Investigation of the mechanical properties of abs-based 3d printed scaffolds by using the software solidworks 2020



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INVESTIGATION OF THE MECHANICAL PROPERTIES OF ABS

Acknowledgements

We would like to express our deep gratitude to Professor İdris Kabalci and Professor Ziyodulla Yusupov, for their patient guidance, enthusiastic encouragement of this work. Our grateful thanks are also extended to Mr. Tafuuq Abdullah, who is master student of the department of Biomedical engineering of Karabuk university, Avzalbek Iminov who is staff of Yoshlar Texnoparki in Andijan, Uzbekistan for them help in finding materials, referances and doing the data analysis.



Conflicts and interest
If you will face to any conflicts during the read this
work you should know they are only my mistakes which
come from my inexperience. I will be happy if you share
about your interests on the topic by this contact,
dilmurod.juraev.92@gmail.com

References


[1].Fabrication of polylactic acid (PLA)-based porous scaffold through the
combination of traditional bio-fabrication and 3D printing technology for
bone regeneration
Xiaqing Zhou a,b, Gan Zhou b, Radoslaw Junka a, Ningxiao Chang b, Aneela Anwar a,c,
Haoyu Wang a,b, Xiaojun Yu a,*
2.https://en.wikipedia.org/wiki/Acrylonitrile_butadiene_styrene#3D_Printing
3.https://www.polycase.com/techtalk/materials/abs-plastic.html
4.https://plasticextrusiontech.net/resources/what-is-abs-material

[5] K.J. Burg, S. Porter, J.F. Kellam, Biomaterial developments for bone tissue engineering, Biomaterials 21 (23) (2000) 2347–2359.


[6] V.M. Goldberg, S. Stevenson, Natural history of autografts and allografts, Clin. Clin. Orthop. Related Res. 225 (1987) 7–16.
[7] R.R. Pelker, G.E. Friedlaender, Biomechanical aspects of bone autografts and allografts, Orthop. Clin. N. Am. 18 (2) (1987) 235–239.
[8] X. Liu, P.X. Ma, Polymeric scaffolds for bone tissue engineering, Ann. Biomed. Eng. 32 (3) (2004) 477–486.
[9] S. Bose, M. Roy, A. Bandyopadhyay, Recent advances in bone tissue engineering scaffolds, Trends Biotechnol. 30 (10) (2012) 546–554.
[10] A. Rakovsky, I. Gotman, E. Rabkin, E.Y. Gutmanas, В-TCP–polylactide composite scaffolds with high strength and enhanced permeability prepared by a modified salt leaching method, J. Mech. Behav. Biomed. Mater. 32 (2014) 89–98.
[11] H.J. Kim, I.K. Park, J.H. Kim, C.S. Cho, M.S. Kim, Gas foaming fabrication of porous biphasic calcium phosphate for bone regeneration, Tissue Eng. Regen. Med. 9 (2) (2012) 63–68.
[12] N. Thadavirul, P. Pavasant, P. Supaphol, Development of polycaprolactone porous scaffolds by combining solvent casting, particulate leaching, and polymer leaching techniques for bone tissue engineering, J. Biomed. Mater. Res. A 102 (10) (2014)
3379–3392.
[13] R. Akbarzadeh, A.-M. Yousefi, Effects of processing parameters in thermally induced phase separation technique on porous architecture of scaffolds for bone tissue engineering, J. Biomed. Mater. Res. Part B Appl. Biomater. 102 (6) (2014) 1304–1315
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