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Investigation of Post-Processing of Additively Manufactured Nitinol Smart Springs with Plasma-Electrolytic Polishing

机译:具有等离子体电解抛光的含有尼多琳智能弹簧后加工后处理的研究

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摘要

Additive manufacturing of Nitinol is a promising field, as it can circumvent the challenges associated with its conventional production processes and unlock unique advantages. However, the accompanying surface features such as powder adhesions, spatters, ballings, or oxide discolorations are undesirable in engineering applications and therefore must be removed. Plasma electrolytic polishing (PeP) might prove to be a suitable finishing process for this purpose, but the effects of post-processing on the mechanical and functional material properties of additively manufactured Nitinol are still largely unresearched. This study seeks to address this issue. The changes on and in the part caused by PeP with processing times between 2 and 20 min are investigated using Nitinol compression springs manufactured by Laser Beam Melting. As a benchmark for the scanning electron microscope images, the differential scanning calorimetry (DSC) measurements, and the mechanical load test cycles, conventionally fabricated Nitinol springs of identical geometry with a medical grade polished surface are used. After 5 min of PeP, a glossy surface free of powder adhesion is achieved, which is increasingly levelled by further polishing. The shape memory properties of the material are retained without a shift in the transformation temperatures being detectable. The decreasing spring rate is primarily attributable to a reduction in the effective wire diameter. Consequently, PeP has proven to be an applicable and effective post-processing method for additively manufactured Nitinol.
机译:Nitinol的添加剂制造是一个有前途的领域,因为它可以避免与传统生产过程相关的挑战,并解锁独特的优势。然而,伴随的表面特征如粉末粘连,飞溅,环形或氧化物褪色是在工程应用中不希望的,因此必须被移除。等离子体电解抛光(PEP)可以证明为此目的是合适的精加工方法,但后处理对加成制造的Nitinol的机械和功能性材料性质的影响仍然很大程度上是未进行的研究。本研究旨在解决这个问题。使用由激光束熔化制造的Nitinol压缩弹簧来研究由PEP与加工时间造成的PEP的变化。作为扫描电子显微镜图像的基准,使用差示扫描量热法(DSC)测量和机械载荷试验循环,通常使用具有医疗级抛光表面的相同几何形状的镍钛合金簧。在PEP 5分钟后,实现了无粉末粘合的光泽表面,其通过进一步抛光而越来越多地调整。材料的形状记忆特性在没有可检测的变换温度的情况下没有移动。弹簧速率的降低主要是可归因于有效线径的降低。因此,PEP已被证明是一种适用和有效的镍钛醇制造的后处理方法。

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