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[국내논문] 치과용 초음파 스케일러/수술기 통합 시스템의 스케일링 및 절삭 시 온도 변화에 관한 연구
A Study on Temperature Changes during Bone Scaling and Cutting of Dental Ultrasonic Scaling/Surgery System 원문보기

한국기계가공학회지 = Journal of the Korean Society of Manufacturing Process Engineers, v.19 no.2, 2020년, pp.1 - 8  

사민우 (SJ TOOLS 기업부설연구소) ,  고태조 (영남대학교 기계공학부) ,  김종영 (안동대학교 기계공학과)

Abstract AI-Helper 아이콘AI-Helper

While dental clinics still use the ultrasonic scaling/surgery tool for teeth scaling and cleaning the tool's use is expanding steadily to include treatment of damaged teeth and bone tissue. In this study, a handpiece moving system (HMS) was developed to evaluate bone scaling and cutting in the field...

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AI 본문요약
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제안 방법

  • Bone scaling tests were prepared according to the experimental procedure reported in previous studies [10,12,14] , and the experiment performed at room temperature (19˚C). The cooling irrigation solution used was by distilled water stored at room temperature (19˚C).
  • . Heat generation of specimen and handpiece parts were studied by performing bone scaling and cutting tests using the Ultrasonic NX device for 2, 4, 6, 8, and 10 minutes. The amount of heat generated while operating the Ultrasonic NX device for 2, 4, 6, 8, and 10 minutes without moving test was compared to changes in heat regeneration during bone scaling and cutting at “high” setting conditions, as shown in Fig.
  • In this study, bone scaling and cutting testing was successfully carried out using a dental ultrasonic scaling/surgery system. With regard to the bone scaling and cutting times of the tested HMS, we found that increasing the working time and output will damage the bone surfaces.
  • The focus of this study was to develop a new handpiece moving system (HMS) for precision testing, and to evaluate the characterization of experimental studies like temperature distribution during bone scaling and cutting by HMS after fabricating bone specimens.
  • The surgery unit was set at “low”, “medium” and “high” conditions.
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참고문헌 (16)

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  2. Shaddox, L. M. and Walker, C., "Treating chronic periodontitis: current status, challenges, and future directions," Clinical Cosmetic Investing Dental, Vol. 2, pp. 79-91, 2010. 

  3. Kenneth, W. Aschheim, "Esthetic Dentistry: A Clinical Approach to Techniques and Materials," Book Aid International, 2014. 

  4. Vercellotti, T., "Technological Characterstics and Clinical Indications of Piezoelectric Bone Surgery," Miverva Stomatologica, Vol. 53, pp. 207-214, 2004. 

  5. Lee, J.-H., Oh, J.-M., Hong, Y. W., Kim, S. K., Paik, J. H., Lee, Y.-J., Lee, J.-B. and Lee, S.-D., “Design and Evaluation of Ultrasonic Bone Surgical Instruments for Dental Application,” Journal of the Korean Institute of Electrical and Engineers, Vol. 25, No. 12, pp. 990-995, 2012. 

  6. Hennet, P., "Piezoelectric Bone Surgery: A Review of the Literature and Potential Applications in Veterinary Oral Maxillofacial Surgery," Frontiers in Veterinary Science, Vol. 2, No. 8, 2015. 

  7. Magrin, G. L., Sigua-Rodriquez, E. A., Goulart, D. R. and Asprino, L., "Piezosurgery in Bone Augmentation Procedures Previous to Dental Implant Surgery: A Review of the Literature," The Open Dentistry Journal, Vol. 9, pp. 426-430, 2015. 

  8. Leong, T., Ashokkumar, M. and Kentish, S., “The Fundamentals of Power Ultrasound-A Review,” Acoustics Australia, Vol. 39, No. 2, pp. 54-63, 2011. 

  9. Kwon, S. J., Park, Y. J., Jun, S. H., Ahn, J.-S., Lee, I. B., Cho, B. H., Son, H. H. and Seo, D. G., “Thermal Irritation of Teeth during Dental Treatment Procedures,” Restorative Dentistry & Endodontics, Vol. 38, No. 3, pp. 105-112, 2013. 

  10. Hong, J. W., "Effect of Wear on Tooth Surface and Efficiency of New Ultrasonic Scaler Tip," School of Dentistry, Master's Degree, Seoul National University, South Korea, 2013. 

  11. Baek, S.-H., Shon, W.-J., Bae, K.-S., Kum, K.-Y., Lee, W.-C. and Park, Y.-S., "Evaluation of the Safety and Efficiency of Novel Metallic Ultrasonic Scaler Tip on Titanium Surfaces," Clinical Oral Implants Research, Vol. 23, pp. 1269-1274, 2012. 

  12. Harder, S., Wolfart, S., Mehl, C. and Kern, M., “Performance of Ultrasonic Devices for Bone Surgery and Associated Intraosseous Temperature Development,” The International Journal of Oral & Maxillofacial Implants, Vol. 24, No. 3, pp. 484-490, 2009. 

  13. Sa, M. W., Shim, H. R., Ko, T. J., Lee, J. M. and Kim, J. Y., “A Study about Experimental Evaluation of an Ultrasonic Surgery Unit for Bone Cutting,” Journal of the Korean Society of Manufacturing Process Engineers, Vol. 15, No. 1, pp. 1-7, 2016. 

  14. Lea, S. C, Felver, V, Landini, G. and Walmsley, A. D., “Ultrasonic Scaler Oscillations and Tooth-surface Defects,” Journal of Dental Research, Vol. 88, No. 3, pp. 229-234, 2009. 

  15. Cardoni, A., MacBeath, A. and Lucas, M., "Methods for Reducing Cutting Temperature in Ultrasonic Cutting of Bone," Ultrasonics, Vol. 44, pp. 37-42, 2006. 

  16. Eriksson, A. R., Albrektsson, T. and Albrektsson, B, R., “Heat Caused by Drilling Cortical Bone: Temperature Measured In Vivo in Patients and Animals,” Acta Orthopaedica Scandinavica, Vol. 55, No. 6, pp. 629-631, 1984. 

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