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EFFECT OF REACTION CONDITIONS ON THE DISTRIBUTION OF HYDROXYL FUNCTIONAL GROUPS IN HEA-BMA COPOLYMER

机译:反应条件对HEA-BMA共聚物中羟基官能团分布的影响

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Non-functional monomer feedstocks containing alkyl meth(acrylate) components such as butyl acrylate (BA) and butyl methacrylate (BMA) have been replaced or augmented with functional monomers such as 2-hydroxyethyl methacrylate (HEMA) and 2-hydroxyethyl acrylate (HEA) to produce reactive polymer chains of lowered molecular weight (MW) for application in solvent-borne automotive coatings. The polar and functional reactants affects the radical copolymerization kinetics and introduces solvent dependencies. a series of BMA/HEA experiments have been performed at 138 ℃ to determine the influence of these changing kinetic parameters under starved-feed semi-batch operating conditions. A comparison with BMA/BA copolymerization shows that the influence of hydrogen bonding is small, with the semi-batch system well controlled to HEA contents of up to 50 wt%. Thus, the experiments are well represented by a comprehensive generalized copolymerization model formulated in PREDICI® that considers relevant methacrylate and acrylate side-reactions and uses the chain growth parameters measured in previous kinetic investigations. As well as controlling overall copolymer composition, understanding the distribution of the hydroxyl functional groups among the polymer chains is of importance, as non-functionalized lower-MW chains will not crosslink into the polymer network formed upon application of the coating. A series of BMA/HEA copolymers containing 6.25,12.5 and 25 wt% HEA were synthesized with weight-average polymer MWs varied between 3000-10000 Da through manipulation of reaction temperature (138 and 160 ℃) and initiator loading (2 to 4 mol% relative to monomer) during starved-feed semi-batch operation; at the higher temperature the influence of BMA depropagation becomes more apparent. The amount of non-functional material in the samples is experimentally determined by solvent extraction after forming a crosslinked film, and MWs and HEA contents of the extractable fractions are measured. These experimental results will be compared with predictions from the PREDICI® model as well as a kinetic Monte Carlo representation that calculates how the reactive groups are distributed as a function of polymer chain-length.
机译:含甲基(丙烯酸)烷基酯组分(例如丙烯酸丁酯(BA)和甲基丙烯酸丁酯(BMA))的非官能单体原料已被官能单体(例如甲基丙烯酸2-羟乙酯(HEMA)和丙烯酸2-羟乙酯(HEA))替代或增强生产低分子量(MW)的反应性聚合物链,用于溶剂型汽车涂料。极性和功能性反应物影响自由基共聚动力学并引入溶剂依赖性。已在138℃下进行了一系列BMA / HEA实验,以确定这些变化的动力学参数在饥饿半进料操作条件下的影响。与BMA / BA共聚的比较表明,氢键的影响很小,半批次体系的HEA含量控制在50 wt%以下。因此,通过PREDICI®中制定的综合广义共聚模型可以很好地代表实验,该模型考虑了相关的甲基丙烯酸酯和丙烯酸酯的副反应,并使用了先前动力学研究中测得的链增长参数。除了控制整个共聚物的组成之外,了解羟基官能团在聚合物链中的分布也很重要,因为未官能化的低分子量链不会交联到涂料涂覆后形成的聚合物网络中。通过控制反应温度(138和160℃)和引发剂负载量(2-4 mol%),合成了一系列含6.25%,12.5%和25 wt%HEA的BMA / HEA共聚物,其重均聚合物分子量在3000-10000 Da之间变化饥饿进料半间歇操作在较高的温度下,BMA的去繁殖影响变得更加明显。形成交联膜后,通过溶剂萃取实验确定样品中非功能材料的含量,并测量可萃取馏分的MWs和HEA含量。这些实验结果将与PREDICI®模型的预测以及动力学蒙特卡洛表示法进行比较,该动力学蒙特卡洛表示法计算反应基团如何根据聚合物链长分布。

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