双相不锈钢焊接凝固裂纹的表征

I. Varol, W.A. Baeslack III, J.C. Lippold
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引用次数: 0

摘要

研究了双相不锈钢saf2205的焊接凝固裂纹,并与交替的双相和奥氏体不锈钢进行了比较。变应变焊接性能试验表明,SAF 2205的开裂敏感性低于双相不锈钢feralium 255,但高于304型奥氏体不锈钢,后者凝固为铁素体,在焊缝熔合区表现为8号铁素体(fn8)。在变应变测试中,这三种合金诱导开裂所需的高应变水平表明,在结构焊接中通常遇到的应变水平下,这三种合金具有很高的抗凝固开裂能力。双相不锈钢和304/FN-8型不锈钢的开裂敏感性明显低于304L型不锈钢,304L型不锈钢完全凝固为奥氏体,在焊缝熔合区表现出小于fn1的开裂敏感性。采用传统的黑白和两种不同颜色金相技术对SAF 2205进行了显微组织表征,结果表明凝固裂纹与铁素体晶界有关。彩色金相也能有效地揭示熔合区的凝固组织和第二相,包括晶间和晶内的奥氏体和细小的Cr2N沉淀。对SAF 2205 varestrain样品的凝固裂纹表面进行断口分析,发现其形貌呈枝晶状和扁平状,并证实了凝固与固态的断裂机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of weld solidification cracking in a duplex stainless steel

Weld solidification cracking in the duplex stainless steel SAF 2205 has been investigated and compared with that of alternate duplex and austenitic stainless steels. Varestraint weld-ability testing showed SAF 2205 to exhibit a lower cracking susceptibility than that of the duplex stainless steel Ferralium 255 but greater than that of a Type 304 austenitic stainless steel which solidified as ferrite and exhibited Ferrite Number 8 (FN 8) in the weld fusion zone. The high augmented strain levels required to induce cracking in these three alloys during Varestraint testing indicated a high resistance to solidification cracking at strain levels normally encountered in structural weldments. Cracking susceptibilities of the duplex and Type 304/FN-8 stainless steels were appreciably lower than that of a Type 304L stainless steel which solidified entirely to austenite and exhibited less than FN 1 in the weld fusion zone.

Microstructural characterization of SAF 2205 using conventional black-and-white and two different color metallography techniques showed solidification cracks to be associated with ferrite grain boundaries. Color metallography was also effective in revealing the fusion zone solidification structure and delineating second phases, including inter- and intragranular austenite and fine Cr2N precipitates. Fractographic analysis of solidification crack surfaces from SAF 2205 Varestraint samples revealed dendritic and flat topographies, and confirmed a solidification versus solid-state cracking mechanism.

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