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Interfacial Shear Strength Estimates of NiTi - Al Matrix Composites Fabricated via Ultrasonic Additive Manufacturing

机译:超声增材制造NiTi-Al基复合材料的界面剪切强度估计。

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The purpose of this study is to understand and improve the interfacial shear strength of metal matrix composites fabricated via very high power (VHP) ultrasonic additive manufacturing (UAM). VHP-UAM NiTi-Al composites have shown a dramatic decrease in thermal expansion compared to Al, yet thermal blocking stresses developed during thermal cycling have been found to degrade and eventually cause interface failure. Consequently, to improve understanding of the interface and guide the development of stronger NiTi-Al composites, the interface strength was investigated through the use of single fiber pullout tests. It was found that the matrix yielded prior to the interface breaking since adhered aluminum was consistently observed on all pullout samples. Additionally, measured pullout loads were utilized as an input to a finite element model for stress and shear lag analysis, which, in turn showed that the Al matrix experienced a peak shear stress near 230 MPa. This stress is above the Al matrix's ultimate shear strength of 150-200 MPa, thus this large stress corroborates with matrix failure observed during testing. The influence of various fiber surface treatments on bond mechanisms was also studied with scanning electron microscopy and energy dispersive X-ray spectroscopy.
机译:这项研究的目的是了解和提高通过超高功率(VHP)超声增材制造(UAM)制造的金属基复合材料的界面剪切强度。与Al相比,VHP-UAM NiTi-Al复合材料的热膨胀显着降低,但是发现在热循环过程中产生的热粘连应力会降低并最终导致界面失效。因此,为了提高对界面的理解并指导开发更坚固的NiTi-Al复合材料,通过使用单纤维拉拔试验研究了界面强度。发现在界面破裂之前就产生了基体,因为在所有拉出样品上都观察到了粘附的铝。此外,将测得的拉拔载荷用作有限元模型的输入,以进行应力和剪切滞后分析,进而表明Al基体在230 MPa附近经历了峰值剪切应力。该应力高于Al基体的极限抗剪强度150-200 MPa,因此,这种大应力与测试过程中观察到的基体破坏得到了证实。还使用扫描电子显微镜和能量色散X射线光谱学研究了各种纤维表面处理对粘合机理的影响。

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