Fabricating a Low-Cost, Microscopy-Compatible Mechanical Testing Device

被引:0
|
作者
S. M. Mehta
D. R. De Santos
S. Sridhar
V. C. Aguayo
C. A. Meraz
M. Mikos
K. J. Grande-Allen
机构
[1] Rice University,Department of Bioengineering
[2] University of Texas at El Paso,Department of Mechanical Engineering
[3] Texas A&M,Department of Biomedical Engineering
来源
Experimental Techniques | 2022年 / 46卷
关键词
Mechanical testing; Modulus; 3D printing; Microscopy; Microstructure; Low-cost;
D O I
暂无
中图分类号
学科分类号
摘要
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.
引用
收藏
页码:731 / 743
页数:12
相关论文
共 50 条
  • [31] LOW-COST DYNAMIC TENSILE TESTING
    SCHINDLER, HJ
    VEIDT, M
    JOURNAL DE PHYSIQUE IV, 1994, 4 (C8): : 135 - 140
  • [32] MECHANICAL DESIGN OF A LOW-COST TERMINAL
    CAUZID, M
    HEWLETT-PACKARD JOURNAL, 1985, 36 (04): : 8 - 9
  • [33] Design and Testing of a Low-cost, Self-contained Wave Energy Converter Device
    Tho Nguyen
    Vong Bui
    OCEANS 2011, 2011,
  • [34] Low-cost polarization microscopy for cholesterol crystals
    Kim, Kyungmin
    Cho, Seonghee
    Kim, Taehoon
    Park, Hyoeun
    Kim, Jinmoo
    Lee, Seunghoon
    Kang, Yeonsu
    Chang, Kiyuk
    Kim, Chulhong
    IMAGING, MANIPULATION, AND ANALYSIS OF BIOMOLECULES, CELLS, AND TISSUES XVI, 2018, 10497
  • [35] A Low-Cost Mechanical Stretching Device for Uniaxial Strain of Cells: A Platform for Pedagogy in Mechanobiology
    Atcha, Hamza
    Davis, Chase T.
    Sullivan, Nicholas R.
    Smith, Tim D.
    Anis, Sara
    Dahbour, Waleed Z.
    Robinson, Zachery R.
    Grosberg, Anna
    Liu, Wendy F.
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2018, 140 (08):
  • [36] Low-Cost Device for Transcutaneous Visualization of Veins
    Goldan, Daniela
    Ursache, Teofil Ilie
    Rotariu, Cristian
    ADVANCES IN DIGITAL HEALTH AND MEDICAL BIOENGINEERING, VOL 1, EHB-2023, 2024, 109 : 343 - 349
  • [37] Low-cost device for constructing sorption isotherms
    Gibert, O.
    Meot, J. M.
    Marouze, C.
    Brouat, J.
    DRYING TECHNOLOGY, 2006, 24 (12) : 1697 - 1704
  • [38] Erratum to: A low-cost visual occlusion device
    Sangcheol Lee
    Sekee Kil
    Taewhan Kim
    Behavior Research Methods, 2014, 46 (4) : 949 - 949
  • [39] A low-cost device for cryoanesthesia of neonatal rodents
    Jamieson, Bradley B.
    Cano-Ferrer, Xavier
    Konstantinou, George
    de Launoit, Elisa
    Renier, Nicolas
    Imbert, Albane
    Kohl, Johannes
    HARDWAREX, 2023, 14
  • [40] Low-cost MR-compatible moving heart phantom
    Huber, ME
    Stuber, M
    Botnar, RM
    Boesiger, P
    Manning, WJ
    JOURNAL OF CARDIOVASCULAR MAGNETIC RESONANCE, 2000, 2 (03) : 181 - 187