5G通信设备扑翼散热技术散热性能及长期可靠性研究

Yanhua Guo, Xian-ming Zhang, Daiyan Lan, Yue Zhu
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引用次数: 1

摘要

为进一步提高5G通信设备的散热效率,本研究创新性地将扑翼散热技术应用于室外5G基站。为了探索扑翼冷却装置对5G通信设备散热性能和长期可靠性的影响,开展了一系列实验和数值研究。具体而言,(1)采用田口法确定扑翼冷却装置叶片的几何参数(长度、宽度和间距),其中气流和噪声是优化方法的目标函数;(2)此外,通过计算流体力学模拟和热试验,验证了强制对流相对于自然对流的优势。结果表明:(1)扑翼冷却装置叶片宽度为15 mm、长度为70 mm、间距为14 mm时,气流最大可达10.7 CFM,噪声满足5G室外设备允许噪声标准;(2)扑翼冷却装置使5G AAU电子元件温度平均降低约10℃。风机出口附近的电子元器件温度下降比距离风机出口0.5 m的电子元器件温度下降高6℃。在可靠性方面,采用有限元法仿真研究了颤振翼冷却装置在振动疲劳作用下的失效概率;此外,通过一系列环境耐久性试验,探讨了扑翼冷却装置在室外长期使用的可靠性。结果表明:(1)叶片的最大Mises应力低于自身材料的疲劳极限,振动疲劳寿命满足10年的要求;(2)扑翼冷却装置已通过高温老化试验、温度循环试验、高温高湿老化试验、盐雾试验,证明在室外长期运行的可行性。综上所述,扑翼冷却装置可以通过提高散热效率,有效减小5G通信设备的体积和重量,是提升产品竞争力的一大突破,且在户外长时间运行可靠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on Heat Dissipation Performance and Long-term Reliability of the Flapping Wing Cooling Technology Applied to the 5G Communications Equipment
To further improve the heat dissipation efficiency of the 5G communications equipment, this study innovatively applies the flapping wing cooling technology to outdoor 5G base stations. A series of experimental and numerical studies have been conducted to explore effects of the flapping wing cooling device on heat dissipation performance and long-term reliability of 5G communications devices. Specifically, (1) Taguchi method was used to determine geometric parameters (length, width and spacing) of the flapping wing cooling device’s blades, where airflow and noise were objective functions of the optimization method; (2) additionally, Computational Fluid Dynamics simulation and thermal tests were conducted to demonstrate advantages of forced convection compared to natural convection. The results indicate that: (1) when blades of the flapping wing cooling device are 15 mm in width, 70 mm in length, 14 mm in spacing, the airflow reaches the maximum of 10.7 CFM, with the noise level meeting the permissible noise standard of the 5G outdoor devices; (2) the flapping wing cooling device reduces the temperature of electronic components of the 5G AAU by about 10 °C on average. The temperature drop of electronic components near the fan outlet is 6 °C higher than that of electronic components 0.5 m away from the fan outlet. In terms of reliability, Finite Element Method simulation was conducted to research the failure probability of the flapping wing cooling device under vibration fatigue; besides, based on a series of environmental durability tests, the reliability of the flapping wing cooling device for long-term usage outdoors was explored. The results show that: (1) the maximal Mises stress of blades is lower than fatigue limit of its own materials, and vibration fatigue life meets the requirement of 10 years; (2) the flapping wing cooling device has passed high temperature aging test, temperature cycling test, high temperature and high humidity aging test, salt spray test, demonstrating the feasibility of long-term outdoor operation. In conclusion, the flapping wing cooling device can effectively reduce the size and weight of the 5G communications devices by improving the heat dissipation efficiency, which is a great breakthrough in enhancing the competitiveness of products, and what is more, it is reliable to operate outdoors for a long time.
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