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热等静压工艺对25Cr型低氮双相不锈钢力学性能的影响

The Effect of Sintering Process on the Microstructure and Mechanical Properties of Hot Isostatically Pressed 25Cr Low-Nitrogen Duplex Stainless Steel

  • 摘要: 本文以25Cr型低氮双相不锈钢为研究对象,通过室温拉伸试验、显微组织表征、X射线衍射等手段,分析了热等静压温度和压强对材料力学性能的影响。结果表明,铁素体单相结构的初始粉末经不同热等静压工艺处理后,由于冷却速度缓慢导致烧结件中析出σ有害相,在提高强度的同时严重恶化了塑性,屈服强度559~605MPa的同时,延伸率仅为2.5~10.5%。不同热等静压工艺的试样经1050℃固溶热处理30min后水淬,均可以完全消除σ相,显微组织为铁素体和奥氏体两相,室温拉伸断后伸长率增加到28~34%。在1150℃热等静压的试样,随着压强增加,抗拉强度和屈服强度变化不大,断后伸长率先增加后降低。在130MPa热等静压的试样,随着热等静压温度提高,抗拉强度和屈服强度有下降趋势,但断后伸长率先增加后降低。显微组织分析结果表明,较高的热等静压温度可提高材料的致密化程度,但会导致晶粒粗化,从而降低材料强度。热等静压压强的提高则可以抑制烧结过程中晶粒长大,但过高压强会降低塑性。当铁素体平均晶粒尺寸低于10μm时,可获得强塑性匹配最佳的综合力学性能,屈服强度为547~548MPa,断后伸长率为33~34%。

     

    Abstract: This study investigates the effects of hot isostatic pressing (HIP) temperature and pressure on the microstructure and mechanical properties of 25Cr low-nitrogen duplex stainless steel. Room-temperature tensile testing, microstructural characterization, and X-ray diffraction were performed on the as-sintered and solution-treated samples. The initial ferritic powders, after HIP sintering, exhibited precipitation of the detrimental σ phase during slow furnace cooling, which enhanced strength but severely degraded ductility, yielding 559–605?MPa and 2.5–10.5% elongation. After solution treatment at 1050?°C for 30?min followed by water quenching, the σ phase was completely dissolved, producing a ferrite–austenite dual-phase microstructure and improving elongation to 28–34%. For samples sintered at 1150?°C, increasing pressure caused little variation in yield and tensile strengths, while elongation first increased and then decreased. At 130?MPa, raising the sintering temperature led to a gradual decrease in strength with elongation also showing a rise-then-fall trend. Microstructural analysis revealed that higher sintering temperatures promoted densification but induced grain coarsening, reducing strength, whereas higher pressures suppressed grain growth but excessive pressure limited ductility. Optimal combined properties were obtained when the average ferrite grain size was below 10?μm, with a yield strength of 547–548?MPa and elongation of 33–34%.

     

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