A Modified Model to Predict Liquid Loading in Horizontal Gas Wells

Author:

Luo Chengcheng1,Gao Lirong1,Liu Yonghui1,Xie Chuan1,Ye Changqing2,Yang Jianying3,Liu Zhongbo4

Affiliation:

1. Southwest Petroleum University State Key Laboratory of Oil & Gas Reservoir Geology and Exploitation, , Chengdu, Sichuan 610500 , China

2. PetroChina Southwest Oil & Gas Field Company Engineering Technology Research Institute, , Chengdu, Sichuan 610017 , China

3. Southwest Oil & Gas Field Company, PetroChina Sichuan Changning Natural Gas Development Co., Ltd., , Chengdu, Sichuan 610041 , China

4. PetroChina Huabei Oilfield Company Engineering Technology Research Institute, , Renqiu, Hebei 062552 , China

Abstract

Abstract Liquid loading is inevitable during mature gas-well production, leading the liquids to accumulate at the bottomhole and additional pressure loss. Accurately predicting the liquid-loading initiation is crucial to gas-well production optimization. Significant efforts have been made to model liquid-loading behavior. However, few mechanistic models are capable of easily and accurately tackling the complicated non-uniform liquid-film distribution in the slanted section of horizontal wells. Based on liquid-film inversion, this study developed a simple and comprehensive model to calculate liquid-loading initiation for horizontal gas wells. First, the models for film thickness and critical velocity in the vertical pipe are developed. Then, considering the effect of inclination and velocity difference in liquid-film thickness and liquid-holdup distribution between vertical and inclined pipes, the relationship in vertical and inclined pipes between liquid holdup, liquid-film thickness, and angle correction term is established based on the liquid-holdup correlation for horizontal and inclined pipes described in the empirical model developed by Beggs and Brill, so that the thickness of the film and the corresponding critical velocity at any inclination can be calculated. Finally, the new modified model has been evaluated against both experimental and field-measured data set. In comparison to the Luo et al.’s model, the proposed model has been proven to be simple, accurate, and well-performed in predicting the liquid-accumulation initiation in horizontal wells.

Funder

China National Petroleum Corporation

Publisher

ASME International

Subject

Geochemistry and Petrology,Mechanical Engineering,Energy Engineering and Power Technology,Fuel Technology,Renewable Energy, Sustainability and the Environment

Reference39 articles.

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4. A Novel Intermittent Gas Lifting and Monitoring System Toward Liquid Unloading for Deviated Wells in Mature Gas Field;Tong;ASME J. Energy Resour. Technol.,2017

5. Analysis and Modeling of Liquid Holdup in Low Liquid Loading Two-Phase Flow Using Computational Fluid Dynamics and Experimental Data;Ballesteros;ASME J. Energy Resour. Technol.,2021

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