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Nondestructive Evaluation of Additive Manufactured Parts Using Process Compensated Resonance Testing

机译:使用工艺补偿共振测试对添加剂制造部件的无损评估

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Variations in build process parameters, post-processing parameters, and feedstock have a significant impact on the structural integrity and performance of components made with additive manufacturing (AM). Effective nondestructive testing (NDT) is critical for ensuring the structural integrity of components. Complex geometries, nonequilibrium microstructures, new process variables, and lack of clear accept or reject criteria for AM components present new challenges to NDT. Quantitative, volumetric NDT methods that can detect material defects of interest in complex geometries are required. Process compensated resonance testing (PCRT) is an NDT method that uses a swept sine input to excite the component's resonance modes of vibration. The resonance frequencies are recorded, analyzed statistically, and compared to acceptability limits established using a database of training components. The swept sine input excites whole-body vibrational modes in nearly any geometry, and the component's resonance frequencies correlate directly to its structural integrity. In this study, PCRT evaluations were performed on titanium alloy (Ti-6AI-4V) populations made with electron beam PBF and aluminum alloy (AISi10Mg) populations made with laser PBF. The evaluations were conducted in support of ASTM round-robin testing. In the Ti-6AI-4V population, PCRT showed clear resonance frequency differences between nominal specimens and off-nominal specimens with defective material states. PCRT also quantified the effects of hot isostatic pressing (HIP). PCRT pass/fail NDT of the Ti-6AI-4V population in the pre-HIP and post-HIP states demonstrated 100% accuracy. Computed tomography scans of the post-HIP specimens showed no clear indications of porosity. Follow-up tensile testing of a subset of nominal and off-nominal specimens in the post-HIP state showed that the off-nominal specimens had lower yield stresses and ultimate tensile stresses than nominal specimens. In the AISHOMg population, PCRT detected differences between recycled and virgin feedstock powder. PCRT pass/fail NDT of AISi10Mg specimens exposed to nominal and off-nominal heat treatment demonstrated 100% accuracy.
机译:构建过程参数,后处理参数和原料的变化对用添加剂制造(AM)制成的部件的结构完整性和性能产生显着影响。有效的无损检测(NDT)对于确保组件的结构完整性至关重要。复杂的几何形状,非微观结构,新的过程变量,以及AM组件缺乏明确的接受或拒绝标准对NDT产生了新的挑战。可以检测复杂几何形状中感兴趣的材料缺陷的定量,体积的NDT方法。处理补偿共振测试(PCRT)是一种NDT方法,它使用扫描正弦输入来激发组件的振动模式。记录谐振频率,统计分析,并与使用培训组件数据库建立的可接受性限制进行比较。扫掠正弦输入在几乎任何几何形状中激发全身振动模式,并且组件的谐振频率直接相关到其结构完整性。在该研究中,对用激光PBF制成的电子束PBF和铝合金(AISI10MG)群制备的钛合金(TI-6ai-4V)群进行PCRT评价。进行评估,以支持ASTM循环测试。在Ti-6ai-4V群体中,PCRT在具有有缺陷的材料状态之间的标称标本和偏压标本之间显示出明显的共振频率差异。 PCRT还量化了热等静压(臀部)的影响。 PCRT通过/失败的Ti-6ai-4V人口在臀部和后髋部态中展示了100%的精度。后髋关节标本的计算机断层扫描扫描显示出孔隙率没有明确的迹象。后髋关节状态下标称和偏压标本子集的后续拉伸试验表明,偏压标本比标称样品低屈服应力和最终拉伸应力。在Aishomg群体中,PCRT检测到回收和处于处女原料粉末之间的差异。 PCRT通过/失败NDT的AISI10MG标本暴露于标称和偏出的偏出热处理,表现出100%的精度。

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