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April 15, 2026Corrosion and Materials Degradation0 citationsOpen Access

Corrosion–Cavitation Behaviour of the Extra-Low-Lead Brass CB773S in Marine Environments

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LMLourdes Merino-GalvánMBMaría V. Biezma-Moraleda

Key Points

  • The aim is to analyze how extra-low-lead brass CB773S behaves in terms of corrosion and cavitation in marine environments.
  • Conducted electrochemical corrosion tests using potentiodynamic and potentiostatic methods.
  • Performed corrosion-cavitation tests with ultrasonic cavitation in various electrolyte conditions.
  • Evaluated surface damage using stereo microscopy and scanning electron microscopy.
  • Identified preferential nucleation sites at the alpha and beta phase interfaces of brass under cavitation.
  • Noted increased pitting in artificial brackish water compared to seawater due to cavitation effects.
  • Observed selective corrosion of the Zn-rich phase, highly influenced by electrolyte and applied potential.

Abstract

This study analyses the behaviour of brass CB773S with extra-low-lead content in relation to corrosion and the corrosion–cavitation phenomenon. Electrochemical corrosion tests, both potentiodynamic and potentiostatic, as well as corrosion–cavitation tests, were conducted. Various potentials were applied to brass, alongside cavitation generated by an ultrasonic bath. Artificial seawater and artificial brackish water were used as electrolytes. Surface damage was evaluated using a stereo microscope and scanning electron microscopy. The results indicate that the interfaces between alpha and beta phases of brass serve as preferential sites for the nucleation and collapse of vapour bubbles under cavitation conditions, leading to a deep pitting, especially in artificial brackish water under this synergy. Susceptibility to a selective corrosion of the Zn-rich phase was observed, highly dependent on the test solution, as well as on the applied potential during the tests. The corrosion–cavitation synergistic damage was strongly dependent on the electrochemical parameters, particularly the applied potential, which plays a key role under cathodic protection conditions. In general, it can be concluded that low-lead brass behaviour is governed by a complex interaction between applied potential, electrolyte chemistry, microstructure, and mechanical effect. These findings provide valuable insights into brass’s performance under service conditions where corrosion and cavitation may appear simultaneously in marine environments.

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Cite This Study

Merino-Galván et al. (2026) studied this question.

synapsesocial.com/papers/69df2b65e4eeef8a2a6b062chttps://doi.org/10.3390/cmd7020025
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