Effect of the oceanic lithosphere velocity on free convection in the asthenosphere beneath mid-ocean ridges

被引:0
作者
A. A. Kirdyashkin
A. G. Kirdyashkin
机构
[1] Russian Academy of Sciences,Institute of Geology and Mineralogy, Siberian Branch
来源
Izvestiya, Physics of the Solid Earth | 2008年 / 44卷
关键词
47.55.P-; 91.45.Fj; 91.35.Gf;
D O I
暂无
中图分类号
学科分类号
摘要
The paper presents results obtained in experiments on a horizontal layer heated from below in its central part and cooled from above; the layer models the oceanic asthenosphere. Flow velocity and temperature profiles are measured and the flow structure under boundary layer conditions is determined (at Rayleigh numbers Ra > 5 × 105). The flow in the core of a plane horizontal layer heated laterally and cooled from above develops under conditions of a constant temperature gradient averaged over the layer thickness. The flow core is modeled by a horizontal layer with a moving upper boundary and with adiabatic bounding surfaces under conditions of a constant horizontal gradient of temperature. Exact solutions of free convection equations are found for this model in the Boussinesq approximation. Model results are compared with experimental data. Temperature and flow velocity ranges are determined for the boundary layer regime. Based on the experimental flow velocity profiles, an expression is found for the flow velocity profile in a horizontal layer with a mobile upper boundary heated laterally and cooled from above. Free convection velocity profiles are obtained for the asthenosphere beneath a mid-ocean ridge (MOR) with a mobile lithosphere. An expression is obtained for the tangential stress at the top of the asthenosphere beneath an MOR and the total friction force produced by the asthenospheric flow at the asthenosphere-lithosphere boundary is determined.
引用
收藏
页码:291 / 302
页数:11
相关论文
共 50 条
[1]  
Anderson O. L.(1992)High-Temperature Elastic Constant Data on Minerals Relevant to Geophysics Rev. Geophys. 30 57-90
[2]  
Isaak D.(1997)The Contribution of Buoyant Mantle Upwelling and Melt Generation to Crustal Production at Oceanic Spreading Centers J. Geophys. Res. 102 979-989
[3]  
Oda H.(1999)Small-Scale Convection and Divergent Plate Boundaries J. Geophys. Res. 104 7389-7404
[4]  
Barnouin-Jha K.(2000)The Effects of Deep Damp Melting on Mantle Flow and Melt Generation beneath Mid-Ocean Ridges Earth Planet. Sci. Lett. 176 339-356
[5]  
Parmentier E. M.(2001)Mantle Upwelling and Melting beneath Slow Spreading Centers: Effects of Variable Rheology and Melt Productivity Geotektonika 184 589-604
[6]  
Sparks D. W.(2002)Three-Dimensional Passive Flow and Temperature Structure beneath Oceanic Ridge-Ridge-Ridge Triple Junctions Geotektonika 204 115-132
[7]  
Boutilier R. R.(1996)The Relative Importance of Plate-Driven and Buoyancy-Driven Flow at Mid-Ocean Ridges J. Geophys. Res. 101 194-1218
[8]  
Keen C.(1984)Thermogravitational and Thermocapillary Flows in a Horizontal Liquid Layer under the Conditions of a Horizontal Temperature Gradient Int. J. Heat Mass Transfer 27 1205-219
[9]  
Braun M. G.(2000)The Subduction Effect on the Structure of Thermogravitational Flows in the Asthenosphere beneath a Continent Geol. Geofiz. 41 207-686
[10]  
Hirth G.(2002)Experimental Modeling of the Subduction Effect on the Spatial Structure of Convective Flows in the Asthenosphere beneath a Continent Dokl. Akad. Nauk 384 682-94