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Unsteady numerical simulation of a round jet with impinging microjets for noise suppression

机译:具有冲击微射流的圆形射流的非稳态数值模拟

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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.
机译:本研究的目的是确定晶格-玻尔兹曼方法(LBM)-大涡模拟方法用于预测圆形喷射-微喷射组合声辐射的可行性。与传统的计算流体动力学方法相比,LBM的独特优势在于它易于处理复杂几何形状的问题。对有和没有18个微喷口(Dmj = 1 mm)的等温马赫数0.5,ReD = 1×105圆形射流(Dj = 0.0508 m)进行了数值模拟。微型射流的存在导致轴向湍流强度和湍动能的降低。辐射声压级的相关降低约为1 dB。使用多孔Ffowcs Williams-Hawkings表面积分声学方法计算远场声音。获得的趋势与实验观察在质量上吻合。这项研究的结果支持了基于LBM的数值模拟的准确性,该数值模拟可用于预测噪声抑制设备对辐射声功率的影响。

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