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Stability and rheological properties of HPAM/nanosilica suspensions: Impact of salinity

机译:HPAM /纳米磷酸悬浮液的稳定性和流变性质:盐度的影响

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The stability and rheological properties of HAPM/nanosilica suspensions in different saline environments including deionized water, NaCl brine and simulated formation water were investigated. The stability results indicated that the presence of cations in brine, especially divalent cations Mg2+ and Ca2+, was the main cause of instability of HPAM/nanosilica suspensions. The stability of suspensions decreased with the increase of nanosilica concentration. In deionized water, the HPAM/nanosilica suspensions exhibited a greater viscosity than HPAM solution at low shear rates, while the opposite trend was evident at higher shear rates. Moreover, the temperature resistance and viscoelasticity of the suspensions were poorer. This was attributed to the formation of hydrogen bonding between nanosilica and HPAM in deionized water, as evinced by infrared spectroscopy. In NaCl brine and simulated formation water, the viscosity of HPAM solution increased and the viscoelasticity was enhanced by the addition of nanosilica. Infrared spectroscopy experiments showed that the hydrogen bonding between nanosilica and HPAM in brine was weaker than that in deionized water. The increase in viscosity of HPAM solution was attributed to the electrostatic interaction between cations in brine and nanosilica, which weakened the shielding effect of cations on the HPAM molecular, furthermore, the polymer chains could be adsorbed on the surface of the nanosilica to form a network structure of cationic bridges that increased the rheological properties of HPAM solution.
机译:研究了包括去离子水,NaCl盐水和模拟形成水的不同盐水环境中Hapm /纳米硅藻悬浮液的稳定性和流变性能。稳定性结果表明盐水中存在阳离子,尤其是二价阳离子Mg2 +和Ca2 +,是HPAM /纳米硅悬浮液不稳定性的主要原因。随着纳米硅浓度的增加,悬浮液的稳定性降低。在去离子水中,HPAM /纳米硅藻悬浮液在低剪切速率下表现出比HPAM溶液更大的粘度,而相反的趋势在更高的剪切速率下显而易见。此外,悬浮液的耐温性和粘弹性较差。这归因于在去离子水中形成纳米硅和HPAM之间的氢键,如红外光谱。在NaCl盐水和模拟地层水中,通过加入纳米碱基溶液的粘度增加并且粘弹性增强。红外光谱实验表明,盐水中纳米菌和HPAM之间的氢键合比去离子水中的氢粘合。 HPAM溶液粘度的增加归因于盐水和纳米磷酸酯之间的静电相互作用,其削弱了阳离子对HPAM分子上的屏蔽效应,此外,聚合物链可以吸附在纳米硅的表面上以形成网络阳离子桥梁的结构增加了HPAM溶液的流变性能。

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