Determination of major components in magnesium-calcium-iron oxide vibrating material by X-ray fluorescence spectrometry with fusion sample preparation
WANG Zhibiao1,2, LI Xiangwei1,2
1. Yangquan Comprehensive Inspection and Testing Center,Yangquan 045000,China; 2. National Quality Supervision and Inspection Center for Silicon-Aluminum RefractoriesShanxi,Yangquan 045000,China
Abstract:In order to ensure good slag resistance, refractoriness and construction strength of magnesium-calcium-iron oxide vibrating material, the chemical composition should be strictly controlled. The sample prepared at 1 050 ℃ for 15 min by fusion sample preparation with Li2B4O7-LiBO2(m∶m=67∶33) as mixed flux and 300 g/L NH4I solution as release agent. The determination of major components (including SiO2, Al2O3, Fe2O3, CaO and MgO) in magnesium-calcium-iron oxide vibrating material was realized by X-ray fluorescence spectrometry(XRF). On the basis of chemical composition of magnesium-calcium-iron oxide vibrating material, the calibration sample series, which had a certain gradient and a certain content span covering the content ranges of elements in the sample, were prepared by mixing the certified reference materials of magnesia refractory, limestone and bauxite to draw calibration curve. Thus, the problem that there were no certified reference materials for magnesium-calcium-iron oxide vibrating material was overcome. Theoretical α coefficient method was employed for matrix correction, eliminating the absorption enhancement effect among elements. The calibration curves were drawn with the component contents as abscissa and their corresponding fluorescence intensity as ordinate. The precision quality factors of calibration curves of components were K<0.07, and the limits of detection were in range of 0.012%-0.057 9%. The contents of major components in magnesium-calcium-iron oxide vibrating material samples were determined according to the proposed method. The relative standard deviations (RSD, n=12) of determination results were between 0.12% and 2.6%. The contents of SiO2, Al2O3, Fe2O3, CaO and MgO in 2 magnesium-calcium-iron oxide vibrating material samples were determined according to the proposed method. Meanwhile, standard method of GB/T 5069-2015 was used for method comparison. The results showed that the errors between the proposed method and the standard method were within the allowable ranges specified in standard method of GB/T 5069-2015.
王志彪, 李向威. 熔融制样-X射线荧光光谱法测定镁钙铁质振动料中主量成分[J]. 冶金分析, 2024, 44(9): 66-71.
WANG Zhibiao, LI Xiangwei. Determination of major components in magnesium-calcium-iron oxide vibrating material by X-ray fluorescence spectrometry with fusion sample preparation. , 2024, 44(9): 66-71.
[1] 中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会.GB/T 5069—2015 镁铝系耐火材料化学分析方法[S].北京:中国标准出版社,2015. [2] 中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会.GB/T 21114—2019 耐火材料 X射线荧光光谱化学分析 熔铸玻璃片法[S].北京:中国标准出版社,2019. [3] 张爱芬,马慧侠,白万里.熔融制样-X射线荧光光谱法测定铝电解槽用干式防渗料中主次成分[J].冶金分析,2014,34(5):25-29. ZHANG Aifen,MA Huixia,BAI Wanli.Determination of major and minor components in dry barrier of aluminum electrolytic cell by X-ray fluorescence spectrometry with fusion sample preparation[J].Metallurgical Analysis,2014,34(5):25-29. [4] 杨竞,张秀华,田志宏,等.熔融制样-X射线荧光光谱法测定菱镁矿和白云石中6种组分[J].冶金分析,2020,40(11):26-31. YANG Jing,ZHANG Xiuhua,TIAN Zhihong,et al.Determination of six components in magnesite and dolomite by X-ray fluorescence spectrometry with fusion sample preparation[J].Metallurgical Analysis,2020,40(11):26-31. [5] 任国涛,邓俊杰,李婷婷,等.熔融制样-X射线荧光光谱法测定含铝铬锆耐火材料中主次成分[J].冶金分析,2021,41(4):68-72. REN Guotao,DENG Junjie,LI Tingting,et al.Determination of major and minor components in refractories containing aluminium,chromium and zirconium by X-ray fluorescence spectrometry with fusion sample preparation[J].Metallurgical Analysis,2021,41(4):68-72. [6] 李向威,王志彪,李杰.熔融制样-X射线荧光光谱法测定镁铝质耐火材料中8种组分[J].冶金分析,2021,41(8):43-47. LI Xiangwei,WANG Zhibiao,LI Jie.Determination of eight components in magnesium-aluminum refractory materials by X-ray fluorescence spectrometry with fusion sample preparation[J].Metallurgical Analysis,2021,41(8):43-47. [7] 范佳慧,周莉莉,朱春要,等.熔融制样-X射线荧光光谱法测定除尘灰中10种组分[J].冶金分析,2019,39(10):61-66. FAN Jiahui,ZHOU Lili,ZHU Chunyao,et al.Determination of ten components in dust by X-ray fluorescence spectrometry with fusion sample preparation[J].Metallurgical Analysis,2019,39(10):61-66. [8] 赵烨,胡艳巧,陈超,等.熔融制样-X射线荧光光谱法测定石墨矿中10种主次量组分[J].冶金分析,2023,43(8):55-62. ZHAO Ye,HU Yanqiao,CHEN Chao,et al.Determination of 10 major and minor components in graphite ore by X-ray fluorescence spectrometry with fusion sample preparation[J].Metallurgical Analysis,2023,43(8):55-62. [9] 孙晓飞,杨丹丹,文孟喜,等.经验系数-X射线荧光光谱法测定镁质耐火材料中10种组分[J].冶金分析,2017,37(5):12-18. SUN Xiaofei,YANG Dandan,WEN Mengxi,et al.Determination of ten components in magnesia refractory material by X-ray fluorescence spectrometry with empirical coefficient method[J].Metallurgical Analysis,2017,37(5):12-18. [10] 吉昂,陶光义,卓尚军.X射线荧光光谱分析[M].北京:中国科学出版社,2015. [11] 罗立强,詹秀春,李国会.X射线荧光光谱分析[M].北京:化学工业出版社,2015.