Preview

Industrial laboratory. Diagnostics of materials

Advanced search
Open Access Open Access  Restricted Access Subscription Access

X-ray fluorescence determination of zinc sulfate in acidic zinc plating electrolyte

https://doi.org/10.26896/1028-6861-2020-86-10-18-22

Abstract

Zinc sulfate is the main component in the composition of the acidic zinc plating electrolyte. Deviation in the electrolyte composition from the optimum content leads to destabilization of the electrolysis process and deteriorate the quality of the resulting zinc coating. The proper quality of a zinc coating obtained by galvanic deposition can be ensured only with timely monitoring and adjustment of the electrolyte composition. A technique of X-ray fluorescence determination of zinc (in terms of zinc sulfate) in an acidic zinc plating electrolyte is proposed. The study was carried out using an ARL Quant’X energy dispersive spectrometer (Thermo Fisher Scientific, USA) with a semiconductor silicon-lithium detector. The features of the spectrometer design are presented. The optimal parameters of excitation and detection of zinc radiation were specified when the electrolyte sample was diluted 1:1000. The ZnKα1 line was used as an analytical line. The plotted calibration graph is linear, the correlation coefficient being 0.999234. The results of zinc determination according to the developed method were compared with the data of the reference method of complexometric titration to prove the reliability of the procedure. The results are characterized by good convergence and accuracy. The proposed method of X-ray fluorescence zinc determination in a zinc plating electrolyte equals complexometric titration in the limiting capabilities and even exceeds the latter in terms of the simplicity of sample preparation and rapidity. The developed method of X-ray fluorescence determination of zinc is implemented in analysis of the electrolyte used in the continuous galvanizing unit at «METSERVIS LLC».

About the Authors

K. N. Vdovin
G. I. Nosov Magnitogorsk State Technical University
Russian Federation

Konstantin N. Vdovin

38 Lenina prospekt, Magnitogorsk, 455000



K. G. Pivovarova
G. I. Nosov Magnitogorsk State Technical University
Russian Federation

Ksenia G. Pivovarova

38 Lenina prospekt, Magnitogorsk, 455000



N. A. Feoktistov
G. I. Nosov Magnitogorsk State Technical University
Russian Federation

Nikolay A. Feoktistov

38 Lenina prospekt, Magnitogorsk, 455000



T. B. Ponamareva
G. I. Nosov Magnitogorsk State Technical University
Russian Federation

Tatyana B. Ponamareva

38 Lenina prospekt, Magnitogorsk, 455000



References

1. Zakharov Yu. A., Musatov G. A. Selection, control and adjustment of galvanizing electrolyte of restored surfaces of car parts / Inzh. Vestn. Dona. 2015. N 2. P. 2 – 9 [in Russian].

2. Zakharov Yu. A., Remzin E. V., Musatov G. A. The main defects of car body parts and methods for their elimination used in car repair production / Inzh. Vestn. Dona. 2014. N 4. P. 43 – 51 [in Russian].

3. Zakharov Yu. A., Spitsyn I. A., Remzin E. V., et al. Device for the galvanomechanical deposition of coatings on the inner cylindrical surfaces of car parts / Inzh. Vestn. Dona. 2014. N 4. P. 108 – 116 [in Russian].

4. Baltaeva D. S., Kulanova A. B., Aisuvakova O. P. State of Zn (II) ions in solutions of EDTA and some metal indicators (chrome dark blue) / Proc. of XI International Student Scientific and Practical Conference. 2016. N 8(11). P. 600 – 607 [in Russian].

5. Zakharov Yu. A., Rlyakin E. G., Semov I. N. Restoration of landing surfaces of body parts of machines by flow galvanizing / Molod. Uch. 2014. N 17. P. 58 – 62 [in Russian].

6. RF Pat. N 2508539, G01N31/16, G01N27/26. The method for determining zinc / Chebotarev V. K., et al. Publ. 2014 [in Russian].

7. Bolshova T. A., Brykina G. D., Garmash A. V., et al. Fundamentals of Analytical Chemistry: Book 1. 2nd Edition. — Moscow: Vysshaya shkola, 2000. — 351 p. [in Russian].

8. Kalinin B. D. X-ray fluorescence determination of element content in multicomponent samples / Analit. Kontrol. 2019. Vol. 23. N. 4. P. 476 – 482 [in Russian]. DOI: 10.15826/analitika.2019.23.4.06.

9. Alov N., Sharanov P. Elemental Analysis of Copper-Zinc Ores by Total Reflection X-Ray Fluorescence using Nonaqueous Suspensions / Anal. Lett. 2018. Vol. 51. N 11. P. 1789 – 1795. DOI: 10.1080/00032719.2017.1390758.

10. Chubarov V. M., Amosova A. A., Finkelstein A. L. X-ray fluorescence determination of ore elements of ferromanganese formations / Zavod. Lab. Diagn. Mater. 2019. Vol. 85. N 12. P. 5 – 13 [in Russian]. DOI: 10.26896/1028-6861-2019-85-12-5-13.

11. RF Pat. N 2682143, G01N 23/223. The method of x-ray fluorescence analysis with graduation according to single-element samples / B. D. Kalinin. Publ. 2019 [in Russian].

12. Polyakova M. A., Bosikova E. Yu. Features of the application of X-ray fluorescence analysis to determine the composition of materials / Tekhnol. Metallurg. Mashinostr. Materialoobr. 2017. N 16. P. 92 – 98 [in Russian].

13. Shabalin E. I., Bogacheva I. Yu., Shabalin Yu. V. The output express control of the products of Compass-MGTU LLC based on the ARL Quant’X X-ray fluorescence energy dispersive spectrometer / Teor. Tekhnol. Metallurg. Proizv. 2014. N 1(14). P. 85 – 87 [in Russian].

14. Garipova S. A., Lobachev A. L., Lobacheva I. V., et al. Determination of heavy metal content in the liquid snow phase by X-ray fluorescence method / Vestn. SamGU. Estestvennonauch. Ser. 2011. N 5(86). P. 129 – 135 [in Russian].

15. Pashkova G. V., Revenko A. G. X-ray fluorescence determination of elements in water using a spectrometer with total external reflection / Analit. Kontrol. 2013. Vol. 17. N 2. P. 122 – 140 [in Russian]. DOI: 10.15826/analitika.2013.17.2.001.


Review

For citations:


Vdovin K.N., Pivovarova K.G., Feoktistov N.A., Ponamareva T.B. X-ray fluorescence determination of zinc sulfate in acidic zinc plating electrolyte. Industrial laboratory. Diagnostics of materials. 2020;86(10):18-22. (In Russ.) https://doi.org/10.26896/1028-6861-2020-86-10-18-22

Views: 473


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