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Analysis of fracture toughness properties of wire + arc additive manufactured high strength low alloy structural steel components

机译:钢丝+电弧添加剂制造的高强度低合金结构钢构件的断裂韧性性能分析

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The uncertainty surrounding the fracture behaviour of CMT-WAAM deposited steel, in terms of crack tip condition (J and CTOD) needed to cause crack tip extension, has made this manufacturing technique unpopular to date. Fracture toughness parameters are crucial in the structural integrity assessment of components and structures in various industries for assessing the suitability of a manufacturing process and material. In the offshore wind industry, the EN-GJS-400-18-LT ductile cast grade for the mainframe and hub has lower fracture toughness resistance for its high strength grade. Its high weight level affects the Eigen frequency of the tower and imposes high installation cost incurred from heavy lifting equipment usage. Poor fracture toughness is currently a challenge for wind turbine manufacturers in the quest for a cleaner and cheaper energy in the form of offshore wind. In this study, CMT-WAAM is used in depositing steel components with an oscillatory and single pass deposition strategy. The effects of microstructural variation, as a result of layer by layer deposition and the layer band spacing, on the fracture resistance in the build and welding direction was shown here. The fracture mechanics and failure mode of the WAAM deposited parts were investigated. The microstructural variation, again as a result of the layer by layer deposition and the layer band spacing, are the key parameters that control the fracture toughness of WAAM steel. Anisotropic behaviour in the J(q) values was observed between both fracture orientations. The constructive transformation mechanism of the WAAM oscillatory process made way for intragranular nucleation of acicular ferrite on the Ti containing inclusion, thereby improving the toughness of the ER70S-6 deposit with a unique microstructure and J(q) value of 640kJ/m(2)
机译:围绕CMT-WAAM沉积钢的断裂行为的不确定性(导致裂纹尖端扩展所需的裂纹尖端条件(J和CTOD))使这种制造技术迄今不受欢迎。断裂韧性参数对于评估各个行业的零件和结构的结构完整性,以评估制造工艺和材料的适用性至关重要。在海上风电行业中,用于主机架和轮毂的EN-GJS-400-18-LT球墨铸钢牌号因其高强度牌号而具有较低的抗断裂韧性。它的高重量水平会影响塔的本征频率,并会因使用繁重的起重设备而导致高昂的安装成本。断裂韧性差目前对于风力涡轮机制造商来说是一个挑战,以寻求更清洁,更便宜的海上风能。在这项研究中,CMT-WAAM用于通过振荡和单程沉积策略沉积钢部件。此处显示了由于逐层沉积和层带间距而引起的微观结构变化对在构建和焊接方向上的抗断裂性的影响。研究了WAAM沉积零件的断裂力学和破坏模式。微观结构的变化,又是逐层沉积和层带间距的结果,是控制WAAM钢断裂韧性的关键参数。在两个断裂方向之间观察到J(q)值的各向异性行为。 WAAM振荡过程的建设性转变机制为针状铁素体在含Ti夹杂物上的晶内形核创造了条件,从而以独特的微观结构和640kJ / m(2)的J(q)值提高了ER70S-6镀层的韧性。

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