摘要
To effectively minimize the electromagnetic field response in the total field solution, we propose a numerical modeling method for the two-dimensional (2D) time- domain transient electromagnetic secondary field of the line source based on the DuFort- Frankel finite-difference method. In the proposed method, we included the treatment of the earth-air boundary conductivity, calculated the normalized partial derivative of the induced electromotive force (Emf), and determined the forward time step. By extending upward the earth-air interface to the air grid nodes and the zero-value boundary conditions, not only we have a method that is more efficient but also simpler than the total field solution. We computed and analyzed the homogeneous half-space model and the fiat layered model with high precision--the maximum relative error is less than 0.01% between our method and the analytical method--and the solution speed is roughly three times faster than the total-field solution. Lastly, we used the model of a thin body embedded in a homogeneous half-space at different delay times to depict the downward and upward spreading characteristics of the induced eddy current, and the physical interaction processes between the electromagnetic field and the underground low-resistivity body.
本文在Oristaglio等(1984)和Adhidjaja等(1985)工作基础上,给出线源二维时间域瞬变电磁二次场的DuFort-Frankel有限差分数值解,有效避免了在总场求解法中场源附近的奇异问题,并对地-空边界电导率的处理、归一化感应电动势偏导数的计算、推进时间步的确定,提出了改进方法;吸取前人成就中二次场地-空边界向上延拓和零值边界处理技术,从而简化了计算方法;通过对均匀大地、水平层状大地模型的计算,二次场求解法与解析法的最大相对误差小于0.01%,计算速度比总场求解法提高了约3倍;模拟计算不同时刻瞬变电磁场在地下的分布形态,描绘出感应涡流向下向外的传播特征,以及与地下异常体相互作用的物理过程。
基金
supported by the National High Technology Research and Development Program (863 Program)(2009AA06Z108)