Institute of Chemical Technology and Engineering, Faculty of Chemical Technology, Poznan University of Technology, Berdychowo 4, PL-60965 Poznan, Poland.
Wielkopolska Centre of Advanced Technologies, Umultowska 89 C, PL-61614 Poznan, Poland.
Molecules. 2017 Nov 7;22(11):1920. doi: 10.3390/molecules22111920.
The main aim of the present study was the preparation and comprehensive characterization of innovative additives to abrasive materials based on functional, pro-ecological lignin-alumina hybrid fillers. The behavior of lignin, alumina and lignin-Al₂O₃ hybrids in a resin matrix was explained on the basis of their surface and application properties determined by inverse gas chromatography, the degree of adhesion/cohesion between components, thermomechanical and rheological properties. On the basis of the presented results, a hypothetical mechanism of interactions between lignin and Al₂O₃ as well as between lignin-Al₂O₃ hybrids and phenolic resins was proposed. It was concluded that lignin compounds can provide new, promising properties for a phenolic binder combining the good properties of this biopolymer as a plasticizer and of alumina as a filler improving mechanical and thermal properties. The use of such materials may be relatively non-complicated and efficient way to improve the performance of bonded abrasive tools.
本研究的主要目的是制备和综合表征基于功能性、亲生态木质素-氧化铝杂化填料的创新磨料添加剂。通过反气相色谱法测定木质素、氧化铝和木质素- Al₂O₃ 杂化物的表面和应用性能,解释了它们在树脂基体中的行为,以及组分之间的粘附/内聚程度、热机械和流变性能。基于所呈现的结果,提出了木质素与 Al₂O₃ 以及木质素- Al₂O₃ 杂化物与酚醛树脂之间相互作用的假设机制。研究结论认为,木质素化合物可为酚醛粘合剂提供新的、有前景的性能,将这种生物聚合物作为增塑剂的良好性能与氧化铝作为改善机械和热性能的填料结合起来。此类材料的使用可能是一种相对简单而有效的方法,可以提高粘结磨具的性能。