增材制造商业纯钛(CPTi)有限接触动态压缩板(LC-DCP)结构的弯曲性能:表面处理的影响。

Seungjong Lee, N. Ahmad, Kayla M. Corriveau, Cameron J Himel, Daniel Silva, N. Shamsaei
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引用次数: 2

摘要

金属材料的增材制造是一种分层制造方法,由于其能够制造复杂的几何形状,包括符合患者要求的定制零件,因此目前在生物医学行业受到关注。然而,阻碍在安全关键应用中全面实施添加制造零件的主要挑战之一是它们在循环载荷下的机械性能较差。本研究基于ASTM金属骨板国际标准(ASTM F382),研究了添加制造的(AM)商业纯钛(CPTi)有限接触动态压缩板(LC-DCP)结构的准静态弯曲性能(弯曲刚度、弯曲结构刚度和弯曲强度)和弯曲疲劳性能。此外,还评估了单喷丸(SP)、双喷丸(DP)和化学辅助表面增强(CASE)等后表面处理方法对弯曲疲劳性能的影响。结果表明,AM CPTi-LC DCP的弯曲刚度和弯曲结构刚度与传统制造的CM相当;然而,AM CPTi-LC DCP的弯曲强度低于CM对应物。虽然竣工AM CPTi-LC DCP的疲劳强度低于CM DCP,但经过后表面处理(SP、DP和CASE)后的AM CPTi-LCDCP在统计上表现出与CM CPTi-LC-DCP相当的疲劳强度。
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Bending properties of additively manufactured commercially pure titanium (CPTi) limited contact dynamic compression plate (LC-DCP) constructs: Effect of surface treatment.
Additive manufacturing of metallic materials, a layer-wise manufacturing method, is currently gaining attention in the biomedical industry because of its capability to fabricate complex geometries including customized parts fitting to patient requirements. However, one of the major challenges hindering the full implementation of additively manufactured parts in safety-critical applications is their poor mechanical performance under cyclic loading. This study investigated both quasi-static bending properties (bending stiffness, bending structural stiffness, and bending strength) and bending fatigue properties of additively manufactured (AM) commercially pure titanium (CPTi) limited contact dynamic compression plate (LC-DCP) constructs based on ASTM International standard for metallic bone plates (ASTM F382). In addition, the effect of post surface treatment methods including single shot-peened (SP), dual shot-peened (DP), and chemically assisted surface enhancement (CASE) on bending fatigue performance was also evaluated. Results indicated that bending stiffness and bending structural stiffness of AM CPTi LC-DCPs are comparable to conventionally manufactured (CM) counterparts; however, the bending strength of AM CPTi LC-DCPs is lower than CM counterparts. While the fatigue strength of as-built AM CPTi LC-DCPs is lower compared to the CM counterparts, AM CPTi LC-DCPs after post surface treatments (SP, DP, and CASE) exhibit statistically comparable fatigue strength to the CM CPTi LC-DCPs.
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