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Microstructure Pitting Corrosion Resistance and Impact Toughness of Duplex Stainless Steel Underwater Dry Hyperbaric Flux-Cored Arc Welds

机译:双相不锈钢水下干式高压药芯焊丝电弧焊的组织抗点蚀性和冲击韧性

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摘要

Duplex stainless steel multi-pass welds were made at 0.15 MPa, 0.45 MPa, and 0.75 MPa pressure, simulating underwater dry hyperbaric welding by the flux-cored arc welding (FCAW) method, with welds of normal pressure as a benchmark. The purpose of this work was to estimate the effect of ambient pressure on the microstructure, pitting corrosion resistance and impact toughness of the weld metal. The microstructure measurement revealed that the ferrite content in the weld metal made at 0.45 MPa is the lowest, followed by that of 0.75 MPa and 0.15 MPa. The analysis of potentiodynamic polarization tests at 30 °C and 50 °C demonstrated that the pitting corrosion resistance depends on the phases of the lower pitting resistance equivalent numbers (PREN), secondary austenite and ferrite. The weld metal made at 0.45 MPa had the best resistance to pitting corrosion at 30 °C and 50 °C with the highest PRENs of secondary austenite and ferrite. The weld metal made at 0.15 MPa displayed the lowest pitting corrosion resistance at 30 °C with the lowest PREN of secondary austenite, while the weld metal made at 0.75 MPa was the most seriously eroded after being tested at 50 °C for the lowest PREN of ferrite, with large cluster pits seen in ferrite at 50 °C. The impact tests displayed a typical ductile-brittle transition because of the body-centered cubic (BCC) structure of the ferrite when the test temperature was lowered. All the weld metals met the required value of 34 J at −40 °C according to the ASTM A923. The highest ferrite content corresponded to the worst impact toughness, but the highest toughness value did not correspond to the greatest austenite content. With the decreasing of the test temperature, the drop value of absorbed energy was correlated to the ferrite content. Additionally, in this work, the weld metal made at 0.45 MPa had the best combined properties of pitting resistance and impact toughness.
机译:分别在0.15 MPa,0.45 MPa和0.75 MPa压力下进行双道不锈钢多道次焊缝,以药芯焊丝(FCAW)方法模拟水下干式高压焊接,并以常压焊缝为基准。这项工作的目的是评估环境压力对焊缝金属的显微组织,耐点蚀性和冲击韧性的影响。显微组织测量表明,在0.45 MPa下制成的焊接金属中的铁素体含量最低,其次是0.75 MPa和0.15 MPa。在30°C和50°C下进行的电位极化试验分析表明,耐点蚀性取决于较低的耐点蚀当量数(PREN),二次奥氏体和铁素体的相。以0.45 MPa制成的焊缝金属在30°C和50°C时具有最佳的抗点蚀性能,且二次奥氏体和铁素体的PREN最高。在0.15 MPa下制成的焊缝金属在30°C时表现出最低的耐点蚀性,而二次奥氏体的PREN最低,而在0.75 MPa下制成的焊缝金属在50°C下测试最低的PREN腐蚀最严重。铁氧体,在50°C时在铁素体中可见大的簇状凹坑。冲击测试显示出典型的延性-脆性转变,因为降低测试温度时,铁素体的体心立方(BCC)结构。根据ASTM A923,所有焊缝金属均在-40°C时满足要求的34 J值。高铁素体含量对应于最差的冲击韧性,但最高韧性值并不对应于最大奥氏体含量。随着测试温度的降低,吸收能的下降值与铁素体含量相关。此外,在这项工作中,以0.45 MPa制成的焊接金属具有最佳的抗点蚀性和冲击韧性的综合性能。

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