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Progress and Plans on Magnetic Reconnection for CMSO. M. Yamada, C. Hegna, E. Zweibel. 1. Recent progress and plans Experiment-Yamada Theory-Hegna, Malshkin, Lazarian 2. Discussions on Plans. For General meeting for CMSO August 4, 2004. Experimental Progress and Plans Outline.
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Progress and Plans on Magnetic Reconnection for CMSO M. Yamada, C. Hegna, E. Zweibel 1. Recent progress and plans Experiment-Yamada Theory-Hegna, Malshkin, Lazarian 2. Discussions on Plans For General meeting for CMSO August 4, 2004
Experimental Progress and Plans Outline -Recent progress by CMSO research and its relationship to space physics • Understanding of local reconnection physics advanced - 2 Fluids MHD - Hall MHD physics - EM Fluctuations: Whistler waves - Current sheet profiles • Global reconnection physics being developed - Plasma merging • Plans - 2 Fluids MHD physics study will continue - Role of reconnection in dynamos and ion heating
Four devices [MRX, MST, SSX, and SSPX] are available for reconnection research in CMSO MST MRX SSX SSPX
Global reconnection sequence in solar flare • Observation by Yokoyama et al, Vrecc/VA ~ 0.002- 0.011
Current Physics Issues on Magnetic Reconnection 1. Local vs global physics • Global boundary conditions influence or determine local reconnection dynamics or forced reconnection • Local sheet physics influences global topology evolution and relaxation rate 2. Collisional vs collisionless reconnection • Classical collisions and non-classical collisions (fluctuations) • Hall term effects
Global Reconnection Physics Results from Recent Laboratory Experiments • Plasma Merging • Counter-helicity merging rate >> Co-helicity merging rate [TS-3, SSX, MRX] • Magnetic helicity conservation • Helicity conservation studied [TS-3] • Flux inventory during reconnection [MST, SSPX] • Identification of Hall dynamos in MST => Dynamo session • There are very few quantitative data from space to verify the above results, but there are many interesting implications
1-Fluid MHD model + effective resistivity (Effects of waves) • 2-Fluids MHD; decoupling of ions and electrons within the ion skin depth, c/pi; -> Including the Hall term, jexB Local issue; Two competing models to explain fast reconnection Generalized Sweet-Parker model Petschek-type Model Dedicated lab experiments [LLPD(EMHD), MRX, SSX, TS-3, VTF etc.]
Vi Ji Je 2-D numerical simulation can assess 2-fluids effects • Below c/pi electron and ion motion decouple • electrons frozen-in to B • Observed out-of-plane quadrupole fields • Obtained a thin electron current layer of c/pe These results have not been verified in lab experiments Drake et al
A force valance observed in the MRX shows a strong effect of Hall term Generalized Ohm’s law: • A force balance in incoming (x) direction would give; Jy x Bz = px or [p + Bz2]/2m0 ~ const. Phys. Plasmas, v. 7, 1781 (2000)
Contour; E + vB 2 Fluid Theory Breslau et al., 2004 E = const. Steady state dB/dt =Curl E E + vxB ~ 0 c/wpi =210-3; =10-2; c/pi=2.27710-2
Hall term should play a major role in force balance hj E + vB (jB)/nee = + =210-3; =10-2; c/pi=2.27710-2
Fluid Flow Lines flux contours separatrix ion flow electron flow symmetry axes c/wpi Max ion speed is 1.084 vA at (.464, 0) and (.735, 0). Max electron speed is 3.302 vA at (.562, 0) and (.631, 0). =210-3; =10-2; c/pi=2.27710-2
2D Current Profile with Hall Term and Elevated Resistivity =10-2; =10-2; c/pi=2.27710-2
Major Goals for Magnetic Reconnection in CMSO • 1) Study 2-fluid MHD effects through the generalized Ohm’s law in the reconnection region and determine the role of turbulence in reconnection process. • 2) Find key relationships between the local physics of the reconnection layer and the dynamics of global plasma reconnection phenomena. • 3) Identify key 3-D effects on reconnection, whether intrinsic or due to boundary conditions. • 4) Evaluate the role of magnetic reconnection in dynamos, ion heating, and, more generally, in other magnetic self-organization phenomena.
The measured current sheet profiles agree well with Harris theory
Sheet width agrees with Harris model demonstrating 2-fluid MHD effects • scales with c/pi • ~ constant vd/vthe • is not determined by Sweet-Parker thickness
Reconnection speeds up drastically in low collisionality regime What causes the anomalous resistivity? Measured resistivity Trintchouk et al, PoP 2003 Collisionality
Reconnection rate is enhanced for (c/wpi)/dsp >1 Breslau et al,
If Ratio of the Sweet-Parker thickness to the Ion Inertia Length, = 1
A reconnection layer has been documented in the magnetopause Mozer et al., PRL 2002 POLAR satellite
Fast Reconnection <=> Enhanced Resistivity • Main question • What is the cause of the observed enhanced resistivity? • Electrostatic Turbulence • Electromagnetic Fluctuations • 2 Fluids effects • All effects may be coupled in MRX
Turbulence Amplitudes Correlate with Resistivity Enhancement
MRX has been upgraded to address major reconnection physics issues in collision-less regime New fine structure probe 71 channels Lager S number expected with higher B and Te Vacuum vessel extended
Initial measurement of fine structure of the neutral sheet • Confirms the previously seen Harris current sheet profile. • As the current sheet thins, deviations from the Harris tanh profile are seen in a transient phase.
Magnetic reconnection in MST Two fluid effects can significantly alter the reconnection and dynamo, for < c/wpi MHD term Hall term S. Prager’s talk
Hall dynamo large near resonant surface PRL July 23, 2004
SSX- Merging Experiments Mode I Mode II /
Generalized Ohm’s Law has been addressed in SSX • JxB term is evaluated to be much larger than collisional resistivity term and inertia term [Cothran et al. to be submitted to GRL] => M. Brown’s talk
Magnetic structure consistent with FRC/doublet-CT SSX (Swarthmore) 2002 • Reversed field • Very little midplane toroidal field • Axially antisymmetric B • 70 G RCC field (on axis)
SummaryProgress being made in laboratory experiments • Transition from Sweet-Parker (collisional) to 2-fluid MHD regime documented ; A new scaling found • Hall effects have been experimentally studied in the neutral sheets [MRX, SSX] as well as in the unstable flux surfaces [MST] • Magnetic turbulence [whistler waves] identified in the neutral sheet, correlates well with resistivity enhancement • With regard to the fine properties of the neutral sheet, a close interrelationship to space observations (in the magnetosphere) has been established;WIND, GEOTAIL, Cluster • Conclusive guiding principles may be yet to be found in reconnection with global reconnection • Magnetic helicity, 2 fluids effects
Short-Intermediate Term Research Objectives • 1) Investigate local dynamics in the vicinity of the neutral sheet to assess 2-fluid MHD processes, such as Hall and turbulence effects. • 2) Explore the relationship between anomalous ion heating and reconnection events in both laboratory and astrophysical plasmas, and investigate why Ti is generally higher than Te in reconnection region. • 3) Investigate how the local reconnection process is related to global reconnection and dynamo activity. • 4) Role of reconnection in dynamos
Local Reconnection Physics Results from Recent Laboratory Experiments • Current sheet profiles • ~ c/pi, consistent with theory; MRX, SSX, TS-3, GEOTAIL, WINDS • B tanh(x/), in MRX, VTF, agrees with space data [ Mozer et al.] • Reconnection rate • Consistent with a generalized Sweet-Parker Model [MRX] • Plasma resistivity • Verification of Spitzer perpendicular resistivity in collisional limit [MRX] • Enhanced in less collisional [MRX, TS-3] and collisionless [VTF] cases • Fluctuations • Detected by electrostatic and magnetic probes [MRX, VTF] • Magnetic fluctuations around Lower Hybrid frequency correlate well with the resistivity enhancement [MRX] <=> WIND, GEOTAIL, Cluster