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Numerical and Experimental Investigation on Heat Exchange Performance for Heat Dissipation Module for Construction Vehicles

机译:施工车辆散热模块热交换性能的数值实验研究

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In this work, a XD132 Road Roller from XCMG in China was employed as a research basis to study the heat exchange performance of the heat dissipation module under varied working conditions. The module in the XD132 consists of a cooling fan and three radiators. At first, the numerical investigation on the elementary units of radiators was performed to obtain Colburn j factor and Fanning friction f factor, which were used for the ε-NTU method to predict the radiator performance. The fan was numerically tested in a wind test tunnel to acquire the performance curve. The performance data from both investigations were transformed into the boundary conditions of the numerical vehicle model in a virtual tunnel. A field experiment was carried out to validate the simulation accuracy, and an entrance coefficient was proposed to discuss the performance regularity under four working conditions. The results show that the simulation results of radiators and fans could be applied to the vehicle simulation, and the turbulent airflow at the exit of the fan partly lowers performance. Besides that, the elevated-temperature air flowing out of the fan is reheated by the muffler and results in a working instability. The maximum error between simulation results and experimental data is less than 4%. The comparison between four working conditions also confirms that the heat exchange performance decreases as the vehicle moves forward at an increasing velocity and increases as the vehicle moves backward. The conclusions are of great significance in efficiency improvements on the vehicle design.
机译:在这项工作中,中国XCMG的XD132公路滚筒被用作研究散热模块在各种工作条件下的热交换性能。 XD132中的模块包括冷却风扇和三个散热器。首先,进行了对辐射器基本单位的数值研究以获得COLBurn J因子和扇形摩擦F因子,用于预测散热器性能的ε-NTU方法。风扇在风测试隧道中进行数值测试,以获取性能曲线。将来自两种调查的性能数据转换为虚拟隧道中数值车型的边界条件。进行现场实验以验证模拟精度,提出了一个入射系数,讨论了四个工作条件下的性能规律性。结果表明,散热器和风扇的仿真结果可以应用于车辆仿真,并且风扇出口处的湍流气流部分降低了性能。除此之外,通过消声器重新加热风扇的升高温度空气,并导致工作不稳定。仿真结果和实验数据之间的最大误差小于4%。四个工作条件之间的比较还证实,随着车辆在增加的速度下向前移动并且随着车辆向后移动时,热交换性能降低。结论在车辆设计的效率改善方面具有重要意义。

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