Abstract <p>This study examines the microstructure and properties of molybdenum-containing coatings deposited by non-vacuum electron beam cladding of molybdenum and amorphous boron powder mixtures. Chromium and titanium served as alloying elements in the experiments. The resulting coatings demonstrated thicknesses of 1.5–2 mm. The Mo-B coatings with chromium additions formed chromium-alloyed α-Fe solid solution along and Fe<sub>3</sub>B-type borides, while titanium alloying produced α-Fe solid solution and Fe<sub>2</sub>B borides. The chromium-modified MoBCr coatings exhibited superior hardness and high-temperature oxidation resistance compared to titanium-containing variants. The microhardness increased by a factor of 2.5 relative to AISI 5140 steel base material. The oxidation resistance of MoBCr coatings improved twofold through formation of dense Cr<sub>2</sub>O<sub>3</sub>-based oxide films that effectively block oxygen and metal ion diffusion during oxidation processes.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Effect of Alloying on the Microstructure and Properties of Molybdenum-Containing Coatings

  • P. M. Petukhova,
  • E. G. Bushueva,
  • E. A. Pukhova,
  • J. N. Malutina,
  • V. G. Burov

摘要

Abstract

This study examines the microstructure and properties of molybdenum-containing coatings deposited by non-vacuum electron beam cladding of molybdenum and amorphous boron powder mixtures. Chromium and titanium served as alloying elements in the experiments. The resulting coatings demonstrated thicknesses of 1.5–2 mm. The Mo-B coatings with chromium additions formed chromium-alloyed α-Fe solid solution along and Fe3B-type borides, while titanium alloying produced α-Fe solid solution and Fe2B borides. The chromium-modified MoBCr coatings exhibited superior hardness and high-temperature oxidation resistance compared to titanium-containing variants. The microhardness increased by a factor of 2.5 relative to AISI 5140 steel base material. The oxidation resistance of MoBCr coatings improved twofold through formation of dense Cr2O3-based oxide films that effectively block oxygen and metal ion diffusion during oxidation processes.