Accurate Stiffness Measurement of Ultralight Hollow Metallic Microlattices by Laser Vibrometry
Author:
Publisher
Springer Science and Business Media LLC
Subject
Mechanical Engineering,Mechanics of Materials,Aerospace Engineering
Link
http://link.springer.com/content/pdf/10.1007/s11340-014-9917-8.pdf
Reference16 articles.
1. Schaedler TA, Jacobsen AJ, Torrents A et al (2011) Ultralight metallic microlattices. Science 334:962–965
2. Maloney KJ, Roper CS, Jacobsen AJ, et al. (2013) Microlattices as architected thin films: Analysis of mechanical properties and high strain elastic recovery. APL Materials 1:022106–8
3. Torrents A, Schaedler TA, Jacobsen AJ et al (2012) Characterization of nickel-based microlattice materials with structural hierarchy from the nanometer to the millimeter scale. Acta Mater 60:3511–3523
4. Cleveland JP, Manne S, Bocek D, Hansma PK (1993) A nondestructive method for determining the spring constant of cantilevers for scanning force microscopy. Rev Sci Instrum 64:403–405
5. Kiesewetter L, Zhang J-M, Houdeau D, Steckenborn A (1992) Determination of young’s moduli of micromechanical thin films using the resonance method. Sensors Actuators A Phys 35:153–159
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