Preview

Industrial laboratory. Diagnostics of materials

Advanced search

IMPROVEMENT OF SAMPLE PREPARATION IN ICP-AES ANALYSIS OF FERROALLOYS

https://doi.org/10.26896/1028-6861-2019-85-5-11-17

Abstract

A set of ICP-AES techniques has been developed for determination of rated elements: Ti, Si, R Al, Cu, Mo, V, Sn, and Zr in ferrotitanium; Ni, Fe, Cu, Co, and As in ferronickel; Si, Cr, and P in ferrochrome silicon; Zr, Si, Al, R and Cu in zirconium ferrosilicon; Mn, Si, and P in manganese ferrosilicon. Combination of the multi-element ICP-AES method which allows precise determination of the elements in ferroalloys in a wide range of concentrations and microwave sample preparation in closed autoclaves which excludes the loss of the components to be determined provides the rapidity of the analysis procedure. The composition of solutions for opening samples of ferroalloys and temperature-time modes of microwave sample preparation in an autoclave are substantiated. Conditions for ICP-AES determination of the rated elements in ferroalloys are studied. Analytical lines of the elements to be determined free from significant spectral overlaps are chosen. The dilution rates of the solutions are determined. The method of internal standard was used to improve the reproducibility of the analytical signal for Ti determination in ferrotitanium, Si and Cr in ferrochrome silicon, as well as all rated elements in manganese ferrosilicon and ferronickel. The spectrometer was calibrated using model solutions and solutions of standard samples added with the certified solutions of the elements to be determined. To determine Ti, Si, FJ Al, Cu, У and Zr in ferrotitanium; Ni, Fe, Cu, and Co in ferronickel; Si, Cr, and P in ferrochrome silicon; Zr, Si, Al, P, and Cu in zirconium ferrosilicon; Si and P in manganese ferrosilicon a multidimensional graduation by two analytical lines was used. The correctness of the determination was evaluated in analysis of standard samples of ferroalloys and comparative analysis of the obtained results with the data of standard methods: comparison of the variances according to the Fisher criterion did not reveal any significant difference between them, whereas the use of the modified Student test showed the absence of the systematic error.

About the Authors

I. I. Chernikova
Lipetsk State Technical University
Russian Federation


K. Y. Tumneva
Lipetsk State Technical University
Russian Federation


T. Y. Bakaldina
Lipetsk State Technical University
Russian Federation


T. N. Ermolaeva
Lipetsk State Technical University
Russian Federation


References

1. Mizin V G. Ferroalloys: handbook. — Moscow: Metallurgiya, 1992. — 413 p. [in Russian].

2. Gasik M. I., Lyakishev N. P. Theory and technology of electrometallurgy of ferroalloys: textbook for universities. — Moscow: SP Intermet Inzhiniring, 1999. E 18 [in Russian].

3. Reznik I. D., Ermakov G. P., Shneerson Ya. M. Nickel Vol. 2. Oxidized nickel ores. Characteristic of ores. Pyrometallurgy and hydrometallurgy of oxidized nickel ores. — Moscow: JSC "Nauka i tekhnologiya", 2001. — 486 p. [in Russian].

4. RF State Standard GOST 17001.4-86. Ferrosilicocyrconium. Methods for determination of zirconium. —Moscow: Izd. Standartov, 1986. — 8 p. [in Russian].

5. RF State Standard GOST 17001.5-86. Ferrosilicocyrconium. Methods for determination of phosphorus. — Moscow: Izd. Standartoy 1986. — 8 p. [in Russian].

6. RF State Standard GOST 17001.7-86. Ferrosilicocyrconium. Methods for determination of cuprum. — Moscow: Izd. Standartoy 1986. — 6 p. [in Russian].

7. RF State Standard GOST 17001.6-86. Ferrosilicocyrconium. Method for determination of silicon. — Moscow: Izd. Standartoy 1986. — 3 p. [in Russian].

8. RF State Standard GOST 17001.8-86. Ferrosilicocyrconium. Method for determination of aluminum. — Moscow: Izd. Standartoy 1986. — 5 p. [in Russian].

9. Yakubenko E. V., Vojtkova Z. A., Chernikova 1.1., Ermolaeva T. N. Microwave sample preparation for detection of Si, E; У Cr, Mn, Ni, Cu, and W using Inductively coupled plasma atomic emission spectrometry in engineering steels / Zavod. Lab. Diagn. Mater. 2015. Vol. 51. N 1. E 1370 -1374 [in Russian].

10. Tormysheva E. A., Melihova E. V., Ermolaeva T. N. Analysis of refractory materials of metallurgical designation by the method of ICP-AES / Zavod. Lab. Diagn. Mater. 2010. Vol. 76. N 5. E 6 - 9 [In Russian].

11. Spirina S. V., Gricenko N. N., Snezhko E. A., et al. Application of the method of emission spectrometry with inductively coupled plasma for the analysis of the chemical composition of ferroalloys, fluxes, slags, sludges and dusts / Ekol. Promyshl. Ekol. Monit. Metrol. Standartiz. Sertif. 2013. N 4. E 88 - 94 [in Russian].

12. Nerobeeva I. V, Ermolaeva T. N. Determination of boron in high-alumina intermediate by atomic emission spectroscopy with inductively coupled plasma / Zavod. Lab. Diagn. Mater. 2008. Vol. 74. N 5. E 3 - 6 [in Russian].

13. Chernikova I. I., Tomilina E. A., Kukina V A., Ermolaeva T. N. Optimization of the conditions of microwave sample preparation in the analysis of ferrovanadium and ferroniobium by the method of ICP-AES / Zavod. Lab. Diagn. Mater. 2017. Vol. 83. N 2. E 12 - 17 [in Russian].

14. Chernikova I. I., Ostrouhova U. A., Ermolaeva T. N. Microwave sample preparation in analysis of ferrotungsten, silicocalcium and ferroboron by inductively coupled plasma atomic emission spectrometry / Zavod. Lab. Diagn. Mater. 2018. Vol. 84. N 2. E 11 - 17 [in Russian].


Review

For citations:


Chernikova I.I., Tumneva K.Y., Bakaldina T.Y., Ermolaeva T.N. IMPROVEMENT OF SAMPLE PREPARATION IN ICP-AES ANALYSIS OF FERROALLOYS. Industrial laboratory. Diagnostics of materials. 2019;85(5):11-17. (In Russ.) https://doi.org/10.26896/1028-6861-2019-85-5-11-17

Views: 911


ISSN 1028-6861 (Print)
ISSN 2588-0187 (Online)