首页> 外文会议>ASME turbo expo conference >THE MEASUREMENT OF FULL-SURFACE INTERNAL HEAT TRANSFER COEFFICIENTS FOR TURBINE AIRFOILS USING A NON-DESTRUCTIVE THERMAL INERTIA TECHNIQUE
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THE MEASUREMENT OF FULL-SURFACE INTERNAL HEAT TRANSFER COEFFICIENTS FOR TURBINE AIRFOILS USING A NON-DESTRUCTIVE THERMAL INERTIA TECHNIQUE

机译:使用非破坏性热惯性技术测量涡轮机翼型的全表面内传热系数

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A new method has been developed and demonstrated for the non-destructive, quantitative assessment of internal heat transfer coefficient distributions of cooled metallic turbine airfoils. The technique employs the acquisition of full-surface external surface temperature data in response to a thermal transient induced by internal heating / cooling, in conjunction with knowledge of the part wall thickness and geometry, material properties, and internal fluid temperatures. An imaging Infrared camera system is used to record the complete time history of the external surface temperature response during a transient initiated by the introduction of a converting fluid through the cooling circuit of the part. The transient data obtained is combined with the cooling fluid network model to provide the boundary conditions for a finite element model representing the complete part geometry. A simple 1D lumped thermal capacitance model for each local wall position is used to provide a first estimate of the internal surface heat transfer coefficient distribution. A 3D inverse transient conduction model of the part is then executed with updated internal heat transfer coefficients until convergence is reached with the experimentally measured external wall temperatures as a function of time. This new technique makes possible the accurate quantification of full-surface internal heat transfer coefficient distributions for prototype and production metallic airfoils in a totally non-destructive and non-intrusive manner. The technique is equally applicable to other material types and other cooled / heated components.
机译:已经开发了一种新方法,并对冷却金属涡轮机翼型的内部传热系数分布的非破坏性,定量评估进行了开发和证明。该技术采用响应于内部加热/冷却引起的热瞬态而采集全表面外表面温度数据,结合零件壁厚和几何形状,材料特性和内部流体温度的知识。一种成像红外相机系统用于在通过将转换流体通过部分的冷却电路引入转换流体期间的瞬态期间记录外表面温度响应的完整时间历史。获得的瞬态数据与冷却流体网络模型组合,以提供表示完整部分几何形状的有限元模型的边界条件。用于每个局部壁位置的简单1D总热电容模型用于提供内表面传热系数分布的第一估计。然后,使用更新的内部传热系数执行该部件的3D逆瞬态传导模型,直到通过实验上测量的外壁温度作为时间的函数来达到收敛。这种新技术使得精确定量用于原型的全表面内部传热系数分布和生产金属翼型的完全非破坏性和非侵入性的方式。该技术同样适用于其他材料类型和其他冷却/加热部件。

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