Anisotropic magnetosheath: Comparison of theory with Wind observations near the stagnation streamline

被引:24
作者
Farrugia, CJ
Erkaev, NV
Vogl, DF
Biernat, HK
Oieroset, M
Lin, RP
Lepping, RP
机构
[1] Univ New Hampshire, Inst Study Earth Oceans & Space, Ctr Space Sci, Durham, NH 03824 USA
[2] Austrian Acad Sci, Space Res Inst, A-8042 Graz, Austria
[3] Russian Acad Sci, Inst Computat Modelling, Krasnoyarsk 660036, Russia
[4] NASA, Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
[5] Univ Calif Berkeley, Space Sci Lab, Berkeley, CA 94720 USA
[6] Graz Univ, Inst Geophys Astrophys & Meteorol, Graz, Austria
[7] Graz Univ, Inst Theoret Phys, A-8010 Graz, Austria
关键词
D O I
10.1029/2001JA000034
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We carry out a first comparison with spacecraft measurements of our recent three-dimensional, one-fluid magnetohydrodynamic (MHD) model for the anisotropic magnetosheath [Erkaev et al., 1999], using data acquired by the Wind spacecraft on an inbound magnetosheath pass on December 24, 1994. The spacecraft trajectory was very close to the stagnation streamline, being displaced by less than 1/2 hour from noon and passing at low southern magnetic latitudes (similar to4.5degrees). All quantities downstream of the bow shock are obtained by solving the Rankine-Hugoniot equations taking the pressure anisotropy into account. In this application of our model we close the MHD equations by a "bounded anisotropy" ansatz using for this purpose the inverse correlation between the proton temperature anisotropy, A(p) (equivalent to T-pperpendicular to/T-pparallel to - 1) and the proton plasma beta parallel to the magnetic field beta(pparallel to) observed on this pass when conditions are steady. In the model the total perpendicular pressure is prescribed and not obtained self-consistently. For all quantities studied we find very good agreement between the predicted and the observed profiles, indicating that the bounded anisotropy method of closing the magnetosheath equations, first suggested by Denton et al. [1994], is valid and reflects the physics of the magnetosheath well. We assess how sensitive our model results are to different parameters in the A(p) = alpha(0)beta(pparallel to)(-alpha1) (alpha(1) > 0) relation, taking for al the two limiting values (0.4, 0.5) resulting from the two-dimensional hybrid simulations of Gary et al. [1997], and varying alpha(0) in the range 0.6 - 0.8. Input solar wind conditions are as measured on this pass. In general, the model profiles depend more strongly on alpha(0) than on al. In particular, decreasing alpha(0) narrows the width of the plasma depletion layer (PDL) and widens the mirror stable region. For the lowest value of alpha(0) the mirror stable region extends sunward of the outer edge of the PDL. For the other two values of alpha(0) and regardless of the value of al, it is contained within the PDL. Finally, we also study phenomenological double-polytropic laws and find polytropic indices gamma(perpendicular to) approximate to 1 and gamma(parallel to) approximate to 1.5. These results agree well with those of Hau et al. [1993] inferred from Active Magnetospheric Particle Tracer Explorers/ Ion Release Module data on a crossing of the near-subsolar magnetosheath.
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收藏
页码:29373 / 29385
页数:13
相关论文
共 42 条
[21]   Proton temperature anisotropy upper bound [J].
Gary, SP ;
Wang, J ;
Winske, D ;
Fuselier, SA .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1997, 102 (A12) :27159-27169
[22]   DOUBLE-POLYTROPIC CLOSURE IN THE MAGNETOSHEATH [J].
HAU, LN ;
PHAN, TD ;
SONNERUP, BUO ;
PASCHMANN, G .
GEOPHYSICAL RESEARCH LETTERS, 1993, 20 (20) :2255-2258
[23]   ON SLOW-MODE WAVES IN AN ANISOTROPIC-PLASMA [J].
HAU, LN ;
SONNERUP, BUO .
GEOPHYSICAL RESEARCH LETTERS, 1993, 20 (17) :1763-1766
[24]   PLASMA AND MAGNETIC-FIELD BEHAVIOR ACROSS THE MAGNETOSHEATH NEAR LOCAL NOON [J].
HILL, P ;
PASCHMANN, G ;
TREUMANN, RA ;
BAUMJOHANN, W ;
LUHR, H .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1995, 100 (A6) :9575-9583
[25]  
Kulsrud R.M., 1983, Handbook of Plasma Physics, V1, P115
[26]   INTERACTION BETWEEN THE SOLAR PLASMA WIND AND THE GEOMAGNETIC CAVITY [J].
LEES, L .
AIAA JOURNAL, 1964, 2 (09) :1576-1582
[27]   THE WIND MAGNETIC-FIELD INVESTIGATION [J].
LEPPING, RP ;
ACUNA, MH ;
BURLAGA, LF ;
FARRELL, WM ;
SLAVIN, JA ;
SCHATTEN, KH ;
MARIANI, F ;
NESS, NF ;
NEUBAUER, FM ;
WHANG, YC ;
BYRNES, JB ;
KENNON, RS ;
PANETTA, PV ;
SCHEIFELE, J ;
WORLEY, EM .
SPACE SCIENCE REVIEWS, 1995, 71 (1-4) :207-229
[28]   A 3-DIMENSIONAL PLASMA AND ENERGETIC PARTICLE INVESTIGATION FOR THE WIND SPACECRAFT [J].
LIN, RP ;
ANDERSON, KA ;
ASHFORD, S ;
CARLSON, C ;
CURTIS, D ;
ERGUN, R ;
LARSON, D ;
MCFADDEN, J ;
MCCARTHY, M ;
PARKS, GK ;
REME, H ;
BOSQUED, JM ;
COUTELIER, J ;
COTIN, F ;
DUSTON, C ;
WENZEL, KP ;
SANDERSON, TR ;
HENRION, J ;
RONNET, JC ;
PASCHMANN, G .
SPACE SCIENCE REVIEWS, 1995, 71 (1-4) :125-153
[29]   CALCULATION BY A MOMENT TECHNIQUE OF PERTURBATION OF GEOMAGNETIC FIELD BY SOLAR WIND [J].
MIDGLEY, JE ;
DAVIS, L .
JOURNAL OF GEOPHYSICAL RESEARCH, 1963, 68 (18) :5111-+
[30]   SWE, A COMPREHENSIVE PLASMA INSTRUMENT FOR THE WIND SPACECRAFT [J].
OGILVIE, KW ;
CHORNAY, DJ ;
FRITZENREITER, RJ ;
HUNSAKER, F ;
KELLER, J ;
LOBELL, J ;
MILLER, G ;
SCUDDER, JD ;
SITTLER, EC ;
TORBERT, RB ;
BODET, D ;
NEEDELL, G ;
LAZARUS, AJ ;
STEINBERG, JT ;
TAPPAN, JH .
SPACE SCIENCE REVIEWS, 1995, 71 (1-4) :55-77