Time evolution of the fluid flow at the top of the core.: Geomagnetic jerks

被引:27
作者
Le Huy, M
Mandea, M
Le Mouël, JL
Pais, A
机构
[1] Inst Phys Globe, F-75252 Paris 5, France
[2] Hanoi Inst Geophys, Hanoi, Vietnam
来源
EARTH PLANETS AND SPACE | 2000年 / 52卷 / 03期
关键词
D O I
10.1186/BF03351625
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The knowledge of the geomagnetic field and its secular variation allows us to compute the fluid flow at the core surface. The poloidal and toroidal components of the fluid flow at the core-mantle boundary (CMB) have been calculated every year from the Bloxham and Jackson model (1992) and plotted at 50 year intervals over the last three centuries. The flow patterns conserve some broad features over this whole time-span. The time constant of the degree 1 component of the motion is larger than the time constant of the rest of the flow. The average motion over 300 years appears to be in large part symmetrical with respect to the equator. This average flow can be represented by the sum of a few geostrophic vectors. The acceleration fields corresponding to the well documented jerks of 1969, 1979, 1992 have also been computed. The geometry of these acceleration fields is the same, within a change of sign, for the three events. Moreover, this geometry has close connections with the geometry of the flow itself. The spatial and temporal variations of the flow field can be simply described, in a first approximation; it is possible to give an analytical schematic representation of the flow field during the last three decades. Some characteristics of the decadal length-of-day variations follow if the coupling torque between core and mantle is topographic.
引用
收藏
页码:163 / 173
页数:11
相关论文
共 50 条
[1]   Worldwide wavelet analysis of geomagnetic jerks [J].
Alexandrescu, M ;
Gibert, D ;
Hulot, G ;
LeMouel, JL ;
Saracco, G .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1996, 101 (B10) :21975-21994
[2]   DETECTION OF GEOMAGNETIC JERKS USING WAVELET ANALYSIS [J].
ALEXANDRESCU, M ;
GIBERT, D ;
HULOT, G ;
LEMOUEL, JL ;
SARACCO, G .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1995, 100 (B7) :12557-12572
[3]   POLOIDAL AND TOROIDAL FIELDS IN GEOMAGNETIC-FIELD MODELING [J].
BACKUS, G .
REVIEWS OF GEOPHYSICS, 1986, 24 (01) :75-109
[4]   THE REGION ON THE CORE MANTLE BOUNDARY WHERE A GEOSTROPHIC VELOCITY-FIELD CAN BE DETERMINED FROM FROZEN-FLUX MAGNETIC DATA [J].
BACKUS, GE ;
LEMOUEL, JL .
GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1986, 85 (03) :617-628
[5]  
BARRACLOUGH DR, 1974, GEOPHYS J ROY ASTR S, V36, P497, DOI 10.1111/j.1365-246X.1974.tb00611.x
[6]  
Ben'kova N. P., 1974, Geomagnetism and Aeronomy, V14, P751
[7]   THE SECULAR VARIATION OF EARTHS MAGNETIC-FIELD [J].
BLOXHAM, J ;
GUBBINS, D .
NATURE, 1985, 317 (6040) :777-781
[8]   TIME-DEPENDENT MAPPING OF THE MAGNETIC-FIELD AT THE CORE-MANTLE BOUNDARY [J].
BLOXHAM, J ;
JACKSON, A .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1992, 97 (B13) :19537-19563
[9]  
Braginskiy S. I., 1972, Geomagnetism and Aeronomy, V12, P524
[10]   How complex is the time-averaged geomagnetic field over the past 5 Myr? [J].
Carlut, J ;
Courtillot, V .
GEOPHYSICAL JOURNAL INTERNATIONAL, 1998, 134 (02) :527-544