The Floor in the Solar Wind Magnetic Field Revisited

被引:45
作者
Cliver, E. W. [1 ]
Ling, A. G. [2 ]
机构
[1] USAF, Space Vehicles Directorate, Res Lab, Hanscom AFB, MA 01731 USA
[2] Atmospher Environm Res Inc, Lexington, MA USA
关键词
Solar wind; Slow solar wind; Floor; Cycle; 24; CORONAL MASS EJECTIONS; GEOMAGNETIC-ACTIVITY; FLUX; ACCELERATION; RECONNECTION; STREAMS; SPEED; CYCLE;
D O I
10.1007/s11207-010-9657-6
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Svalgaard and Cliver (Astrophys. J. Lett. 661, L203, 2007) proposed that the solar-wind magnetic-field strength [B] at Earth has a "floor" value of a parts per thousand 4.6 nT in yearly averages, which is approached but not broached at solar minima. They attributed the floor to a constant baseline solar open flux. In both 2008 and 2009, the notion of such a floor was undercut by annual B averages of a parts per thousand 4 nT. Here we present a revised view of both the level and the concept of the floor. Two independent correlations indicate that B has a floor of a parts per thousand 2.8 nT in yearly averages. These are i) a relationship between solar polar-field strength and yearly averages of B for the last four 11-year minima (B (MIN)), and ii) a precursor relationship between peak sunspot number for cycles 14 -aEuro parts per thousand 23 and B (MIN) at their preceding minima. These correlations suggest that at 11-year minima, B consists of i) a floor of a parts per thousand 2.8 nT, and ii) a component primarily due to the solar polar fields that varies from a parts per thousand 0 nT to a parts per thousand 3 nT. The solar polar fields provide the "seed" for the subsequent sunspot maximum. Removing the a parts per thousand 2.8 nT floor from B (MIN) brings the percentage decrease in B between the 1996 and 2009 minima into agreement with the corresponding decrease in solar polar-field strength. Based on a decomposition of the solar wind (from 1972 -aEuro parts per thousand 2009) into high-speed streams, coronal mass ejections, and slow solar wind, we suggest that the source of the floor in B is the slow solar wind. During 2009, Earth was in slow solar-wind flows a parts per thousand 70% of the time. We propose that the floor corresponds to a baseline (non-cyclic or ground state) open solar flux of a parts per thousand 8x10(13) Wb, which originates in persistent small-scale (supergranular and granular) field.
引用
收藏
页码:285 / 301
页数:17
相关论文
共 52 条
[11]   Acceleration of the solar wind as a result of the reconnection of open magnetic flux with coronal loops [J].
Fisk, LA .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2003, 108 (A4)
[12]   The behavior of the open magnetic field of the Sun [J].
Fisk, LA ;
Schwadron, NA .
ASTROPHYSICAL JOURNAL, 2001, 560 (01) :425-438
[13]   Group Sunspot Numbers: A new solar activity reconstruction [J].
Hoyt, DV ;
Schatten, KH .
SOLAR PHYSICS, 1998, 181 (02) :491-512
[14]  
Judge PG, 2010, ASTR SOC P, V428, P171
[15]   The outer solar atmosphere during the Maunder minimum: A stellar perspective [J].
Judge, Philip G. ;
Saar, Steven H. .
ASTROPHYSICAL JOURNAL, 2007, 663 (01) :643-656
[16]  
Livingston W., 2009, EOS T AGU, V90, P257, DOI [DOI 10.1029/2009EO300001, 10.1029/2009E0300001]
[17]   Comment on "The IDV index:: Its derivation and use in inferring long-term variations of the interplanetary magnetic field strength" by Leif!Svalgaard and Edward W.!Cliver [J].
Lockwood, M. ;
Rouillard, A. P. ;
Finch, I. ;
Stamper, R. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2006, 111 (A9)
[18]   Open solar flux estimates from near-Earth measurements of the interplanetary magnetic field: comparison of the first two perihelion passes of the Ulysses spacecraft [J].
Lockwood, M ;
Forsyth, RB ;
Balogh, A ;
McComas, DJ .
ANNALES GEOPHYSICAE, 2004, 22 (04) :1395-1405
[19]   Excess open solar magnetic flux from satellite data: 2. A survey of kinematic effects [J].
Lockwood, M. ;
Owens, M. ;
Rouillard, A. P. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2009, 114
[20]   Excess open solar magnetic flux from satellite data: 1. Analysis of the third perihelion Ulysses pass [J].
Lockwood, M. ;
Owens, M. ;
Rouillard, A. P. .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2009, 114