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2.5-D forward numerical simulation of ip method in time domain under the condition of undulate terrain

机译:地形起伏条件下时域IP方法的2.5维正演模拟

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The 2.5 -D forward modeling of polarizability can be transformed into the numerical simulation of "equivalent apparent resistivity" by cole -cole model. The underground space is divided by parallelogram in order to simulate the terrain. Both of the finite element method and the boundaty element method are used in the 2.5 -D forward modeling of resistivity and polarizability in ridge and valley terrain in order to improve the accuracy of simulation. Compared with the results without terrain, the results here show that there is a greater impact on the numerical simulation of the resistivity, and the apparent resistivity quasi sectional drawings have a false anomaly in the place of the terrain undulated, while the curve shape of the apparent polarizability change not so much, only the amplitude and range of the curve changed above the anomaly. The more drastic changes in terrain, the greater the apparent resistivity and the apparent polarizability change.
机译:极化率的2.5 -D正向建模可以通过cole -cole模型转换为“等效视电阻率”的数值模拟。地下空间被平行四边形划分,以模拟地形。 2.5维正向建模中,在山脊和山谷地形中的电阻率和极化率都使用了有限元法和边界元法,以提高模拟的准确性。与没有地形的结果相比,这里的结果表明,对电阻率的数值模拟影响更大,表观电阻率的准剖面图在地形起伏的地方具有错误的异常,而地形的曲线形状表观极化率变化不大,只有曲线的幅度和范围在异常之上变化。地形变化越剧烈,视电阻率和极化率变化越大。

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