STUDY OF INTERGRANULAR CORROSION ON NON-HEAT TREATABLE ALUMINUM ALLOYS IN A COMPRESSOR AFTER-COOLER

D.N. Adnyana

Abstract

This study was carried out on a compressor heat exchanger (after-cooler) which had a leak in the welded joint of its components made of non-heat treatable aluminum alloys. The purpose of this study is to determine the type and cause, and mechanisms of failure associated with the metallurgical structure that occurs. In this study a number of tests have been carried out including visual and macroscopic examinations, metallographic and hardness testing, and SEM (scanning electron microscopy) analysis equipped with EDS (energy dispersive spectroscopy). The results of the study obtained indicate that the failure mechanism that causes leakage in the aluminum alloy welding joints of the compressor heat exchanger component is intergranular corrosion due to sensitization and the related effect of environmental factors that occur. In addition, the failure may also be affected by welding defect in the form of pinholes.

Keywords

Compressor heat exchanger (after-cooler), intergranular corrosion, non-heat treatable aluminum alloys, sensitization, weld defect (pinholes).

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References

M. Yoshino, S. Iwao, M. Edo, and H. Chiba, “Mechanism of intergranular corrosion of brazed Al-Mn-Cu alloys with various Si content”, Materials Transactions, vol. 58, issue 5, pp. 768-775, 2017

W. Wei, “ Study of sensitization in AA 5083 aluminum alloy”, Ph. D Thesis Faculty of Science and Engineering, University of Manchester, 2017

O.M. Alyousif and R. Nishimura, “The effect of applied stress on environment-induced cracking of aluminum alloy 5052-H3 in 0.5 M NaCl solution”, Int. J. Corrosion, vol. 8, pp 1-5, 2012

Y. Oya, Y. Kojima and N. Hara, “Influence of silicon on intergranular corrosion for aluminum alloys”, Materials Transactions, vol. 54, No. 7, pp. 1200-1208, 2013

J.R. Davis, “Aluminum and Aluminum Alloys”, ASM International, pp. 351-416, 2001

L. Radovic, M. Bucko and M. Miladinov, “Corrosion behavior of TIG welded AlMg6Mn alloy”, Scientific Technical Review, vol. 66, no.2, pp. 10-17, 2016

Y. Kailin, S. Hai wang, R. Yu Chen, T. Sheng Hsieh, L. Tsai, and C. Chin Chiang,” The effect of heat treatment on the sensitized corrosion of the 5383-H116 Al-Mg alloy”, Materials, 10, 275, pp. 1-9, 2017

V.S. Sinyavskii, V.V. Ulanova and V.D. Kalinin, “On the mechanism of intergranular corrosion of aluminum alloys,” J. Protection of Metals, vol. 40, no. 5, pp. 481-490, 2004

Y. Oya, Y. Kojima and N. Hara, “Influence of silicon on intergranular corrosion for aluminum alloys,” J. Japan Institute of Metals, vol. 78, no.1, pp. 52-59, 2014

S. Kumari, S. Wenner, J.C. Walmsley, O. Lunder, and K. Nisancioglu, “Progress in understanding initiation of intergranular corrosion on AA 6005 aluminum alloy with low copper content”, J. Electrochemical Society, vol 166, no. 11, pp. C3114-C3123, 2019

The Standard of The Brazed Aluminum Plate-Fin Heat Exchanger Manufacturers’ Association (ALPEMA), Second Edition, 2000

J. R. Thome, “The new 3rd edition of the ALPEMA plate-fin heat exchanger standards”, Heat Transfer Engineering, vol. 31, no. 1, pp. 1-2, 2010

M. Warmuzek, “Metallographic Techniques for Aluminum and Its Alloys”, Metallography and Microstructures, ASM Handbook, vol. 9, ASM International, p. 711-751, 2004

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