首页> 外文会议>International Manufacturing Science and Engineering Conference >INVESTIGATION OF THE INFLUENCE OF CONSEQUENTIAL DESIGN PARAMETERS ON THE MECHANICAL PERFORMANCE OF BIODEGRADABLE BONE SCAFFOLDS, FABRICATED USING PNEUMATIC MICRO-EXTRUSION ADDITIVE MANUFACTURING PROCESS
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INVESTIGATION OF THE INFLUENCE OF CONSEQUENTIAL DESIGN PARAMETERS ON THE MECHANICAL PERFORMANCE OF BIODEGRADABLE BONE SCAFFOLDS, FABRICATED USING PNEUMATIC MICRO-EXTRUSION ADDITIVE MANUFACTURING PROCESS

机译:后果设计参数对生物降解骨支架机械性能影响的调查,采用气动微挤压添加剂制造制造

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Pneumatic micro-extrusion (PME) is a high-resolution direct-write additive manufacturing process, which has emerged as the process of choice for tissue engineering and biofabrication of a broad spectrum of organs and tissues (e.g., bone, aortic valve, blood vessels, human ear, and nose). Despite the advantages and host of biomedical applications engendered by the PME process - including, for example, (i) accommodation of a wide range of material viscosity (enabled via thermo-pneumatic material deposition), (ⅱ) large build volume and standoff distance for tissue engineering, (ⅲ) in situ UV curing, and (ⅳ) high-resolution multimaterial deposition - there are intrinsically complex design, material, and process factors as well as interactions, which influence the functional properties of PME-fabricated tissues and organs. Consequently, investigation of the impact and interaction of each factor aligned with establishment of a physics-based, optimal material deposition regime is inevitably a burgeoning need. In this study, using the Taguchi design, the influence of four significant factors, i.e., layer height, infill density, infill pattern, and print speed, is investigated on the compression properties as well as the dimensional accuracy of polycaprolactone (PCL) bone scaffolds, fabricated using the PME process. Furthermore, a 3D, transient two-phase flow CFD model is forwarded with the aim to observe the flow of material within the deposition head as well as the micro-capillary (nozzle). The results of this study pave the way for further investigation of the bio-functional properties of bone scaffolds, e.g., biodegradation, cell proliferation and growth rate.
机译:气动微挤出(PME)是一种高分辨率的直接写入添加剂制造工艺,它被出现为组织工程和生物结缔组的选择过程,以及广泛的器官和组织(例如,骨,主动脉瓣,血管,人的耳朵和鼻子)。尽管由PME过程产生的生物医学应用的优缺点 - 包括例如(i)各种材料粘度的住宿(通过热气动材料沉积而启用),(Ⅱ)大构建体积和支座距离组织工程,(Ⅲ)原位UV固化,(ⅳ)高分辨率多沉积 - 有本质上复杂的设计,材料和过程因子以及相互作用,影响PME制造的组织和器官的功能性质。因此,对与建立物理的最佳材料沉积制度对准的每个因素的影响和相互作用的调查不可避免地是蓬勃的需求。在这项研究中,使用Taguchi设计,在压缩性能以及聚己内酯(PCL)骨支架的尺寸精度下,研究了四种重要因素,即层高,填充密度,填充图案和印刷速度的影响。 ,使用PME过程制造。此外,将3D瞬态两相流CFD模型转发,目的是观察沉积头内的材料流以及微毛细管(喷嘴)。该研究的结果铺平了进一步研究骨支架的生物功能性质的方法,例如生物降解,细胞增殖和生长速率。

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