ГОСТ ISO 10993-13-2016
Библиография
[I ]ISO 13781 Poly(L-lactide) resins and fabricated forms for surgical implants — In
vitro degradation testing
[2]ISO 14971 Medical devices — Application of risk management to medical devices
[3]TAKAHARA, A., et al., Effect of soft segment chemistry on the biostability of
segmented polyurethanes. I in vitro oxidation, J. Biomed. Mater. Res., 25, pp.
341-356,1991
[4]ALI, A.M., et al.,The mechanisms of oxidative degradation of biomedical polymers
by free radicals, J. Appl. Polym. Sci.,51, pp. 1389-1398, 1994
[5]BAKER, D.A., et al., Study of fatigue resistance of chemical and radiation
crosslinked medical grade ultrahigh molecular weight polyethylene, J. Biomed.
Mater. Res.,46, pp. 573-581,1999
[6]SUTHERLAND, K., et al., Degradation of biomaterials by phagocyte-derived
oxidants, J. Clin. Invest.,92, pp. 2360-2367, 1993
[7]SCHUBERT, M.A., et al., The effect of strain state on the biostability of a
poly(etherurethane urea) elastomer, J. Biomed. Mater. Res., 35, pp. 319-328,
1997
[8]ZHAO, Q., et al., Glass wool-H202/CoCI2 test system for in vitro evaluation of
biodegradative stress cracking in polyurethane elastomers, J. Biomed. Mater.
Res., 29, pp. 467-475,1995
[9]ZHAO, Q., et al., Human plasma alpha-macroglobulin promotes in vitro oxidative
stress cracking of Pellethane 2362-80A In vivo and in vitro correlations, J.
Biomed. Mater. Res., 27, pp. 379-389, 1993
[10] LYU,S., et al.,In vitro biostability evaluation of polyurethane composites in acidic,
basic, oxidative, and neutral solutions, J. Biomed. Mater. Res. Part B: Appl.
Biomater.,85B, pp. 509-518,2008
[11] PHUA, S.K, et al., Biodegradation of a polyurethane in vitro, J. Biomed. Mater.
Res., 21, pp. 231-246,1987