Abstract:In the pre-furnace inspection, the rapid and accurate determination of La and Ce contents in the middle-low alloy steel is of great significance to promote the development of rare earth steel. The internal calibration samples was prepared with high-frequency induction remelting furnace. La 433.37 nm (level 1) and Ce 413.76 nm (level 1) were selected as the analytical lines for La and Ce, respectively, and Fe 273.1 nm (level 1) was used as the internal standard line. Thus, a method for determination of La and Ce in middle-low alloy steel by spark discharge atomic emission spectrometry was established. The experiments of integration time and pre-combustion time were conducted. The optimized analytical conditions were listed as follows: the integration time was 8 s, and the pre-combustion time was 6 s. Under the optimized experimental conditions, the interference coefficient method was employed for calibration, and the calibration curve was prepared. The linear correlation coefficients of La and Ce were 0.997 4 and 0.997 0, respectively. The limits of detection for La and Ce were 0.000 033% (mass fraction, the same below) and 0.000 33%, respectively. The contents of La and Ce in middle-low alloy steel sample of X80 were determined according to the proposed method. The relative standard deviations (RSD, n=10) of determination results were 5.5% for La and 3.5% for Ce. The comparative tests were also conducted with inductively coupled plasma mass spectrometry (ICP-MS) and inductively coupled plasma atomic emission spectrometry (ICP-AES), and the results were consistent.
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