scholarly journals A non-equilibrium kinetic description of shock-wave structure

A formulation for the shock-wave structure is devised by the approximation of Boltzmann’s equation by a simpler kinetic model. Initially, the distribution function in Boltzmann’s colli­sion integral is expressed in terms of a function of deviation from local equilibrium, the magnitude of which is unrestricted, and the analysis is specialized to hard sphere molecules. A model is then derived by assigning to the deviation function the first-order term of Chapman–Enskog’s sequence which leads to Navier–Stokes equations. The model equation is shown to possess a description of a gas in a non-equilibrium state and to imply a Prandtl number value of 2/3, the formulation also containing the Bhatnagar–Gross–Krook model as a special case. In applying the kinetic model to the shock problem, the collision frequency of the loss term is replaced by a set of mean frequencies (independent of the molecular velocity) each of which characterizes a specific macroscopic quantity. The shock equations are evaluated numerically for argon employing an interation scheme that is initiated by the Navier–Stokes solution. One iteration only to the flow variables is performed. For weak shocks the iteration proves to be in very close agreement with the Navier-Stokes solution for a Prandtl number of 2/3; at higher Mach numbers, the iteration predicts a pro­gressively larger deviation, especially in the temperature profile. In addition, the density and velocity profiles exhibit a ‘kink’ at Mach numbers 5 and 10. Unlike the Navier–Stokes predictions, the results also show that for high Mach numbers the total enthalpy within the shock no longer remains sensibly constant.

2008 ◽  
Vol 43 (2) ◽  
pp. 316-326 ◽  
Author(s):  
V. A. Rykov ◽  
V. A. Titarev ◽  
E. M. Shakhov

1963 ◽  
Vol 6 (12) ◽  
pp. 1669 ◽  
Author(s):  
L. M. Schwartz ◽  
D. F. Hornig

2019 ◽  
Vol 89 (1) ◽  
pp. 42
Author(s):  
Т.А. Лапушкина ◽  
А.В. Ерофеев ◽  
О.А. Азарова ◽  
О.В. Кравченко

AbstractThe interaction of a plane shock wave ( M = 5) with an ionized plasma region formed before the arrival of a shock wave by a low-current glow gas discharge is considered experimentally and numerically. In the experiment, schlieren images of a moving shock-wave structure resulting from the interaction and consisting of two discontinuities, convex in the direction of motion of the initial wave, are obtained. The propagation of a shock wave over the region of energetic impact is simulated on the basis of the two-dimensional Riemann problem of decay of an arbitrary discontinuity with allowance for the influence of horizontal walls. The systems of Euler and Navier–Stokes equations are solved numerically. The non-equilibrium of the processes in the gas-discharge region was simulated by an effective adiabatic index γ. Based on the calculations performed for equilibrium air (γ = 1.4) and for an ionized nonequilibrium gas medium (γ = 1.2), it is shown that the experimentally observed discontinuities can be interpreted as elements of the solution of the two-dimensional problem of decay of a discontinuity: a shock wave followed by a contact discontinuity. It is shown that a variation in γ affects the shape of the fronts and velocities of the discontinuities obtained. Good agreement is obtained between the experimental and calculated images of density and velocities of the discontinuities at a residual gas temperature in the gas discharge region of 373 K.


Sign in / Sign up

Export Citation Format

Share Document