Information Technology Reference
In-Depth Information
4. Issen, K.A., Casey, T.P., Dixon, D.M., Richards, M.C., Ingraham, J.P.: Characterization and
modeling of localized compaction in aluminum foam. Scripta Mater. 52, 911-915 (2005)
5. Amsterdam, E., De Hosson, J.Th.M., Onck, P.R.: Failure mechanisms of closed-cell
aluminum foam under monotonic and cyclic loading. Acta Mater 54, 4465-4472 (2006)
6. Yu, H., Guo, Z., Li, B., Yao, G., Luo, H., Liu, Y.: Research into the effect of cell diameter of
aluminum foam on its compressive and energy absorption properties. Mater. Sci. Eng. A
454-455, 542-546 (2007)
7. Deshpande, V.S., Fleck, N.A.: Isotropic constitutive models for metallic foams. J. Mech.
Phys. Solids 48, 1253-1283 (2000)
8. Ruan, D., Lu, G., Ong, L.S., Wang, B.: Triaxial compression of aluminium foams. Compos.
Sci. Technol. 67, 1218-1234 (2007)
9. Öchsner, A., Kuhn, G., Grácio, J.: Investigation of cellular solids under biaxial stress states.
Exp. Mech. 45, 325-330 (2005)
10. Hanssen, A.G., Hopperstad, O.S., Langseth, M., Ilstad, H.: Validation of constitutive models
applicable to aluminium foams. Int. J. Mech. Sci. 44, 359-406 (2002)
11. Mondal, D.P., Ramakrishnan, N., Suresh, K.S., Das, S.: On the moduli of closed-cell
aluminum foam. Scripta Mater. 57, 929-932 (2007)
12. Edwin Raj, R., Daniel, B.S.S.: Structural and compressive property correlation of closed-cell
aluminum foam. J Alloy Compd. 467, 550-556 (2009)
13. Konstantinidis, ICh., Papadopoulos, D.P., Lefakis, H., Tsipas, D.N.: Model for determining
mechanical
properties of aluminum
closed-cell
foams. Theor.
Appl. Fract.
Mech. 43,
157-167 (2005)
14. Paul, A., Ramamurty, U.: Strain rate sensitivity of a closed-cell aluminum foam. Mater. Sci.
Eng. A 281, 1-7 (2000)
15. Dannemann, K.A., Lankford Jr, J.: High strain rate compression of closed-cell aluminium
foams. Mater. Sci. Eng. A 293, 157-164 (2000)
16. Ruan, D., Lu, G., Chen, F.L., Siores, E.: Compressive behaviour of aluminium foams at low
and medium strain rates. Compos. Struct. 57, 331-336 (2002)
17. Montanini, R.: Measurement of strain rate sensitivity of aluminium foams for energy
dissipation. Int. J. Mech. Sci. 47, 26-42 (2005)
18. Yi, F., Zhu, Z., Zu, F., Hu, S., Yi, P.: Strain rate effects on the compressive property and the
energy-absorbing capacity of aluminum alloy foams. Mater. Charact. 47, 417-422 (2001)
19. Edwin Raj, R., Parameswaran, V., Daniel, B.S.S.: Comparison of quasi-static and dynamic
compression behavior of closed-cell aluminum foam. Mater. Sci. Eng. A 526, 11-15 (2009)
20. Hall, I.W., Guden, M., Yu, C.-J.: Crushing of aluminum closed cell foams: density and strain
rate effects. Scripta Mater. 43, 515-521 (2000)
21. Reu, P.L., Miller, T.J.: The application of high-speed digital image correlation. J. Strain Anal.
Eng. 43, 673-688 (2008)
22. Goglio, L., Vassoler, J.M., Peroni, M.: Measurement of longitudinal and transverse strain in
an aluminium foam. Materialwiss. Werkstofftech. Mater. Sci. Eng. Technol. 42, 342-349
(2011)
23. Miyoshi, T., Itoh, M., Akiyama, S., Kitahara, A.: ALPORAS aluminum foam: production
process, properties and applications. Adv. Eng. Mater. 2, 179-183 (2000)
24. Pan, B., Xie, H.M., Xu, B.Q., Dai, F.L.: Performance of sub-pixel registration algorithms in
digital image correlation. Meas. Sci. Technol. 17, 1615-1621 (2006)
Search WWH ::




Custom Search