DOI QR코드

DOI QR Code

Particle Morphology Behavior and Milling Efficiency by DEM Simulation during Milling Process for Composites Fabrication by Traditional Ball Mill on Various Experimental Conditions - Effect of Rotation Speed, Ball Size, and Ball Material

전동볼밀의 복합재 제조공정에서 각종 실험조건에 따른 입자형상 변화 및 DEM 시뮬레이션을 통한 밀링 효율의 고찰 - 회전속도, 매체크기, 매체재질의 영향

  • Bor, Amgalan (Engineering Research Center (ERC) for Integrated Mechatronics Materials and Components, Changwon National University) ;
  • Batchuulun, Ichinkhorloo (Engineering Research Center (ERC) for Integrated Mechatronics Materials and Components, Changwon National University) ;
  • Jargalsaikhan, Battsetseg (Engineering Research Center (ERC) for Integrated Mechatronics Materials and Components, Changwon National University) ;
  • Lee, Jehyun (Engineering Research Center (ERC) for Integrated Mechatronics Materials and Components, Changwon National University) ;
  • Choi, Heekyu (Graduate School of Material Science Engineering, Changwon National University)
  • Received : 2017.10.16
  • Accepted : 2018.01.03
  • Published : 2018.04.01

Abstract

This study was investigated the effect of the morphology change of copper (Cu) powders under the different rotational speed and milling time by using three kinds of grinding media with different size and materials, and performed DEM simulations of ball behavior. In order to clarify the mechanism of grinding by three - dimensional simulations of the ball behavior in a traditional ball mill, the force, kinetic energy, and medium velocity of the grinding media were calculated. In the simulation, the amount of change of the input energy was also calculated by adjusting the rotational speed, ball material, kinetic velocity, and friction coefficient in the same as the actual experimental conditions. The scanning electron microscope results show that the particle morphology changes from irregular to spherical when the ball size is small.

이 연구는 각각 크기와 재질이 다른 3 가지 종류의 분쇄 매체를 이용하여 회전속도와 밀링 시간의 따른 구리 (Cu) 분말의 형상변화의 과정에 미치는 영향을 관찰하고, 볼 움직임의 DEM시뮬레이션을 행하였다. 전동볼밀에서 볼 움직임의 3차원 시뮬레이션을 통해 분쇄 메커니즘을 규명하기 위하여 분쇄매체의 힘, 운동에너지, 매체 운동속도 등을 계산하였다. 시뮬레이션에서는 회전속도, 볼 재질, 운동속도, 마찰계수 등을 실제 실험조건과 동일하게 조건을 맞추어 투입되는 에너지의 변화량도 계산하였다. 주사전자현미경 결과를 살펴보면 볼 직경이 작을 때 입자형상이 불규칙한 형태에서 구형 형태로 변화하는 것을 알 수 있었다.

Keywords

References

  1. Lee, G. G., Hashimoto, H. and Watanabe, R., "Development of Particle Morphology during Dry Ball Milling of Cu Powder," Mater. Trans., JIM., 36, 548-554(1995). https://doi.org/10.2320/matertrans1989.36.548
  2. Chikosha, S., Shabalala, T. C. and Chikwanda, H. K.,"Effect of Particle Morphology and Size on Roll Compaction of Ti-Based Powders," Powder Technol., 264, 310-319(2014). https://doi.org/10.1016/j.powtec.2014.05.033
  3. Pavlovic, M. G., Pavlovic, Lj. J., Maksimovic, V. M., Nikolic, N. D. and Popov, K. I., "Characterization and Morphology of Copper Powder Particles as a Function of Different Electrolytic Regimes," Int. J. ElectroChemical Sci., 5, 1862-1878(2010).
  4. Mikli, V., Kaerdi, H., Kulu, P. and Besterci, M., "Characterization of Powder Particle Morphology," Proc. Estonian Acad. Sci. Eng., 7(1), 22-34(2001).
  5. Choi, H., Lee, W., Kim D. U., Kumar, S., Ha, J., Kim, S. S. and Lee, J. H., "A Comparative Study of Particle Size Analysis in Fine Powder: The Effect of a Polycomponent Particulate System," Korean J. Chemical Eng., 26, 300-305(2009). https://doi.org/10.1007/s11814-009-0052-7
  6. Xiao, L., Yonglin, G., Deyu, Q., Bohua, D., Hanxing, L. and Daoping, T., "Influence of Particle Sizes and Morphologies on the ElectroChemical Performances of Spinel $LiMn_2O_4$ Cathode Materials," J. Power Sources., 225, 286-292(2013). https://doi.org/10.1016/j.jpowsour.2012.10.070
  7. Bagheri, G. H., Bonadonna, C., Manzella, I. and Vonlanthen, P., "On the Charaterization of Size and Shape of Irregular Particles," Powder Technol,, 270 141-153(2015). https://doi.org/10.1016/j.powtec.2014.10.015
  8. Pons, M. N., Vivier, H., Belaroui, K., Bernard-Michel, B., Cordier, F., Oulhana, D. and Dodds, J. A., "Particle Morphology: from Visualization to Measurement," Powder Technol., 103, 44-57(1999). https://doi.org/10.1016/S0032-5910(99)00023-6
  9. Uddin, S. M., Mahmud, T., Wolf, C., Glanz, C., Kolaric, I., Volkmer, C., Holler, H., Wienecke, U., Roth, S. and Fecht, H.,"Effect of Size and Shape of Metal Particle to Improve Hardness and Electrical Properties of Carbon Nanotube Reinforced Copper and Copper Alloy Composites," Compos. Sci. Technol., 70, 2253-2257 (2010). https://doi.org/10.1016/j.compscitech.2010.07.012
  10. Chikosha, S., Shabalala, T. C. and Chikwanda, H. K., "Effect of Particle Morphology and Size on Roll Compaction of Ti-based powder," Powder Technol., 264, 310-319.
  11. Simon, J. and Kenneth P., "Particle Shape: A Review and New Methods of Characterization and Classification," Sedimentology, 55(1), 31-63(2008). https://doi.org/10.1111/j.1365-3091.2007.00892.x
  12. Batchuluun, I., Amgalan, B., Uyanga, B., Lee, J. and Choi, H., "Particle Morphology Change and Different Experimental Condition Analysis during Composites Fabrication ProCess by Con-ventional Ball Mill with Discrete Element Method (DEM) Simulation," Korean J. Mater. Res., 26(11), 611-622(2016). https://doi.org/10.3740/MRSK.2016.26.11.611
  13. Uyanga, B., Amgalan, B., Batchuluun, I., Lee, J. and Choi, H., "Analysis of Particle Morphology Change and Discrete Element Method (DEM) with Different Grinding Media in Metal-based Composite Fabrication Process Using Stirred Ball Mill," Korean Chem. Eng. Res., 55(4), 546-466(2017). https://doi.org/10.9713/KCER.2017.55.4.456
  14. Choi, H., Kim, S. and Hwang, J. Y., "Grinding Kinetics of Calcite, Pyrophyllite and Talc during Stirred Ball Milling-Consideration of Selection Function," J. Miner. SoC. Korea, 20(2), 135-145(2007).
  15. Choi, H. and Wang, L.,"A Quantitative Study of Grinding Characteristics on Particle Size and Grinding Consumption Energy by Stirred Ball Mill," Korean J. Mater. Res., 17(10), 532-537(2007). https://doi.org/10.3740/MRSK.2007.17.10.532
  16. Choi, H., Lee, W. and Kim, S.,"Effect of Grinding Aid on the Kinetics of Fine Grinding Energy Consumed of Calcite Powders by a Stirred Ball Mill," Adv. Powder Technol., 20, 305-354(2009).
  17. Choi, H. and Wang, L., "A Quantitative Study of Grinding Characteristics on Particle Size and Grinding Consumption Energy by Stirred Ball Mill," Korean J. Mater. Res., 17(10), 532-537(2007). https://doi.org/10.3740/MRSK.2007.17.10.532
  18. Choi, H., Lee, W., Kim, S. and Chung, H., "Effect of the Sample Concentration on the Submicrometer Particles Produced During a Stirred Ball Milling of Calcite Powders," Int. J. Appl. Technol., 8(5), 1147-1152(2011).
  19. Sakuragi, S., Amgalan, B., Lee, J. and Choi, H., "Particle Morphology via Change of Ground Particle for Various Experimental Conditions During a Grinding ProCess by Three Kinds of Media Mills," Par. Aerosol Res., 11(1), 9-19(2015). https://doi.org/10.11629/jpaar.2015.11.1.009
  20. Amgalan, B., Sakuragi, S., Lee, J. and Choi, H., "Comparative Study for Standardization of Grinding Equipment During Dry Grinding ProCess by Various Grinding Mills," Korean J. Mater. Res., 25(6), 305-316(2015). https://doi.org/10.3740/MRSK.2015.25.6.305
  21. Park, Y. H., Jeong, H. Y., Lee, B. W., Kim, S. K., Kim, W. Y. and Bae, C. H., "An Analysis of Mechanical Alloying ProCess of Vibratory Ball Milling by Model Simulation," Korean Inst. Met. Mater., 34(7), 896-907(1996).
  22. Ryu, H., "Simulation Balls' Motion and Kinetic Energy in a Tumbling Ball Mill," Korean J. Mater. Res., 7(4), 339-346(1997).
  23. Mori, H., Mio, H., Kano, J. and Saito, F., "Ball Mill Simulation in Wet Grinding Using a Tumbling Mill and Its Correlation to Grinding Rate," Powder Technol., 143, 230-239(2004).
  24. Kim, S. S., Park, G. T., Chung, H. S. and Choi, H. K., "Power Calculation for a Stirrer Ball Mill Using DEM Simulation," Korean SoC. Mech. Eng., 5, 154-157(2008).
  25. Cho, H. C., "Preparation of Ultra-fine Powder by Grinding," Powder Engineering Summer Workshop, 16, 54-64(2002).
  26. Jayasundara, C. T., Yang, R.Y. and Yu, A. B., "Effect of the Size of Media on Grinding Performance in Stirred Ball Mills," Miner. Eng., 33, 66-71(2012). https://doi.org/10.1016/j.mineng.2011.10.012

Cited by

  1. Effect of Different Milling Media for Surface Coating on the Copper Powder Using Two Kinds of Ball Mills with Discrete Element Method Simulation vol.10, pp.9, 2020, https://doi.org/10.3390/coatings10090898