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首页> 外文期刊>Geophysical Journal International >Olivine-induced viscous anisotropy in fossil strike-slip mantle shear zones and associated strain localization in the crust
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Olivine-induced viscous anisotropy in fossil strike-slip mantle shear zones and associated strain localization in the crust

机译:橄榄石诱导的化石防滑地幔剪切区中的粘性各向异性以及地壳中的相关应变局部化

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摘要

We propose that strain localization in plate interiors, such as linear belts of intraplate seismicity, may arise from spatial variations in viscous anisotropy produced by preferred orientation of olivine crystals (CPO or texture) inherited from previous deformation episodes in the lithospheric mantle. To quantify this effect, we model the deformation of a plate containing a fossil strike-slip mantle shear zone at different orientations relative to an imposed horizontal shortening, but no initial heterogeneity in the crust. The fossil shear zone is characterized by different orientation and intensity of the olivine CPO relatively to the surrounding mantle, which is isotropic in most simulations. The anisotropy in viscosity produced by the CPO, which remains fixed throughout the simulations, is described by an anisotropic (Hill) yield function parametrized based on second-order viscoplastic self-consistent (SO-VPSC) models. The results indicate that lateral variations in viscous anisotropy in the mantle affect the strain distribution in the entire lithosphere. Reactivation of the strike-slip mantle shear zone and strain localization in the crust above it occur for horizontal compression at 35-55. to the fossil shear plane, with a maximum at 45 degrees. The magnitude of strain localization depends on (i) the contrast in viscous anisotropy and, hence, on the variations in CPO orientation and intensity in the mantle, (ii) the boundary conditions and (iii) the feedbacks between mantle and crustal deformation. For a strong olivine CPO, when the boundary conditions do not hinder shear parallel to the fossil mantle shear zone, strain rates within it are up to a factor 30 higher than in an isotropic surrounding mantle or up to a factor 200 when the surrounding mantle is anisotropic, which results in strain rates up to a factor 10 or up to a factor 100 higher in the crust right above the fossil shear zone. Frictional weakening in the crust faults increases strain localization in the entire lithospheric column. High strength contrasts between the mantle and the ductile crust result in less efficient mechanical coupling, with strong localization in the mantle and lower crust, but weak in the brittle upper crust. Decrease in the crust-mantle strength contrast enhances the coupling and produces more homogenous strain distribution with depth, as well as a time-dependent evolution of strain localization, which reaches a peak and decreases before attaining steady-state. Comparison of seismic anisotropy, regional stress and focal mechanism data in linear arrays of intraplate seismicity, like the New Madrid and South Armorican seismic zones, to our models' predictions corroborates that olivine CPO preserved in fossil lithospheric-scale shear zones may be key for the development of such structures.
机译:我们提出了板间片中的应变定位,例如腔内地震性的线性皮带,可能来自由岩石罩中先前变形事件中的橄榄石晶体(CPO或纹理)的优选取向产生的粘性各向异性的空间变化。为了量化这种效果,我们模拟了在不同取向的不同方向上的板材的变形,相对于施加的水平缩短,但在地壳中没有初始异质性。化石剪切区的特征在于,橄榄石CPO的不同取向和强度相对周围地幔,在大多数模拟中是各向同性的。由CPO产生的粘度的各向异性,其在整个模拟中仍然固定,由基于二阶粘性自我一致(SO-VPSC)模型的各向异性(Hill)产量函数参数描述。结果表明,地幔中粘性各向异性的横向变化会影响整个岩石圈中的应变分布。在35-55时,在其上面的外壳上剪切区和应变定位的重新激活。到化石剪切平面,最大为45度。应变定位的大小取决于(i)粘性各向异性的对比度,因此,在地幔中的CPO取向和强度的变化上,(ii)边界条件和(iii)地壳和地壳变形之间的反馈。对于强大的橄榄石CPO,当边界条件不妨碍与化石罩剪切区平行的剪切时,当周围的地幔时,它内的应变率高于在各向同性的各向同性或多种因子200中的倍数30。各向异性,其在化石剪切区上方的地壳中导致应变率高达10或高达100的因子100。地壳故障中的摩擦弱化会增加整个岩石柱中的应变定位。披肩和延性地壳之间的高强度对比,导致较低的机械耦合,在地幔和下地壳中具有强大的定位,但脆性上外壳较弱。地壳型材强度对比度的降低增强了偶联,并产生更均匀的菌株分布,深度,以及应变定位的时间依赖性演化,在达到稳态之前达到峰值并降低。地震各向异性,区域压力和局灶性机制数据的比较,如新的马德里和南方武器地震区,我们的模型预测,证实了在化石岩体剪切区域保存的橄榄石CPO可能是关键发展这种结构。

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