A Modular Test Platform for Micromechanical Tensile Testing of Soft Biomaterials

Wilson Eng, Max Kim, A. Ramasubramanian, Sang Joon John Lee
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引用次数: 3

Abstract

Mechanical properties of biomaterials are difficult to characterize experimentally because many relevant biomaterials such as hydrogels are very pliable and viscoelastic. Furthermore, test specimens such as blood clots retrieved from patients tend to be small in size, requiring fine positioning and sensitive force measurement. Mechanobiological studies require fast data recording, preferably under simultaneous microscope imaging, in order to monitor events such as structural remodeling or localized rupture while strain is being applied. A low-profile tensile tester that applies prescribed displacement up to several millimeters and measures forces with resolution on the order of micronewtons has been designed and tested, using alginate as a representative soft biomaterial. 1.5% alginate (cross-linked with 0.1 M and 0.2 M calcium chloride) has been chosen as a reference material because of its extensive use in tissue engineering and other biomedical applications. Prescribed displacement control with rates between 20 μm/s and 60 μm/s were applied using a commercial low-noise nanopositioner. Force data were recorded using data acquisition and signal conditioning hardware with sampling rates as high as 1 kHz. Elongation up to approximately 10 mm and force in the range of 250 mN were measured. The data were used to extract elastic and viscoelastic parameters for alginate specimens. Another biomaterial, 2% agarose, was also tested to show versatility of the apparatus for slightly stiffer materials. The apparatus is modular such that different load cells ranging in capacity from hundreds of millinewtons to tens of newtons can be used. The apparatus furthermore is compatible with real-time microscope imaging, particle tracing, and programmable positioning sequences.
软质生物材料微力学拉伸测试的模块化测试平台
生物材料的力学性能很难通过实验表征,因为许多相关的生物材料如水凝胶都是非常柔韧和粘弹性的。此外,从患者身上提取的血凝块等测试标本往往体积较小,需要精细定位和灵敏的力测量。机械生物学研究需要快速的数据记录,最好是在同时显微镜成像下,以便在施加应变时监测结构重塑或局部破裂等事件。使用海藻酸盐作为代表性的软生物材料,设计并测试了一种低调的拉伸测试仪,可应用规定的位移达几毫米,并以微牛顿的分辨率测量力。1.5%海藻酸盐(与0.1 M和0.2 M氯化钙交联)被选择作为参考材料,因为它在组织工程和其他生物医学应用中广泛使用。使用商用低噪声纳米对位器,将速率控制在20 μm/s和60 μm/s之间。使用数据采集和信号调理硬件记录力数据,采样率高达1khz。伸长率高达约10毫米,力在250 mN的范围内进行了测量。利用这些数据提取海藻酸盐试样的弹性和粘弹性参数。另一种生物材料,2%琼脂糖,也进行了测试,以显示设备的多功能性稍硬的材料。该装置是模块化的,因此可以使用容量从数百千牛顿到数十牛顿的不同称重传感器。该装置还与实时显微镜成像、粒子跟踪和可编程定位序列兼容。
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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