Integrated turning-ray and reflection tomography for velocity model building in foothill areas

Author:

Jun Tian1,Gengxin Peng1,Jiao Junru2,Yan Grace (Yan)2,Zhu Xianhuai2

Affiliation:

1. Tarim Oilfield Company, PetroChina, Korla, China..

2. Forland Geophysical Services (FGS), Houston, Texas, USA..

Abstract

A special challenge for land seismic exploration is estimating velocities, in part due to complex near-surface structures, and in some instances because of rugose topography over foothills. We have developed an integrated turning-ray and reflection-tomographic method to face this challenge. First, turning-ray tomography is performed to derive a near-surface velocity-depth model. Then, we combine the near-surface model with the initial-subsurface model. Taking the combined model as starting model, we go through a reflection tomographic process to build the model for imaging. During reflection tomography, the near-surface model and subsurface models are jointly updated. Our method has been successfully applied to a 2D complex synthetic data example and a 3D field data example. The results demonstrate that our method derives a very decent model even when there is no reflection information available in a few hundred meters underneath the surface. Joint tomography can lead to geologic plausible models and produce subsurface images with high fidelity.

Publisher

Society of Exploration Geophysicists

Subject

Geology,Geophysics

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Super-long-offset experiment for velocity model building;SEG 1st Tarim Ultra-Deep Oil & Gas Exploration Technology Workshop, Korla, China, June 3-5, 2024;2024-08-22

2. Foothills seismic imaging for deep exploration in Junggar Basin — A case study;The Leading Edge;2023-10

3. Anisotropic full-azimuth velocity model building using joint reflection-refraction tomography;Second International Meeting for Applied Geoscience & Energy;2022-08-15

4. Novel strategies for complex foothills seismic imaging — Part 1: Mega-near-surface velocity estimation;Interpretation;2020-07-01

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