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A new rock physics model integrating diagenesis and pore shape and its application |
Bo HOU, Hong-Quan KANG, Tao CHENG |
CNOOC Research Institute Co.,Ltd.,Beijing 100028,China |
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Abstract Shear wave velocity plays an important role in seismic modeling,AVO analysis and fluid identification.However,realistic well logging data lack shear wave information,so shear wave velocity prediction becomes concentrated on rock physics research.Integrating K-T model and Pride model,the authors propose in this papera new rock physics model which is used to calculate dry rock moduli.The new rock physics model proposed in this paper integrates effects of pore shape and diagenesis to bulk modulus and shear modulus of dry rock,so it is more rational and its accuracy is high.At the same time,in combination with Gassmann theory,P-wave velocity and S-wave velocity model of fluid saturated rock is established.The model is applied to S-wave velocity predicting of measured data in lab and realistic well logging data.The predicted results demonstrate that S-wave velocity prediction based on the new rock physics model proposed in this paper is effective.
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Received: 16 May 2018
Published: 20 February 2019
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弹性参数 | 使用值 | 石英体积模量 | 38 GPa | 石英剪切模量 | 44 GPa | 泥质体积模量 | 21 GPa | 泥质剪切模量 | 7 GPa | 水体积模量 | 2.29 GPa | 石英密度 | 2.65 g/cm3 | 泥质密度 | 2.58 g/cm3 | 水密度 | 1.0 g/cm3 |
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Elastic parameters of various minerals[32]
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Comparison of shear wave velocities predicted by two different models applied to laboratory measured data
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Input data of shear wave velocity prediction from w-well
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Comparison of shear wave velocities predicted by two different models applied to w-well a—solid line represents shear wave velocities from well log,dashed line represents shear wave velocities predicted by model this paper proposed;b—solid line represents shear wave velocities from well log,dashed line represents shear wave velocities predicted by Xu-White model
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