Academic literature on the topic 'Magnetic blowout'
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Journal articles on the topic "Magnetic blowout"
Drake, J. F., and G. R. Burkhart. "Magnetic blowout during collisionless reconnection." Geophysical Research Letters 19, no. 11 (June 2, 1992): 1077–80. http://dx.doi.org/10.1029/92gl01034.
Full textTomisaka, Kohji. "Blowout of superbubble in Galactic magnetic field." Astrophysical Journal 361 (September 1990): L5. http://dx.doi.org/10.1086/185814.
Full textSweet, David, Edward Ott, Thomas M. Antonsen, Daniel P. Lathrop, and John M. Finn. "Blowout bifurcations and the onset of magnetic dynamo action." Physics of Plasmas 8, no. 5 (May 2001): 1944–52. http://dx.doi.org/10.1063/1.1342228.
Full textCong, Shen, Zhi Hai Fan, Dong Feng Li, Ke Tong, and Nan Ji. "Fracture Failure Analysis of the Blowout Preventer Ram in an Oilfield." Materials Science Forum 1035 (June 22, 2021): 458–63. http://dx.doi.org/10.4028/www.scientific.net/msf.1035.458.
Full textBellan, P. M., and J. W. Higley. "Magnetic suppression of arc blowout in a model arc furnace." IEEE Transactions on Plasma Science 20, no. 6 (1992): 1026–35. http://dx.doi.org/10.1109/27.199568.
Full textYanik, Bahar, Bahri Keyik, Isik Conkbayir, and M. Akif Teber. "Carotid blowout syndrome with oronasal hemorrhage: magnetic resonance imaging findings." Japanese Journal of Radiology 29, no. 1 (January 2011): 72–75. http://dx.doi.org/10.1007/s11604-010-0503-4.
Full textRojek, Artur. "An experimental analysis of DC magnetic blowout high-speed circuit breakers’ parameters." Eastern-European Journal of Enterprise Technologies 4, no. 5 (106) (August 31, 2020): 35–40. http://dx.doi.org/10.15587/1729-4061.2020.210232.
Full textJones, Douglas L., Gus L. Hoehn, and Arthur F. Kuckes. "Improved Magnetic Model for Determination of Range and Direction to a Blowout Well." SPE Drilling Engineering 2, no. 04 (December 1, 1987): 316–22. http://dx.doi.org/10.2118/14388-pa.
Full textNishida, Y. "Diagnosis of Magnetic Resonance Imaging (MRI) for Blowout FractureâThree Advantages of MRI." Japanese Journal of Ophthalmology 43, no. 5 (September 10, 1999): 446. http://dx.doi.org/10.1016/s0021-5155(99)00073-8.
Full textZhu, Xiaoshuai, Huaning Wang, Xin Cheng, and Chong Huang. "A Solar Blowout Jet Caused by the Eruption of a Magnetic Flux Rope." Astrophysical Journal 844, no. 2 (July 27, 2017): L20. http://dx.doi.org/10.3847/2041-8213/aa8033.
Full textDissertations / Theses on the topic "Magnetic blowout"
Lee, Eon Jui. "Eruptions and jets in the Sun." Thesis, University of St Andrews, 2017. http://hdl.handle.net/10023/15648.
Full textPala, Lukáš. "Návrh stykače VN pro trakční účely." Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2021. http://www.nusl.cz/ntk/nusl-442797.
Full textRassou, Sébastien. "Accélération d'électrons par onde de sillage laser : Développement d’un modèle analytique étendu au cas d’un plasma magnétisé dans le régime du Blowout." Thesis, Université Paris-Saclay (ComUE), 2015. http://www.theses.fr/2015SACLS066/document.
Full textAn intense laser pulse propagating in an under dense plasma (ne< 10¹⁸ W.cm⁻²) and short(τ₀< 100 fs), the bubble regime is reached. Within the bubble the electric field can exceed 100 GV/m and a trapped electron beam is accelerated to GeV energy with few centimetres of plasma.In this regime, the electrons expelled by the laser ponderomotive force are brought back and form a dense sheath layer. First, an analytic model was derived using W. Lu and S. Yi formalisms in order to investigate the properties of the wakefield in the blowout regime. In a second part, the trapping and injection mechanisms into the wakefield were studied. When the optical injection scheme is used, electrons may undergo stochastic heating or cold injection depending on the lasers’ polarisations. A similarity parameter was introduced to find out the most appropriate method to maximise the trapped charge. In a third part, our analytic model is extended to investigate the influence of an initially applied longitudinal magnetic field on the laser wakefield in the bubble regime. When the plasma is magnetized two remarkable phenomena occur. Firstly the bubble is opened at its rear, and secondly the longitudinal magnetic field is amplified - at the rear of the bubble - due to the azimuthal current induced by the variation of the magnetic flux. The predictions of our analytic model were shown to be in agreement with 3D PIC simulation results obtained with Calder-Circ. In most situations the wake shape is altered and self-injection can be reduced or even cancelled by the applied magnetic field. However, the application of a longitudinal magnetic field, combined with a careful choice of laser-plasma parameters, reduces the energy spread of the electron beam produced after optical injection
Book chapters on the topic "Magnetic blowout"
Vourlidas, A., R. A. Howard, J. S. Morrill, and S. Munz. "Analysis of Lasco Observations of Streamer Blowout Events." In Solar-terrestrial Magnetic Activity and Space Environment - Proceedings of the COSPAR Colloquium on Solar-Terrestrial Magnetic Activity and Space Environment (STMASE) held in the NA OC in Beijing, China September 10-12, 2001, 201–8. Elsevier, 2002. http://dx.doi.org/10.1016/s0964-2749(02)80157-3.
Full textConference papers on the topic "Magnetic blowout"
Dong, R., C. Yu, Y. Wang, Z. Xu, J. Si, and W. Li. "Effect of installing magnetic blowout device on the health status of DC contactor." In CSAA/IET International Conference on Aircraft Utility Systems (AUS 2020). Institution of Engineering and Technology, 2021. http://dx.doi.org/10.1049/icp.2021.0441.
Full textTimur, E. "Investigation of the Geothermally Contaminated Area after the Blowouts in Alasehir Using Magnetic and EM Methods." In 7th Congress of the Balkan Geophysical Society. Netherlands: EAGE Publications BV, 2013. http://dx.doi.org/10.3997/2214-4609.20131714.
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