转速对转子-定子腔内液氮喷嘴喷雾瞬态冷却性能的影响

Xuesen Yang, Wei Zhao, Binglong Zhang, Sanqun Ren, Xiaorong Xiang, Qingjun Zhao
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摘要

本文介绍了转子-定子空腔液氮喷射冷却性能的实验研究结果。实验在 1.70 × 106 到 5.12 × 106 的不同旋转雷诺数下进行。详细研究和比较了转速对温度下降率的影响以及传热系数分布。研究收集了足够的数据,如热流量、喷射速率和喷射压力,为进一步研究解释空腔上的喷射和蒸发提供了基础。研究发现,旋转盘的冷却性能受转速影响很大。短期冷却速率峰值为 14°C/s,而在转速为 500r/min 时,喷雾过程中的持续冷却速率为 0.9°C/s。喷嘴内气蚀和蒸发的发生导致流量系数降低和喷射压差波动。不同转速下的温度变化和冷却时间很好地解释了瞬态冷却性能。通过使用一维理论方法评估对流和传导传热率,进一步加强了对传热系数的分析。在不超过 120 秒的时间内,圆盘的平均温度预计将下降 100°C。此外,在 120 秒后,冷侧的平均传热速率预计将超过 8000 W/(m-K)。
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Effects of rotational speed on transient cooling performance of nozzle spray with liquid nitrogen in a rotor-stator cavity
This paper presents the results of an experimental investigation into the cooling performance of a rotor-stator cavity with liquid nitrogen spraying. The experiments were conducted under varying rotational Reynolds numbers ranging from 1.70 × 106 to 5.12 × 106. The effects of rotational speed on temperature drop rate are studied and compared in detail, as well as the heat transfer coefficient distribution. Sufficient data, such as heat flux, injection rate, and injection pressure, were collected to provide a basis for further study in explaining the spray and evaporation over the cavity. It was found that the cooling performance of the rotating disc is strongly affected by the rotational speed. The short-term period exhibits a peak cooling rate of 14°C/s, in contrast to the sustained cooling rate during the spray process at rotational speeds of 500r/min, which amounts to 0.9°C/s. The occurrence of cavitation and evaporation within the nozzle results in a reduction of flow coefficient and fluctuation of the injection differential pressure. The transient cooling performance is well-explained by the temperature changes and cooling-down time under different rotational speeds. The analysis of the heat transfer coefficient is further enhanced through an evaluation of the convective and conductive heat transfer rates using a one-dimensional theoretical approach. The average temperature of the disc is expected to decrease by 100°C within a time frame no longer than 120 s. Additionally, after a duration of 120 s, the average heat transfer rate on the cold side is anticipated to surpass 8000 W/(m·K).
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来源期刊
CiteScore
2.40
自引率
18.20%
发文量
212
审稿时长
5.7 months
期刊介绍: The Journal of Aerospace Engineering is dedicated to the publication of high quality research in all branches of applied sciences and technology dealing with aircraft and spacecraft, and their support systems. "Our authorship is truly international and all efforts are made to ensure that each paper is presented in the best possible way and reaches a wide audience. "The Editorial Board is composed of recognized experts representing the technical communities of fifteen countries. The Board Members work in close cooperation with the editors, reviewers, and authors to achieve a consistent standard of well written and presented papers."Professor Rodrigo Martinez-Val, Universidad Politécnica de Madrid, Spain This journal is a member of the Committee on Publication Ethics (COPE).
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