Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System

Developing an efficient fracturing fluid system is an enduring hot topic in the petrochemical industries, especially regarding the exploitation of limited oil. Biopolymers, especially polysaccharides (e.g., konjac gum, guar gum), are widely applied as fracturing fluids in fracturing as a result of t...

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Main Authors: Guoyan Ma, Le Wang, Chao Hao, Chunbao Du, Hongfei Ma
Format: Article
Language:English
Published: MDPI AG 2022-11-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/27/22/7776
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author Guoyan Ma
Le Wang
Chao Hao
Chunbao Du
Hongfei Ma
author_facet Guoyan Ma
Le Wang
Chao Hao
Chunbao Du
Hongfei Ma
author_sort Guoyan Ma
collection DOAJ
description Developing an efficient fracturing fluid system is an enduring hot topic in the petrochemical industries, especially regarding the exploitation of limited oil. Biopolymers, especially polysaccharides (e.g., konjac gum, guar gum), are widely applied as fracturing fluids in fracturing as a result of their advantages. Herein, we propose an easy method of modifying konjac gum (KGM) using isopropanol, sodium hydroxide, and chloroacetic acid to obtain modified konjac glum (MKGM). The MKGM and KGM gels were also obtained by using the self-prepared organic titanium high-temperature stabilizer and organic borate cross-linker. The prepared MKGM was characterized by multiscale techniques, including attenuated total reflection Fourier transform infrared (ATR-FTIR), X-ray diffraction (XRD), thermal gravimetric analysis (TGA), differential scanning calorimetry (DSC), and rheology properties. The ATR-FTIR results showed that the etherification modification reaction occurred as designed. The XRD results showed that the regularity of KGM was destroyed after modification. The TGA and DSC results showed that the thermal stability improved. Rheology measurements illustrated that the temperature and shear resistance of MKGM were better than those of KGM. The MKGM gel could be applied in fracturing fluid systems at a lower frequency through viscoelastic measurements.
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spelling doaj.art-0a5f620fe63d48bcbf25cc2bb1c548022023-11-24T09:20:58ZengMDPI AGMolecules1420-30492022-11-012722777610.3390/molecules27227776Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid SystemGuoyan Ma0Le Wang1Chao Hao2Chunbao Du3Hongfei Ma4College of Chemistry and Chemical Engineering, Xi’an Shiyou University, Xi’an 710065, ChinaCollege of Chemistry and Chemical Engineering, Xi’an Shiyou University, Xi’an 710065, ChinaCCDC Drilling & Production Engineering Technology Research Institute, Xi’an 710018, ChinaCollege of Chemistry and Chemical Engineering, Xi’an Shiyou University, Xi’an 710065, ChinaDepartment of Chemical Engineering, Norwegian University of Science and Technology, Sem Sælands vei 4, 7034 Trondheim, NorwayDeveloping an efficient fracturing fluid system is an enduring hot topic in the petrochemical industries, especially regarding the exploitation of limited oil. Biopolymers, especially polysaccharides (e.g., konjac gum, guar gum), are widely applied as fracturing fluids in fracturing as a result of their advantages. Herein, we propose an easy method of modifying konjac gum (KGM) using isopropanol, sodium hydroxide, and chloroacetic acid to obtain modified konjac glum (MKGM). The MKGM and KGM gels were also obtained by using the self-prepared organic titanium high-temperature stabilizer and organic borate cross-linker. The prepared MKGM was characterized by multiscale techniques, including attenuated total reflection Fourier transform infrared (ATR-FTIR), X-ray diffraction (XRD), thermal gravimetric analysis (TGA), differential scanning calorimetry (DSC), and rheology properties. The ATR-FTIR results showed that the etherification modification reaction occurred as designed. The XRD results showed that the regularity of KGM was destroyed after modification. The TGA and DSC results showed that the thermal stability improved. Rheology measurements illustrated that the temperature and shear resistance of MKGM were better than those of KGM. The MKGM gel could be applied in fracturing fluid systems at a lower frequency through viscoelastic measurements.https://www.mdpi.com/1420-3049/27/22/7776biopolymersmodified konjac glumthermal stabilityshear resistanceviscoelastic property
spellingShingle Guoyan Ma
Le Wang
Chao Hao
Chunbao Du
Hongfei Ma
Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System
Molecules
biopolymers
modified konjac glum
thermal stability
shear resistance
viscoelastic property
title Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System
title_full Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System
title_fullStr Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System
title_full_unstemmed Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System
title_short Thermal and Rheological Performances Evaluation of a Modified Biopolymer for Fracturing Fluid System
title_sort thermal and rheological performances evaluation of a modified biopolymer for fracturing fluid system
topic biopolymers
modified konjac glum
thermal stability
shear resistance
viscoelastic property
url https://www.mdpi.com/1420-3049/27/22/7776
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AT lewang thermalandrheologicalperformancesevaluationofamodifiedbiopolymerforfracturingfluidsystem
AT chaohao thermalandrheologicalperformancesevaluationofamodifiedbiopolymerforfracturingfluidsystem
AT chunbaodu thermalandrheologicalperformancesevaluationofamodifiedbiopolymerforfracturingfluidsystem
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