| 7th International Symposium and Young Scientists School "Modern Problems of Laser Physics" | |
| Laboratory simulation of energetic flows of magnetospheric planetary plasma | |
| Shaikhislamov, I.F.^1 ; Posukh, V.G.^1 ; Melekhov, A.V.^1 ; Boyarintsev, E.L.^1 ; Zakharov, Yu P.^1 ; Prokopov, P.A.^1 ; Ponomarenko, A.G.^1 | |
| Dep. of Laser Plasma, Institute of Laser Physics SB RAS, 13/3 Acad. Lavrentyev ave., Novosibirsk | |
| 630090, Russia^1 | |
| 关键词: Dynamic interaction; In-laboratory experiments; Inner magnetosphere; Laboratory simulation; Magnetic dipole; Probe measurements; Quasi-stationary; Streaming plasma; | |
| Others : https://iopscience.iop.org/article/10.1088/1742-6596/793/1/012025/pdf DOI : 10.1088/1742-6596/793/1/012025 |
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| 来源: IOP | |
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【 摘 要 】
Dynamic interaction of super-sonic counter-streaming plasmas moving in dipole magnetic dipole is studied in laboratory experiment. First, a quasi-stationary flow is produced by plasma gun which forms a magnetosphere around the magnetic dipole. Second, explosive plasma expanding from inner dipole region outward is launch by laser beams focused at the surface of the dipole cover. Laser plasma is energetic enough to disrupt magnetic field and to sweep through the background plasma for large distances. Probe measurements showed that far from the initially formed magnetosphere laser plasma carries within itself a magnetic field of the same direction but order of magnitude larger in value than the vacuum dipole field at considered distances. Because no compression of magnetic field at the front of laser plasma was observed, the realized interaction is different from previous experiments and theoretical models of laser plasma expansion into uniform magnetized background. It was deduced based on the obtained data that laser plasma while expanding through inner magnetosphere picks up a magnetized shell formed by background plasma and carries it for large distances beyond previously existing magnetosphere.
【 预 览 】
| Files | Size | Format | View |
|---|---|---|---|
| Laboratory simulation of energetic flows of magnetospheric planetary plasma | 1335KB |
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