Mechanics of Composite and Multi-functional Materials, Volume 6

References 1. Keller, J.: “Composite engineering to develop enabling technologies for low-cost unmanned attack aircraft” Military & Aerospace Electronics, July 11 2016. Accessed online at http://www.militaryaerospace.com/articles/2016/07/low-cost-unmanned-aircraft.html 2. Hartl, D.J., et al.: A liquid metal-based structurally embedded vascular antenna: I. Concept and multiphysical modeling. Smart Mater. Struct. 26, 25001–25015 (2017) 3. Hartl, D.J., et al.: A liquid metal-based structurally embedded vascular antenna: II. Mulitobjective and parameterized design exploration. Smart Mater. Struct. 26, 25002–25014 (2017) 4. Huff, G.H., et al.: A physically reconfigurable structurally embedded vascular antenna (SEVA). IEEE Trans. Antennas Propag., Accepted 2017 5. See http://www.cuaerospace.com/Products/VascTechMicrovascularComposites.aspx 6. Esser-Khan, A.P., et al.: Three-dimensional microvascular fiber-reinforced composite. Adv. Mater. 23(32), 3654–3658 (2011) 7. Xie, J., et al.: Study on airworthiness requirements on composite aircraft structure for transport category aircraft in FAA. Procedia Eng. 17, 270–278 (2011) 8. Wood, K.: Virtual testing of composites: Beyond make and break Composite World Nov, (2012) 9. Hoos, K., et al.: Static strength prediction in laminated composites by using discrete damage modeling. J. Compos. Mater. 51(10), 1473–1492 (2016). See http://journals.sagepub.com/toc/jcma/51/10 10. Kennedy, W.J., et al.: High-resolution mapping of thermal history in polymer nanocomposites: gold nanorods as microscale temperature sensors. ACS Appl. Mater. Interfaces. 7(50), 27624–27631 (2015) 11. Maschmann, M.R., et al.: Continuum analysis of carbon nanotube array buckling enabled by anisotropic elastic measurements and modeling. Carbon. 66, 377–386 (2014) 12. Slinker, K.A. et al.: “CNT-based artificial hair senosrs for predictable boundary layer air flow”. Advanced Materials Technologies, Accepted (2016) 13. Phillips, D.M., et al.: Detection of flow separation and stagnation points using artificial hair sensors. Smart Mater. Struct. 24, 1115026 (2015) 14. Kaman, T.M., et al.: Aerodynamic parameters for distributed heterogeneous CNT hair sensors with feedforward neural network. Bioinspir. Biomim. 11, 066006 (2016) 15. Slinker, K.A., et al.: Artificial hair sensors from structural microfibers and cnt arrays for sensing air flow or mechanical shear, 20th international conference on composite materials, Copenhagen, 19–24 July 2015 Fig. 21.5 Aero and structural parameters desired (left) and approach to providing information (right) with embedded micro-cantilever hair-like sensor (pressure sensor not discussed) [15] 21 Experimental Mechanics for Multifunctional Composites and Next Generation UAVs 221

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