Failure Case Study Series Part One: Analysis of Oxygen Compressor Shaft Breakage

  • Liviu GURĂU Interdisciplinary Research Centre in the Field of Eco-Nano Technology and Advanced Materials CC-ITI, Faculty of Engineering, “Dunarea de Jos” University of Galati, 47 Domneasca Street, 800008 Galati, Romania
  • Carmela GURĂU Interdisciplinary Research Centre in the Field of Eco-Nano Technology and Advanced Materials CC-ITI, Faculty of Engineering, “Dunarea de Jos” University of Galati, 47 Domneasca Street, 800008 Galati, Romania
  • Gheorghe GURĂU Interdisciplinary Research Centre in the Field of Eco-Nano Technology and Advanced Materials CC-ITI, Faculty of Engineering, “Dunarea de Jos” University of Galati, 47 Domneasca Street, 800008 Galati, Romania
Keywords: failure analysis, fatigue, compressor shaft, OM, SEM, EDS

Abstract

This paper presents the results of a failure analysis of an oxygen compressor shaft using seven basic steps. The findings of this work form the basis for corrective and preventive actions to enhance equipment reliability and prevent future recurrence. The paper also offers a simple and direct approach to determine the root cause of structural component failure.
Visual inspection, specimen selection and preservation, high-stress area identification, chemical analysis with comparison to standards, hardness testing, optical microscopy, scanning electron microscopy (SEM), and EDS analysis were performed. A comprehensive metallurgical analysis of the oxygen compressor shaft failure provided substantial insights into the underlying mechanism, indicating shaft misalignment and bending-induced fatigue as the primary causes, with poor steel quality contributing to faster crack initiation and propagation.

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References

[1]. Hou Nan, et al., Failure modes, mechanisms and causes of shafts in mechanical equipment, Engineering Failure Analysis, vol. 136, 106216, 2022.
[2]. Wang M. S., et al., Failure analysis of screw shaft in screw compressor, Engineering Failure Analysis, vol. 125, 105424, 2021.
[3]. Shahrivar A., Abdolmaleki A. R., Failure of a screw compressor shaft, Engineering Failure Analysis, vol. 13, issue 4, p. 698-704, 2006.
[4]. Florez Jorge Mario Tirado, et al., Analysis of the failure of an offshore compressor crankshaft, Case Studies in Engineering Failure Analysis, p. 50-55, 2016.
[5]. Safaat Aat, Noviyanto Alfian, Failure analysis of rotary screw compressor and its modifications, International Journal of Innovation in Mechanical Engineering and Advanced Materials, 2021.
[6]. Fioravanti A., et al., Compressor Station Facility Failure Modes: Causes, Taxonomy and Effects, Report EUR 30265 EN, by the European Commission Joint Research Centre (JRC), 2020.
[7]. Xu L., et al., Analysis of the causes of driving gear shaft fractures in gear pumps, J. Fail. Anal. Prev., 20(1), p. 242-2482020.
[8]. Fuller R.W., et al., Horstemeyer, Failure analysis of aisi 304 stainless steel shaft, Eng. Fail. Anal., 15(7), p. 835-846, 2008.
[9]. Callister W. D. Jr., Rethwisch D. G., Callister's Materials Science and Engineering, (10th ed.), John Wiley & Sons, 2020.
[10]. Martínez L., et al., Crack propagation by activated avalanches during creep and fatigue from elastic interface theory, Physical Review Materials, 9(1), 013401, 2025.
[11]. Singh P., El-Awady J., Low cycle fatigue behaviour of engineering metallic materials: Review on cyclic deformation micro-mechanism, Materials Science and Engineering A, 876, 145322, 2024.
[12]. Chen X., et al., Fatigue life predictor: Predicting fatigue life of metallic materials using LSTM with a contextual attention model, RSC Advances, 15(3), p. 1234-1247, 2025.
[13]. Rahman M., et al., Performance of composite metal foams under cyclic loading at elevated temperatures, Journal of Materials Science, 60(5), p. 2150-2164, 2025.
[14]. Zhao H., et al., Fatigue crack growth of WC–Co cemented carbides: A comparative study using small indentation flaws and long through-thickness cracks, International Journal of Fracture, 239(1), p. 1-20, 2024.
[15]. Santos A., et al., Numerical fatigue crack growth on compact tension specimens under Mode I and mixed-mode (I+II) loading, Engineering Fracture Mechanics, 290, 110346, 2024.
[16]. Nguyen T., et al., Elucidating microstructural influences on fatigue behavior for additively manufactured Hastelloy X using a Bayesian-calibrated crystal plasticity model, Acta Materialia, 266, 118232, 2024.
Published
2026-03-15
How to Cite
1.
GURĂU L, GURĂU C, GURĂU G. Failure Case Study Series Part One: Analysis of Oxygen Compressor Shaft Breakage. The Annals of “Dunarea de Jos” University of Galati. Fascicle IX, Metallurgy and Materials Science [Internet]. 15Mar.2026 [cited 13Mar.2026];49(1):11-8. Available from: https://gup.ugal.ro/ugaljournals/index.php/mms/article/view/9903
Section
Articles