Citation:
Calvo-Rivera, A., Huete, C. & Velikovich, A. L. (2022, abril). The stability of expanding reactive shocks in a van der Waals fluid. Physics of Fluids, 34(4), 046106.
ISSN:
1070-6631
DOI:
10.1063/5.0087073
xmlui.dri2xhtml.METS-1.0.item-contributor-funder:
Comunidad de Madrid Ministerio de Ciencia e Innovación (España)
Sponsor:
A.C.R. and C.H. work has been supported with project No. PID2019-108592RB-C41 Ministry of Science and Innovation (MCINN). C.H. work has been also supported by the Madrid Government (Comunidad de Madrid-Spain) under the Multiannual Agreement with UC3M (H2SFE-CM-UC3M). A.L.V. work has been supported by the National Nuclear Security Administration of the U.S. Department of Energy.
Project:
Gobierno de España. PID2019-108592RB-C41 Comunidad de Madrid. H2SFE-CM-UC3M
Despite the extensive literature accumulated since the pioneering works of Dyakov and Kontorovich in the 1950s, the stability of steady shocks is still an open question when realistic boundary conditions are accounted. The consideration of a supporting mechaniDespite the extensive literature accumulated since the pioneering works of Dyakov and Kontorovich in the 1950s, the stability of steady shocks is still an open question when realistic boundary conditions are accounted. The consideration of a supporting mechanism, which is indeed a necessary condition for shock steadiness, modifies the perturbation shock dynamics in the unstable range. The Noh problem is a suitable example to form steady expanding shocks. This configuration is of great interest to the high-energy-density-physics community because of its direct application to inertial confinement fusion and astrophysics, for which the stagnation of a supersonically converging material via an accretion shock front is ubiquitous. In this work, we extend the generalized Noh problem, both base-flow solution and linear stability analysis, to conditions where endothermic or exothermic transformations undergo across the shock. Within the spontaneous acoustic emission conditions found for a van der Waals gas [J. W. Bates and D. C. Montgomery, The Dyakov-Kontorovich instability of shock waves in real gases, Phys. Rev. Lett. 84, 1180 (2000)], we find that cylindrical and spherical expanding shocks become literally unstable for sufficiently high mode numbers. Counterintuitively, the effect of exothermicity or endothermicity across the shock is found to be stabilizing or destabilizing, respectively.[+][-]