Magnetic Topology of Active Regions and Coronal Holes: Implications for Coronal Outflows and the Solar Wind

被引:61
作者
van Driel-Gesztelyi, L. [1 ,2 ,3 ]
Culhane, J. L. [2 ,4 ]
Baker, D. [2 ]
Demoulin, P. [1 ]
Mandrini, C. H. [5 ,6 ]
DeRosa, M. L. [7 ]
Rouillard, A. P. [8 ,9 ]
Opitz, A. [8 ,9 ]
Stenborg, G. [10 ]
Vourlidas, A. [11 ]
Brooks, D. H. [10 ]
机构
[1] Univ Paris Diderot, Univ Paris 06, Observ Paris, CNRS,LESIA, Meudon, France
[2] Univ Coll London, Mullard Space Sci Lab, Dorking RH5 6NT, Surrey, England
[3] Hungarian Acad Sci, Konkoly Observ, Budapest, Hungary
[4] Int Space Sci Inst, Bern, Switzerland
[5] Univ Buenos Aires, CONICET, Inst Astron & Fis Espacio, RA-1428 Buenos Aires, DF, Argentina
[6] Univ Buenos Aires, Fac Ciencias Exactas & Nat, Buenos Aires, DF, Argentina
[7] Lockheed Martin Solar & Astrophys Lab, Palo Alto, CA 94304 USA
[8] Univ Toulouse UPS, Inst Rech Astrophys & Planetol, Toulouse, France
[9] CNRS, UMR 5277, Toulouse, France
[10] George Mason Univ, Coll Sci, Fairfax, VA 22030 USA
[11] USN, Res Lab, Div Space Sci, Washington, DC 20375 USA
关键词
Active regions; Magnetic field; Magnetic extrapolations; Solar wind; QUASI-SEPARATRIX LAYERS; EUV IMAGING SPECTROMETER; TRANSITION REGION; PLASMA FLOWS; FLUX TUBES; HINODE; FIELDS; FLARES; EXPLORER; LOOPS;
D O I
10.1007/s11207-012-0076-8
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
During 2 -aEuro parts per thousand 18 January 2008 a pair of low-latitude opposite-polarity coronal holes (CHs) were observed on the Sun with two active regions (ARs) and the heliospheric plasma sheet located between them. We use the Hinode/EUV Imaging Spectrometer (EIS) to locate AR-related outflows and measure their velocities. Solar-Terrestrial Relations Observatory (STEREO) imaging is also employed, as are the Advanced Composition Explorer (ACE) in-situ observations, to assess the resulting impacts on the solar wind (SW) properties. Magnetic-field extrapolations of the two ARs confirm that AR plasma outflows observed with EIS are co-spatial with quasi-separatrix layer locations, including the separatrix of a null point. Global potential-field source-surface modeling indicates that field lines in the vicinity of the null point extend up to the source surface, enabling a part of the EIS plasma upflows access to the SW. We find that similar upflow properties are also observed within closed-field regions that do not reach the source surface. We conclude that some of plasma upflows observed with EIS remain confined along closed coronal loops, but that a fraction of the plasma may be released into the slow SW. This suggests that ARs bordering coronal holes can contribute to the slow SW. Analyzing the in-situ data, we propose that the type of slow SW present depends on whether the AR is fully or partially enclosed by an overlying streamer.
引用
收藏
页码:237 / 262
页数:26
相关论文
共 67 条
[21]   ORIGIN OF THE SOLAR-WIND FROM COMPOSITION DATA [J].
GEISS, J ;
GLOECKLER, G ;
VONSTEIGER, R .
SPACE SCIENCE REVIEWS, 1995, 72 (1-2) :49-60
[22]   Investigation of the composition of solar and interstellar matter using solar wind and pickup ion measurements with SWICS and SWIMS on the ACE spacecraft [J].
Gloeckler, G ;
Cain, J ;
Ipavich, FM ;
Tums, EO ;
Bedini, P ;
Fisk, LA ;
Zurbuchen, TH ;
Bochsler, P ;
Fischer, J ;
Wimmer-Schweingruber, RF ;
Geiss, J ;
Kallenbach, R .
SPACE SCIENCE REVIEWS, 1998, 86 (1-4) :497-539
[23]   The X-ray telescope (XRT) for the Hinode mission [J].
Golub, L. ;
DeLuca, E. ;
Austin, G. ;
Bookbinder, J. ;
Caldwell, D. ;
Cheimets, P. ;
Cirtain, J. ;
Cosmo, M. ;
Reid, P. ;
Sette, A. ;
Weber, M. ;
Sakao, T. ;
Kano, R. ;
Shibasaki, K. ;
Hara, H. ;
Tsuneta, S. ;
Kumagai, K. ;
Tamura, T. ;
Shimojo, M. ;
McCracken, J. ;
Carpenter, J. ;
Haight, H. ;
Siler, R. ;
Wright, E. ;
Tucker, J. ;
Rutledge, H. ;
Barbera, M. ;
Peres, G. ;
Varisco, S. .
SOLAR PHYSICS, 2007, 243 (01) :63-86
[24]   Coronal plasma motions near footpoints of active region loops revealed from spectroscopic observations with Hinode EIS [J].
Hara, Hirohisa ;
Watanabe, Tetsuya ;
Harra, Louise K. ;
Culhane, J. Leonard ;
Young, Peter R. ;
Mariska, John T. ;
Doschek, George A. .
ASTROPHYSICAL JOURNAL LETTERS, 2008, 678 (01) :L67-L71
[25]  
Harra LK, 2008, ASTROPHYS J LETT, V676, pL147, DOI 10.1086/587485
[26]   The Creation of Outflowing Plasma in the Corona at Emerging Flux Regions: Comparing Observations and Simulations [J].
Harra, L. K. ;
Archontis, V. ;
Pedram, E. ;
Hood, A. W. ;
Shelton, D. L. ;
van Driel-Gesztelyi, L. .
SOLAR PHYSICS, 2012, 278 (01) :47-71
[27]   TRACE Observations of Changes in Coronal Hole Boundaries [J].
Kahler, S. ;
Jibben, P. ;
DeLuca, E. E. .
SOLAR PHYSICS, 2010, 262 (01) :135-147
[28]   FORMATION OF CORONAL HOLES ON THE ASHES OF ACTIVE REGIONS [J].
Karachik, Nina V. ;
Pevtsov, Alexei A. ;
Abramenko, Valentyna I. .
ASTROPHYSICAL JOURNAL, 2010, 714 (02) :1672-1678
[29]   Abundance variation at the vicinity of an active region and the coronal origin of the slow solar wind [J].
Ko, Yuan-Kuen ;
Raymond, John C. ;
Zurbuchen, Thomas H. ;
Riley, Pete ;
Raines, Jim M. ;
Strachan, Leonard .
ASTROPHYSICAL JOURNAL, 2006, 646 (02) :1275-1287
[30]   MAGNETIC NULLS AND TOPOLOGY IN A CLASS OF SOLAR-FLARE MODELS [J].
LAU, YT .
SOLAR PHYSICS, 1993, 148 (02) :301-324