Mehta S M, De Santos D R, Sridhar S, Aguayo V C, Meraz C A, Mikos M, Grande-Allen K J
Department of Bioengineering, Rice University, Houston, TX, 77005.
Department of Mechanical Engineering, University of Texas at El Paso, El Paso, TX 79968.
Exp Tech. 2022 Oct;46(5):731-743. doi: 10.1007/s40799-021-00513-w. Epub 2021 Sep 28.
Most commercially-available mechanical testing devices are bulky, expensive, and unable to evaluate changes in sample microstructure under load. This leaves a crucial gap in understanding between material structure and bulk mechanical properties. Our objective was to fabricate a mechanical testing device small enough to fit in most upright or inverted microscopy stages and able to position samples to allow for simultaneous mechanical and microstructural characterization. Parts were 3D printed using the hobbyist-friendly Fused Filament Fabrication technique, then assembled with commercial fasteners and translation components to create a mechanical testing device that utilized the deflection of plastic posts to determine sample reaction forces under applied strain. Video of sample deformation was analyzed using a custom processing script to calculate stress and strain behavior in an automated and high-throughput manner. This device was able to perform mechanical characterization with an accuracy comparable to commercial mechanical testing devices for a wide range of nonlinear and viscoelastic samples under dry and hydrated conditions. Additionally, the device showed compatibility with different upright and inverted microscopes and was able to demonstrate accurate mechanical testing results when used with these instruments. We successfully developed a device capable of accurately testing a majority of soft materials in the field of Biomedical Engineering with the ability to perform additional microstructural characterization using microscopy at a price point of $600.
大多数商用机械测试设备体积庞大、价格昂贵,且无法评估负载下样品微观结构的变化。这在理解材料结构与整体力学性能之间留下了关键差距。我们的目标是制造一种机械测试设备,其体积小到足以适配大多数正立或倒置显微镜载物台,并能够对样品进行定位,以便同时进行力学和微观结构表征。部件采用对业余爱好者友好的熔丝制造技术进行3D打印,然后用商用紧固件和平移部件进行组装,以制造出一种机械测试设备,该设备利用塑料柱的挠度来确定施加应变下样品的反作用力。使用自定义处理脚本分析样品变形视频,以自动且高通量的方式计算应力和应变行为。该设备能够对各种非线性和粘弹性样品在干燥和水合条件下进行力学表征,其精度与商用机械测试设备相当。此外,该设备与不同的正立和倒置显微镜兼容,并且在与这些仪器一起使用时能够展示准确的力学测试结果。我们成功开发了一种设备,能够以600美元的价格准确测试生物医学工程领域中的大多数软材料,并能够使用显微镜进行额外的微观结构表征。