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Experimental techniques for thermal product determination of coaxial surface junction thermocouples during short duration transient measurements

机译:短时瞬态测量期间确定同轴表面结热电偶热产物的实验技术

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The measurement of transient surface heat flux is a crucial parameter for short duration aerodynamic experiments. They are generally obtained from temperature histories by mounting calorimetric gauges (such as thin film sensors and coaxial surface junction thermocouples) on the aerodynamic surfaces. While recovering the surface heat fluxes from transient temperatures, the appropriate form of one-dimensional heat conduction modeling is employed. However, such predictions of surface heat fluxes mainly depend on the correctness of thermal properties commonly known as, "thermal product (TP)" of the sensing surface and the accuracy in surface temperature history. Many a times, the TP values do change due to the nature/type of materials and during the fabrication of the gauge. In the present study, it is intended to evaluate the thermal product values of the in-house fabricated coaxial surface junction thermocouples (CSJT: E and J-types) for short duration experiments. These CSJTs are in-situ designed, fabricated and calibrated in the laboratory. For estimating thermal product in millisecond time scales, two laboratory experiments are designed viz., "water droplet technique and water plunging technique" by which impulse heat loads are applied for 8 ms and the transient temperature responses are acquired from CSJTs. The experimental evaluations of TP values are compared with the corresponding theoretical estimates for both types of CSJTs. Subsequently, the effects of TP values on surface heat fluxes are analyzed by comparing them with peak and average heat loads. It is observed that surface temperature histories and average heat flux for all the experiments are in very good agreement. The experimental determination of TP values for E-type CSJTs are in close resemblance (within ±3% accuracy) while a significant under-prediction of about 29% is noticed for experimentally determined TP values with respect to its theoretical estimates for J-type CSJT during "water-plunging" experiments. In turn, it affects the peak heat flux predictions from surface temperature histories. Based on the results of experiments, the E-type CSJTs are found to be better in comparison to J-type CSJTs in terms of its sensitivity and consistency in predicting surface heat flux accurately.
机译:瞬态表面热通量的测量是短期空气动力学实验的关键参数。通常是通过在空气动力学表面上安装量热计(例如薄膜传感器和同轴表面结热电偶)从温度历史记录中获得的。在从瞬态温度恢复表面热通量的同时,采用适当形式的一维热传导模型。然而,表面热通量的这种预测主要取决于通常被称为感测表面的“热产物(TP)”的热性质的正确性和表面温度历史的准确度。由于材料的性质/类型以及在量规的制造过程中,TP值确实会发生变化。在本研究中,它旨在评估用于短期实验的内部制造同轴表面结热电偶(CSJT:E和J型)的热乘积值。这些CSJT是在实验室中现场设计,制造和校准的。为了估算毫秒级的热量乘积,设计了两个实验室实验,即“水滴技术和水浸技术”,通过这些实验,施加了8 ms的脉冲热负荷,并从CSJT获得了瞬态温度响应。 TP值的实验评估与两种CSJT的相应理论估计值进行了比较。随后,通过将TP值与峰值和平均热负荷进行比较,分析了TP值对表面热通量的影响。观察到所有实验的表面温度历史和平均热通量非常吻合。 E型CSJT的TP值的实验确定非常相似(准确度在±3%以内),而相对于J型CSJT的理论估计值,实验确定的TP值却被严重低估了大约29%在“浸水”实验中。反过来,它会影响根据表面温度历史记录预测的峰值热通量。根据实验结果,发现E型CSJT在灵敏度和连续性准确预测方面均优于J型CSJT。

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