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Hydrodynamic viability of chemical looping processes by means of cold flow model investigation

机译:通过冷流模型研究化学循环过程的水动力可行性

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摘要

Research and the Norwegian University of Science and Technology - NTNU have proposed a 150 kW_(th) reactor system design aiming at further development of chemical looping processes. It consists of a double loop circulating fluidized bed, meant to be used as a platform to study atmospheric chemical looping combustion configurations, as well as other possible chemical looping processes e.g. gas turbine combustion and reforming. The hydrodynamic viability of the design needs to be tested by means of a cold flow model, operated without chemical reactions. An evaluation of the state of the art within cold flow model testing was done. It led to the choice of building a full scale (i.e. 1:1) cold model of the 150 kW_(th) hot rig design, in order to reduce wall-effects which have considerably larger influence at smaller reactor diameters than on larger ones. The cold flow model was extensively tested and experimental results are presented. The aimed design condition, mirroring a chemical looping combustion process adapted to steam generation, was achieved successfully and in a stable way. The performance of the reactor system was further tested in off-design conditions to define operational guidelines for the hot operation. In addition, attempts were done to resemble other chemical looping processes, getting some understanding of how the reactor system may perform and consequently providing solid hydrodynamic bases to improve the design for those applications. In all cases, stable operational sets were found in order to satisfy the cold flow model hydro-dynamic requirements consistently with the actual high temperature processes.
机译:研究和挪威科技大学-NTNU提出了150 kW_th反应器系统设计,旨在进一步开发化学循环工艺。它由一个双回路循环流化床组成,意在用作研究大气化学回路燃烧构型以及其他可能的化学回路过程(例如循环)的平台。燃气轮机燃烧和重整。设计的流体动力学可行性需要通过冷流模型进行测试,该模型无需化学反应即可运行。对冷流模型测试中的现有技术进行了评估。它导致选择构建150 kW_th热钻机设计的全尺寸(即1:1)冷模型,以减少壁效应,该壁效应在较小的反应堆直径上比较大的反应堆直径具有更大的影响。对冷流模型进行了广泛测试,并给出了实验结果。成功并稳定地达到了目标设计条件,反映了适合蒸汽产生的化学循环燃烧过程。在非设计条件下进一步测试了反应堆系统的性能,以定义热运行的操作准则。此外,还尝试了类似于其他化学循环过程的方法,以使人们对反应器系统的性能有所了解,从而提供了坚实的流体动力基础来改善这些应用的设计。在所有情况下,都可以找到稳定的操作集,以满足与实际高温过程一致的冷流模型水动力要求。

著录项

  • 来源
    《Applied Energy》 |2012年第2012期|p.201-216|共16页
  • 作者单位

    Norwegian University of Science and Technology (NTNU), Department of Energy and Process Engineering, Kolbjern Hejes vei 1A, 7491 Trondheim, Norway;

    SlNTEF Energy Research, Sem Saelands vei 11, 7465 Trondheim, Norway;

    C02-H2 Eurl, Rue du Cas Rouge Marchandon 41,45170 Neuville aux Bois, France;

    SlNTEF Energy Research, Sem Saelands vei 11, 7465 Trondheim, Norway;

    Norwegian University of Science and Technology (NTNU), Department of Energy and Process Engineering, Kolbjern Hejes vei 1A, 7491 Trondheim, Norway;

    SlNTEF Energy Research, Sem Saelands vei 11, 7465 Trondheim, Norway;

    Norwegian University of Science and Technology (NTNU), Department of Energy and Process Engineering, Kolbjern Hejes vei 1A, 7491 Trondheim, Norway;

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

    carbon capture and storage; chemical looping combustion; circulating fluidized bed; cold flow model; scaling; hydrodynamics;

    机译:碳捕集与封存;化学循环燃烧;循环流化床冷流模型缩放流体力学;

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