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Investigation of thermal coupling model for evaporation process in a slightly inclined tube and tube bundles

机译:稍微倾斜的管束中蒸发过程的热耦合模型研究

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摘要

Safety of Nuclear Power Plant is an essential part in the development process of nuclear power plants. More and more Generation III+ reactor designs rely on passive safety system to increase the plant safety standards and to reduce investment costs. Passive Containment cooling systems like the Containment Cooling Condenser (CCC) of the KERENA reactor design plays an important role in safety issue of Generation III+ reactor at Nuclear Power Plant. As part of the emergency cooling chain they remove decay heat from the Containment and transfer it to the main heat sink for accidental management represented by the Shielding and Storage Pool Vessel (SSPV). Corresponding to CCC, the test facility GENEVA at Technical University of Dresden (TUD) was set up to investigate the stability and instability of heat transfer mechanism as well as natural circulation phenomena with heat input by steam condensation in steam chamber. A variety of transient experiments with input power of the evaporators ranging from 15kW up to 40 kW for condensation tube were performed. In this work, the transient thermal coupling model of evaporation process inside steam chamber is modeled with thermal hydraulic system code. The performance of the code is assessed comparing experimental and calculated data. The heat transfer models between the fluids and the structure as well as interphase heat transfer models are analyzed. Goal is to optimize the capability to predict thermal coupling parameters, particularly heat transfer coefficient due to pressure change inside the pipe. Model will be derived that allow to enhance the prediction capability of system codes.
机译:核电厂的安全是核电厂发展过程中必不可少的部分。越来越多的III ++反应堆设计依靠被动安全系统来提高工厂安全标准并降低投资成本。 KERENA反应堆设计的安全壳冷却冷凝器(CCC)等被动安全壳冷却系统在核电站III +代反应堆的安全问题中发挥着重要作用。作为应急冷却链的一部分,它们将安全壳中的衰减热量清除,并将其转移到主散热器,以进行由屏蔽和存储池容器(SSPV)表示的意外管理。对应于CCC,建立了德累斯顿工业大学(TUD)的测试设施GENEVA,以研究传热机理的稳定性和不稳定性以及在蒸汽室中由蒸汽冷凝产生的热量输入下的自然循环现象。进行了各种瞬态实验,其中冷凝管的蒸发器输入功率范围为15kW至40kW。在这项工作中,采用热力液压系统代码对蒸汽室内蒸发过程的瞬态热耦合模型进行建模。通过比较实验数据和计算数据来评估代码的性能。分析了流体与结构之间的传热模型以及相间传热模型。目标是优化预测热耦合参数的能力,尤其是由于管道内部压力变化导致的传热系数。将得出允许增强系统代码的预测能力的模型。

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    Yu Zhang; Stephan Leyer;

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    Deggendorf Institute of Technology, Department of Civil and Construction Engineering University of Luxembourg, Faculty of Science, Technology and Communication;

    University of Luxembourg, Faculty of Science, Technology and Communication;

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