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Effect of zinc stearate on properties of melt processable ionomer based on sodium salt of sulphonated maleated EPDM rubber

机译:硬脂酸锌对磺化马来酸三元乙丙橡胶钠盐可熔融加工离聚物性能的影响

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Sulphonation of maleated copoly(ethylene/propylene/diene), followed by its neutralisation by sodium hydroxide produces an ionomer containing both carboxylate and sulphonate anions on the backbone. Addition of zinc stearate lowers the melt viscosity of the ionomer, which is higher than the corresponding non-ionomer. Dynamic mechanical thermal analysis shows that zinc stearate acts as a low reinforcing filler under ambient conditions and as a plasticiser above lOO°C (i.e. above the melting point of zinc stearate). For example, incorporation of zinc stearate causes an increase in storage modulus E' at 25°C, but a sharp decrease in E' at 110°C. Furthermore, the plot of tan <5 v. temperature reveals that tan <5 at the low glass~rubber transition temperature Tg decreases, while tan <5 at the high temperature ionic relaxation temperature 7; increases in the presence of zinc stearate. Incorporation of carbon black lowers tan <5 at Tg and increases tan <5 at 7;, thus strengthening the biphasic structure of the ionomer. The ionomer shows higher tensile strength and modulus than the corresponding non-ionomer. Addition of zinc stearate increases the tensile strength and elongation at break, with marginal decrease in modulus. Carbon black increases the stress~strain properties of the zinc stearate filled ionomer. Reprocessability studies of the ionomer filled with zinc stearate and carhon hlack showthat the material can be recycled without a decrease in properties.
机译:马来酸化的共聚(乙烯/丙烯/二烯)的磺化,然后用氢氧化钠中和,产生在主链上同时包含羧酸根和磺酸根阴离子的离聚物。硬脂酸锌的加入降低了离聚物的熔融粘度,该粘度高于相应的非离聚物。动态机械热分析表明,硬脂酸锌在环境条件下起低增强填料的作用,并在高于100℃(即高于硬脂酸锌的熔点)时起增塑剂的作用。例如,硬脂酸锌的掺入导致在25℃下的储能模量E′增加,但是在110℃下E′的急剧下降。此外,tan <5 v。温度图表明,在较低的玻璃-橡胶转变温度Tg下,tan <5降低,而在高温离子松弛温度7下,tan <5。在硬脂酸锌存在下增加。炭黑的加入使Tg的tan <5降低,而7的tan <5则增加;因此增强了离聚物的双相结构。离聚物显示出比相应的非离聚物更高的拉伸强度和模量。硬脂酸锌的加入增加了抗张强度和断裂伸长率,模量略有下降。炭黑增加了填充硬脂酸锌的离聚物的应力-应变性能。对填充有硬脂酸锌和碳酸氢盐的离聚物的可再加工性研究表明,该材料可以回收利用而不会降低性能。

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