Cryogenic Material Properties of Polycaprolactone

A. Sagar, Christopher R. Nehme, A. Saigal, Thomas P. James
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引用次数: 1

Abstract

In pursuit of research to create a synthetic tissue scaffold by a micropunching process, material properties of Polycaprolactone (PCL) in liquid nitrogen were determined experimentally. Specimens were prepared using injection molding and tested under compression to determine the stress-strain relationship of PCL below its glass transition temperature. Cryogenic conditions were maintained by keeping the PCL specimens submerged in liquid nitrogen throughout the loading cycle. Specimens of two different aspect ratios were used for testing. Yield Strength, Strength Coefficient, and Strain Hardening Exponent were determined for different specimen aspect ratios and extrapolated for the case with zero diameter to length ratio. Material properties were also determined at room temperature and compared against results available in the literature. Results demonstrate that PCL behaves in a brittle manner at cryogenic temperatures with more than ten times increase in Young’s modulus from its value at room temperature. The results were used to predict punching forces for the design of microscale hole punching dies and for validation of a microscale hole punching model that was created with a commercially available finite element software package, DEFORM 3D. The three parameters Yield Strength, Strength Coefficient, and Strain Hardening Exponent used in Ludwik’s equation to model flow stress of PCL in DEFORM 3D were determined to be 94.8 MPa, 210 MPa, and 0.54, respectively.
聚己内酯的低温材料性能
为研究微冲法制备组织支架材料,对聚己内酯(PCL)材料在液氮环境下的性能进行了实验研究。采用注射成型方法制备了PCL试样,并进行了压缩测试,以确定PCL在玻璃化转变温度下的应力-应变关系。在整个加载周期中,通过将PCL样品浸泡在液氮中来保持低温条件。采用两种不同纵横比的试样进行试验。屈服强度、强度系数和应变硬化指数在不同的试样长径比下确定,并在直径与长度比为零的情况下进行外推。材料性质也在室温下测定,并与文献中可用的结果进行比较。结果表明,PCL在低温下表现为脆性,其杨氏模量比室温时增加了十倍以上。这些结果用于预测微尺度孔冲孔模具设计的冲孔力,并用于验证用市购有限元软件包DEFORM 3D创建的微尺度孔冲孔模型。DEFORM 3D中用于模拟PCL流变应力的Ludwik方程中的屈服强度、强度系数和应变硬化指数三个参数分别为94.8 MPa、210 MPa和0.54。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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