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首页> 外文期刊>Solar Energy >Analysis and improvement of a high-efficiency solar cavity reactor design for a two-step thermochemical cycle for solar hydrogen production from water
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Analysis and improvement of a high-efficiency solar cavity reactor design for a two-step thermochemical cycle for solar hydrogen production from water

机译:两步热化学循环从水中生产太阳能氢的高效太阳能腔反应器设计的分析和改进

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摘要

The present study is related to the European research project HYDROSOL 3D dealing with a two-step thermochemical cycle for water splitting based on the use of redox materials. The overall process of a plant with a power input of 1 MWth will be developed and analyzed. This includes the definition of core components, e.g. solar reactors, heat exchangers, compressors, hydrogen separation unit and the elaboration of the flow sheet of the process. By process simulation components exergy efficiencies and thus main sources for exergy losses are determined. The results were used to identify and suggest possible improvements. Since the solar receiver-reactor was identified as the pre-dominant source of exergy losses a new design for such reactor was developed as described in the second part of the study based on the experimental experiences with a reactor developed and tested in previous projects. The main objective of the improvement of the design was to increase the efficiency by minimizing the re-radiation losses. With the support of a raytracing tool a combination of a cavity design, a hemispherical absorber shape and a secondary concentrator was derived as the most suitable reactor design exhibiting at least 25 percentage points less thermal losses than the previous version which was realized and tested as part of a pilot plant.
机译:本研究与欧洲研究项目HYDROSOL 3D有关,该项目涉及基于氧化还原材料的使用的两步热化学循环,用于水的分解。将开发并分析功率输入为1 MWth的工厂的整个过程。这包括核心组件的定义,例如太阳能反应堆,热交换器,压缩机,氢气分离装置和工艺流程的详细说明。通过过程仿真组件,确定了能值效率,从而确定了能值损失的主要来源。结果被用于识别和建议可能的改进。由于太阳能接收器-反应器被确定为主要的火用损失来源,因此,根据在先前项目中开发和测试的反应堆的实验经验,针对该反应堆的新设计已如研究的第二部分所述进行了开发。改进设计的主要目的是通过最小化再辐射损耗来提高效率。在射线追踪工具的支持下,腔体设计,半球形吸收体形状和二次聚光器的组合成为最合适的反应堆设计,与以前的版本相比,与以前的版本相比,其热损失至少降低了25个百分点。中试工厂。

著录项

  • 来源
    《Solar Energy》 |2013年第11期|26-38|共13页
  • 作者单位

    Institute of Solar Research, German Aerospace Center (DLR), Linder Hoehe, 51147 Cologne, Germany;

    Institute of Solar Research, German Aerospace Center (DLR), Linder Hoehe, 51147 Cologne, Germany;

    Institute of Solar Research, German Aerospace Center (DLR), Linder Hoehe, 51147 Cologne, Germany;

    Institute of Solar Research, German Aerospace Center (DLR), Linder Hoehe, 51147 Cologne, Germany;

    Institute of Solar Research, German Aerospace Center (DLR), Linder Hoehe, 51147 Cologne, Germany;

    Institute of Solar Research, German Aerospace Center (DLR), Linder Hoehe, 51147 Cologne, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Solar; Hydrogen; Thermochemical; Two-step cycle; Process simulation; Exergy analysis;

    机译:太阳能;氢;热化学;两步循环;工艺模拟;火用分析;

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