Research on Dental Ceramic Grinding: A Review

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Dental ceramics has become dominant materials used in dental restorations. Dental ceramics have several advantages, such as stable performance, good bio-compatibility, little possibility to attach plaque, and similarity to the color of permanent tooth. However complex surface characteristics and hard and brittle properties of dental ceramic materials caused difficulties in the processing and subsequent grinding. The complicated craft and high failure rate of dental ceramics greatly limit its wide application in clinical. Thus, fully understanding the special cutting tools grinding performance and researching the material damage process caused by grinding temperature and grinding force are of great significance. Research on dental ceramic grinding was reviewed in this paper. The removal mechanism of dental ceramic materials and the influence of parameters settings on the grinding force, grinding temperature, and the surface quality have been studied. Besides the existing problems in dental ceramic grinding technology were pointed out.

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1106-1113

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May 2016

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] L. Yin, Study on the restoration of physical simulation and mechanism of oral-dental ceramic grinding, National Natural Science Foundation of China (2005).

Google Scholar

[2] L. A. Flanders, J. B. Quinn, O. C. Wilson Jr, etc., Scratch hardness and chipping of dental ceramics under different environments, Dental Materials, (2003)716-724.

DOI: 10.1016/s0109-5641(03)00018-6

Google Scholar

[3] S. Malkin, T.W. Hwang, Grinding Mechanisms for ceramics [J], Annal of the CIRP. (1996).

Google Scholar

[4] G Warneche, C Barth, Optimization of the Dynamic Behavior of Grinding Wheels for Grinding of hard and Brittle Materials Using the Finite Element Method [J]. Annals of the CIRP, 1999, 48(1): 261-264.

DOI: 10.1016/s0007-8506(07)63179-5

Google Scholar

[5] HanZhenlu, Experimental investigation into material removal mechanism of Nano-ZrO2 dental ceramic grinding, Chinese mechanical engineering. l24(2013) 1150-1154.

Google Scholar

[6] L. Yin, Property–process relations in simulated clinical abrasive adjusting of dental ceramics, journal of the mechanical behavior of biomedical materials. 16 (2012) 55–65.

DOI: 10.1016/j.jmbbm.2012.07.011

Google Scholar

[7] Chee W. Chang Cracking of Porcelain Surfaces Arising from Abrasive Grinding with a Dental Air Turbine Journal of Prosthodontics. 20 (2011) 613–620.

DOI: 10.1111/j.1532-849x.2011.00760.x

Google Scholar

[8] Han Yigang, Study on In Vitro High Efficient Removal Mechanism of Ceramic Prostheses in Dental Surgery. (2007).

Google Scholar

[9] Dongkun Zhang, Grinding model and material removal mechanism of medical nanometer zirconia ceramics recent patents on nanotechnology. 8(2014).

DOI: 10.2174/1872210507666131117183502

Google Scholar

[10] L. Yin, In Vitro Study on High Rotation Deep Removal of Ceramic Prostheses in Dental Surgery, Journal of Biomedical Materials Research Part B: Applied Biomaterials(2006).

Google Scholar

[11] Xiao-Fei Song, Cutting characteristics of dental glass ceramics during in vitro dental abrasive adjusting using a high-speed electric handpiece. Ceramics International. 39 (2013) 6237–6249.

DOI: 10.1016/j.ceramint.2013.01.045

Google Scholar

[12] Bao Le, Grinding simulation and experimental study of the medical zirconia ceramic(2014).

Google Scholar

[13] Peng Jianhui, Experimental and numerical study on force and temperature in dental grinding of bioceramics(2011).

Google Scholar

[14] Xiao-Fei Song, Surface morphology and fracture in handpiece adjusting of a leucite-reinforced glass ceramic with coarse diamond burs, Materials Science and Engineering A. 534 (2012) 193– 202.

DOI: 10.1016/j.msea.2011.11.058

Google Scholar

[15] Xiao-Fei Song, In-process assessment of dental cutting of a leucite-reinforced glass–ceramic, Medical Engineering & Physics. 31 (2009) 214–220.

DOI: 10.1016/j.medengphy.2008.07.010

Google Scholar

[16] Xiaobao Lei, Grinding dental prosthesis using partial sintered zirconia ceramics, Journal of Chongqing University. 34(2011) 80-85.

Google Scholar

[17] Z. Kan, study on rotary ultrasonic machining of sintered zirconia dental ceramics, Journal of synthetic crystals. 42(2013) 1864-1869.

Google Scholar

[18] J. SINDEL, A Evaluation of subsurface damage in CAD/CAM machined dental ceramics, Journal of materials science: materials in medicine 9 (1998) 291- 295.

Google Scholar

[19] Hockin H. K. Xu Effect of microstructure on damage tolerance in grinding dental glass-ceramics, Journal of materials research. 13(1998) 2231-2236.

DOI: 10.1557/jmr.1998.0312

Google Scholar

[20] H. Hocheng, Surface Finish in Machining of Dental Ceramics Materials Science Forum. 505-507 (2006) 1231-1236.

DOI: 10.4028/www.scientific.net/msf.505-507.1231

Google Scholar

[21] Ralph G. Luthardt CAD/CAM-machining effects on Y-TZP zirconia Dental Materials. 20 (2004)655–662.

DOI: 10.1016/j.dental.2003.08.007

Google Scholar

[22] H. H .K. Xu, R. J. Kelley, S. Jahanmir, Enamel subsurface damage due to tooth preparation with diamonds, Journal of Dental Research. 76 (1997) 1698~1706.

DOI: 10.1177/00220345970760101201

Google Scholar

[23] L. A. Flanders, J. B. Quinn, O. C. Wilson Jr, etc., Scratch hardness and chipping of dental ceramics under different environments, Dental Materials. 19 (2003) 716~724.

DOI: 10.1016/s0109-5641(03)00018-6

Google Scholar