Title :
Numerical solution of Green´s function of potential field of eccentric point source in axisymmetric inhomogeneous media
Author :
Chen, Xiaoguang ; Nie, Zaiping
Author_Institution :
Univ. of Electron. Sci. & Technol. of China, Chengdu, China
fDate :
5/1/1996 12:00:00 AM
Abstract :
An analysis has been performed for a borehole direct-current resistivity boundary value problem in axisymmetric inhomogeneous media. In order to solve the problem of eccentric excitative sources in actual electrical logging, the authors apply an efficient numerical mode matching (NMM) theory to present Green´s function of the potential field of an eccentric point source. The basic and higher order modes are described by applying numerical eigenmode expansion, and the local reflection and transmission matrices are used to match the boundary condition of potential field on every planar layer. Some typical examples are calculated and analyzed. The first example is concerned with a 16-in normal tool, which results are in excellent agreement with the data published previously in references. The second example about the micro laterolog-3 point electrodes is calculated to display a range of different eccentric effects. Some interesting and useful results are obtained
Keywords :
Green´s function methods; boundary-value problems; geophysical prospecting; geophysical techniques; mode matching; terrestrial electricity; Green´s function; axisymmetric inhomogeneous media; borehole method; direct-current resistivity boundary value problem; eccentric excitative source; eccentric point source; electrical well logging; geoelectric method; geophysical prospecting; geopotential; inverse problem; measurement technique; micro laterolog-3 point electrodes; numerical eigenmode expansion; numerical mode matching; numerical solution; potential field; terrestrial electricity; transmission matrices; Boundary conditions; Boundary value problems; Conductivity; Displays; Electrodes; Green´s function methods; Nonhomogeneous media; Performance analysis; Reflection; Transmission line matrix methods;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on