首页> 外文学位 >Oxygen Transport Membrane Reactors for Oxy-Fuel Combustion and Carbon Capture Purposes
【24h】

Oxygen Transport Membrane Reactors for Oxy-Fuel Combustion and Carbon Capture Purposes

机译:用于氧燃料燃烧和碳捕集目的的氧传输膜反应器

获取原文
获取原文并翻译 | 示例

摘要

This thesis investigates oxygen transport membrane reactors (OTMs) for the application of oxy-fuel combustion. This is done by evaluating the material properties and oxygen permeability of different OTM compositions subjected to a variety of operating conditions. The scope of this work consists of three components: (1) evaluate the oxygen permeation capabilities of perovskite-type materials for the application of oxy-fuel combustion; (2) determine the effects of dual-phase membrane compositions on the oxygen permeation performance and membrane characteristics; and (3) develop a new method for estimating the oxygen permeation performance of OTMs utilized for the application of oxy-fuel combustion.;SrSc0.1Co0.9O3-delta (SSC) is selected as the primary perovskite-type material used in this research due to its reported high ionic and electronic conductive properties and chemical stability. SSC's oxygen ion diffusivity is investigated using a conductivity relaxation technique and thermogravimetric analysis. Material properties such as chemical structure, morphology, and ionic and electronic conductivity are examined by X-ray diffraction (XRD), Scanning Electron Microscope (SEM), and conductivity testing using a four-probe method, respectively. Oxygen permeation tests study the oxygen permeability OTMs under modified membrane temperatures, sweeping gas flow rates, sweeping gas compositions, membrane configurations, and membrane compositions. When utilizing a pure CO2 sweeping gas, the membrane composition was modified with the addition of Sm0.2Ce0.8O1.9-delta (SDC) at varying wt.% to improve the membranes mechanical stability. A newly developed method to evaluate the oxygen permeation performance of OTMs is also presented by fitting OTM's oxygen permeability to the methane fraction in the sweeping gas composition. The fitted data is used to estimate the overall performance and size of OTMs utilized for the application of oxy-fuel combustion.;The findings from this research show that under a wide range of membrane temperatures and in a variety of atmospheres, a pure SSC OTM can achieve superior surface exchange and oxygen chemical diffusion coefficients compared to other commonly studied materials. SSC's high oxygen permeability (>1 ml.min -1.cm-2) demonstrates the material's candidacy for the application of oxy-fuel combustion. However, in the presence of rich CO 2 atmospheres, SSC shows mechanical and chemical instabilities due to the carbonate formation on the perovskite structure. The addition of SDC in the membrane composition produces a dual-phase OTM which is observed to improve the oxygen permeation flux when subjected to pure CO2 sweeping gases. When subjected to pure methane sweeping gases, dual-phase OTM compositions exhibits lower oxygen permeability compared to the single-phase SSC OTM. Despite the decline in the oxygen permeation flux, some dual-phase compositions still exhibit a high oxygen permeability, indicating their potential for the application of oxy-fuel combustion. Furthermore, a newly developed method for evaluating OTMs for the application of oxy-fuel combustion is presented in a portion of this work. This new method calculates key components such as the average oxygen permeation flux, approximate effective surface area, and the impact of additional recirculated exhaust into the incoming sweeping gas to provide a detailed understanding of OTM's application for oxy-fuel combustion. The development of this approach will aid in the evaluation of newly developed materials and create a new standard for implementing OTMs for the application of oxy-fuel combustion.
机译:本文研究了用于氧气燃料燃烧的氧气传输膜反应器(OTM)。这是通过评估经受各种操作条件的不同OTM组合物的材料性能和氧气渗透性来完成的。这项工作的范围包括三个部分:(1)评估钙钛矿型材料在氧气燃料燃烧中的透氧能力; (2)确定双相膜组成对氧气渗透性能和膜特性的影响; (3)开发一种新的方法来估算用于含氧燃料燃烧的OTM的透氧性能。选择SrSc0.1Co0.9O3-delta(SSC)作为主要钙钛矿型材料由于其报告的高离子和电子导电性能以及化学稳定性。使用电导率松弛技术和热重分析法研究了SSC的氧离子扩散率。分别通过X射线衍射(XRD),扫描电子显微镜(SEM)和使用四探针法的电导率测试来检查材料的化学结构,形态,离子电导率等特性。氧气渗透测试研究了在改良的膜温度,吹扫气体流速,吹扫气体组成,膜构型和膜组成下的氧气渗透性OTM。当使用纯净的CO2吹扫气体时,通过添加不同重量百分比的Sm0.2Ce0.8O1.9-δ(SDC)来改性膜组成,以提高膜的机械稳定性。通过将OTM的氧气渗透率拟合到吹扫气体成分中的甲烷部分,还提出了一种评估OTM的氧气渗透性能的新开发方法。拟合的数据用于估计用于氧气燃料燃烧的OTM的整体性能和尺寸。;这项研究的结果表明,在广泛的膜温度和各种气氛下,纯SSC OTM与其他通常研究的材料相比,可以实现优异的表面交换和氧化学扩散系数。 SSC的高透氧性(> 1 ml.min -1.cm-2)证明了该材料在应用含氧燃料燃烧方面的候选资格。然而,在富CO 2气氛下,由于钙钛矿结构上碳酸盐的形成,SSC表现出机械和化学的不稳定性。在膜组合物中添加SDC会产生两相OTM,观察到它在经受纯净的CO2吹扫气体时会改善氧气的渗透通量。当经受纯甲烷吹扫气体时,与单相SSC OTM相比,双相OTM组合物的氧气渗透率较低。尽管氧气渗透通量下降,但是某些双相组合物仍显示出高的氧气渗透性,表明它们具有应用氧燃料燃烧的潜力。此外,在这项工作的一部分中,提出了一种新开发的评估用于氧气燃烧的OTM的方法。这种新方法可计算关键成分,例如平均氧气渗透通量,近似有效表面积以及额外的再循环废气对进入的吹扫气体的影响,以提供对OTM在含氧燃料燃烧中的应用的详细了解。这种方法的发展将有助于评估新开发的材料,并为实施用于氧气燃料燃烧的OTM制定新标准。

著录项

  • 作者

    Falkenstein-Smith, Ryan L.;

  • 作者单位

    Syracuse University.;

  • 授予单位 Syracuse University.;
  • 学科 Mechanical engineering.;Materials science.;Chemical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号