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Prediction and Comparison of Shell Condensers With Straight or Helical Channels for Underwater Vehicles

机译:用于水下车辆直线或螺旋通道的壳体冷凝器的预测与比较

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摘要

The shell condenser is one of the key components of underwater vehicles. To study its thermal performance and to design a more efficient structure, a computational model is generated to simulate condensation inside straight and helical channels. The model combines empirical correlations and a MATLAB-based iterative algorithm. The vapor quality is used as a sign of the degree of condensation. Three calculation models are compared, and the optimal model is verified by a comparison of simulated results and available experimental data. Several cases are designed to reveal the effects of various inlet conditions and the diameter-over-radius (D-h/R) ratio. The results show that the inlet temperature and mass rate significantly affect the flow and heat transfer in the condensation process, the heat transfer capabilities of the helical channels are much better than that of the straight channel, and both the heat transfer coefficient and total pressure drop increase with the decrease of D-h/R. This study may provide a useful reference for performance prediction and structural design of shell condensers used for underwater vehicles and may provide a relatively universal prediction model for condensation in channels.
机译:壳体冷凝器是水下车辆的关键部件之一。为了研究其热性能和设计更有效的结构,产生计算模型以模拟直线和螺旋通道内的冷凝。该模型结合了经验相关和基于MATLAB的迭代算法。蒸汽质量用作冷凝度的迹象。比较三个计算模型,通过比较模拟结果和可用的实验数据来验证最佳模型。旨在揭示各种入口条件和直径半径(D-H / R)比的影响。结果表明,入口温度和质量速率显着影响冷凝过程中的流量和传热,螺旋通道的传热能力远优于直通道的热传递能力,以及传热系数和总压降随着DH / R的降低而增加。该研究可以提供用于水下车辆的壳体冷凝器的性能预测和结构设计的有用参考,并且可以为通道中的凝结提供相对普遍的预测模型。

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