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Performance estimation depending on the insert size of conical picks by linear cutting test

선형절삭시험에 의한 코니컬커터의 삽입재 크기에 따른 절삭성능 평가

  • Choi, Soon-Wook (Geotechnical Engineering Research Institute, Korea Institute of Civil Engineering and Building Technology) ;
  • Kang, Tae-Ho (Geotechnical Engineering Research Institute, Korea Institute of Civil Engineering and Building Technology) ;
  • Chang, Soo-Ho (Geotechnical Engineering Research Institute, Korea Institute of Civil Engineering and Building Technology) ;
  • Lee, Cheol-Ho (Geotechnical Engineering Research Institute, Korea Institute of Civil Engineering and Building Technology) ;
  • Lee, Gyu-Phil (Geotechnical Engineering Research Institute, Korea Institute of Civil Engineering and Building Technology) ;
  • Kim, Chang-Yong (Geotechnical Engineering Research Institute, Korea Institute of Civil Engineering and Building Technology)
  • 최순욱 (한국건설기술연구원 지반연구소) ;
  • 강태호 (한국건설기술연구원 지반연구소) ;
  • 장수호 (한국건설기술연구원 지반연구소) ;
  • 이철호 (한국건설기술연구원 지반연구소) ;
  • 이규필 (한국건설기술연구원 지반연구소) ;
  • 김창용 (한국건설기술연구원 지반연구소)
  • Received : 2016.03.09
  • Accepted : 2016.03.21
  • Published : 2016.03.31

Abstract

In order to estimate the performance of a conical cutter depending on the insert size, this study measured forces acting on conical cutters with different cutter spacings, penetration depths and skew angles using slim and heavy conical cutters. When cutter spacings ranged from 12 to 27 mm, the deviations of mean cutter forces with cutter depths appeared smaller compared to other cutter spacings. When skew angle is $0^{\circ}$, the optimal S/d ratio was obtained in the range of 4 to 4.5 for which specific energy of cutting was minimized. It were usually found in the range of 1 to 5. However, when skew angle is $6^{\circ}$, the optimal S/d ratio was obtained in the range of 1 to 3. The simple comparison results shows that the performance of slim cutter was superior to that of heavy cutter, but the use of heavy cutter can be effective, considering the cutter consumption and cutter damage when the strength of the ground is high enough.

본 연구는 로드헤더 커팅헤드에 사용되는 코니컬커터의 삽입재 크기에 따른 커터작용력의 변화를 살펴보기 위하여 절삭간격과 절삭깊이, 그리고 사각을 변화시키면서 연직력, 절삭력, 구동력을 측정하였고 그 측정결과의 평균값을 사용하여 분석을 실시하였다. 절삭간격이 12~27 mm인 조건에서 절삭깊이에 따라 평균 커터작용력이 일정한 범위에서 나타났다. 사각이 $0^{\circ}$인 경우에서는 일반적으로 알려진 최적 S/d비 1~5사이인 4~4.5 조건에서 비에너지가 최소로 나타났으며, 사각이 $6^{\circ}$인 경우에서는 최적 S/d비가 좀 더 작은 1~3에서 나타났다. 단순히 시험결과에 의한 비교에서는 슬림 코니컬커터가 헤비 코니컬커터에 비해 절삭효율이 좋게 나타났지만, 대상지반의 강도가 높을 경우에 대해 커터의 소모량과 손상을 고려한다면 헤비 코니컬커터의 사용이 효과적일 것이다.

Keywords

References

  1. Asbury, B., Cigla, M., Balci, C. (2002), "Design methodology, testing and evaluation of a continuous miner cutterhead for dust reduction in underground coal mining", 2002 SME Annual Meeting, February 25-27, Phoenix, Arizona, pp. 1-8.
  2. Balci, C., Bilgin, N. (2007), "Correlative study of linear small and full-scale rock cutting tests to select mechanized excavation machines", International Journal of Rock Mechanics & Mining Sciences, Vol. 44, pp. 468-476. https://doi.org/10.1016/j.ijrmms.2006.09.001
  3. Balci, C., Demircin, M.A., Copur, H., Tuncdemir, H. (2004), "Estimation of optimum specific energy based on rock properties for assessment of roadheader performance", The Journal of The South African Institute of Mining and Metallurgy, December 2004, pp. 633-642.
  4. Chang, S.H., Choi, S.W., Park, Y.T., Lee, G.P., Bae, G.J. (2012), "Characterization of the deformation of a disc cutter in linear rock cutting test", J. of Korean Tunn. Undergr. Sp. Assoc., Vol. 14, No. 3, pp. 197-213. https://doi.org/10.9711/KTAJ.2012.14.3.197
  5. Choi, S.W., Chang, S.H., Lee, G.P., Park, Y.T. (2014b), "Performance estimation of conical picks with slim design by the linear cutting test (I): depending on attack angle variation.", J of Korean Tunn Undergr. Sp. Assoc., Vol. 16, No. 6, pp. 573-584. https://doi.org/10.9711/KTAJ.2014.16.6.573
  6. Choi, S.W., Chang, S.H., Lee, G.P., Park, Y.T. (2014c), "Performance estimation of conical picks with slim design by the linear cutting test (II): depending on skew angle variation.", J of Korean Tunn Undergr. Sp. Assoc., Vol. 16, No. 6, pp. 585-597. https://doi.org/10.9711/KTAJ.2014.16.6.585
  7. Choi, S.W., Chang, S.H., Park, Y.T., Lee, G.P., Bae, G.J. (2013), "A experimental study on the loads and temperature acting on the shaft of a disc cutter during linear rock cutting test", J. of Korean Tunn. Undergr. Sp. Assoc., Vol. 15, No. 3, pp. 237-251. https://doi.org/10.9711/KTAJ.2013.15.3.237
  8. Choi, S.W., Chang, S.H., Park, Y.T., Lee, G.P., Bae, G.J. (2014a), "Comparative analysis of cutter acting forces and axial stresses of single and double disc cutters by linear cutting test", J. of Korean Tunn. Undergr. Sp. Assoc., Vol. 16, No. 2, pp. 181-191. https://doi.org/10.9711/KTAJ.2014.16.2.181
  9. Copur, H., Balci, C., Tumac, D., Bilgin, N. (2011), "Field and laboratory studies on natural stones leading to empirical performance prediction of chain saw machines", International Journal of Rock Mechanics & Mining Sciences, Vol. 48, pp. 269-282. https://doi.org/10.1016/j.ijrmms.2010.11.011
  10. Gertsch, R. Gertsch, L., Rostami, J. (2007), "Disc cutting tests in Colorado Red Granite: Implications for TBM performance prediction", International Journal of Rock Mechanics & Mining Sciences, Vol. 44, pp. 238-246. https://doi.org/10.1016/j.ijrmms.2006.07.007
  11. Goktan, R. M., Gunes, N. (2005), "A semi-empirical approach to cutting force prediction for point-attack picks", The Journal of The South African Institute of Mining and Metallurgy, Vol. 105, April 2005, pp. 257-264.
  12. Hurt, K.G., Evans, I. (1981), "Point attack tools: an evaluation of function and use for rock cutting", Mining Engineer, Vol. 140, pp. 673-675.
  13. Kim, E., Rostami, J., Swope, C. (2012), "Full scale linear cuttting experiment to examine conical bit rotation", Journal of Mining Science, Vol. 48, No. 5, pp. 882-895. https://doi.org/10.1134/S1062739148050139
  14. Rostami, J. (1997), "Development of a force estimation model for rock fragmentation with disc cutters through theoretical and physical measurement of crushed zone pressure", Ph.D Dissertation, Colorado School of Mines, Golden, Colorado.
  15. Rostami, J. (2013), "Cutterhead design procedures andperformance evaluations for roadheader", Final report submitted to Korea Institute of Construction Technology, August 2013, Jamal Rostami Engineering Services LLC.
  16. Roxborough, F.F. (1988), "Multiple pass, subinteractive rock cutting with picks and discs", Applied Rock Engineering, Institution of Mining and Metallurgy, London, pp. 183-191.
  17. Sandvik (2010), Mineral Ground Tools - Mining, Product Catalog, http://www.miningandconstruction.sandvik.com.