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Dive into the research topics where Hongbin Yang is active.

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Featured researches published by Hongbin Yang.


Journal of Dispersion Science and Technology | 2015

Mechanism and Influencing Factors on the Initial Particle Size and Swelling Capability of Viscoelastic Microspheres

Hongbin Yang; Wanli Kang; Shuren Liu; Baojun Bai; Jian Zhao; Bin Zhang

Viscoelastic microspheres are spherical particles with a three-dimensional network structure and have obvious swelling capability. The initial particle size and swelling ratio were introduced to study the effect of preparation conditions and external environmental factors systematically. The initial particle size could be controlled by adjusting the preparation conditions. The swelling capability was affected by both preparation condition and external environmental factor. The mechanisms of swelling are formation of hydrogen-bonded hydrolysis and diffusion induced by osmotic pressure. This work can provide some references for the particle size adjustment of viscoelastic microspheres in the profile control and flooding of heterogeneous reservoirs. GRAPHICAL ABSTRACT


RSC Advances | 2017

Stability, rheological property and oil-displacement mechanism of a dispersed low-elastic microsphere system for enhanced oil recovery

Hongbin Yang; Wanli Kang; Hairong Wu; Yang Yu; Zhou Zhu; Pengxiang Wang; Xiangfeng Zhang; Bauyrzhan Sarsenbekuly

A dispersed low-elastic microsphere system, consisting of low-viscoelastic microspheres and polymers, is a novel suspension system for enhanced oil recovery in heterogeneous reservoirs. In this study, experiments were performed to characterize the morphology, viscoelasticity, and swelling performance of the synthetic low-elastic microspheres. The stability and rheological property of the dispersed low-elastic microsphere system was investigated using a Turbiscan Lab Expert stability analyzer and an MCR301 rheometer. In the flow and displacement experiments, the parallel-sandpacks model and microscopic visualization models were used to study the oil-displacement effect and micromigration mechanism of the low-elastic microspheres. The experimental results showed that the storage modulus (G′) of the synthetic low-elastic microspheres was only 23.6 Pa and they also had a good swelling property in the simulated formation water. The parallel-sandpacks test and micromodel test indicated that the dispersed low-elastic microsphere system was a promising agent for both conformance control and improved oil recovery in heterogeneous reservoirs. Moreover, the low-elastic microspheres had good deformation and shear resistance performances. Five transport behaviors, such as deformable passing through, partition passing through, blockage, adhesion, and directly passing through, of low-elastic microspheres in a porous medium have been put forward. This study not only provides an understanding of the properties of the dispersed low-elastic microsphere system but also supplies theoretical support for the mechanism of improving oil recovery for the dispersed low-elastic microsphere system.


RSC Advances | 2017

pH-Responsive wormlike micelles based on microstructural transition in a C22-tailed cationic surfactant–aromatic dibasic acid system

Pengxiang Wang; Wanli Kang; Hongbin Yang; Xia Yin; Yilu Zhao; Zhou Zhu; Xiangfeng Zhang

pH-Responsive wormlike micelles based on microstructural transition, and formed by complexation of N-erucamidopropyl-N,N-dimethylamine (UC22AMPM) and potassium phthalic acid (PPA) at a molar ratio of 2 : 1, were developed and compared with CTAB/PPA at the same molar ratio. Phase behavior, viscoelasticity, and microstructural transitions of solutions were investigated by observing their appearance, rheological characteristics, dynamic light scattering, and 1H NMR measurements. It was found that the phase behavior of UC22AMPM/PPA solutions undergoes transitions from transparent viscoelastic fluid to phase separation with white floaters upon increasing pH. By increasing pH from 2.01 to 6.19, the viscosity of wormlike micelles in the transparent solutions continuously increased and reached ∼1.4 × 106 mPa s at pH 6.19. As pH was adjusted to 7.32, the opalescent solution showed a water-like flowing behaviour and the η0 rapidly declined to ∼1.7 mPa s. The viscosity of the CTAB/PPA solutions had a maximum at pH 2.98 and then decreased with increasing pH. This radical variation in rheological behavior is attributed to the pH dependent hydrophobicity of PPA and ultra-long hydrophobic chain of UC22AMPM. Additionally, dramatic viscosity changes of about 6 magnitudes can be triggered by varying pH without any deterioration for the UC22AMPM/PPA system.


Colloid and Polymer Science | 2017

Study on salt thickening mechanism of the amphiphilic polymer with betaine zwitterionic group by β-cyclodextrin inclusion method

Zhou Zhu; Wanli Kang; Hongbin Yang; Pengxiang Wang; Xiangfeng Zhang; Xia Yin; Zeeshan Ali Lashari

A method based on host-guest inclusion system was used to investigate the salt thickening mechanism of poly [acrylamide-co-N, N′-dimethyl (methylmethacryloyl ethyl) ammonium propane sulfonate-co-cetyl dimethyl allyl ammonium chloride] (PADC). The salt thickening behavior of PADC solution was studied by rotational viscometer, and its average hydrodynamic diameter (Dh) was characterized by dynamic light scattering (DLS). The formed host (β-cyclodextrin)-guest (hydrophobic groups of PADC) inclusion system was confirmed by scanning electron microscopy (SEM). A method of characterizing the hydrophobic association strength and determining the hydrophobic association contribution rate (HACR) was introduced by the inclusion of β-cyclodextrin (β-CD). The results showed that the apparent viscosity and the Dh of PADC solution increased with the increase of salt concentration. In addition, the types of salt also affected the thickening property of PADC solution. Moreover, the results of HACR indicated that the hydrophobic association strength of PADC solution was enhanced in the presence of salts, which was confirmed by fluorescent method. Thus, it could be concluded that the salt thickening of PADC solution was caused by the destruction of ionic bonds in betaine monomer and the enhancement of hydrophobic association strength.


RSC Advances | 2018

Synthesis and plugging behavior of fluorescent polymer microspheres as a kind of conformance control agent in reservoirs

Hongbin Yang; Leilei Hu; Chao Chen; Yongbo Gao; Xuechen Tang; Xia Yin; Wanli Kang

The fluorescent polymer microsphere is a newly developed chemical agent for conformance control in reservoirs. In this paper, one kind of fluorescent polymer microspheres P(AM-BA-RhB) was synthesized via the inverse suspension polymerization method with Rhodamine B as a fluorescence functional monomer. Laboratory experiments were performed to characterize the morphology, fluorescent property, swelling property and plugging behavior of fluorescent polymer microspheres. The experimental results showed that the polymer microspheres P(AM-BA-RhB) displayed stable fluorescence performance in solutions containing metal ions at pH values between 3.0 and 10.0. The swelling property was not dramatically affected by the Rhodamine B embedded in the polymer microspheres by grafting. Both a visual micromodel test and sand-pack tubes experiment demonstrated that the fluorescent polymer microspheres could pass directly or by deformation through porous media and get into the in-depth formation. The injection pressure showed the phenomenon of “Wave-type Variation”. Three plugging behaviors such as piston plugging, protruding plugging and fingering plugging were put forward. The introduction of fluorescent polymer microspheres could provide one method to research the conformance control and EOR mechanism of polymer microspheres in the reservoirs.


Petroleum Science and Technology | 2016

Demulsifier performance at low temperature in a low permeability reservoir

Beatrice Tubuke Mwakasala; Wanli Kang; Xia Yin; Jie Geng; Yilu Zhao; Hongbin Yang

ABSTRACT The crude oil in Longdong area is produced in the form of emulsion containing associated oil and water, which needs to be separated before dispatch to end user. Chemical demulsification under high temperature is the most widely used technology to break the emulsions. In this study a rheological method was used to determine the curve of viscosity-temperature and lower limit of temperature was determined. A series of experiments on low-temperature commercial demulsifies were implemented for studying demulsification performance by bottle test method. Mechanism of low-temperature demulsifier was studied by using spinning drop interfacial tensiometer to determine interfacial tension between the crude oil and demulsifier solution by considering the concentration. Turbiscan stability analyzer was used to study the effect of water content, temperature, and demulsifier concentration on emulsion stability. The corresponding relationship between interfacial tension and demulsification was verified through the study of low-temperature demulsifier effect on interfacial tension. Efficient low-temperature demulsifiers AR102, AR901, PR929, and PRC06 were selected. PRC06 was chosen to be the best at 40°C, and when the optimal concentration was 200 mg/L, dehydration rate was 99.51%.


Archive | 2019

Effect of Hydrophobic Association and Polymer Concentration on Viscoelasticity of Amphiphilic Polymer

Zhou Zhu; Wanli Kang; Hongbin Yang

The viscoelasticity of the polymer for flooding affects the oil displacement efficiency, and the polymer with viscoelastic properties can increase the oil recovery. In this study, the effect of hydrophobic association on the viscoelasticity of the amphiphilic polymer was investigated by rheometer. The critical association concentration (CAC) of the amphiphilic polymer was determined by the relationship curve between zero shear viscosity and polymer concentration, which is about 800 mg/L. With the increasing of amphiphilic polymer concentration, its viscoelasticity exhibits different characteristics and can be converted from a viscous fluid to an elastomeric fluid. The influence mechanism of hydrophobic association on viscoelasticity of amphiphilic polymer was studied by cohesive energy and scanning electron microscope (SEM). The cohesive energy of the amphiphilic polymer increased from 1.26 × 10−4 Pa to 9.25 × 10−2 Pa when the amphiphilic polymer concentration ranged from 500 to 1200 mg/L. Larger supra-molecular aggregates and stronger network structures can be formed when the amphiphilic polymer concentration is higher than the CAC. The results show that the viscoelasticity of amphiphilic polymer is related to the concentration of amphiphilic polymer and the association strength. This study has certain guiding significance for the application of amphiphilic polymer in oil and gas field development.


Petroleum Science and Technology | 2018

Effect of different molecular weight amphiphilic polymers on emulsifying behavior

X. Zhang; Hongbin Yang; Zhou Zhu; Pengxiang Wang; Xia Yin; Changxiao Cao; Shujun Guo; Wanli Kang

Abstract Amphiphilic polymers applied in oil fields are polymer mixtures with different molecular weight. Stability of O/W emulsion prepared by amphiphilic polymers with different molecular weight was studied by stability analyzer. The difference in stability was clarified according to the external phase and interfacial properties. Results showed that PI(micro-molecular polymer) formed a tighter network structure in solution which exhibit higher viscoelasticity and more resistant to shear; and was more favorable to the emulsion stability than PII(macro-molecular polymer) due to higher surface activity. This work provides references for the molecular weight distribution optimization of amphiphilic polymer.


Journal of Dispersion Science and Technology | 2018

Gel kinetic characteristics and creep behavior of polymer microspheres based on bulk gel

Hongbin Yang; Wanli Kang; Xuechen Tang; Yongbo Gao; Zhou Zhu; Pengxiang Wang; X. Zhang

Abstract Deep profile control technology of polymer microspheres has become a widely used new method in improving oil recovery in heterogeneous reservoirs. The viscoelastic property of polymer microspheres plays an important role in the deformable migration behavior. In this study, a new method of measuring the viscoelastic properties of polymer microspheres based on bulk gel was proposed. Using mechanical rheometer and microrheometer, the effects on the storage modulus and gel performance were systematically researched. The creep-recovery test was applied to characterize the creep behavior of different polymer microsphere bulk gel. The results show that the storage modulus of polymer microspheres could be controlled by adjusting the agent concentration in the synthetic reaction. Moreover, the kinetic equation of gel time of polymer microspheres bulk gel and reaction temperature was established: ln(GT) = 3289.18(1/T)-9.33. Elastic strain index was put forward as a new parameter to characterize the viscoelasticity of polymer microsphere in creep-recovery test. Finally, relationship between elastic strain index and storage modulus was constructed and a classification criterion of polymer microspheres with different viscoelasticity was proposed based on a large number of creep-recovery results. The research could provide a good theoretical guidance and technical support for the understanding of viscoelasticity of polymer microspheres. Graphical Abstract


Powder Technology | 2017

A new approach to evaluate the particle growth and sedimentation of dispersed polymer microsphere profile control system based on multiple light scattering

Hongbin Yang; Wanli Kang; Yang Yu; Xia Yin; Pengxiang Wang; Xiangfeng Zhang

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Wanli Kang

China University of Petroleum

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Xia Yin

China University of Petroleum

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Pengxiang Wang

China University of Petroleum

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Zhou Zhu

China University of Petroleum

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X. Zhang

China University of Petroleum

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Yilu Zhao

China University of Petroleum

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Xuechen Tang

China University of Petroleum

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Baojun Bai

Missouri University of Science and Technology

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Xiangfeng Zhang

China University of Petroleum

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