Measurements of the Particle Concentration Fields in a Two-Phase Flow Past a Blunt Body

Pleiades Publishing Ltd - Tập 60 - Trang 374-378 - 2023
A. Yu. Varaksin1,2, A. A. Zhelebovskii1,2, A. A. Mochalov1,2
1Joint Institute for High Temperatures, Russian Academy of Sciences, Moscow, Russia
2Bauman Moscow State Technical University (BMSTU), Moscow, Russia

Tóm tắt

This paper presents the results of measurements of the solid particle concentration field near a frontal point of a cylindrical body with a flat end. We restore the particle concentration fields based on their image identification obtained by photographic fixation at low shutter speeds. The experiments revealed the effect of increasing the particle concentration near the body surface, which appears more clearly with the increase in the local particle concentration in the oncoming flow. We analyze the mechanisms of the particle concentration increase in the flow around bodies by flows containing particles.

Tài liệu tham khảo

Varaksin, A.Yu., High Temp., 2018, vol. 56, no. 2, p. 275.

Varaksin, A.Yu., High Temp., 2020, vol. 58, no. 5, p. 716.

Alqallaf, J., Ali, N., Teixeira, J.A., and Addali, A., Processes, 2020, vol. 8, no. 8, p. 984.

Reedy, M.W., Eden, T.J., Potter, J.K., and Wolfe, D.E., Surf. Coat. Technol., 2011, vol. 206, nos. 2–3, p. 464.

Evstifeev, A., Kazarinov, N., Petrov, Y., Witek, L., and Bednarz, A., Eng. Failure Anal., 2018, vol. 87, p. 15.

Poursaeidi, E., Niaei, A.M., Lashgari, M., and Torkashvand, K., Appl. Phys. A: Mater. Sci. Process., 2018, vol. 124, no. 9, p. 629.

Enikeev, G., Abdulin, A., Yanibaev, R., and Kasatkin, A., Proc. 2020 Int. Conf. on Dynamics and Vibroacoustics of Machines, Samara, 2020. https://doi.org/10.1109/DVM49764.2020.9243926

Nash, J.W.K., Zekos, I., and Stack, M.M., Energies, 2021, vol. 14, no. 15, p. 4555.

Prieto, R. and Karlsson, T., Wind Energy, 2021, vol. 24, no. 9, p. 1031.

Castorrini, A., Venturini, P., Corsini, A., and Rispoli, F., Wind Energy, 2021, vol. 24, no. 8, p. 917.

Verma, A.S., Noi, S.D., Ren, Z., Jiang, Z., and Teuwen, J.J.E., Energies, 2021, vol. 14, no. 6, p. 1629.

Hong, B., Li, X., Li, Y., Li, Y., Yu, Y., Wang, Y., Gong, J., and Ai, D., Energies, 2021, vol. 14, no. 13, p. 3804.

Zeng, Q. and Qi, W., Lubricants, 2020, vol. 8, no. 9, p. 92.

Hu, J., Zhang, H., Zhang, J., Niu, S., and Cai, W., Mechanika, 2021, vol. 27, no. 3, p. 193.

Ma, G., Lin, Z., and Zhu, Z., Eng. Failure Anal., 2020, vol. 118, 104827.

Lin, Z., Sun, X.W., Yu, T.C., Zhang, Y.F., Li, Y., and Zhu, Z.C., Powder Technol., 2020, vol. 366, p. 395.

Reviznikov, D.L., Sposobin, A.V., and Dombrovsky, L.A., Comput. Therm. Sci., 2015, vol. 7, no. 4, p. 313.

Dombrovsky, L.A., Reviznikov, D.L., and Sposobin, A.V., Int. J. Heat Mass Transfer, 2016, vol. 93, p. 853.

Reviznikov, D.L., Sposobin, A.V., and Sukharev, T.Yu., High Temp., 2017, vol. 55, no. 3, p. 400.

Reviznikov, D.L., Sposobin, A.V., and Ivanov, I.E., High Temp., 2018, vol. 56, no. 6, p. 884.

Reviznikov, D.L., Sposobin, A.V., and Ivanov, I.E., High Temp., 2020, vol. 58, no. 2, p. 278.

Reviznikov, D.L., Sposobin, A.V., and Ivanov, I.E., High Temp., 2020, vol. 58, no. 6, p. 839.

Varaksin, A.Yu., Dokl. Phys., 2021, vol. 66, no. 3, p. 72.

Varaksin, A.Yu., High Temp., 2022, vol. 60, Suppl. 1, p. S39.

Zhelebovskiy, A.A., Mochalov, A.A., and Varaksin, A.Yu., Sci. Visualization, 2021, vol. 13, no. 3, p. 1.

Varaksin, A.Yu., High Temp., 2019, vol. 57, no. 4, p. 555.

Varaksin, A.Yu., High Temp., 2020, vol. 58, no. 4, p. 595.