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Production of corrosion-resistant 316L stainless steel clads on carbon steel using powder bed fusion-selective laser melting

机译:使用粉床融合选择性激光熔化生产耐腐蚀316L不锈钢包层

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摘要

Powder bed fusion-selective laser melting (PBF-SLM) was used to produce corrosion-resistant 316L stainless steel dads on 1018 carbon steel substrates. The PBF-SLM parameters such as laser power, laser-scanning speed, hatch spacing, and layer thickness were optimized to attain maximum clad density and a superior metallurgical bond to the substrate. Typical energy densities that are required for producing dense 3D parts (similar to)100 J/mm(3)) was inadequate for cladding operations, and a higher energy density (333-1333 J/mm(3)) was necessary to produce low-defect dads with good adherence to the substrate. A maximum clad thickness of 133.14 mu m was achieved at the lowest tested scan speed of 100 mm/s after ten layers of powder melting. The dads had lower chromium content than the 316L powder due to evaporative losses experienced during laser melting process. However, chromium contents in the range of 13-15% were successfully achieved in all cladded specimens. Increasing laser scan speeds had a negative impact on the nanoindentation hardness of the dads; however, the clad hardness at all scan speeds was found to be higher than AISI 316L SS. Electrochemical tests showed that the corrosion properties of dads produced at low laser scan speeds were comparable to AISI 316L SS.
机译:粉末床熔融选择性激光熔化(PBF-SLM)被用来生产耐腐蚀的316L不锈钢爸爸上1018个碳素钢基底上。的PBF-SLM参数,例如激光功率,激光扫描速度,舱口间距和层厚进行了优化,以获得最大的包层的密度和优良的冶金结合到基底上。所需用于产生密的三维部件(类似)100J /毫米(3))的典型的能量密度是不充分的用于包覆操作,以及更高的能量密度(333-1333焦耳/毫米(3))是必要的,以产生低-defect爸爸具有良好的粘附在基材上。粉末熔化的十层后的133.14微米最大包层厚度以100mm的最低测试扫描速度达到/秒。的父亲由于在激光熔化过程中经历蒸发损失有铬含量比316L粉末低。然而,在13-15%范围内的铬含量在所有覆标本均成功实现。增加激光的扫描速度对所述爸爸的纳米压痕硬度产生负面影响;然而,在所有的扫描速度的包发现硬度比AISI 316L不锈钢高。电化学测试显示,在低激光扫描速度产生爸爸的腐蚀特性比得上AISI 316L SS。

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