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Study on the optimization of silicone copolymer synthesis and the evaluation of its thickening performance

机译:硅氧烷共聚物合成优化研究及其增厚性能评价

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Silicone polymer shows high performance for thickening supercritical carbon dioxide and has become a well-known target because it is inexpensive and environmentally friendly. In this study, siloxane polymer was synthesized by a copolymerization reaction. The synthesis conditions of the silicone polymer were optimized using a Box-Behnken design, and the yield from the process was considered as an evaluation criterion in the screening of the synthesis process. The thickening effect of the polymer was evaluated using an in-house-built ball viscometer with operation pressure not exceeding 30 MPa. The experiments clearly showed that temperature is the most crucial factor for the synthesis process. At higher preparation temperatures (>90 degrees C), the yield significantly decreased from the process. The stability of the yield was influenced by the change in the molar ratio and amount of the catalyst used in the preparation. The most optimal preparation parameter for the synthesis was at a temperature of 90 degrees C, with an aminopropyltriethoxysilane-to-methyl triethoxysilane molar ratio of 2:1, and 0.09 g of tetramethylammonium hydroxide as a catalyst. The test yield (84.51%) coordinated well with the predicted yield of 83.72%. Adding 3 wt% siloxane to pure carbon dioxide thickened it 5.7 times at 35 degrees C and 12 MPa. An enhanced yield trend was observed with increasing pressure and a temperature range of 35-55 degrees C. The application of CO2 fracturing technology can help to reduce the greenhouse effect and the environmental pollution caused by fluoropolymers as thickeners when silicone polymer is deployed as a thickener for CO2.
机译:硅氧烷聚合物表现出高度的增厚超临界二氧化碳的性能,已成为众所周知的目标,因为它是便宜和环保的。在该研究中,通过共聚反应合成硅氧烷聚合物。使用Box-Behnken设计进行了优化了硅氧烷聚合物的合成条件,并且将该方法的产率视为合成过程筛选中的评价标准。使用内置的球粘度计评价聚合物的增稠效果,其具有不超过30MPa的操作压力。实验清楚地表明,温度是合成过程中最关键的因素。在更高的制备温度(> 90℃)下,产量从过程显着降低。产率的稳定性受到制剂中使用的摩尔比的变化和催化剂的量的影响。合成的最佳制备参数在90℃的温度下,氨基丙基三乙氧基硅烷 - 甲基三甲氧基硅烷摩尔比为2:1和0.09g氢氧化氢氧化铵作为催化剂。试验产率(84.51%)与预测产率良好,均为83.72%。将3wt%硅氧烷加入纯二氧化碳中加厚5.7倍,在35℃和12MPa下加厚。随着压力的增加和35-55℃的温度范围观察到增强的产量趋势。当硅氧烷聚合物作为增稠剂展开时,CO2压裂技术的应用可以有助于降低由含氟聚合物作为增稠剂的温室效应和环境污染对于二氧化碳。

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  • 来源
    《RSC Advances 》 |2018年第16期| 共9页
  • 作者单位

    China Univ Petr East China Coll Petr Engn Qingdao 266580 Peoples R China;

    China Univ Petr East China Coll Petr Engn Qingdao 266580 Peoples R China;

    China Univ Petr East China Coll Petr Engn Qingdao 266580 Peoples R China;

    China Univ Petr East China Coll Petr Engn Qingdao 266580 Peoples R China;

    PetroChina Huabei Oilfield Co Renqiu 062500 Peoples R China;

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