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首页> 外文期刊>Colloid and polymer science >Modelling the surface free energy parameters of polyurethane coats—part 1. Solvent-based coats obtained from linear polyurethane elastomers
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Modelling the surface free energy parameters of polyurethane coats—part 1. Solvent-based coats obtained from linear polyurethane elastomers

机译:聚氨酯涂料的表面自由能参数建模-第1部分。由线性聚氨酯弹性体获得的溶剂型涂料

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摘要

Polyurethane elastomers coating were synthes-ised by using typical diisocyanates, polyether and polyester polyols and HO-tertiary amines or diols as a chain extenders. Mole fractions of structural fragments (κ_(exp)) responsible for the polar interactions within polyurethane chains were calculated by ~1H NMR method. Obtained results were confronted with the analogous parameter values (κ_(theor)) calculated on the basis of process stoichiometry, considering the stage of the production of isocyanate prepolymers and reaction of their extension for polyurethanes. Trials of linear correlation between the κ_(exp) parameters and surface free energy (SFE) values of investigated coatings were presented. SFE values were determined by Owens-Wendt method, using contact angles measured with the goniometric method. Based on achieved results, another empirical models, allowing for prediction the influence of the kind of polyurethane raw materials on SFE values of received coatings were determined. It was found that it is possible to regulate the SFE in the range millijoules per cubic metre by the selection of appropriate substrates. It has been found that use of 2,2,3,3-tetrafluoro-1,4-butanediol as a fluorinated extender of prepolymer chains is essential to obtain coatings with increased hydrophobicity, applied among others as biomaterials—next to diphenylmethane diisocyanate and polyoxyethylene glycol.
机译:聚氨酯弹性体涂料是通过使用典型的二异氰酸酯,聚醚和聚酯多元醇以及HO-叔胺或二醇作为增链剂来合成的。用〜1H NMR方法计算负责聚氨酯链内极性相互作用的结构片段的摩尔分数(κ_(exp))。考虑到异氰酸酯预聚物的生产阶段及其扩链反应,基于过程化学计量计算的相似参数值(κ_(theor))面临获得的结果。提出了κ_(exp)参数与被调查涂层的表面自由能(SFE)值之间的线性相关性试验。通过使用测角法测量的接触角,通过Owens-Wendt方法确定SFE值。基于获得的结果,确定了另一个可以预测聚氨酯原料种类对所接收涂料的SFE值的影响的经验模型。发现可以通过选择合适的底物将SFE调节在每立方米毫焦耳的范围内。已经发现,使用2,2,3,3-四氟-1,4-丁二醇作为预聚物链的氟化增量剂对于获得具有更高疏水性的涂料至关重要,尤其是作为生物材料应用的涂料,是二苯基甲烷二异氰酸酯和聚氧乙烯之后乙二醇。

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