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Monitoring of the atmospheric corrosivity by resistive sensors

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1. Halama M. et al., Prediction of Atmospheric Corrosion of Carbon Steel Using Artificial Neural Network Model in Local Geographical Regions, Corrosion 2011, 67, 1-6.10.5006/1.3595099 Search in Google Scholar

2. Kreislova K. et al., Actual maps of atmospheric corrosivity for the Czech Republic, Proceedings of EUROCORR 2015, 2015. Search in Google Scholar

3. Kreislová K., Comparison of methods for estimation of atmospheric corrosivity, Proceedings of EUROCORR 2017, 2017. Search in Google Scholar

4. Fuse N. et al., Field test validation of corrosivity environment analysis based on sensor monitoring in transmission towers, Proceedings of EUROCORR 2019, 2019. Search in Google Scholar

5. Tatsuoka T. et al., Height Directional Distribution of Corrosion Rate, Deposited Sea Salt and Time of Wetness on Transmission Towers, Proceedings of EUROCORR 2019, 2019. Search in Google Scholar

6. Kasai N. et al., Correlation between corrosion rate and AE signal in an acidic environment for mild steel, Corrosion Science 2009, 51, 1679-1684.10.1016/j.corsci.2009.04.021 Search in Google Scholar

7. Mansfeld F., Evaluation of electrochemical techniques for monitoring of atmospheric corrosion phenomena, ASTM Symposium Progress in Electrochemical Corrosion Testing, 1979. Search in Google Scholar

8. Jirovsky I. et al., Werkstoffe und Korrosion 1976, 27. Search in Google Scholar

9. KcKenzie M., Vassie P.R., Use of weight loss coupons and electrical resistance probes in atmospheric corrosion tests, Br. Corros. J. 1985, 20, 117-124.10.1179/000705985798272696 Search in Google Scholar

10. Li S. et al., Application of steel thin film electrical resistance sensor for in situ corrosion monitoring, Sensors and Actuators B: Chemical 2007, 120(2), 368-377.10.1016/j.snb.2006.02.029 Search in Google Scholar

11. T. Prosek et al., Real-time monitoring of indoor air corrosivity in cultural heritage institutions with metallic electrical resistance sensors, Studies in Conservation 2013, 58, 117-128.10.1179/2047058412Y.0000000080 Search in Google Scholar

12. V. Krivy et al., Experimental measurement of chlorides deposition and their influence on the development of corrosion products on weathering steel bridges, Metals 2017, 7, 336;10.3390/met7090336 Search in Google Scholar

13. Kreislova K. et al., Modely atmosférické koroze, Koroze a ochrana materiálů 2017, 61, 59-66.10.1515/kom-2017-0007 Search in Google Scholar

eISSN:
1804-1213
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Industrial Chemistry, Chemical Engineering, Materials Sciences, Ceramics and Glass