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首页> 外文期刊>Journal of Mechanical Science and Technology >Experimental and numerical verification of transient spatial temperature distribution in thick-walled pressure components
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Experimental and numerical verification of transient spatial temperature distribution in thick-walled pressure components

机译:厚壁压力分量瞬态空间分布的实验性和数值验证

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The aim of this work is to present a method to determine the transient-state spatial temperature distribution in a cylindrical component. The presented method involves solving the inverse heat conduction problem based on the Finite volume method (FVM). This approach enables determination of transient-state temperature fields with boundary conditions known on one surface of the component only. The proposed method is verified using the laboratory installation located at the Cracow University of Technology. The main components of the laboratory stand are, among others, a steam outlet header and a steam boiler. During the experiment, the steam header is heated up abruptly from the inside by contact with dry saturated steam. The spatial transient-state temperature distribution within the steam outlet header is determined using the proposed method, which is based on temperature measurements made by 19 thermocouples located on the outer surface of the component. The temperature histories in three selected nodes are compared with the measurement results obtained from thermocouples located inside the component wall. The exact location of the thermocouples corresponds to the nodal position at selected control volumes. Moreover, the Ansys Mechanical APDL software is used to verify calculations and experimental data. A transient-state simulation is performed. The temperature histories at the inner and outer surfaces are set as the model boundary conditions. In order to enable verification of the temperature measurements, the component discrete model includes nodes at appropriate locations. An error analysis is performed between calculated and measured temperature values. The results obtained from the numerical and experimental validation demonstrate fully satisfactory agreement. Additionally, a stress analysis of the outlet header is performed in the Ansys software based on the transient-state temperature distribution within the steam outlet header. The method proposed in this paper is a convenient and accurate tool for monitoring working conditions of the power boiler thick-walled components.
机译:该工作的目的是提出一种确定圆柱形部件中的瞬态状态空间温度分布的方法。所提出的方法涉及基于有限体积法(FVM)来求解逆热传导问题。该方法能够确定具有在组件的一个表面上已知的边界条件的瞬态状态温度场。使用位于克拉科夫技术大学的实验室安装来验证所提出的方法。实验室支架的主要部件是蒸汽出口集管和蒸汽锅炉等。在实验期间,通过与干燥饱和蒸汽接触,蒸汽集管从内部突然加热。使用所提出的方法确定蒸汽出口放置内的空间瞬态温度分布,该方法基于由位于部件的外表面上的19个热电偶制成的温度测量。将三个选定节点中的温度历史与从位于部件壁内的热电偶获得的测量结果进行比较。热电偶的确切位置对应于所选控制体积的节点位置。此外,ANSYS机械APDL软件用于验证计算和实验数据。执行瞬态仿真。内表面和外表面的温度历史被设定为模型边界条件。为了能够验证温度测量,分量离散模型包括适当位置的节点。在计算和测量的温度值之间执行错误分析。从数值和实验验证获得的结果表明了完全令人满意的协议。另外,基于蒸汽出口放置内的瞬态状态温度分布,在ANSYS软件中执行出口报头的应力分析。本文提出的方法是一种方便准确的工具,用于监控电力锅炉厚壁部件的工作条件。

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