Abstract:
The features of the flow around and the dynamic interaction of a magnetized sphere with a hypersonic flow of a rarefied plasma are studied via physical simulation. The dependences of the coefficients of the electromagnetic drag of a sphere on the ratio of the magnetic pressure to the dynamic pressure are obtained for the axial and orthogonal orientations of the plasma flow vectors and of the body's own magnetic field. At an magnetic field of the sphere of $0.8$–$1.5$ T, the electromagnetic force generated in the “magnetic field of the sphere–surrounding plasma” system is comparable to the pulse injected by plasma accelerators of special spacecraft designed for forced (“active”) removal of objects of space debris from the near-Earth space via their braking with a plasma jet, removing to lower orbits, and disposal by combustion in the dense layers of the Earth’s atmosphere. Small, permanent magnets can be used arranged in a particular manner (Halbach magnetic arrays) to create energy-efficient, compact sources of the magnetic field of these objects with an induction of $0.8$–$1.5$ T.
The work was carried out in the framework of the project “Target Integrated Program of the National Academy of Sciences of Ukraine for Scientific Space Research for 2018--2022.”
Citation:
V. A. Shuvalov, N. A. Tokmak, Yu. P. Kuchugurniy, N. P. Reznichenko, “Braking of a magnetized body at the interaction of its magnetic field with a rarified plasma flow”, TVT, 58:2 (2020), 163–174; High Temperature, 58:2 (2020), 151–161
\Bibitem{ShuTokKuc20}
\by V.~A.~Shuvalov, N.~A.~Tokmak, Yu.~P.~Kuchugurniy, N.~P.~Reznichenko
\paper Braking of a~magnetized body at the interaction of its magnetic field with a~rarified plasma flow
\jour TVT
\yr 2020
\vol 58
\issue 2
\pages 163--174
\mathnet{http://mi.mathnet.ru/tvt11230}
\crossref{https://doi.org/10.31857/S0040364420020180}
\elib{https://elibrary.ru/item.asp?id=43301945}
\transl
\jour High Temperature
\yr 2020
\vol 58
\issue 2
\pages 151--161
\crossref{https://doi.org/10.1134/S0018151X20020182}
\isi{https://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=Publons&SrcAuth=Publons_CEL&DestLinkType=FullRecord&DestApp=WOS_CPL&KeyUT=000545260600001}
\scopus{https://www.scopus.com/record/display.url?origin=inward&eid=2-s2.0-85087036895}
Linking options:
https://www.mathnet.ru/eng/tvt11230
https://www.mathnet.ru/eng/tvt/v58/i2/p163
This publication is cited in the following 3 articles:
V. A. Shuvalov, Yu. P. Kuchugurniy, G. S. Kochubei, S. V. Nosikov, “Electron saturation current on a cylindrical probe in a magnetized rarefied plasma flow”, High Temperature, 60:1 (2022), 1–7
Yu. A. Kirsanov, A. Yu. Kirsanov, “Thermal conductivity of a homogeneous body in magnetic field”, High Temperature, 60:2 (2022), 165–171
V.A. Shuvalov, Yu.P. Kuchugurnyi, M.I. Pysmennyi, S.M. Kulahin, “Simulation of the interaction of spacecraft with the rarefied ionospheric plasma”, Teh. Meh., 2021:2 (2021), 36