Wouchuk J G, Huete Ruiz de Lira C, Velikovich A L
Instituto de Investigaciones Energéticas, Universidad de Castilla La Mancha, Campus s/n, 13071 Ciudad Real, Spain.
Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Jun;79(6 Pt 2):066315. doi: 10.1103/PhysRevE.79.066315. Epub 2009 Jun 26.
An exact analytical model for the interaction between an isolated shock wave and an isotropic turbulent vorticity field is presented. The interaction with a single-mode two-dimensional (2D) divergence-free vorticity field is analyzed in detail, giving the time and space evolutions of the perturbed quantities downstream. The results are generalized to study the interaction of a planar shock wave with an isotropic three-dimensional (3D) or 2D preshock vorticity field. This field is decomposed into Fourier modes, and each mode is assumed to interact independently with the shock front. Averages of the downstream quantities are made by integrating over the angles that define the orientation of the upstream velocity field. The ratio of downstream/upstream kinetic energies is in good agreement with existing numerical and experimental results for both 3D and 2D preshock vorticity fields. The generation of sound and the sonic energy flux radiated downstream from the shock front is also discussed in detail, as well as the amplification of transverse vorticity across the shock front. The anisotropy is calculated for the far downstream fields of both velocity and vorticity. All the quantities characteristic of the shock-turbulence interaction are reduced to closed-form exact analytical expressions. They are presented as explicit functions of the two parameters that govern the dynamics of the interaction: the adiabatic exponent gamma and the shock Mach number M1 . These formulas are further reduced to simpler exact asymptotic expressions in the limits of weak and strong shock waves (M_{1}-11, M_{1}1) and high shock compressibility of the gas (gamma-->1) .
本文提出了一个用于描述孤立激波与各向同性湍流涡度场相互作用的精确解析模型。详细分析了激波与单模二维(2D)无散度涡度场的相互作用,给出了下游扰动参量的时空演化。研究结果被推广到平面激波与各向同性三维(3D)或二维激波前涡度场相互作用的研究中。该涡度场被分解为傅里叶模态,并且假设每个模态与激波前沿独立相互作用。通过对定义上游速度场方向的角度进行积分,得到下游参量的平均值。对于三维和二维激波前涡度场,下游/上游动能之比与现有的数值和实验结果吻合良好。还详细讨论了激波前沿下游辐射的声能和声能通量的产生,以及激波前沿横向涡度的放大。计算了速度和涡度远下游场的各向异性。激波 - 湍流相互作用的所有特征参量都简化为封闭形式的精确解析表达式。它们表示为控制相互作用动力学的两个参数的显式函数:绝热指数γ和激波马赫数M1 。在弱激波(M1 - 1 << 1,M1 >> 1)和气体的高激波压缩性(γ→1)的极限情况下,这些公式进一步简化为更简单的精确渐近表达式。