Effect of Post-Cladding Annealing on Phase Evolution, Cyclic Oxidation, and Deposit-Induced Corrosion of Laser-Clad Ti–Al–C Coatings
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更新:2026-09-13 21:46:12 浏览:1次
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摘要
Deposits rich in alkali-metal chlorides and sulfates can cause severe high-temperature degradation of heat-transfer components in biomass-fired boilers. In this study, Ti–Al–C coatings were produced on grade TA2 commercially pure titanium substrates by laser cladding using elemental Ti, Al, and C powders. The optimized processing parameters were a laser power of 1.2 kW, a scanning speed of 500 mm/min, a powder feed rate of 3.22 g/min, and an overlap ratio of 40%. The as-clad coatings were subsequently vacuum-annealed at 1200 and 1300 °C for 2 h. Their phase constitution, microstructure, microhardness, cyclic oxidation behavior, and deposit-induced corrosion behavior were evaluated.
The as-clad coating was dominated by Ti3Al, with TiAl and TiC as secondary phases. Electron diffraction patterns obtained from selected interfacial regions were consistent with the local presence of antiperovskite Ti3AlC adjacent to Ti3Al. Although this observation indicated the local coexistence of Ti3AlC and Ti3Al, bulk X-ray diffraction showed that annealing increased the fraction of the Ti2AlC MAX phase at the expense of the Ti–Al intermetallic phases. The maximum microhardness increased from 448 HV0.1 in the as-clad condition to 748 HV0.1 after annealing at 1300 °C.
During cyclic oxidation for 240 h, the as-clad coating exhibited mass gains of 0.14 and 1.59 mg/cm2 at 600 and 700 °C, respectively. At 800 °C, its mass gain reached 6.63 mg/cm2 after 168 h and then decreased sharply because of oxide-scale spallation. In contrast, the coatings annealed at 1200 and 1300 °C showed no abrupt mass loss at 800 °C and exhibited final mass gains of 2.74 and 1.90 mg/cm2, respectively.
Deposit-induced corrosion tests were conducted at 600 °C for 168 h in the presence of KCl–Na2SO4 deposits and an atmosphere containing SO2, O2, and H2O. TP347H boiler steel, tested as a reference material, underwent extensive scale spallation and showed a final mass loss of 28.69 mg/cm2. In contrast, the Ti–Al–C coatings did not exhibit catastrophic spallation and retained comparatively stable corrosion-product scales. Cross-sectional analyses revealed Ti-rich outer oxides and Al-rich inner reaction layers. Annealing promoted Al transport toward the corrosion front and facilitated the development of a more continuous Al2O3-rich layer, thereby improving scale integrity. These findings demonstrate that post-cladding annealing regulates phase evolution and protective-scale formation in Ti–Al–C coatings, providing an effective approach to improving their high-temperature surface-protection performance.
关键词
laser cladding; Ti–Al–C coating; Ti2AlC MAX phase; cyclic oxidation; deposit-induced corrosion
稿件作者
Chen Pan
扬州大学
Duoli Wu
扬州大学
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