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Please use this identifier to cite or link to this item: http://arks.princeton.edu/ark:/88435/dsp014x51hm50z
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dc.contributor.authorMyers, Clayton-
dc.contributor.authorYamada, Masaaki-
dc.contributor.authorJi, Hantao-
dc.contributor.authorYoo, Jongsoo-
dc.contributor.authorJara-Almonte, Jonathan-
dc.contributor.authorFox, William-
dc.date.accessioned2016-10-28T20:36:35Z-
dc.date.available2016-10-28T20:36:35Z-
dc.date.issued2016-11-
dc.identifier.urihttp://arks.princeton.edu/ark:/88435/dsp014x51hm50z-
dc.description.abstractThe loss-of-equilibrium is a solar eruption mechanism whereby a sudden breakdown of the magnetohydrodynamic force balance in the Sun's corona ejects a massive burst of particles and energy into the heliosphere. Predicting a loss-of-equilibrium, which has more recently been formulated as the torus instability, relies on a detailed understanding of the various forces that hold the pre-eruption magnetic flux rope in equilibrium. Traditionally, idealized analytical force expressions are used to derive simplified eruption criteria that can be compared to solar observations and modeling. What is missing, however, is a validation that these idealized analytical force expressions can be applied to the line-tied, low-aspect-ratio conditions of the corona. In this paper, we address this shortcoming by using a laboratory experiment to study the forces that act on long-lived, arched, line-tied magnetic flux ropes. Three key force terms are evaluated over a wide range of experimental conditions: (1) the upward hoop force; (2) the downward strapping force; and (3) the downward toroidal field tension force. First, the laboratory force measurements show that, on average, the three aforementioned force terms cancel to produce a balanced line-tied equilibrium. This finding validates the laboratory force measurement techniques developed here, which were recently used to identify a dynamic toroidal field tension force that can prevent flux rope eruptions [Myers et al., Nature 528, 526 (2015)]. The verification of magnetic force balance also confirms the low-beta assumption that the plasma thermal pressure is negligible in these experiments. Next, the measured force terms are directly compared to their corresponding analytical expressions. While the measured and analytical forces are found to be well correlated, the low-aspect-ratio, line-tied conditions in the experiment are found to both reduce the measured hoop force and increase the measured tension force with respect to analytical expectations. These two co-directed effects combine to generate laboratory flux rope equilibria at lower altitudes than are predicted analytically. Such considerations are expected to modify the loss-of-equilibrium eruption criteria for analogous flux ropes in the solar corona.en_US
dc.description.tableofcontentsRead me and data files.en_US
dc.language.isoen_USen_US
dc.publisherPrinceton Plasma Physics Laboratory, Princeton Universityen_US
dc.relation.isreferencedbyhttp://dx.doi.org/10.1063/1.4966691en_US
dc.subjectLaboratory Astrophysicsen_US
dc.subjectSolar Eruptionsen_US
dc.subjectMagnetohydrodynamic Equilibriumen_US
dc.titleLaboratory study of low-beta forces in arched, line-tied magnetic flux ropesen_US
dc.typeDataseten_US
pu.projectgrantnumber31016 G0001 10003086 101-
pu.depositorStratton, Brentley-
dc.contributor.funderU. S. Department of Energy contract number DE-AC02-09CH11466en_US
dc.contributor.funderNational Science Foundation/Department of Energy Center for Magnetic Self-Organizationen_US
Appears in Collections:Plasma Science & Technology

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