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Similarity solution for the flow behind a shock wave in a non-ideal gas with heat conduction and radiation heat-flux in magnetogasdynamics

机译:非理想气体中具有热传导和辐射热通量的非理想气体中冲击波背后流动的相似解

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The propagation of a spherical (or cylindrical) shock wave in a non-ideal gas with heat conduction and radiation heat-flux, in the presence of a spacially decreasing azimuthal magnetic field, driven out by a moving piston is investigated. The heat conduction is expressed in terms of Fourier's law and the radiation is considered to be of the diffusion type for an optically thick grey gas model. The thermal conductivity K and the absorption coefficient α_R are assumed to vary with temperature and density. The gas is assumed to have infinite electrical conductivity and to obey a simplified van der Waals equation of state. The shock wave moves with variable velocity and the total energy of the wave is non-constant. Similarity solutions are obtained for the flow-field behind the shock and the effects of variation of the heat transfer parameters, the parameter of the non-idealness of the gas, both, decreases the compressibility of the gas and hence there is a decrease in the shock strength. Further, it is investigated that with an increase in the parameters of radiative and conductive heat transfer the tendency of formation of maxima in the distributions of heat flux, density and isothermal speed of sound decreases. The pressure and density vanish at the inner surface (piston) and hence a vacuum is form at the center of symmetry. The shock waves in conducting non-ideal gas with conductive and radiative heat fluxes can be important for description of shocks in supernova explosions, in the study of central part of star burst galaxies, nuclear explosion, chemical detonation, rupture of a pressurized vessels, in the analysis of data from exploding wire experiments, and cylindri-cally symmetric hypersonic flow problems associated with meteors or reentry vehicles, etc. The findings of the present works provided a clear picture of whether and how the non-idealness parameter, conductive and radiative heat transfer parameters and the magnetic field affect the flow behind the shock front.
机译:研究了球形(或圆柱形)冲击波在具有导热和辐射热通量的非理想气体中在运动活塞驱动的空间方位角减小的磁场中的传播情况。根据傅立叶定律表示热传导,并且对于光学较厚的灰色气体模型,认为辐射是扩散类型的。假设导热系数K和吸收系数α_R随温度和密度而变化。假定该气体具有无限大的电导率,并且遵循简化的范德华状态方程。冲击波以可变速度移动,并且波的总能量是非恒定的。对于冲击后的流场以及传热参数变化的影响,气体非理想性的参数都降低了气体的可压缩性,因此获得了相似的解,因此降低了气体的可压缩性。冲击强度。此外,研究表明,随着辐射和传导热传递参数的增加,在热通量,密度和声音的等温速度分布中形成最大值的趋势减小。压力和密度在内表面(活塞)上消失,因此在对称中心形成真空。在研究星爆炸星系的中心部分,核爆炸,化学爆炸,加压容器破裂时,用传导和辐射热通量传导非理想气体的冲击波对于描述超新星爆炸中的冲击可能非常重要。对来自爆炸丝实验的数据进行分析,以及与流星或折返飞行器相关的圆柱对称高超声速流动问题等。本工作的发现为非理想参数,传导性和辐射热是否以及如何提供了清晰的图像传递参数和磁场会影响激波前沿后面的流动。

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