热等静压(HIP) 316L型不锈钢粉末的材料特性和性能研究,以及当今国际供应链上可用的HIP加工

W. Kyffin, D. Gandy, Barry Burdett
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引用次数: 1

摘要

316L型奥氏体不锈钢粉末的热等静压(HIP)在石油和天然气行业以及最近的海军国防工业中已经建立了超过25年的制造实践。成功的ASME规范案例批准(N-834)促进了通过粉末冶金HIP (PM/HIP)为民用核部门制造316L部件。然而,许多问题往往会阻碍PM/HIP作为铸件和锻件的替代可行制造路线的采用。首先,316L的粉末规格和HIP加工参数通常由制造商自行决定。因此,HIP产品规格的细节要求更高的清晰度和定义,以获得最佳性能/再现性。其次,对比316L PM/HIP的历史数据,发现了Charpy冲击韧性性能的变化。这些差异归因于雾化粉末的氧含量,氧含量越高,产品的冲击性能越低。基于这些因素,与电力研究所(EPRI)合作,对316L商用粉末生产、封装/固结和选定的HIP参数的现状进行了系统研究。开发了316L粉末规格,主要将粉末的氧含量限制在130ppm以下。较低的氧限反映了商业粉末供应商在过去十年中为确保更高的粉末清洁度所做的改进。测试程序生成了大量基于3 × 3 × 3矩阵的测试数据:粉末供应、HIP服务提供商和HIP维持时间。所有测试坯均通过ASTM A988的规格要求和附加要求,结果在所有变量范围内都非常出色。在综合破坏性测试程序中,通过不同的HIP服务提供商制造的坯料产生了非常一致的316L材料性能。这证明了PM/HIP供应链在生产所需质量的316L材料方面的稳健性和统一性。此外,在2-8小时的保温时间内,材料的性能没有显著差异,这表明HIP工艺窗口相对于保温时间较大。值得注意的是,用一种粉末生产的材料始终具有最高的强度和夏比冲击韧性。这是由于粉末的化学成分,其特点是低氧和高氮含量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Study of the Material Properties and Performance of Hot Isostatically Pressed (HIP) Type 316L Stainless Steel Powders and HIP Processing Available From Today’s International Supply Chain
Hot Isostatic Pressing (HIP) of type 316L austenitic stainless steel powder has been an established manufacturing practice for more than twenty five years within the oil and gas sectors and more recently in the naval defence industry. The successful ASME Code Case approval (N-834) has facilitated the manufacture of 316L components via Powder Metallurgy HIP (PM/HIP) for the civil nuclear sector. However, a number of issues have tended to hinder the uptake of PM/HIP as an alternative viable manufacturing route for both castings and forgings. Firstly, the powder specification for 316L and HIP processing parameters has typically been left to the discretion of the manufacturers. As such, the finer details of HIP product specification require greater clarity and definition for optimum performance/reproducibility. Secondly, comparison of historical data for 316L PM/HIP has shown variation in the Charpy impact toughness performance. These differences have been attributed to the oxygen content of the atomised powder, with greater oxygen contents yielding product with reduced impact properties. Based on these factors, a systematic study of the current state of the art of 316L commercial powder production, encapsulation/consolidation and selected HIP parameters was undertaken in collaboration with the Electric Power Research Institute (EPRI). A 316L powder specification was developed that primarily limited the oxygen content of the powder to under 130ppm. This lower oxygen limit reflects the improvements that commercial powder suppliers have been making over the past decade to ensure greater powder cleanliness. The test programme generated a significant body of test data based on 3 × 3 × 3 matrix of: powder supply, HIP service provider and HIP sustain times. The results were excellent across the full range of variables studied with all test billets passing the specification requirements of ASTM A988 and additional imposed requirements. Very consistent 316L material properties were produced for billets manufactured via differing HIP service providers across the comprehensive destructive test programme. This demonstrates the robustness and uniformity of the PM/HIP supply chain in producing 316L material of the requisite quality. In addition, no significant difference in material properties was noted for material pressed between 2–8 hours hold time, suggesting that the HIP process window is large with respect to hold time. Of significant note was that material produced with one powder yielded material with consistently the highest strengths and Charpy impact toughness. This has been attributed to chemical composition of the powder, which featured both a low oxygen and also a high nitrogen content.
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