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The mechanical response of commercially available bone simulants for quasi-static and dynamic loading

机译:用于准静态和动态载荷的市售骨模拟的机械响应

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Bone is a complex hierarchal structured material with varying porosity and mechanical properties. In particular, human cranial bone is essentially a natural composite consisting of low porosity outer and inner tables and a cancellous interior, or diploe. Experimental studies of biomechanically accurate cranial bone analogues are of high importance for biomechanical, forensics, and clinical researchers, which could improve the understanding and prevention of traumatic injury. Many reported studies use commercially available bone surrogates to draw biomechanical and forensics conclusions; however, their mechanical properties are not tabulated over a range of strain rates. This study elucidates the mechanical viability of three leading commercially available bone surrogates, i.e. Synbone, Sawbone, and Bonesim, over a large range of strain rates (10(-3) to 10(3) s(-1)). Quasi-static compression testing was conducted using a universal testing machine and a Split-Hopkinson Pressure bar system equipped with high-speed video was used to determine the dynamic mechanical behavior of these materials. Micro-computed X-ray tomography (XRT) were performed on each material to investigate their pore structures and distributions. All materials exhibited strain rate dependent strength behavior, particularly at high loading rates (= 10(3) s(-1)). The Young's modulus was found to increase with strain rate from 10(-3) to 10(-1) s(-1) for transversely and longitudinally loaded surrogate materials except for Synbone and the higher density Bonesim. The higher density Bonesim was determined to be the most suitable cranial bone simulant tested based on a combination of transverse Young's Modulus (1500 MPa), yield strength (19 MPa), ultimate strength (49 MPa), and ultimate strain (17%). These materials show limited promise for applications where the measured elastic properties and strengths are of interest.
机译:骨是一种复杂的层次结构材料,具有不同的孔隙率和机械性能。特别地,人的颅骨基本上是由低孔隙率和内部桌子和松质内部或脱气的自然复合材料。生物力学准确的颅骨类似物的实验研究对于生物力学,取证和临床研究人员来说具有很高的重要性,这可以改善创伤损伤的理解和预防。许多据报道的研究使用市售的骨代理来吸引生物力学和取证的结论;然而,它们的机械性能不是在一系列应变速率范围内制成的。该研究阐明了三个领先的市售骨代理的机械活力,即Synbone,Sawbone和Bonesim,在大范围的应变率(10(3)至10(3)次(-1))上。使用通用试验机进行准静态压缩测试,并使用配备高速视频的分体式霍普金森压力棒系统来确定这些材料的动态力学行为。对每种材料进行微计算X射线断层扫描(XRT)以研究其孔隙结构和分布。所有材料表现出应变率依赖性强度行为,特别是高负载率(& = 10(3)秒)。发现杨氏模量以应变速率从10(-3)到10(-1)S(-1)的横向和纵向加载的替代材料增加,除了Synbone和较高的密度骨骼。确定较高的密度骨骼是基于横向杨氏模量(1500MPa),屈服强度(19MPa),最终强度(49MPa)和最终菌株(17%)的组合测试的最合适的颅骨模拟剂。这些材料对于测量的弹性性能和强度是感兴趣的应用,这些材料具有有限的承诺。

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