Title :
Numerical Modeling of Eccentered LWD Borehole Sensors in Dipping and Fully Anisotropic Earth Formations
Author :
Lee, Hwa Ok ; Teixeira, Fernando L. ; Martin, Luis E San ; Bittar, Michael S.
Author_Institution :
Dept. of Electr. & Comput. Eng., Ohio State Univ., Columbus, OH, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
Logging-while-drilling (LWD) borehole sensors are used to provide real-time resistivity data of adjacent earth formations for hydrocarbon exploration. This allows for a proactive adjustment of the dipping angle and azimuth direction of the drill and, hence, geosteering capabilities. The analysis of borehole eccentricity effects on LWD sensor response in full 3 3 anisotropic earth formations is important for correct data interpretation in deviated or horizontal wells. In this paper, we present a cylindrical-grid finite-difference time-domain model to tackle this problem. The grid is aligned to the sensor axis to avoid staircasing error in the sensor geometry but, in general, misaligned to the (eccentered) borehole/formation interface. A locally conformal discretization is used to compute effective conductivity tensors of partially-filled grid cells at those interfaces, involving an isotropic medium (borehole) and a full 3 3 anisotropic medium in general (dipped earth formation). The numerical model is used to compute the response of eccentered LWD sensors in layered earth formations with anisotropic dipping beds.
Keywords :
drilling (geotechnical); finite difference time-domain analysis; hydrocarbon reservoirs; numerical analysis; well logging; anisotropic dipping beds; azimuth direction; borehole eccentricity effects; conformal discretization; cylindrical-grid finite-difference time-domain model; data interpretation; deviated wells; dipping angle; dipping earth formations; eccentered LWD borehole sensors; fully anisotropic earth formations; geosteering capabilities; horizontal wells; hydrocarbon exploration; isotropic medium; layered earth formations; logging-while-drilling; numerical modeling; real-time resistivity data; sensor axis; staircasing error; Conductivity; Earth; Finite difference methods; Geometry; Sensors; Tensile stress; Time domain analysis; Anisotropic media; finite-difference time-domain (FDTD) methods; geophysical exploration; well logging;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2011.2162736