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An adaptive method to reduce the effect of geometric approximation error on 3-D DC resistivity finite element numerical modeling

机译:减少几何逼近误差对3-D DC电阻率有限元数值建模的自适应方法

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The computational area is divided into disjoint elements before 3-D DC finite element numerical simulation. If these elements cannot completely approximate the geoelectric model to be simulated, some of them have geometric approximation errors. The elements with geometric approximation errors may decrease the accuracy of the simulation. If the effect of geometric approximation errors on simulation is reduced purely by minimizing geometric approximation errors, a large number of grid resources are wasted. As a result, the corresponding simulation complexity is limited. We propose an adaptive method to reduce the effect of geometric approximation errors on 3-D DC finite element resistivity numerical modeling. This method focuses on the effect of geometric approximation errors rather than geometric approximation errors themselves. For the elements with geometric approximation errors, only those with large negative effect on simulation are refined in the adaptive process. We simulate five geoelectric models to verify the feasibility of this method. The experiments show that despite many elements with geometric approximation errors, high accuracy numerical result can be still obtained, and the element number of simulation decreases significantly. With this method, many more complex geoelectric models can be simulated using the same amount of computer resources. (C) 2015 Elsevier B.V. All rights reserved.
机译:在进行3-D DC有限元数值模拟之前,将计算区域划分为不相交的元素。如果这些元素不能完全近似要模拟的地电模型,则其中一些会具有几何近似误差。具有几何近似误差的元素可能会降低模拟的准确性。如果仅通过最小化几何逼近误差来完全减小几何逼近误差对仿真的影响,则会浪费大量网格资源。结果,相应的仿真复杂度受到限制。我们提出了一种自适应方法来减少几何逼近误差对3-D DC有限元电阻率数值建模的影响。此方法着重于几何近似误差的影响,而不是几何近似误差本身。对于具有几何近似误差的元素,在自适应过程中仅对那些对模拟具有较大负面影响的元素进行细化。我们模拟了五个地电模型,以验证该方法的可行性。实验表明,尽管存在许多具有几何逼近误差的元素,但仍可以获得高精度的数值结果,并且仿真的元素数量大大减少。使用这种方法,可以使用相同数量的计算机资源来模拟许多更复杂的地电模型。 (C)2015 Elsevier B.V.保留所有权利。

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