首页> 外文会议>International Manufacturing Science and Engineering Conference >EXPERIMENTAL AND COMPUTATIONAL ANALYSIS OF THE MECHANICAL PROPERTIES OF BIOCOMPATIBLE BONE SCAFFOLDS, FABRICATED USING FUSED DEPOSITION MODELING ADDITIVE MANUFACTURING PROCESS
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EXPERIMENTAL AND COMPUTATIONAL ANALYSIS OF THE MECHANICAL PROPERTIES OF BIOCOMPATIBLE BONE SCAFFOLDS, FABRICATED USING FUSED DEPOSITION MODELING ADDITIVE MANUFACTURING PROCESS

机译:生物相容性骨支架力学性能的实验和计算分析,使用融合沉积建模添加剂制造工艺制造

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Fused deposition modeling (FDM), a material extrusion additive manufacturing process, has emerged as a method of choice for the fabrication of polymeric tissue engineering scaffolds. The FDM process is intrinsically complex, consisting of a multitude of parameters; in addition, there are material-machine-process interactions, which inevitably influence the mechanical properties, the surface morphology, and ultimately the functional integrity of fabricated bone structures. Consequently, physics-based process characterization and optimization in the FDM process is a burgeoning need. The overarching goal of this research work is to fabricate patient-specific, biocompatible, and biodegradable bone scaffolds for the treatment of osseous defects, fractures, and diseases. In pursuit of this goal, the objectives are to: (i) investigate the influence of consequential parameters of FDM on the functional properties of fabricated femur bone structures; and (ⅱ) investigate the underlying physical phenomena behind the experimental observations using a computational finite-element model. In this study, biocompatible femur bone structures were FDM-deposited, based on a medical-grade polymer composite, composed of poly amide, polyolefin, and cellulose fibers. A new test specimen was designed, based on an X-ray micro-CT scan of a femur bone as well as the ASTM D638-14 (Type Ⅱ) standard. In addition, the experimental characterization was on the basis of a cascade approach, composed of the following experimental deigns: (i) fractional-factorial design, utilized for factor screening and identification of consequential process parameters; (ⅱ) Taguchi design, utilized for process optimization. Besides, a computational finite-element model was forwarded to investigate the underlying physical phenomena behind the experimental observations.
机译:熔融沉积建模(FDM)是一种材料挤出添加剂制造工艺,作为制造聚合物组织工程支架的选择方法。 FDM过程本质上复杂,包括多种参数;此外,存在物质 - 机器过程相互作用,这不可避免地影响机械性能,表面形态,并最终是制造的骨结构的功能完整性。因此,FDM过程中基于物理的过程表征和优化是蓬勃发展的需求。本研究工作的总体目标是制造患者特异性,生物相容性和可生物降解的骨支架,用于治疗骨缺损,骨折和疾病。追求这一目标,目标是:(i)研究FDM后果性参数对股骨结构功能性质的影响; (Ⅱ)使用计算有限元模型研究实验观测背后的潜在物理现象。在该研究中,基于医疗级聚合物复合材料,由聚酰胺,聚烯烃和纤维素纤维组成,生物相容性股骨结构是FDM沉积的。基于股骨骨的X射线微型CT扫描以及ASTM D638-14(Ⅱ型)标准,设计了一种新的试样。此外,实验表征是基于级联方法,由以下实验性转诊组成:(i)分数阶段设计,用于因子筛选和识别后果参数; (Ⅱ)TAGUCHI设计,用于过程优化。此外,转发计算有限元模型以研究实验观察背后的潜在物理现象。

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