Biomedical Engineering Reference
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Paramsothy M, Chan J, Kwok R, and Gupta M (2011a), Enhanced mechanical
response of magnesium alloy ZK60A containing Si 3 N 4 nanoparticles,
Composites Part A: Applied Science and Manufacturing, 42(12), 2093-2100.
Paramsothy M, Chan J, Kwok R, and Gupta M (2011b), Addition of CNTs to
enhance tensile/compressive response of magnesium alloy ZK60A, Composites
Part A: Applied Science and Manufacturing, 42(2), 180-188.
Park Y and Lee S M (2009), Effects of particle size on the thermal stability of
lithiated graphite anode, Electrochimica Acta, 54(12), 3339-3343.
Prasad Y V R K, Rao K P, and Gupta M (2009), Hot workability and deformation
mechanisms
in Mg/nano-Al2O3
composite, Composites Science
and
Technology, 69(7-8), 1070-1076.
Ramakrishna G and Ghosh H N (2003), Effect of particle size on the reactivity of
quantum size ZnO nanoparticles and charge-transfer dynamics with adsorbed
catechols, Langmuir, 19(7), 3006-3012.
Salvetat J P, Bonard J M, Thomson N H, Kulik A J, Forro´ L, Benoit W, and Zu L
(1999), Mechanical properties of carbon nanotubes, Applied Physics A:
Materials Science & Processing, 69(3), 255-260, DOI: 10.1007/s003390050999.
Sanaty-Zadeh A (2011), Comparison between current models for the strength of
particulate-reinforced metal matrix nanocomposites with emphasis on
consideration of Hall-Petch effect, Materials Science and Engineering A, DOI:
10.1016/j.msea.2011.10.043.
Shehata F, Fathy A, Abdelhameed M, and Moustafa S F (2009), Preparation and
properties of Al2O3 nanoparticle reinforced copper matrix composites by in situ
processing, Materials & Design, 30(7), 2756-2762.
Sherif M and Eskandarany E I (1998), Mechanical solid state mixing for synthesizing
of SiCp/Al nanocomposites, Journal of Alloys and Compounds, 279, 263-271.
Suryanarayana C, Ivanov E, and Boldyrev V V (2001), The science and technology
of mechanical alloying, Materials Science and Engineering A, 304-306, 151-158.
Tjong S C (2007), Novel nanoparticle-reinforced metal matrix composites with
enhanced mechanical properties, Advanced Engineering Materials, 9(8), 639-
652.
Tu J P, Wang N Y, Yang Y Z, Qi W X, Liu F, Zhang X B, Lu H M, and Liu M S
(2002), Preparation and properties of TiB 2 nanoparticle reinforced copper
matrix composites by in situ processing, Materials Letters, 52(6), 448-452.
Tun K S and Gupta M (2007), Improving mechanical properties of magnesium using
nano-yttria reinforcement and microwave assisted powder metallurgy method,
Composites Science and Technology, 67, 2657-2664.
Varadan V K, Pillai A S, and Mukherji D (2010), Nanoscience and nanotechnology in
engineering, USA, World Scientific.
Yamasaki T, Zheng Y J, Ogino Y, Terasawa M, Mitamura T, and Fukami T (2003),
Formation of metal-TiN/TiC nanocomposite powders by mechanical alloying
and their consolidation, Materials Science and Engineering A, 350, 168-172.
Yang Y and Li X C (2007), Ultrasonic cavitation based nanomanufacturing of bulk
aluminum matrix nanocomposites, Journal of Manufacturing Science and
Engineering, 129, 497-501.
Yang Y, Lan J, and Li X (2004), Study on bulk aluminum matrix nano-composite
fabricated by ultrasonic dispersion of nano-sized SiC particles inmolten
aluminum alloy, Materials Science and Engineering: A, 380(1-2), 378-383.
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