亚音速-低速风洞的特性、设计、试验和数值模拟

Pub Date : 2022-01-04 DOI:10.14483/23448393.17973
Andrés Lara, Jonathan Toledo, Robert Paul Salazar Romero
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引用次数: 0

摘要

背景:风洞是通过物体和比例原型研究流动特性的重要设备。这项工作提出了一个数值研究,以表征现有的风洞,提出了改进的目的,以提高流动的质量在试验室。方法:对风洞的入口速度和压力分布进行了实验测量。这些经验值在模拟中用作参数来定义边界条件。采用标准伽辽金法,实现了低速下流函数的有限元计算。采用多项式插值法对收缩段设计进行了改进,并进行了数值模拟,比较了原有风洞和改进风洞的流动数值结果。结果:给出了风洞入口气流的实验测量结果。通过数值计算确定了隧道内的速度场和热力学变量的分布。这种计算是有用的,因为在实验上很难在通道内进行测量。此外,本文还在隧道几何形状变化的情况下对这些变量进行了数值计算。结论:低速层流的模拟结果表明,在其纵断面的二维近似下,层流可以被模拟为不可压缩的无旋转流体。结果表明,改变风洞的几何形状可以改善层流状态下风洞试验段的流动。
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Characterization, Design Testing and Numerical Modeling of a Subsonic-Low Speed Wind Tunnel
Context: Wind tunnels are essential devices in the study of flow properties through objects and scaled prototypes. This work presents a numerical study to characterize an existing wind tunnel, proposing modifications with the aim to improve the quality of the flow in the test chamber. Method: Experimental measurements of the inlet velocity and pressure distribution of a wind tunnel are nperformed. These empirical values are used as parameters to define boundary conditions in simulations. The Finite Element Method (FEM) at low speeds is implemented to determine the stream function by using a standard Galerkin method. Polynomial interpolations are employed to modify the contraction section design, and numerical simulations are performed in order to compare the numerical results of the flow for the existing and the modified wind tunnels. Results: Experimental measurements of the flow at the wind tunnel entrance are presented. The velocity field and distribution of thermodynamic variables inside the tunnel are numerically determined. This computations are useful since it is experimentally difficult to make measurements inside the channel. Additionally, numerical calculations of these variables are presented under modifications in the tunnel geometry. Conclusions: A comparison between these simulations show that laminar flow at low velocities can be modeled as incompressible and irrotational fluid under a bidimensional approximation along its longitudinal section. It is observed that modifications in the geometry of the tunnel can improve the flow in the test section of the wind tunnel in the laminar regime.
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