首页> 外文学位 >Renewable Electricity Generation via Solar-Powered Methanol Reforming: Hybrid Proton Exchange Membrane Fuel Cell Systems Based on Novel Non-Concentrating, Intermediate-Temperature Solar Collectors.
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Renewable Electricity Generation via Solar-Powered Methanol Reforming: Hybrid Proton Exchange Membrane Fuel Cell Systems Based on Novel Non-Concentrating, Intermediate-Temperature Solar Collectors.

机译:通过太阳能甲醇重整生产可再生电力:基于新型非集中,中温太阳能集热器的混合质子交换膜燃料电池系统。

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摘要

Tremendous research efforts have been conducted studying the capturing and conversion of solar energy. Solar thermal power systems offer a compelling opportunity for renewable energy utilization with high efficiencies and excellent cost-effectiveness. The goal of this work was to design a non-concentrating collector capable of reaching temperatures above 250 °C, use this collector to power methanol steam reforming, and operate a proton exchange membrane (PEM) fuel cell using the generated hydrogen. The study presents the construction and characterization of a non-concentrating, intermediate-temperature, fin-in-tube evacuated solar collector, made of copper and capable of reaching stagnation temperatures of 268.5 °C at 1000 W/m2 irradiance. The collector was used to power methanol steam reforming, including the initial heating and vaporization of liquid reactants and the final heating of the gaseous reactants. A preferential oxidation (PROX) catalyst was used to remove CO from simulated reformate gas, and this product gas was used to operate a PEM fuel cell. The results show 1) that the outlet temperature is not limited by heat transfer from the absorber coating to the heat transfer fluid, but by the amount of solar energy absorbed. This implicates a constant heat flux description of the heat transfer process and allows for the usage of materials with lower thermal conductivity than copper. 2) It is possible to operate a PEM fuel cell from reformate gas if a PROX catalyst is used to remove CO from the gas. 3) The performance of the fuel cell is only slightly decreased (~4%) by CO2 dilution present in the reformate and PROX gas. These results provide a foundation for the first renewable electricity generation via solar-powered methanol reforming through a hybrid PEM fuel cell system based on novel non-concentrating, intermediate-temperature solar collectors.
机译:已经进行了大量的研究工作来研究太阳能的捕获和转化。太阳能热能系统为高效利用可再生能源提供了极具吸引力的机会,并具有出色的成本效益。这项工作的目的是设计一个能够达到250°C以上的温度的非浓缩收集器,使用该收集器为甲醇蒸汽重整提供动力,并使用产生的氢气运行质子交换膜(PEM)燃料电池。这项研究提出了一种非浓缩,中温,管翅式抽空太阳能集热器的构造和特性,该集热器由铜制成,在1000 W / m2的辐照度下能够达到268.5°C的停滞温度。收集器用于为甲醇蒸汽重整提供动力,包括液体反应物的初始加热和汽化以及气态反应物的最终加热。使用优先氧化(PROX)催化剂从模拟重整气中除去CO,并将该产物气用于运行PEM燃料电池。结果表明:1)出口温度不受吸收剂涂层向传热流体的传热的限制,而是受吸收的太阳能量的限制。这暗示了对传热过程的恒定热通量描述,并允许使用导热率比铜低的材料。 2)如果使用PROX催化剂从气体中去除CO,则可以从重整气体中操作PEM燃料电池。 3)由于重整产品和PROX气体中存在的CO2稀释,燃料电池的性能仅略有下降(约4%)。这些结果为通过基于新型非集中,中温太阳能集热器的混合PEM燃料电池系统通过太阳能甲醇重整而进行的首次可再生发电奠定了基础。

著录项

  • 作者

    Real, Daniel J.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Mechanical engineering.;Sustainability.;Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 113 p.
  • 总页数 113
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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