Parameter Optimization for Biocompatible Polyamide Used …
329
9. W.Y. Yeong, C.K. Chua, Implementing additive manufacturing for medical devices: a quality
perspective, in 6th International Conference on Advanced Research in Virtual and Physical
Prototyping (VRatP, Portugal, 2014)
10. B. Song, X. Zhao, S. Li, C.J. Han, Q.S. Wei, S.F. Wen, J. Liu, Y.S. Shi, Differences in microstructure and properties between selective laser melting and traditional manufacturing for fabrication
of metal parts: a review. Frontiers Mech Eng 10(2), 111–125 (2015)
11. A. Wegner, G. Witt, Correlation of process parameters and part properties in laser sintering
using response surface modeling. Phys Procedia 39, 480–490 (2012)
12. V.D. Sagias, K.I. Giannakopoulos, C. Stergiou, Mechanical properties of 3D printed polymer
specimens. Procedia Struct Integrity 10, 85–90 (2018)
13. K.R. Ranjit, Design of Experiments Using the Taguchi Approach (John Wiley & Sons, New
York, 2001)
14. G. Taguchi, S. Chowdhury, Y. Wu, Taguchi’s Quality Engineering Handbook (Wiley, New
Jersey, 2005)
15. I.F. Ituarte, E. Coatanea, M. Salmi, J. Tuomi, J. Partanen, Additive manufacturing in production:
a study case applying technical requirements. Phys Procedia 78, 357–366 (2015)
16. N. Kumar, H. Kumar, J.S. Khurmi, Experimental investigation of process parameters for rapid
prototyping technique (selective laser sintering) to enhance the part quality of prototype by
Taguchi method. Procedia Technol 23, 352–360 (2016)
17. ISO 527-1. Plastics-Determination of tensile properties—Part 1: general principles, in
International Organization for Standardization (1214 Vernier, Geneva, Switzerland, 2012),
pp. 23
18. ISO 10993-1. Biological evaluation of medical devices—Part 1: evaluation and testing within
a risk management process, in International Organization for Standardization (1214 Vernier,
Geneva, Switzerland, 2018), pp. 41
329
9. W.Y. Yeong, C.K. Chua, Implementing additive manufacturing for medical devices: a quality
perspective, in 6th International Conference on Advanced Research in Virtual and Physical
Prototyping (VRatP, Portugal, 2014)
10. B. Song, X. Zhao, S. Li, C.J. Han, Q.S. Wei, S.F. Wen, J. Liu, Y.S. Shi, Differences in microstructure and properties between selective laser melting and traditional manufacturing for fabrication
of metal parts: a review. Frontiers Mech Eng 10(2), 111–125 (2015)
11. A. Wegner, G. Witt, Correlation of process parameters and part properties in laser sintering
using response surface modeling. Phys Procedia 39, 480–490 (2012)
12. V.D. Sagias, K.I. Giannakopoulos, C. Stergiou, Mechanical properties of 3D printed polymer
specimens. Procedia Struct Integrity 10, 85–90 (2018)
13. K.R. Ranjit, Design of Experiments Using the Taguchi Approach (John Wiley & Sons, New
York, 2001)
14. G. Taguchi, S. Chowdhury, Y. Wu, Taguchi’s Quality Engineering Handbook (Wiley, New
Jersey, 2005)
15. I.F. Ituarte, E. Coatanea, M. Salmi, J. Tuomi, J. Partanen, Additive manufacturing in production:
a study case applying technical requirements. Phys Procedia 78, 357–366 (2015)
16. N. Kumar, H. Kumar, J.S. Khurmi, Experimental investigation of process parameters for rapid
prototyping technique (selective laser sintering) to enhance the part quality of prototype by
Taguchi method. Procedia Technol 23, 352–360 (2016)
17. ISO 527-1. Plastics-Determination of tensile properties—Part 1: general principles, in
International Organization for Standardization (1214 Vernier, Geneva, Switzerland, 2012),
pp. 23
18. ISO 10993-1. Biological evaluation of medical devices—Part 1: evaluation and testing within
a risk management process, in International Organization for Standardization (1214 Vernier,
Geneva, Switzerland, 2018), pp. 41
