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An assessment of NASA Glenn's aeroacoustic experimental and predictive capabilities for installed cooling fans - Part 2: Source identification and validation

机译:用于安装冷却风扇的NASA Glenn的航空声实验和预测能力的评估 - 第2部分:源识别和验证

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Quiet, high performance electronics cooling fans are needed for both commercial applications and future manned space exploration missions. Researchers at NASA Glenn focusing on aircraft engine noise, have long been familiar with the challenge of reducing fan noise without sacrificing aerodynamic performance. Is it possible to capitalize on the lessons-learned in aircraft engine noise reduction to identify inexpensive ways to improve the aerodynamic and acoustic performance of electronics cooling fans? Recent tests at NASA Glenn have begun to look for answers to this question. The overall aerodynamic and acoustic performance of a commercially available, space-flight qualified 80 mm diameter axial flow fan has been measured using an automated plenum in accordance with ISO 10302 in the hemi-anechoic chamber of NASA Glenn's Acoustical Testing Laboratory. These measurements are complemented by detailed aerodynamic measurements of the inlet, exhaust, and rotor wake regions of the fan using Particle Image Velocimetry and hot-wire probes. A study of preliminary results yielded recommendations for system designers, fan manufacturers, and researchers.
机译:商业应用和未来载人空间勘探任务需要安静,高性能电子冷却风扇。 NASA Glenn的研究人员专注于飞机发动机噪音,长期以来一直熟悉减少风扇噪音而不牺牲空气动力学性能的挑战。是否有可能利用飞机发动机降噪中的经验教训,以确定提高电子冷却风扇的空气动力学和声学性能的廉价方式? NASA Glenn最近的测试已经开始寻找这个问题的答案。在NASA Glenn的声学检测实验室的半透道室中的ISO 10302,使用自动增压室在市售的空间飞行的总体空气动力学和声学性能的总体空气动力学和声学性能。通过使用粒子图像速度和热线探针的风扇的入口,排气和转子唤醒区域的详细空气动力学测量来互补这些测量。对初步结果的研究产生了系统设计师,粉丝制造商和研究人员的建议。

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