Design and validation of a single-jack variable Mach number nozzle in a cryogenic transonic wind tunnel

IF 0.6 4区 工程技术 Q4 MECHANICS
C. Yu, Zhili Zhang, Ning‐Ning Wang, Xutao Nie, Qiang Peng, Zhenhua Chen
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引用次数: 0

Abstract

The wind tunnel with variable Mach numbers controlled by a single jack is highly desired in the aerospace, automobile and building industry due to its superior controllability and working range. Decreasing the temperature of a test gas is an efficient and economical approach to achieving higher Reynolds numbers that accommodate all working statuses of test subjects, which however, brings new challenges to the wind tunnel design nowadays. This paper proposes a new design concept of a single-jack variable Mach number nozzle based on its particular cryogenic characteristics, as the nozzle is the core structure to achieve variable Mach numbers. The contours of the nozzle under different Reynolds numbers and Mach numbers are modeled and solved by an incomplete elliptic integral, followed by modification with cryogenic characteristics. A 0.3-m cryogenic wind tunnel is utilized as a validation platform for the nozzle design, resulting in designed contours being in line with the measured contours. Moreover, the root means square (RMS) deviations of Mach number 1.3 at the core position are controlled within 0.011 in low and high temperatures, which surpasses the other existing wind tunnels.
低温跨音速风洞单孔变马赫数喷管的设计与验证
由单个千斤顶控制的可变马赫数风洞由于其优越的可控性和工作范围,在航空航天、汽车和建筑工业中备受期待。降低测试气体的温度是一种经济有效的方法,可以获得适应被试所有工作状态的更高雷诺数,但这给当今的风洞设计带来了新的挑战。由于喷管是实现变马赫数的核心结构,本文根据其特殊的低温特性,提出了一种新的单孔变马赫数喷管的设计思路。采用不完全椭圆积分法对不同雷诺数和马赫数下的喷管外形进行了建模和求解,并对其进行了低温特性修正。利用0.3 m低温风洞作为喷管设计的验证平台,设计轮廓与实测轮廓一致。在低温和高温条件下,核心位置马赫数1.3的均方根(RMS)偏差控制在0.011以内,优于现有风洞。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.40
自引率
14.30%
发文量
22
审稿时长
6 months
期刊介绍: The scope of JTAM contains: - solid mechanics - fluid mechanics - fluid structures interactions - stability and vibrations systems - robotic and control systems - mechanics of materials - dynamics of machines, vehicles and flying structures - inteligent systems - nanomechanics - biomechanics - computational mechanics
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