Auswahl der wissenschaftlichen Literatur zum Thema „Magnetic blowout“

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Zeitschriftenartikel zum Thema "Magnetic blowout"

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Drake, J. F., und G. R. Burkhart. „Magnetic blowout during collisionless reconnection“. Geophysical Research Letters 19, Nr. 11 (02.06.1992): 1077–80. http://dx.doi.org/10.1029/92gl01034.

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Tomisaka, Kohji. „Blowout of superbubble in Galactic magnetic field“. Astrophysical Journal 361 (September 1990): L5. http://dx.doi.org/10.1086/185814.

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Sweet, David, Edward Ott, Thomas M. Antonsen, Daniel P. Lathrop und John M. Finn. „Blowout bifurcations and the onset of magnetic dynamo action“. Physics of Plasmas 8, Nr. 5 (Mai 2001): 1944–52. http://dx.doi.org/10.1063/1.1342228.

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Cong, Shen, Zhi Hai Fan, Dong Feng Li, Ke Tong und Nan Ji. „Fracture Failure Analysis of the Blowout Preventer Ram in an Oilfield“. Materials Science Forum 1035 (22.06.2021): 458–63. http://dx.doi.org/10.4028/www.scientific.net/msf.1035.458.

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This paper gives a thorough investigation on the fracture failure of the blowout preventer (BOP) ram. Through appearance inspection, magnetic powder inspection, physicochemical inspection, metallographic inspection and scanning electron microscope (SEM), the main fracture reason of the BOP ram is that there was some original cracks in the BOP ram before fracture, during the service process the bop ram is subjected to impact load, therefore brittle fracture occurs due to the high brittleness of the gate material (which is caused by large internal structure) and low anti-crack propagation ability. Key words: Blowout preventer (BOP) ram; Fatigue break; Brittle fracture; Failure analysis
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Bellan, P. M., und J. W. Higley. „Magnetic suppression of arc blowout in a model arc furnace“. IEEE Transactions on Plasma Science 20, Nr. 6 (1992): 1026–35. http://dx.doi.org/10.1109/27.199568.

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Yanik, Bahar, Bahri Keyik, Isik Conkbayir und M. Akif Teber. „Carotid blowout syndrome with oronasal hemorrhage: magnetic resonance imaging findings“. Japanese Journal of Radiology 29, Nr. 1 (Januar 2011): 72–75. http://dx.doi.org/10.1007/s11604-010-0503-4.

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Rojek, Artur. „An experimental analysis of DC magnetic blowout high-speed circuit breakers’ parameters“. Eastern-European Journal of Enterprise Technologies 4, Nr. 5 (106) (31.08.2020): 35–40. http://dx.doi.org/10.15587/1729-4061.2020.210232.

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Jones, Douglas L., Gus L. Hoehn und Arthur F. Kuckes. „Improved Magnetic Model for Determination of Range and Direction to a Blowout Well“. SPE Drilling Engineering 2, Nr. 04 (01.12.1987): 316–22. http://dx.doi.org/10.2118/14388-pa.

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Nishida, Y. „Diagnosis of Magnetic Resonance Imaging (MRI) for Blowout Fracture—Three Advantages of MRI“. Japanese Journal of Ophthalmology 43, Nr. 5 (10.09.1999): 446. http://dx.doi.org/10.1016/s0021-5155(99)00073-8.

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Zhu, Xiaoshuai, Huaning Wang, Xin Cheng und Chong Huang. „A Solar Blowout Jet Caused by the Eruption of a Magnetic Flux Rope“. Astrophysical Journal 844, Nr. 2 (27.07.2017): L20. http://dx.doi.org/10.3847/2041-8213/aa8033.

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Dissertationen zum Thema "Magnetic blowout"

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Lee, Eon Jui. „Eruptions and jets in the Sun“. Thesis, University of St Andrews, 2017. http://hdl.handle.net/10023/15648.

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Magnetic flux emergence is a fundamental process in the Sun, during which magnetic fields emerge from the solar interior to the surface, to build up active regions and give onset to spectacular dynamic phenomena, such as eruptions and jets. In this thesis, we performed 3D, resistive MHD simulations to study the emergence and the associated magnetic activity of a quadrupolar region in the Sun. Our aim behind the setup of this initial condition (i.e. a quadrupolar region) was to study a magnetic field configuration, which has not been studied in detail before, although it has been repeatedly observed in the Sun and it has been shown that it can host intense magnetic activity (e.g. in the form of jets, flares and eruptions). The results of our experiments showed that the internal dynamics of such regions leads to the onset of eruptions in the form of twisted magnetic flux tubes (flux ropes). These eruptions are recurrent but they cannot escape the outermost field of the emerging flux (envelope field). They remain confined within the envelope field, as the downward tension of the outermost field lines overwhelms the upward Lorentz force of the erupting field. When we add an ambient magnetic field in the solar atmosphere, external reconnection between the emerging and the ambient field triggers the emission of (standard) reconnection jets. The external reconnection also releases the tension of the ambient field lines and, thus, the eruptions move in an ejective way towards the outer space. Namely, the confined eruptions become ejective eruptions, which escape from the numerical domain. These ejective eruptions drive a newly observed class of jets, the so called "blowout" jets. Our experiments reproduce some of the main observed characteristics of the "blowout" jets. We showed that "blowout" jets emit hot and cool plasma into the outer solar atmosphere simultaneously, and they undergo untwisting motion due to the relaxation of twist during their ejection. We found that the untwisting motion of the "blowout" jets is associated with the propagation of torsional Alfvén waves. Finally, we performed a parametric study to explore the effect of the ambient field strength on the onset and dynamics of the eruptive events. We found that one of the main effects is that the stronger ambient field suppresses the vertical expansion of the magnetic envelope of the quadrupolar region due to the higher magnetic pressure above it. This result has an effect on the emission of jets, which are emitted due to reconnection between the two fields. When the ambient field is relatively weak, it is pushed away from the strong emerging field and reconnection between them is not so persistent. On the other hand, when the ambient field is relatively strong, we find that more jets are ejected due to more efficient and more frequent reconnection between the two flux systems. As a consequence, we find that more mass and flux is being transferred into the solar corona by the reconnection jets. Also, we find that there are more eruptions when the ambient field is stronger. The study of the total energy flux carried by the jets showed that it is sufficient to provide the energy required to accelerate the high speed solar wind. This indicates that the "blowout" jets may play an important role in driving the solar wind.
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Pala, 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.

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In the introduction a traction circuit is analyzed with different types of electric devices. The thesis describes power railway electric circuits, their loads and types of used contactors. Railway standards chapter summarizes requirements of standards for railway contactors. Follows literature focusing on power current switching and power switching devices design. Based on previous, a design procedure is developed for railway MV contactor in accordance with end-user and standards requirements. Thesis closes with pre-designing a railway contactor by calculating electrodynamic forces, heatflow and mechanical components.
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Rassou, 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.

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Une impulsion laser intense se propageant dans un plasma sous-dense (ne< 10¹⁸ W.cm⁻²) et de durée très courte (τ₀< 100 fs), , on atteint le régime de la bulle. Les champs électriques dans ces bulles, de l’ordre de 100 GV/m, peuvent accélérer un faisceau d’électrons jusqu’au GeV sur des distances de l’ordre du centimètre. Dans ce régime, les électrons expulsés par la force pondéromotrice du laser forment une fine et dense couche à la surface d'une cavité d'ions restés immobiles. Les propriétés de ce régime sont examinées par l’intermédiaire d’un modèle analytique, que nous avons développé en nous inspirant du travail de W. Lu et S. Yi. En nous plaçant dans ce régime prometteur, nous avons étudié les mécanismes d’injection et de piégeage dans l'onde de sillage. Dans l’injection optique, les polarisations parallèles ou circulaires positives conduisent respectivement à une injection mettant en jeu du chauffage stochastique, ou à l’injection froide. Un paramètre de similarité est introduit, celui-ci permet de déterminer la méthode d’injection la plus appropriée pour maximiser la charge injectée. Enfin, le modèle analytique présenté en première partie est étendu afin d’étudier l’onde de sillage dans le régime de la bulle lorsqu’un champ magnétique longitudinal initial est appliqué au plasma. Lorsque le plasma est magnétisé deux phénomènes remarquables se manifestent, d'une part une ouverture apparaît à l'arrière de la bulle et d'autre part un mécanisme d'amplification du champ magnétique longitudinale est induit par la variation du flux magnétique. Les prédictions de notre modèle analytique sont confrontées aux résultats de simulations PIC 3D issues du code CALDER-Circ. La conséquence immédiate de la déformation de l'onde de sillage est la réduction, voire la suppression de l'auto-injection. L’application d’un champ magnétique longitudinal, combinée à un choix judicieux des paramètres laser-plasma, permet de réduire la dispersion en énergie des faisceaux d’électrons produits après injection optique
An 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
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Buchteile zum Thema "Magnetic blowout"

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Vourlidas, A., R. A. Howard, J. S. Morrill und 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.

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Konferenzberichte zum Thema "Magnetic blowout"

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Dong, R., C. Yu, Y. Wang, Z. Xu, J. Si und 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.

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Timur, 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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