Abstract:The presence of sulfur will decrease the hardness of titanium diboride, so it is particularly necessary to accurately determine the content of sulfur in titanium diboride. (0.300±0.001) g of sample was transferred into a crucible containing 1.50 g of tungsten-tin flux. Then 0.50 g of pure iron flux was added. The analytical power was set at 1.98 kW. The analysis method for the determination of sulfur in titanium diboride by high frequency combustion infrared absorption was established. The results showed that the linear correlation coefficient of calibration curve was 0.999 5. The limit of detection was 0.000 9%, and the limit of quantification was 0.003%. Three titanium diboride samples with different sulfur contents were determined according to the experimental method. Various contents of potassium sulphate standard reagent were added for the recovery tests.The relative standard deviations(RSD, n=8) of determination results were between 0.9% and 1.5%, and the recoveries were between 96% and 104%. Certain amounts of high purity boron powder and ferrotitanium certified reference materials were used to prepare titanium diboride simulated samples according to the composition of titanium diboride.The synthetic samples were determined according to the experimental method, and the found results were basically consistent with the theoretical values.
张高庆, 王录锋. 高频燃烧红外吸收法测定二硼化钛中硫[J]. 冶金分析, 2023, 43(10): 41-46.
ZHANG Gaoqing, WANG Lufeng. Determination of sulfur in titanium diboride by high frequency combustion infrared absorption method. , 2023, 43(10): 41-46.
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