Pressure Analysis for Volume Fracturing Vertical Well considering Low-Velocity Non-Darcy Flow and Stress Sensitivity

Joint Authors

Wu, Zhongwei
Cui, Chuanzhi
Trivedi, Japan
Ai, Ning
Tang, Wenhao

Source

Geofluids

Issue

Vol. 2019, Issue 2019 (31 Dec. 2019), pp.1-10, 10 p.

Publisher

Hindawi Publishing Corporation

Publication Date

2019-11-20

Country of Publication

Egypt

No. of Pages

10

Main Subjects

Physics

Abstract EN

In general, there is stress sensitivity damage in tight reservoirs and fractures.

Furthermore, the flow in tight reservoirs is the low-velocity non-Darcy flow.

Currently, few researches of pressure analysis for volume fracturing vertical well are conducted simultaneously considering the low-velocity non-Darcy flow and stress sensitivity.

In the paper, a novel flow model of a volume fractured vertical well is proposed and solved numerically.

Firstly, the threshold pressure gradient, permeability modulus, and experimental data are, respectively, utilized to characterize the low-velocity non-Darcy flow, matrix stress sensitivity, and fracture stress sensitivity.

Then, a two-region composite reservoir is established to simulate the vertical well with volume fracturing.

After that, the logarithm meshing method is used to discrete the composite reservoir, and the flow model is solved by the method of finite difference and IMPES.

Finally, the model verification is conducted, and the effects of the low-velocity non-Darcy flow and stress sensitivity on the pressure and pressure derivative are analyzed.

The six flow regimes are identified by the dimensionless pressure and pressure derivative curve.

They are, respectively, the fracture linear flow regime, early transition flow regime, radial flow regime, crossflow regime, advanced transition flow regime, and boundary controlling flow regime.

The stress sensitivity and threshold pressure gradient have a great effect on the dimensionless pressure and pressure derivative.

With the increase of reservoir stress sensitivity, the pressure and pressure derivative are upward at the advanced transition flow and boundary controlling regimes.

However, the pressure and pressure derivative are downward at the advanced transition flow and boundary controlling regimes when the fracture sensitivity increases.

An increase in the threshold pressure gradient results in a high dimensionless pressure and pressure derivative.

This work reveals the effects of low-velocity non-Darcy flow and stress sensitivity on pressure and provides a more accurate reference for reservoir engineers in pressure analysis when developing a tight reservoir by using the volume fracturing vertical well.

American Psychological Association (APA)

Wu, Zhongwei& Cui, Chuanzhi& Trivedi, Japan& Ai, Ning& Tang, Wenhao. 2019. Pressure Analysis for Volume Fracturing Vertical Well considering Low-Velocity Non-Darcy Flow and Stress Sensitivity. Geofluids،Vol. 2019, no. 2019, pp.1-10.
https://search.emarefa.net/detail/BIM-1152708

Modern Language Association (MLA)

Wu, Zhongwei…[et al.]. Pressure Analysis for Volume Fracturing Vertical Well considering Low-Velocity Non-Darcy Flow and Stress Sensitivity. Geofluids No. 2019 (2019), pp.1-10.
https://search.emarefa.net/detail/BIM-1152708

American Medical Association (AMA)

Wu, Zhongwei& Cui, Chuanzhi& Trivedi, Japan& Ai, Ning& Tang, Wenhao. Pressure Analysis for Volume Fracturing Vertical Well considering Low-Velocity Non-Darcy Flow and Stress Sensitivity. Geofluids. 2019. Vol. 2019, no. 2019, pp.1-10.
https://search.emarefa.net/detail/BIM-1152708

Data Type

Journal Articles

Language

English

Notes

Includes bibliographical references

Record ID

BIM-1152708