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Numerical Heat Transfer, Part B: Fundamentals
An International Journal of Computation and Methodology
Volume 70, 2016 - Issue 3
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Original Articles

Thermostructural multiobjective optimization of a composite sandwich panel with lattice truss cores

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Pages 233-250 | Received 26 Dec 2015, Accepted 20 Apr 2016, Published online: 17 Aug 2016

References

  • A. G. Evans, J. W. Hutchinson, and M. F. Ashby, Multi-functionality of Cellular Metal Systems, Prog. Mater. Sci., vol. 43, pp. 171–221, 1999.
  • H. N. G. Wadley, Multifunctional periodic cellular metals, Philos. Trans. R. Soc. A, vol. 364, pp. 31–68, 2006.
  • A. G. Evans, J. W. Hutchinson, N. A. Fleck, M. F. Ashby, and H. N. G. Wadley, The topological design of multifunctional cellular metals, Prog. Mater. Sci., vol. 46, pp. 309–327, 2001.
  • Y. G. Sun and L. Gao, Structural responses of all-composite improved-pyramidal truss sandwich cores, Mater. Des., vol. 43, pp. 50–58, 2013.
  • S. X. Wang, L. Z. Wu, and L. Ma, Indentation study of foam sandwich structures reinforced by fiber columns, J. Sandwich Struct. Mater., vol. 12, pp. 621–646, 2010.
  • Y. G. Sun and L. Gao, Mechanical behavior of all-composite pyramidal truss cores sandwich panels, Mech. Mater., vol. 65, pp. 56–65, 2013.
  • J. Xiong, L. Ma, S. Pan, L. Wu, J. Papadopoulos, and A. Vaziri, Shear and bending performance of carbon fiber composite sandwich panels with pyramidal truss cores, Acta. Mater., vol. 60, pp. 1455–1466, 2012.
  • J. Y. Liu, X. Zhu, T. Y. Li, Z. G. Zhou, L. Z. Wu, and L. Ma, Experimental study on the low velocity impact responses of all-composite pyramidal truss core sandwich panel after high temperature exposure, Compos. Struct., vol. 116, pp. 670–681, 2014.
  • B. Wang, L. Z. Wu, X. Jin, S. Y. Du, Y. G. Sun, and L. Ma, Experimental investigation of 3D sandwich structure with core reinforced by composite struts, Mater. Des., vol. 31, pp. 158–165, 2010.
  • L. Gao and Y. G. Sun, Fluid flow and heat transfer characteristics of composite lattice core sandwich structures, J. Thermophys. Heat Transfer, vol. 28, pp. 258–269, 2014.
  • L. Gao and Y. G. Sun, Thermal control of composite sandwich structure with lattice truss cores, J. Thermophys. Heat Transfer, vol. 29, pp. 47–54, 2015.
  • G. S. Aglietti, C. W. Schwingshackl, and S. C. Roberts, Multifunctional structure technologies for satellite applications, Shock Vib. Digest, vol. 39, pp. 381–391, 2007.
  • A. Bezazi, C. Remillat, P. Innocenti, and F Scarpa, In-plane mechanical and thermal conductivity properties of a rectangular-hexagonal honeycomb structure, Compos. Struct., vol. 84, pp. 248–255, 2008.
  • S. Gu, T. J. Lu, and A. G. Evans, On the design of two-dimensional cellular metals for combined heat dissipation and structural load capacity, Int. J. Heat Mass Transfer, vol. 44, pp. 2163–2175, 2001.
  • L. Valdevit, J. W. Hutchinson, and A. G. Evans, Structurally optimized sandwich panels with prismatic cores, Int. J. Solids Struct., vol. 41, pp. 5105–5124, 2004.
  • L. Valdevit, A. Pantano, H. A. Stone, and A. G. Evans, Optimal active cooling performance of metallic sandwich panels with prismatic cores, Int. J. Heat Mass Transfer, vol. 49, pp. 3819–3830, 2006.
  • T. Wen, F. Xu, and T. J. Lu, Structural optimization of two-dimensional cellular metals cooled by forced convection, Int. J. Heat Mass Transfer, vol. 50, pp. 2590–2604, 2007.
  • T. Liu, Z. C. Deng, and T. J. Lu, Bi-functional optimization of actively cooled, pressurized hollow sandwich cylinders with prismatic cores, J. Mech. Phys. Solids, vol. 55, pp. 2565–2602, 2007.
  • X. H. Tan and A. K. Soh, Multi-objective optimization of the sandwich panels with prismatic cores using genetic algorithms, Int. J. Solids Struct., vol. 44, pp. 5466–5480, 2007.
  • S. R. Christopher, Multiobjective optimization for design of multifunctional sandwich panel heat pipes with micro-architected truss cores, Int. J. Heat Fluid Flow, vol. 32, pp. 239–248, 2011.
  • A. J. Jacobsen, W. Barvosa-Carter, and S. Nutt, Micro-scale truss structures formed from self-propagating photopolymer waveguides, Adv. Mater., vol. 19, pp. 3892–3896, 2007.
  • D. Reay, P. Kew, and D. Reay, Heat Pipes: Theory, Design and Applications, 5th ed., chap. 4, Butterworth–Heineman, San Diego, 2006.
  • H. Chung and S. Shin, Heat transfer enhancement in a high aspect ratio channel with system optimization, Numer. Heat Transfer A Appl., vol. 63, pp. 604–622, 2013.
  • T. Kim, H. P. Hodson, and T. J. Lu, contribution of vortex structures and flow separation to local and overall pressure and heat transfer characteristics in an ultra-lightweight lattice material, Int. J. Heat Mass Transfer, vol. 48, pp. 4243–4264, 2005.
  • K. Deb, Multi-objective Optimization, in E. K. Burke and G. Kendall (eds.), Search Methodologies: Introductory Tutorials in Optimization and Decision Support Techniques, 2nd ed., chap. 15, Springer, New York, 2014.
  • V. S. Deshpande and N. A. Fleck, Collapse of truss core sandwich beams in 3-point bending, Int. J. Solids Struct., vol. 38, pp. 6275–6305, 2001.

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