首页> 外文期刊>Journal of Thermal Spray Technology >Finite Element Analysis and Failure Mode Characterization of Pyramidal Fin Arrays Produced by Masked Cold Gas Dynamic Spray
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Finite Element Analysis and Failure Mode Characterization of Pyramidal Fin Arrays Produced by Masked Cold Gas Dynamic Spray

机译:掩蔽式冷气动态喷涂产生的金字塔形翅片阵列的有限元分析和失效模式表征

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This work evaluates the shear strength of pyramidal fin arrays made from various feedstock materials (cylindrical aluminum, spherical nickel, and cylindrical stainless steel 304 powders) deposited on an Al6061-T6 substrate. Higher shear strength was measured for the nickel fin array followed by the stainless steel 304 and the aluminum arrays. Different failure modes were observed by inspecting the fracture surfaces under Scanning Electron Microscope. Deposition between the cold sprayed nickel and stainless fins was detected whereas dimples were noticed on the substrate between the fins when aluminum is used as the feedstock material. A numerical simulation of normal and angled impacts using the high strain rate Preston-Tonks-Wallace model was carried out in order to have a better understanding of the experimental results. The equivalent plastic strain (PEEQ) obtained from the finite element analysis at normal impact correlates with the different shear strengths measured experimentally. Furthermore, even if a higher PEEQ was observed for angled impacts compared to its normal collision counterpart, it is suggested that the particles may not bond because of the rotational restitution momentum caused by the tangential friction generated during angled impacts. This rotational restitution momentum was not detected for particle impacts normal to the substrate surface.
机译:这项工作评估了由沉积在Al6061-T6基材上的各种原料(圆柱形铝,球形镍和圆柱形不锈钢304粉末)制成的金字塔形翅片阵列的剪切强度。对于镍翅片阵列,其次是不锈钢304和铝阵列,测量到较高的剪切强度。通过在扫描电子显微镜下检查断裂表面观察到了不同的失效模式。当将铝用作原料时,检测到冷喷涂镍翅片和不锈钢翅片之间的沉积,而在翅片之间的基板上发现了凹痕。为了更好地理解实验结果,使用高应变率Preston-Tonks-Wallace模型进行了法向和角度冲击的数值模拟。从法向冲击的有限元分析获得的等效塑性应变(PEEQ)与实验测得的不同剪切强度相关。此外,即使与正常的碰撞对应物相比,在倾斜冲击中观察到更高的PEEQ,也表明粒子可能不会粘结,因为在倾斜冲击过程中产生的切向摩擦会导致旋转恢复动量。对于垂直于基材表面的颗粒撞击,未检测到该旋转恢复动量。

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