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Dive into the research topics where Xiaohu Dong is active.

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Featured researches published by Xiaohu Dong.


Proceedings of the National Academy of Sciences of the United States of America | 2017

Wettability effect on nanoconfined water flow

Keliu Wu; Zhangxin Chen; Jing Li; Xiangfang Li; Jinze Xu; Xiaohu Dong

Significance The flow of water confined in nanopores is significantly different from that of bulk water. Moreover, understanding and controlling the flow of the confined water remains an open question, especially concerning whether the flow capacity of the confined water increases or not compared with that of bulk water. Here, combining a theoretical analysis and data from molecular dynamics simulations and experiments in the literature we develop a simple model for the flow of water confined in nanopores. We find that a contact angle and a nanopore dimension may substantially affect the confined water flow. We also quantitatively explain a controversy over an increase or decrease in flow capacity. Understanding and controlling the flow of water confined in nanopores has tremendous implications in theoretical studies and industrial applications. Here, we propose a simple model for the confined water flow based on the concept of effective slip, which is a linear sum of true slip, depending on a contact angle, and apparent slip, caused by a spatial variation of the confined water viscosity as a function of wettability as well as the nanopore dimension. Results from this model show that the flow capacity of confined water is 10−1∼107 times that calculated by the no-slip Hagen–Poiseuille equation for nanopores with various contact angles and dimensions, in agreement with the majority of 53 different study cases from the literature. This work further sheds light on a controversy over an increase or decrease in flow capacity from molecular dynamics simulations and experiments.


Polymers | 2018

Effect of Polymer Degradation on Polymer Flooding in Heterogeneous Reservoirs

Xiankang Xin; Gaoming Yu; Zhangxin Chen; Keliu Wu; Xiaohu Dong; Zhouyuan Zhu

Polymer degradation is critical for polymer flooding because it can significantly influence the viscosity of a polymer solution, which is a dominant property for polymer enhanced oil recovery (EOR). In this work, physical experiments and numerical simulations were both used to study partially hydrolyzed polyacrylamide (HPAM) degradation and its effect on polymer flooding in heterogeneous reservoirs. First, physical experiments were conducted to determine basic physicochemical properties of the polymer, including viscosity and degradation. Notably, a novel polymer dynamic degradation experiment was recommended in the evaluation process. Then, a new mathematical model was proposed and an in-house three-dimensional (3D) two-phase polymer flooding simulator was designed to examine both polymer static and dynamic degradation. The designed simulator was validated by comparison with the simulation results obtained from commercial software and the results from the polymer flooding experiments. This simulator further investigated and validated polymer degradation and its effect. The results of the physical experiments showed that the viscosity of a polymer solution increases with an increase in polymer concentration, demonstrating their underlying power law relationship. Moreover, the viscosity of a polymer solution with the same polymer concentration decreases with an increase in the shear rate, demonstrating shear thinning. Furthermore, the viscosity of a polymer solution decreased with an increase in time due to polymer degradation, exhibiting an exponential relationship. The first-order dynamic degradation rate constant of 0.0022 day−1 was greater than the first-order static degradation rate constant of 0.0017 day−1. According to the simulation results for the designed simulator, a 7.7% decrease in oil recovery, after a cumulative injection volume of 1.67 pore volume (PV) was observed between the first-order dynamic degradation rate constants of 0 and 0.1 day−1, which indicates that polymer degradation has a detrimental effect on polymer flooding efficiency.


Fuel | 2017

Flow behavior of gas confined in nanoporous shale at high pressure: Real gas effect

Keliu Wu; Zhangxin Chen; Xiangfang Li; Jinze Xu; Jing Li; Kun Wang; Heng Wang; Shuhua Wang; Xiaohu Dong


Fluid Phase Equilibria | 2016

Study of the confined behavior of hydrocarbons in organic nanopores by the potential theory

Xiaohu Dong; Huiqing Liu; Wei Guo; Jirui Hou; Zhangxin Chen; Keliu Wu


Angewandte Chemie | 2018

Manipulating the Flow of Nanoconfined Water by Temperature Stimulation

Keliu Wu; Zhangxin Chen; Jing Li; Jinze Xu; Kun Wang; Shuhua Wang; Xiaohu Dong; Zhouyuan Zhu; Yan Peng; Xinfeng Jia; Xiangfang Li


SPE Low Perm Symposium | 2016

Phase Behavior of Multicomponent Hydrocarbons in Organic Nanopores Under the Effects of Capillary Pressure and Adsorption Film

Xiaohu Dong; Huiqing Liu; Jirui Hou; Zhangxin Chen; Keliu Wu; Jie Zhan


SPE Improved Oil Recovery Conference | 2018

EOR Potential in the Post Steam Injection Era: Current and Future Trends

Xiaohu Dong; Huiqing Liu; Keliu Wu; Zhangxin Chen


Archive | 2018

Multiphase Fluid Flow and Reaction in Heterogeneous Porous Media for Enhanced Heavy Oil Production

Xinfeng Jia; Xiaohu Dong; Jinze Xu; Zhangxin Chen


SPE/AAPG/SEG Unconventional Resources Technology Conference | 2016

Effects of Nanoscale Pore Confinement on CO2 Displacement

Kai Zhang; Qingquan Liu; Shuhua Wang; Dong Feng; Keliu Wu; Xiaohu Dong; Shengnan Chen; Zhangxin Chen


SPE/AAPG/SEG Unconventional Resources Technology Conference | 2016

Effect of Nanoscale Pore Confinement on Multi-Component Phase Equilibrium

Kai Zhang; Xiaohu Dong; Jing Li; Keliu Wu; Peter G. Kusalik; Zhangxin Chen

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Keliu Wu

University of Calgary

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Jinze Xu

University of Calgary

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Huiqing Liu

China University of Petroleum

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Jing Li

China University of Petroleum

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Xiangfang Li

China University of Petroleum

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Jirui Hou

China University of Petroleum

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Zhouyuan Zhu

China University of Petroleum

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Kai Zhang

University of Calgary

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