Retention of PCC and GCC fillers on chemical pulp fines surfaces

September 2009 Pub Date : 2009-10-01 DOI:10.32964/tj8.9.38
H. Liimatainen, A. Haapala, J. Niinimaki
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引用次数: 8

Abstract

We studied the retention of precipitated and ground calcium carbonate fillers (PCC and GCC, respectively) on chemical pulp fines surfaces by measuring the amounts of adsorbed fillers on the surfaces of the primary and secondary fines and long fiber fractions of eucalyptus pulp in the presence of a polymeric flocculant (CPAM). The mechanism of filler particle retention and adsorption on fines surfaces was clarified in more detail by measuring the kinetics of PCC adsorption in the absence of flocculant. The results showed that the primary and secondary fines fractions adsorb more PCC and GCC fillers on their surfaces (per gram of pulp) than the long fiber frac-tion in both the absence and presence of flocculants. In the absence of flocculants the adsorption of PCC both on fines and on the fiber fractions follows Langmuir kinetics, implying that the adsorption is in dynamic equilibrium with filler detachment and the maximum possible amount of filler that can be adsorbed corresponds to the monolayer coverage of particles. At low flocculant doses, i.e., doses that are relevant to papermaking, the fines fractions adsorb significantly more filler than the fiber fractions. In this case, their high surface charge density promotes CPAM adsorption onto fines, which in turn increases the adsorption of fillers to the fines surfaces through polymer bridges.
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PCC和GCC填料在化学纸浆细表面的保留
我们研究了沉淀和磨碎的碳酸钙填料(PCC和GCC)在化学纸浆细粒表面的保留,通过测量在聚合絮凝剂(CPAM)存在下桉树纸浆初级和次级细粒和长纤维部分表面吸附填料的量。通过测定无絮凝剂条件下PCC的吸附动力学,更详细地阐明了填料颗粒在细颗粒表面的保留和吸附机理。结果表明,在不添加絮凝剂和不添加絮凝剂的情况下,初级和次级细粒组分比长纤维组分在其表面吸附更多的PCC和GCC填料(每克纸浆)。在没有絮凝剂的情况下,PCC在细颗粒和纤维组分上的吸附都遵循Langmuir动力学,这意味着吸附与填料脱离处于动态平衡状态,并且可以吸附的最大填料量对应于颗粒的单层覆盖。在低絮凝剂剂量下,即与造纸有关的剂量,细粒组分吸附的填料明显多于纤维组分。在这种情况下,它们的高表面电荷密度促进了CPAM在细颗粒上的吸附,这反过来又增加了填料通过聚合物桥在细颗粒表面的吸附。
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