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JOURNALS // Teplofizika vysokikh temperatur

TVT, 2020, Volume 58, Issue 2, Pages 278–283 (Mi tvt11262)

Oscillatory flow regimes resulting from the shock layer–particle interaction
D. L. Reviznikov, A. V. Sposobin, I. E. Ivanov

This publication is cited in the following articles:
  1. Baoqing Meng, Junsheng Zeng, Shuai Li, Baolin Tian, Jinhong Liu, “A particle-resolved direct numerical simulation method for the compressible gas flow and arbitrary shape solid moving with a uniform framework”, Computer Physics Communications, 303 (2024), 109266  crossref
  2. A. Yu. Varaksin, TVT, 61:6 (2023), 926–948  mathnet  mathnet  crossref
  3. A. Yu. Varaksin, A. A. Zhelebovskiy, A. A. Mochalov, “Measurements of the particle concentration fields in a two-phase flow past a blunt body”, High Temperature, 60:3 (2022), 374–378  mathnet  crossref  crossref  elib
  4. A. Sposobin, D. Reviznikov, “Impact of high inertia particles on the shock layer and heat transfer in a heterogeneous supersonic flow around a blunt body”, Fluids, 6:11 (2021), 406  crossref  isi  scopus
  5. D. L. Reviznikov, A. V. Sposobin, I. E. Ivanov, “Comparative analysis of calculated and experimental data on an oscillating flow induced by the gasdynamic interaction of a particle with a shock layer”, High Temperature, 58:6 (2020), 839–845  mathnet  mathnet  crossref  crossref  isi  scopus
  6. A. Yu. Varaksin, “Two-phase flows with solid particles, droplets, and bubbles: Problems and research results (review)”, High Temperature, 58:4 (2020), 595–614  mathnet  mathnet  crossref  crossref  isi  scopus
  7. A. V. Sposobin, D. L. Reviznikov, I. E. Ivanov, I. A. Kryukov, “Pressure and Heat Flux Oscillations Induced by Gas-Dynamic Interaction between a High Inertia Particle and a Shock Layer”, Russ. Aeronaut., 63:4 (2020), 677  crossref


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