<p>The corrosion behavior and mechanism of α phase and δ phase of a dual-phase bronze alloy with tin segregation in a weakly alkaline archeological soil environment (Xi’an, China) for one year were studied. The element distribution and phase composition in the bronze substrate were analyzed by metallographic microscopy, XRD and EPMA. The corrosion products, cross-sectional micromorphology, corrosion weight loss and electrochemical tests were performed on the samples after the test. The results showed that the bronze substrate was composed of α(I) and (δ + α(II)) eutectoid, and α(I) was segregated. During the corrosion process, the surface of the sample first turned reddish brown at the beginning of the corrosion process and gradually turned into dark green with days. The corrosion tendency inside the substrate was α phase segregation &gt; α phase branches &gt; δ phase. In the early burial stage, the corrosion products were mainly Cu<sub>2</sub>O, Cu<sub>2</sub>(OH)<sub>2</sub>CO<sub>3</sub>, Cu<sub>2</sub>(OH)<sub>3</sub>Cl, SnO<sub>2</sub> and PbO. The corrosion products were mainly Cu<sub>2</sub>(OH)<sub>3</sub>Cl and PbCO<sub>3</sub> in the later burial stage. The DFT calculation was used to study the crucial role of O<sub>2</sub> in the soil corrosion of segregation dual-phase alloy, and its corrosion mechanism in weakly alkaline soil environment was explained.</p>

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Initial Corrosion Behavior of Dual-Phase Bronze with Tin Segregation in Weakly Alkaline Soil Environment

  • Xiuyuan Wang,
  • Herong Zhou,
  • Zhiheng Fan,
  • Jiachang Chen,
  • Xiao Zhou,
  • Jingrui Shi,
  • Jialiang Song,
  • Kui Xiao

摘要

The corrosion behavior and mechanism of α phase and δ phase of a dual-phase bronze alloy with tin segregation in a weakly alkaline archeological soil environment (Xi’an, China) for one year were studied. The element distribution and phase composition in the bronze substrate were analyzed by metallographic microscopy, XRD and EPMA. The corrosion products, cross-sectional micromorphology, corrosion weight loss and electrochemical tests were performed on the samples after the test. The results showed that the bronze substrate was composed of α(I) and (δ + α(II)) eutectoid, and α(I) was segregated. During the corrosion process, the surface of the sample first turned reddish brown at the beginning of the corrosion process and gradually turned into dark green with days. The corrosion tendency inside the substrate was α phase segregation > α phase branches > δ phase. In the early burial stage, the corrosion products were mainly Cu2O, Cu2(OH)2CO3, Cu2(OH)3Cl, SnO2 and PbO. The corrosion products were mainly Cu2(OH)3Cl and PbCO3 in the later burial stage. The DFT calculation was used to study the crucial role of O2 in the soil corrosion of segregation dual-phase alloy, and its corrosion mechanism in weakly alkaline soil environment was explained.