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Historical development of methods for the analysis of mineral raw and secondary materials

机译:矿物原辅材料分析方法的历史发展

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In a chemical laboratory a wide range of different mineral raw and residual materials with partly extremely different matrixes must be analysed. Initially, at least seven operations were needed to be able to analyse the main components of a raw material or secondary material sample. Iron titration, for a very long time being the most exact technique for Fe analyses, could be successfully changed from the use of toxic mercury to direct TiCl{sub}3-based titration. For more than 20 years, the main elements in the burden (SiO{sub}2, Al{sub}2O{sub}3, CaO, MgO, Na{sub}2O, K{sub}2O) were measured based on atomic absorption after disintegration of the melt. The measurement of P and S required additional analyses. Due to the purchase of an inductively coupled plasma source (ICP) and slight modification to the process of melt disintegration, it has been possible for about two years now to measure these elements simultaneously. The plausibility analysis carried out after each complete analysis, e.g. for iron ores (12 elements + FeO and annealing loss), provides values in the range of 99.9-100.1 %, proving the preciseness of the analytical work. If certain analysis values do not match the test series, this is mostly due to errors during sampling or sample separation.
机译:在化学实验室中,必须分析各种不同的矿物原料和残渣材料,以及部分极为不同的基质。最初,至少需要进行七个操作才能分析原材料或辅助材料样本的主要成分。长期以来,铁滴定是用于Fe分析的最精确技术,可以成功地从使用有毒汞转变为直接基于TiCl {sub} 3的滴定。在20多年的时间里,以原子为基础测量了负载中的主要元素(SiO {sub} 2,Al {sub} 2O {sub} 3,CaO,MgO,Na {sub} 2O,K {sub} 2O)熔体分解后的吸收。 P和S的测量需要额外的分析。由于购买了电感耦合等离子体源(ICP),并对熔体崩解过程进行了少许改动,因此大约有两年的时间可以同时测量这些元素。每次完整分析后进行真实性分析,例如对于铁矿石(12种元素+ FeO和退火损耗),提供的值在99.9-100.1%的范围内,证明了分析工作的准确性。如果某些分析值与测试序列不匹配,则主要是由于采样或样品分离过程中的错误。

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