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Trishear kinematic modeling of extensional fault-propagation folding

机译:伸展断层传播折叠的三剪切运动学建模

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We present a new non-linear 2-D numerical trishear model that is capable of modeling both symmetrical and asymmetrical trishear zones and a strain prediction approach based on the velocity field within the trishear zone. A simple relationship exists between the shape factor (r) of the velocity field, the hanging wall apical angle, and footwall apical angle. The implication of this relationship is that when dealing with a real deformed state cross-section, one can measure the hanging wall and footwall apical angles to determine the r value to specify the velocity field within the trishear zone for either the forward modeling or restoration. The new trishear model can accurately reproduce the geometry of two experimental clay models and an extensional fault-propagation fold from the Gulf of Suez. Predicted strain is greatest directly above the fault tip and decreases with distance from the fault tip, as in the experimental models. Greater strain occurs in the hanging wall because of the greater velocity gradient there, whereas the footwall is much less intensely deformed. Consequently, secondary faulting and fracturing, if present, should be better developed along the fault tip line or in the hanging wall. The orientation of fractures or minor faults can be predicted from the strain ellipses calculated from the trishear velocity field.
机译:我们提出了一个新的非线性二维数值三剪切模型,该模型能够对对称和不对称的三剪切区域进行建模,并基于三剪切区域内的速度场进行应变预测。速度场的形状因子(r),吊壁顶角和底壁顶角之间存在简单的关系。这种关系的含义是,当处理实际变形状态的横截面时,可以测量悬壁和后壁的顶角以确定r值,以指定三剪切区内的速度场,以进行正向建模或恢复。新的三剪切模型可以精确地再现两个实验粘土模型的几何形状以及苏伊士湾的延伸断层传播褶皱。像在实验模型中一样,预测的应变在断层尖端正上方最大,并且随着距断层尖端的距离而减小。由于悬壁的速度梯度较大,因此在悬壁中会出现较大的应变,而下壁的变形则要小得多。因此,如果存在次生断层和裂缝,应沿断层尖端线或悬挂壁更好地发展。可以根据由三剪切速度场计算出的应变椭圆来预测裂缝或小断裂的方向。

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