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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >The relationship between shear wave velocity, temperature, attenuation and viscosity in the shallow part of the mantle
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The relationship between shear wave velocity, temperature, attenuation and viscosity in the shallow part of the mantle

机译:地幔浅部剪切波速度,温度,衰减与黏度之间的关系

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Surface wave tomography, using the fundamental Rayleigh wave velocities and those of higher modes between 1 and 4 and periods between 50 and 160 s, is used to image structures with a horizontal resolution of ~250 km and a vertical resolution of ~50 km to depths of ~300 km in the mantle. A new model, PM_v2_2012, obtained from 3 ×~(106) seismograms, agrees well with earlier lower resolution models. It is combined with temperature estimates from oceanic plate models and with pressure and temperature estimates from the mineral compositions of garnet peridotite nodules to generate a number of estimates of SV(P, T) based on geophysical and petrological observations alone. These are then used to estimate the unrelaxed shear modulus and its derivatives with respect to pressure and temperature, which agree reasonably with values from laboratory experiments. At high temperatures relaxation occurs, causing the shear wave velocity to depend on frequency. This behaviour is parameterised using a viscosity to obtain a Maxwell relaxation time. The relaxation behaviour is described using a dimensionless frequency, which depends on an activation energy E and volume _(V a). The values of E and _(V a) obtained from the geophysical models agree with those from laboratory experiments on high temperature creep. The resulting expressions are then used to determine the lithospheric thickness from the shear wave velocity variations. The resolution is improved by about a factor of two with respect to earlier models, and clearly resolves the thick lithosphere beneath active intracontinental belts that are now being shortened. The same expressions allow the three dimensional variations of the shear wave attenuation and viscosity to be estimated.
机译:使用基本的瑞利波速度和1到4之间以及50到160 s之间的周期的高模速度的表面波层析成像技术可以对水平分辨率约为250 km,垂直分辨率约为50 km的结构成像在地幔中约300公里从3×〜(106)地震图获得的新模型PM_v2_2012与早期的较低分辨率模型非常吻合。它与海洋板块模型的温度估算值以及石榴石橄榄石球状结节矿物成分的压力和温度估算值结合在一起,从而仅基于地球物理和岩石学观测就可以得出许多SV(P,T)估算值。然后将这些用于估计相对于压力和温度的非松弛剪切模量及其导数,它们与实验室实验的值合理地吻合。在高温下会发生松弛,从而导致剪切波速度取决于频率。使用粘度来参数化此行为以获得麦克斯韦弛豫时间。使用无量纲频率描述松弛行为,该无量纲频率取决于活化能E和体积_(V a)。从地球物理模型获得的E和_(V a)值与高温蠕变实验室实验的值一致。然后,将所得的表达式用于根据剪切波速度变化来确定岩石圈厚度。与以前的模型相比,分辨率提高了大约两倍,并且可以清晰地分辨出正在被缩短的活跃的洲际大陆带下方的厚岩石圈。相同的表达式可以估算剪切波衰减和粘度的三维变化。

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