References
[1]. Srinivasan, M., and Sheng, P. (1999). “Feature-based
process planning for environmentally conscious
machining”. Robotics and Computer Integrated
Manufacturing, Vol.15, pp.257-81.
[2]. Pun, K-F., Hui, I-K., Lewis, W.G., and Lau, H.C.W. (2003).
“A multiple-criteria environmental impact assessment for
the plastic injection molding process: A methodology”.
Journal of Cleaner Production, Vol.11, pp.41-9.
[3]. Pascal Mognol, Denis Lepicart, and Nicolas Perry,
(2006). “Rapid prototyping: Energy and environment in the
spotlight”. Rapid Prototyping Journal, Vol.12, No.1, pp.26-
34.
[4]. Drizo, A., and Pegna, J., (2006). “Environmental
impacts of rapid prototyping: An overview of research to
date”. Rapid Prototyping Journal, Vol.12, No.2, pp.64-71.
[5]. Faludi, J., Bayley, C., Bhogal, S., and Iribarne M.,
(2015). “Comparing environmental impacts of additive
manufacturing vs traditional machining via life-cycle
assessment”. Rapid Prototyping Journal, Vol.21, No.1,
pp.14-33.
[6]. Thesoftlanding.com, (2016). http://thesoftlanding.
com/is-acrylonitrile-butadiene-styrene-abs-plastic-toxic/
[7]. Plasticseurope.org, (2016). http://www.plasticseurope.
org/what-is-plastic/types-of-plastics-11148/engineeringplastics/
abs.aspx
[8]. R. Anitha, R. Arunachalam, S.Radhakrishnan, P.,
(2001). “Critical parameters influencing the quality of
prototypes in fused deposition modelling”. Journal of
Materials Processing Technology, Vol.118, pp.385-388.
[9]. Akande, S.O., (2015). “Dimensional Accuracy and
Surface Finish Optimization of Fused Deposition Modelling
Parts using Desirability Function Analysis”. International
Journal of Engineering Research & Technology, ISSN: 2278-
0181, Vol.4, No.4, pp.196-202.
[10]. Onwubolu, G.C., and Rayegani, F., (2014).
“Characterization and Optimization of Mechanical
Properties of ABS Parts Manufactured by the Fused
Deposition Modelling Process”. International Journal of
Manufacturing Engineering, Vol.2014, Article ID 598531,
13 pages, doi:10.1155/2014/598531.