选择性激光熔化
材料科学
骨整合
多孔性
生物材料
生物医学工程
皮质骨
松质骨
抗压强度
机械生物学
复合材料
弹性模量
选择性激光烧结
模数
小旋翼机
纳米技术
植入
烧结
聚合物
微观结构
外科
解剖
生物
医学
遗传学
共聚物
作者
Sahil Dhiman,Sarabjeet Singh Sidhu,Preetkanwal Singh Bains,Marjan Bahraminasab
标识
DOI:10.1108/rpj-03-2019-0057
摘要
Purpose With technology advances, metallic implants claim to improve the quality and durability of human life. In the recent decade, Ti-6Al-4V biomaterial has been additively manufactured via selective laser melting (SLM) for orthopedic applications. This paper aims to provide state-of-the-art on mechanobiology of these fabricated components. Design/methodology/approach A literature review has been done to explore the potential of SLM fabricated Ti-6Al-4V porous lattice structures (LS) as bone substitutes. The emphasize was on the effect of process parameters and porosity on mechanical and biological properties. The papers published since 2007 were considered here. The keywords used to search were porous Ti-6Al-4V, additive manufacturing, metal three-dimensional printing, osseointegration, porous LS, SLM, in vitro and in vivo . Findings The properties of SLM porous biomaterials were compared with different human bones, and bulk SLM fabricated Ti-6Al-4V structures. The comparison was also made between LS with different unit cells to find out whether there is any particular design that can mimic the human bone functionality and enhance osseointegration. Originality/value The implant porosity plays a crucial role in mechanical and biological characteristics that relies on the optimum controlled process variables and design attributes. It was also indicated that although the mechanical strength (compressive and fatigue) of porous LS is not mostly close to natural cortical bone, elastic modulus can be adjusted to match that of cortical or cancellous bone. Porous Ti-6Al-4V provide favorable bone formation. However, the effect of design variables on biological behavior cannot be fully conclusive as few studies have been dedicated to this.
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