游过滤器方便地将其从沼气中去除。在实验室中,该技术在实现高硅氧烷转化率方面非常有效。

著录项

  • 作者

    Nair, Nitin Narayanan.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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