首页> 外文学位 >Advanced characterization techniques in understanding the roles of nickel in enhancing strength and toughness of submerged arc welding high strength low alloy steel multiple pass welds in the as-welded condition.
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Advanced characterization techniques in understanding the roles of nickel in enhancing strength and toughness of submerged arc welding high strength low alloy steel multiple pass welds in the as-welded condition.

机译:先进的表征技术,用于了解镍在焊接条件下对埋弧焊高强度低合金钢多道次焊缝的强度和韧性的作用。

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摘要

Striving for higher strength along with higher toughness is a constant goal in material properties. Even though nickel is known as an effective alloying element in improving the resistance of a steel to impact fracture, it is not fully understood how nickel enhances toughness. It was the goal of this work to assist and further the understanding of how nickel enhanced toughness and maintained strength in particular for high strength low alloy (HSLA) steel submerged arc welding multiple pass welds in the as-welded condition. Using advanced analytical techniques such as electron backscatter diffraction, x-ray diffraction, electron microprobe, differential scanning calorimetry, and thermodynamic modeling software, the effect of nickel was studied with nickel varying from one to five wt. pct. in increments of one wt. pct. in a specific HSLA steel submerged arc welding multiple pass weldment. The test matrix of five different nickel compositions in the as-welded and stress-relieved condition was to meet the targeted mechanical properties with a yield strength greater than or equal to 85 ksi, a ultimate tensile strength greater than or equal to 105 ksi, and a nil ductility temperature less than or equal to -140 degrees F. Mechanical testing demonstrated that nickel content of three wt. pct and greater in the as-welded condition fulfilled the targeted mechanical properties. Therefore, one, three, and five wt. pct. nickel in the as-welded condition was further studied to determine the effect of nickel on primary solidification mode, nickel solute segregation, dendrite thickness, phase transformation temperatures, effective ferrite grain size, dislocation density and strain, grain misorientation distribution, and precipitates. From one to five wt. pct nickel content in the as-welded condition, the primary solidification was shown to change from primary delta-ferrite to primary austenite. The nickel partitioning coefficient increased and dendrite/cellular thickness was refined. Austenite decomposition temperatures into different ferrite products were also suppressed to refine the effective ferrite grain size with increasing nickel. Finally, dislocation density and strain increased and a more preferred orientation behavior was observed. At five wt. pct nickel, a precipitate in the form of MnNi3 or FeNi3 was observed. Its presence in both inter and intragranular regions enhanced strength and toughness by limiting the ferrite grain size and precipitation strengthening.
机译:追求更高的强度以及更高的韧性是材料性能的不变目标。尽管已知镍是改善钢的抗冲击断裂性的有效合金元素,但仍未完全理解镍如何增强韧性。这项工作的目的是帮助并进一步理解镍如何增强韧性和保持强度,特别是在焊接状态下的高强度低合金(HSLA)钢埋弧焊多道次焊缝中。使用先进的分析技术,例如电子反向散射衍射,x射线衍射,电子微探针,差示扫描量热法和热力学建模软件,研究了镍的影响,镍含量为1至5 wt%。 pct。以1 wt。 pct。在特定的HSLA钢埋弧焊多道焊件中。处于焊接状态且消除应力的五种不同镍成分的测试基体应满足目标机械性能,屈服强度大于或等于85 ksi,极限抗拉强度大于或等于105 ksi,并且零延性温度小于或等于-140华氏度。机械测试表明,镍含量为3 wt%。 pct和更高的焊接条件满足了目标机械性能。因此,一,三和五重量%。 pct。进一步研究了焊接条件下的镍,以确定镍对一次凝固模式,镍溶质偏析,枝晶厚度,相变温度,有效铁素体晶粒尺寸,位错密度和应变,晶粒取向不良分布和析出物的影响。从1到5重量。在焊接条件下的pct镍含量中,初次凝固显示出从初生铁素体到初生奥氏体的变化。镍分配系数增加,枝晶/晶胞厚度得到改善。随着镍含量的增加,奥氏体分解成不同铁素体产物的温度也得到了抑制,以细化有效铁素体晶粒尺寸。最后,位错密度和应变增加,并且观察到更优选的取向行为。在五重。 pct镍,以MnNi3或FeNi3的形式出现。通过限制铁素体晶粒尺寸和析出强化,它在晶粒间和晶粒内区域的存在增强了强度和韧性。

著录项

  • 作者

    Sham, Kin-Ling.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Engineering Materials Science.;Engineering General.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 201 p.
  • 总页数 201
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:58

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