Cite

1. Bachhav, V.C., Aras, M.A. (2011), Zirconia-based fixed partial dentures: a clinical review, Quintessence International, 42 (2), 173-182Search in Google Scholar

2. Bińczyk F. (2003), Structural cast alloys, Wydawnictwo Politechniki Śląskiej, Gliwice.Search in Google Scholar

3. Chruściel-Nogalska M., Światłowska M., Uchacz H. (2002), Analysis of the reasons for damage of removable mucous-borne dentures anchored on the basis of clinical material, Protetyka Stomatologiczna, LII, 3, 62-166.Search in Google Scholar

4. Coray, R., Zeltner, M., Özcan, M. (2016), Fracture strength of implant abutments after fatigue testing: A systematic review and a meta-analysis, Journal of the Mechanical Behavior of Biomedical Materials, 62(1), 333-346.10.1016/j.jmbbm.2016.05.01127239815Search in Google Scholar

5. Craig R. G., Powers J. M., Wataha J. C. (2000), Dental Materials, Wydawnictwo Urban&Partner, Wrocław.Search in Google Scholar

6. Eisenburger M., Addy M. (2002), Radiological examination of dental castings – a review of the method and comparisons of the equipment, Journal of Oral Rehabilitation, 29(7), 609-614.10.1046/j.1365-2842.2002.00938.x12153448Search in Google Scholar

7. Gajdus P., Hędzelek W., Joniak S. (2002), Assessment of mechanical strength of palatal plates – cast cobalt chrome and acrylic reinforced with steel mesh, Protetyka Stomatologiczna, LII, 6, 362-367.Search in Google Scholar

8. Höland, W., Rheinberger, V., Apel, E., Ritzberger, C., Rothbrust, F., Kappert, H., Krumeich, F., Nesper, R. (2009), Future perspectives of biomaterials for dental restoration, Journal of the European Ceramic Society, 29 (7), 1291-1297.10.1016/j.jeurceramsoc.2008.08.023Search in Google Scholar

9. Höland, W., Schweiger, M., Watzke, R., Peschke, A., Kappert, H. (2008), Ceramics as biomaterials for dental restoration, Expert Review of Medical Devices, 5(6), 729-745.10.1586/17434440.5.6.72919025349Search in Google Scholar

10. Jałbrzykowski M. (2016), The influence of type and design of denture attachment on its efficiency of operation in model tests, Key. Eng. Mater., 687, 185-190.Search in Google Scholar

11. Jałbrzykowski M., Kovalova E. (2009), The problems of exploitation reliability estimation of dental prosthetics elements, Solid State Phenomena, 147-149, 794-800.10.4028/www.scientific.net/SSP.147-149.794Search in Google Scholar

12. Ritzberger, C., Apel, E., Höland, W., Peschke, A., Rheinberger, V.M. (2010), Properties and clinical application of three types of dental glass-ceramics and ceramics for CAD-CAM technologies, Materials, 3(6), 3700-3713.10.3390/ma3063700Search in Google Scholar

13. Shemtov-Yona, K., Rittel, D. (2016), Random spectrum loading of dental implants: An alternative approach to functional performance assessment, Journal of the Mechanical Behavior of Biomedical Materials, 62(1), 1-9.10.1016/j.jmbbm.2016.04.03027161957Search in Google Scholar

14. Shemtov-Yona, K., Rittel, D. (2014), Identification of failure mechanisms in retrieved fractured dental implants, Engineering Failure Analysis, 38, 58-65.10.1016/j.engfailanal.2014.01.002Search in Google Scholar

15. Surowska B. (2009), Metal biomaterials and metal-ceramics connections in dental applications, Wydawnictwo Politechniki Lubelskiej, Lublin, 9-13.Search in Google Scholar

16. Tanasić, I., Šojić, L.T., Lemić, A.M. (2014), Biomechanical interactions between bone and metal-ceramic bridges composed of different types of non-noble alloys under vertical loading conditions, Materiali in Tehnologije, 48(3), 337-341.Search in Google Scholar

17. Zhang, Z., Chen, J., Li, E., Li, W., Swain, M., Li, Q. (2016), Topological design of all-ceramic dental bridges for enhancing fracture resistance, International Journal for Numerical Methods in Biomedical Engineering, 32(6), 1, 1-13.10.1002/cnm.274926444905Search in Google Scholar

18. Żmudzki J. (2012), Material conditionings of functional efficiency of mucous-borne complete denture, Open Access Library, Volume 4/10, 1-176.Search in Google Scholar