International journal of

ADVANCED AND APPLIED SCIENCES

EISSN: 2313-3724, Print ISSN:2313-626X

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 Volume 5, Issue 1 (January 2018), Pages: 164-169

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 Original Research Paper

 Title: Comparison of wear behavior of ABS and ABS composite parts fabricated via fused deposition modelling

 Author(s): M. N. Sudin 1, 2, *, F. R. Ramli 1, 2, M. R. Alkahari 1, 2, M. A. Abdullah 1, 2

 Affiliation(s):

 1Faculty of Mechanical Engineering, Universiti Teknikal Malaysia Melaka (UTeM), 76100 Durian Tunggal, Melaka, Malaysia
 2Center for Advanced Research on Energy (CARe), Universiti Teknikal Malaysia Melaka (UTeM), 76100 Durian Tunggal, Melaka, Malaysia

 https://doi.org/10.21833/ijaas.2018.01.022

 Full Text - PDF          XML

 Abstract:

Since, the material wear is an important phenomenon influencing the functionality of a part, this research was carried with the aims to study the friction and wear behaviour of parts made of ABS composite material by FDM. This study also compare the friction and wear behaviour of ABS composite with the existing acrylonitrile butadiene styrene (ABS) filament of the FDM machine. The experiment was carried out on the pin-on-disk apparatus according to ASTM G99-04 standard under dry sliding condition that were carried out at room temperature. The load was varied (5, 10, 15 and 20 N) at speed of 286 RPM for the run time of 3 and 5 minutes. The results shown that the applied load and run time significantly affect the wear rate, friction force and friction coefficient of the test samples. Based on the experiment, carbon fiber reinforced ABS specimens showed better wear resistance and durability comparing to pure ABS specimens. This research could be useful to develop a better wear resistance component for various fields of applications. 

 © 2017 The Authors. Published by IASE.

 This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

 Keywords: Wear behavior, FDM, Tribology, ABS composite, Friction

 Article History: Received 29 August 2017, Received in revised form 15 November 2017, Accepted 28 November 2017

 Digital Object Identifier: 

 https://doi.org/10.21833/ijaas.2018.01.022

 Citation:

 Sudin MN, Ramli FR, Alkahari MR, and Abdullah MA (2018). Comparison of wear behavior of ABS and ABS composite parts fabricated via fused deposition modelling. International Journal of Advanced and Applied Sciences, 5(1): 164-169

 Permanent Link:

 http://www.science-gate.com/IJAAS/2018/V5I1/Sudin.html

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 References (25)

  1. Boparai K, Singh R, and Singh H (2015). Comparison of tribological behaviour for Nylon6-Al-Al2O3 and ABS parts fabricated by fused deposition modelling. Virtual and Physical Prototyping, 10(2): 59-66. https://doi.org/10.1080/17452759.2015.1037402 
  2. Briscoe BJ (1983). Tribology of polymers: State of an art. In: Mittal KL (Ed.), Physicochemical aspects of polymer surfaces. Springer, Boston, USA. https://doi.org/10.1007/978-1-4615-7584-9_23 
  3. Brostow W, Dutta M, Ricardo de Souza J, Rusek P, Marcos de Medeiros A, and Ito EN (2010). Nanocomposites of poly (methyl methacrylate) (PMMA) and montmorillonite (MMT) Brazilian clay: A tribological study. Express Polymer Letters, 4(9): 570-575. https://doi.org/10.3144/expresspolymlett.2010.71 
  4. Dearn KD, Hoskins TJ, Petrov DG, Reynolds SC, and Banks R (2013). Applications of dry film lubricants for polymer gears. Wear, 298: 99-108. https://doi.org/10.1016/j.wear.2012.11.003 
  5. Equbal A, Sood AK, Toppo V, Ohdar RK, and Mahapatra SS (2010). Prediction and analysis of sliding wear performance of fused deposition modelling-processed ABS plastic parts. Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology, 224(12): 1261-1271. https://doi.org/10.1243/13506501JET835 
  6. Franklin SE (2001). Wear experiments with selected engineering polymers and polymer composites under dry reciprocating sliding conditions. Wear, 251(1): 1591-1598. https://doi.org/10.1016/S0043-1648(01)00795-5 
  7. Garg HK and Singh R (2015). Comparison of wear behavior of ABS and Nylon6—Fe powder composite parts prepared with fused deposition modelling. Journal of Central South University, 22(10): 3705-3711. https://doi.org/10.1007/s11771-015-2913-z 
  8. Gustafsson E (2013). Investigation of friction between plastic parts. M.Sc. Thesis, Chalmers University of Technology, Goteborg, Sweden.     
  9. Jia BB, Li TS, Liu XJ, and Cong PH (2007). Tribological behaviors of several polymer–polymer sliding combinations under dry friction and oil-lubricated conditions. Wear, 262(11): 1353-1359. https://doi.org/10.1016/j.wear.2007.01.011 
  10. Kalácska G, Zsidai L, Keresztes R, Tóth A, Mohai M, and Szépvölgyi J (2012). Effect of nitrogen plasma immersion ion implantation of polyamide-6 on its sliding properties against steel surface. Wear, 290: 66-73. https://doi.org/10.1016/j.wear.2012.05.011 
  11. Kato K, Bai M, Umehara N, and Miyake Y (1999). Effect of internal stress of CNx coating on its wear in sliding friction. Surface and Coatings Technology, 113(3): 233-241. https://doi.org/10.1016/S0257-8972(99)00006-7 
  12. Khan MS, Lehmann D, Heinrich G, Gohs U, and Franke R (2009). Structure-property effects on mechanical, friction and wear properties of electron modified PTFE filled EPDM composite. Express Polymer Letters, 3(1): 39-48. https://doi.org/10.3144/expresspolymlett.2009.7 
  13. Kukureka SN, Hooke CJ, Rao M, Liao P, and Chen YK (1999). The effect of fibre reinforcement on the friction and wear of polyamide 66 under dry rolling–sliding contact. Tribology International, 32(2): 107-116. https://doi.org/10.1016/S0301-679X(99)00017-1 
  14. Kulkarni MV, Elangovan K, Reddy KH, and Basappa SJ (2016). Tribological behaviours of abs and pa6 polymer-metal sliding combinations under dry friction, water absorbed and electroplated conditions. Journal of Engineering Science and Technology, 11(1): 068-084.     
  15. Mishra SB, Pattnaik R, and Mahapatra SS (2017). Parametric analysis of wear behaviour on fused deposition modelling build parts. International Journal of Productivity and Quality Management, 21(3): 375-391. https://doi.org/10.1504/IJPQM.2017.084461 
  16. Naga Raju B, Ramji K, and Prasad VSRK (2011). Studies on tribological properties of zno filled polymer nanocomposites. ARPN Journal of Engineering and Applied Sciences, 6(6): 75-82.     
  17. Singh Boparai K, Singh Boparai K, Singh R, Singh R, Singh H, and Singh H (2016). Wear behavior of FDM parts fabricated by composite material feed stock filament. Rapid Prototyping Journal, 22(2): 350-357. https://doi.org/10.1108/RPJ-06-2014-0076 
  18. Sinha SK and Briscoe BJ (2009). Polymer tribology. World Scientific, Singapore, Singapore. https://doi.org/10.1142/p560 
  19. Sood AK, Equbal A, Toppo V, Ohdar RK, and Mahapatra SS (2012). An investigation on sliding wear of FDM built parts. CIRP Journal of Manufacturing Science and Technology, 5(1): 48-54. https://doi.org/10.1016/j.cirpj.2011.08.003 
  20. Srinivas CL, Sarcar MMM, and Suman KNS (2012). Abrasive wear properties of graphite filled PA6 polymer composites. International Journal of Mechanical Engineering and Robotics Research, 1(3): 157-162.     
  21. Suresha B, Chandramohan G, Samapthkumaran P, Seetharamu S, and Vynatheya S (2006). Friction and wear characteristics of carbon-epoxy and glass-epoxy woven roving fiber composites. Journal of Reinforced Plastics and Composites, 25(7): 771-782. https://doi.org/10.1177/0731684406063540 
  22. Watanabe M, Karasawa M, and Matsubara K (1968). The frictional properties of nylon. Wear, 12(3): 185-191. https://doi.org/10.1016/0043-1648(68)90525-5 
  23. Xu L, Zhu Z, Chen G, and Qu C (2010). Effect of load and sliding velocity on tribological behaviors of aramid fiber reinforced PA1010 composites. Industrial Lubrication and Tribology, 62(1): 46-51. https://doi.org/10.1108/00368791011012461 
  24. Zhang S, Wang SB, and Mao Y (2011). Mechanical and tribological properties of PTFE composites filled with POB. Advanced Materials Research, 194: 1728-1731. https://doi.org/10.4028/www.scientific.net/AMR.194-196.1728 
  25. Zhao G, Hussainova I, Antonov M, Wang Q, Wang T, and Yung DL (2015). Effect of temperature on sliding and erosive wear of fiber reinforced polyimide hybrids. Tribology International, 82: 525-533. https://doi.org/10.1016/j.triboint.2014.01.019