喷射(流体)
马赫数
湍流动能
大涡模拟
声压
空气声学
声学
湍流
格子Boltzmann方法
喷射噪声
机械
声功率
物理
噪音(视频)
计算流体力学
计算机模拟
计算物理学
声音(地理)
计算机科学
人工智能
图像(数学)
作者
Phoi-Tack Lew,Alireza Najafi-Yazdi,Luc Mongeau
摘要
The objective of this study was to determine the feasibility of a lattice-Boltzmann method (LBM)-Large Eddy Simulation methodology for the prediction of sound radiation from a round jet-microjet combination. The distinct advantage of LBM over traditional computational fluid dynamics methods is its ease of handling problems with complex geometries. Numerical simulations of an isothermal Mach 0.5, ReD = 1 × 105 circular jet (Dj = 0.0508 m) with and without the presence of 18 microjets (Dmj = 1 mm) were performed. The presence of microjets resulted in a decrease in the axial turbulence intensity and turbulent kinetic energy. The associated decrease in radiated sound pressure level was around 1 dB. The far-field sound was computed using the porous Ffowcs Williams-Hawkings surface integral acoustic method. The trend obtained is in qualitative agreement with experimental observations. The results of this study support the accuracy of LBM based numerical simulations for predictions of the effects of noise suppression devices on the radiated sound power.
科研通智能强力驱动
Strongly Powered by AbleSci AI