Effects of Polyvinyl Alcohol on Aggregate-Paste Bond Strength and the Interfacial Transition Zone

Jae-Ho Kim , Richard E. Robertson
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引用次数: 73

Abstract

Small amounts of polyvinyl alcohol (PVA) were added to cement paste in an attempt to increase the aggregate-paste bond strength. Specimens consisted of ordinary Portland cement mixed with PVA/water solutions and cast against ground surfaces of limestone and granite. The aggregate-paste bond strength after curing was tested in a wet state by three-point bending. The morphology of the interfacial transition zone was observed with scanning electron microscopy, and the composition was analyzed with infrared spectroscopy. The addition of 1.4 wt% PVA based on the mass of cement increased the strength for both limestone-paste and granite-paste bonds. The strength increase was about five-fold for limestone and nearly two-fold for granite. The failure mode also changed, from pure adhesive failure without PVA to cohesive failure of the aggregate with limestone and to a mixed cohesive failure of the paste and adhesive failure with granite. The gain in bond strength with the addition of PVA seems to arise from suppression of the porous interfacial transition zone and an inhibition of calcium hydroxide nucleation on the aggregate surface.

聚乙烯醇对骨料-膏体结合强度及界面过渡区的影响
在水泥浆体中加入少量聚乙烯醇(PVA),试图提高骨料-膏体的粘结强度。样品由普通硅酸盐水泥与PVA/水溶液混合组成,浇筑在石灰石和花岗岩的地面上。采用三点弯曲法测试湿态下骨料-膏体固化后的粘结强度。用扫描电镜观察了界面过渡区的形貌,并用红外光谱分析了其成分。根据水泥质量,添加1.4 wt%的PVA可提高石灰石-膏体和花岗岩-膏体的粘结强度。石灰石的强度增加了约5倍,花岗岩的强度增加了近2倍。破坏模式也发生了变化,从无PVA的纯粘结破坏到骨料与石灰石的粘结破坏,再到膏体与粘结剂与花岗岩的混合粘结破坏。加入PVA后,粘结强度的增加似乎是由于抑制了多孔界面过渡区和抑制了骨料表面的氢氧化钙成核。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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