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Amphoteric hyperbranched polymers with multistimuli-responsive behavior in the application of polymer flooding

机译:具有多体响应行为的两性超支化聚合物在应用聚合物洪水中的应用

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摘要

Amphoteric hyperbranched polymers (AMHPMs) that respond to shear rate, temperature, salt, and pH were synthesized using a water free radical polymerization technique. The M-w of this novel polymer is much lower than that of the conventional linear hydrophobically associative polymer (HAPAM). The hydrodynamic size could be effectively tuned by adjusting the terminal functional groups of the hyperbranched monomer. In the semidilute regime, multiple hydrodynamic subchains and effective intermolecular associations between neighboring branches of polymeric chains cooperatively govern the comprehensive characteristics of AMHPMs. Rheological measurements revealed the pseudodilatant behavior in the lower shear rate region, followed by the pseudoplastic behavior of AMHPMs. Moreover, the elasticity of AMHPM-2 played a dominant role and no G(c) is observed within the experimental frequency. Static experiments convincingly proved that the multiple subchains provided AMHPMs with a wider temperature-, salt- and pH-responsive region in comparison to that for HAPAM. Most importantly, the reversible hydrodynamic characteristic scale due to the mutual transformation from association to disassociation, and the excellent anti-mechanical degradation for AMHPMs in the simulative porous medium, further verified that this unique type of hyperbranched polymer is promising for the application of polymer flooding for enhanced oil recovery (EOR).
机译:使用水自由基聚合技术合成响应剪切速率,温度,盐和pH的两性超支化聚合物(AMHPM)。该新型聚合物的M-W远低于常规线性疏水性缔效聚合物(HAPAM)的M-W。通过调节超支体单体的末端官能团可以有效地调整流体动力学尺寸。在半径状态下,聚合物链的邻近分支之间的多个流体动力学亚丘和有效的分子间联合协同控制AMHPM的综合特征。流变测量显示较低剪切速率区域中的假大炎行为,其次是AMHPM的假塑性行为。此外,AMHPM-2的弹性在实验频率内观察到显性作用,并且在实验频率内没有观察到G(C)。静态实验令人信服地证明,与HAPAM相比,多种亚基提供了具有更宽温度,盐和pH响应区域的AMHPM。最重要的是,可逆的流体动力学特征尺度由于与脱差相的互换相互转化,以及模拟多孔介质中的AMHPM的优异的抗机械降解,进一步验证了这种独特类型的超支化聚合物是对聚合物洪水的应用很有希望增强储油(EOR)。

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  • 来源
    《RSC Advances》 |2015年第107期|共12页
  • 作者单位

    Southwest Petr Univ State Key Lab Oil &

    Gas Reservoir Geol &

    Exploita Chengdu 610500 Sichuan Peoples R China;

    Southwest Petr Univ State Key Lab Oil &

    Gas Reservoir Geol &

    Exploita Chengdu 610500 Sichuan Peoples R China;

    PetroChina Southwest Oil &

    GasField Co Ltd Engn Technol Res Inst Guanghan 618300 Peoples R China;

    Southwest Petr Univ State Key Lab Oil &

    Gas Reservoir Geol &

    Exploita Chengdu 610500 Sichuan Peoples R China;

    PetroChina Southwest Oil &

    GasField Co Ltd Northwest Sichuan Gas Purificat Plant Jiangyou 621700 Peoples R China;

    Southwest Petr Univ State Key Lab Oil &

    Gas Reservoir Geol &

    Exploita Chengdu 610500 Sichuan Peoples R China;

    Southwest Petr Univ Petr Engn Inst Chengdu 610500 Sichuan Peoples R China;

    CNOOC Co Ltd Shanghai Branch Shanghai 20030 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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