Skip to main content
Top
Published in: Chinese Journal of Mechanical Engineering 2/2017

20-03-2017 | Original Article

Calibration of Discrete Element Heat Transfer Parameters by Central Composite Design

Authors: Zongquan DENG, Jinsheng CUI, Xuyan HOU, Shengyuan JIANG

Published in: Chinese Journal of Mechanical Engineering | Issue 2/2017

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

The efficiency and precision of parameter calibration in discrete element method (DEM) are not satisfactory, and parameter calibration for granular heat transfer is rarely involved. Accordingly, parameter calibration for granular heat transfer with the DEM is studied. The heat transfer in granular assemblies is simulated with DEM, and the effective thermal conductivity (ETC) of these granular assemblies is measured with the transient method in simulations. The measurement testbed is designed to test the ETC of the granular assemblies under normal pressure and a vacuum based on the steady method. Central composite design (CCD) is used to simulate the impact of the DEM parameters on the ETC of granular assemblies, and the heat transfer parameters are calibrated and compared with experimental data. The results show that, within the scope of the considered parameters, the ETC of the granular assemblies increases with an increasing particle thermal conductivity and decreases with an increasing particle shear modulus and particle diameter. The particle thermal conductivity has the greatest impact on the ETC of granular assemblies followed by the particle shear modulus and then the particle diameter. The calibration results show good agreement with the experimental results. The error is less than 4%, which is within a reasonable range for the scope of the CCD parameters. The proposed research provides high efficiency and high accuracy parameter calibration for granular heat transfer in DEM.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference TIAN Y, TANG D W, DENG Z Q, et al. Drilling power consumption and soil conveying volume performances of lunar sampling auger[J]. Chinese Journal of Mechanical Engineering, 2015, 28(3): 451–459. TIAN Y, TANG D W, DENG Z Q, et al. Drilling power consumption and soil conveying volume performances of lunar sampling auger[J]. Chinese Journal of Mechanical Engineering, 2015, 28(3): 451–459.
2.
go back to reference CUI J S, HOU X Y, ZHAO D M. Experimental research on temperature rise of bit in drilling normal and low temperature lunar soil simulant[J]. Applied Mechanics and Materials, 2013, 373: 2008–2014. CUI J S, HOU X Y, ZHAO D M. Experimental research on temperature rise of bit in drilling normal and low temperature lunar soil simulant[J]. Applied Mechanics and Materials, 2013, 373: 2008–2014.
3.
go back to reference YASUNOBU K, TAKEO S, MASAYUKI H. DEM simulation of fluidized beds for gas-phase olefin polymerization[J]. Chemical Engineering Science, 1999, 54(24): 5809–5821. YASUNOBU K, TAKEO S, MASAYUKI H. DEM simulation of fluidized beds for gas-phase olefin polymerization[J]. Chemical Engineering Science, 1999, 54(24): 5809–5821.
4.
go back to reference LI J, MASON D J. A computational investigation of transient heat transfer in pneumatic transport of granular particles[J]. Powder Technology, 2000, 112(3): 273–282. LI J, MASON D J. A computational investigation of transient heat transfer in pneumatic transport of granular particles[J]. Powder Technology, 2000, 112(3): 273–282.
5.
go back to reference VARGAS W L, MCCARTHY J J. Heat conduction in granular materials[J]. AICHE Journal, 2001, 47(5): 1052–1059. VARGAS W L, MCCARTHY J J. Heat conduction in granular materials[J]. AICHE Journal, 2001, 47(5): 1052–1059.
6.
go back to reference VARGAS W L, MCCARTHY J J. Stress effects on the Conductivity of particulate beds[J]. Chemical Engineering Science, 2002, 57(15): 3119–3131. VARGAS W L, MCCARTHY J J. Stress effects on the Conductivity of particulate beds[J]. Chemical Engineering Science, 2002, 57(15): 3119–3131.
7.
go back to reference VARGAS W L, MCCARTHY J J. Conductivity of granular media with stagnant interstitial fluids via thermal particle dynamics simulation[J]. International Journal of Heat and Mass Transfer, 2002, 45(24): 4847–4856. VARGAS W L, MCCARTHY J J. Conductivity of granular media with stagnant interstitial fluids via thermal particle dynamics simulation[J]. International Journal of Heat and Mass Transfer, 2002, 45(24): 4847–4856.
8.
go back to reference VARGAS W L, MCCARTHY J J. Thermal expansion effects and heat conduction in granular materials[J]. Physical Review E, 2007, 76(4): 041301.1–041301.8. VARGAS W L, MCCARTHY J J. Thermal expansion effects and heat conduction in granular materials[J]. Physical Review E, 2007, 76(4): 041301.1–041301.8.
9.
go back to reference CHAUDHURI B, MUZZIO F J, TOMASSONE M S. Modeling of heat transfer in granular flow in rotating vessels[J]. Chemical Engineering Science, 2006, 61(19): 6348–6360. CHAUDHURI B, MUZZIO F J, TOMASSONE M S. Modeling of heat transfer in granular flow in rotating vessels[J]. Chemical Engineering Science, 2006, 61(19): 6348–6360.
10.
go back to reference Chaudhuri B, Muzzio F J, Tomassone M S. Experimentally validated computations of heat transfer in granular materials in rotary calciners[J]. Powder Technology, 2010, 198(1): 6–15. Chaudhuri B, Muzzio F J, Tomassone M S. Experimentally validated computations of heat transfer in granular materials in rotary calciners[J]. Powder Technology, 2010, 198(1): 6–15.
11.
go back to reference SHI D, VARGAS W L, MCCARTHY, J J. Heat transfer in rotary kilns with interstitial gases[J]. Chemical Engineering Science, 2008, 63(18): 4506–4516. SHI D, VARGAS W L, MCCARTHY, J J. Heat transfer in rotary kilns with interstitial gases[J]. Chemical Engineering Science, 2008, 63(18): 4506–4516.
12.
go back to reference NGUYEN V D, COGNE C, GUESSASMA M, et al. Discrete modeling of granular flow with thermal transfer: Application to the discharge of silos[J]. Applied Thermal Engineering, 2009, 29(8): 1846–1853. NGUYEN V D, COGNE C, GUESSASMA M, et al. Discrete modeling of granular flow with thermal transfer: Application to the discharge of silos[J]. Applied Thermal Engineering, 2009, 29(8): 1846–1853.
13.
go back to reference YUN T S, EVANS T M. Three-dimensional random network model for thermal conductivity in particulate materials[J]. Computers and Geotechnics, 2010, 37(7-8): 991–998. YUN T S, EVANS T M. Three-dimensional random network model for thermal conductivity in particulate materials[J]. Computers and Geotechnics, 2010, 37(7-8): 991–998.
14.
go back to reference ZHANG H W, ZHOU Q, XING H L, et al. A DEM study on the effective thermal conductivity of granular assemblies[J]. Powder Technology, 2011, 205(1-3): 172–183. ZHANG H W, ZHOU Q, XING H L, et al. A DEM study on the effective thermal conductivity of granular assemblies[J]. Powder Technology, 2011, 205(1-3): 172–183.
15.
go back to reference ZHOU Q, ZHANG H W, ZHENG Y G. A homogenization technique for heat transfer in periodic granular materials[J]. Advanced Powder Technology, 2012, 23(1): 104–114. ZHOU Q, ZHANG H W, ZHENG Y G. A homogenization technique for heat transfer in periodic granular materials[J]. Advanced Powder Technology, 2012, 23(1): 104–114.
16.
go back to reference COETZEE C J, ELS D N J. Calibration of discrete element parameters and the modelling of silo discharge and bucket filling[J]. Computers and Electronics in Agriculture, 2009, 65(2): 198–212. COETZEE C J, ELS D N J. Calibration of discrete element parameters and the modelling of silo discharge and bucket filling[J]. Computers and Electronics in Agriculture, 2009, 65(2): 198–212.
17.
go back to reference CAO M Y, DONG G J, ZHAO C C. Research on pressure-transfer characteristics in the solid granulemedium forming based on the discrete element method[J]. Journal of Mechanical Engineering, 2011, 47(14): 62–69. CAO M Y, DONG G J, ZHAO C C. Research on pressure-transfer characteristics in the solid granulemedium forming based on the discrete element method[J]. Journal of Mechanical Engineering, 2011, 47(14): 62–69.
18.
go back to reference COETZEE C J, ELS D N J, DYMOND G F. Discrete element parameter calibration and the modelling of dragline bucket filling[J]. Journal of Terramechanics, 2010, 47(1): 33–44. COETZEE C J, ELS D N J, DYMOND G F. Discrete element parameter calibration and the modelling of dragline bucket filling[J]. Journal of Terramechanics, 2010, 47(1): 33–44.
19.
go back to reference FRANKOWSKI P, MORGENEYER M. Calibration and validation of DEM rolling and sliding friction coefficients in angle of repose and shear measurements[C]//Proceedings of the 7th International Conference on Micromechanics of Granular Media, Sydney, Australia, July 8–12, 2013: 851–854. FRANKOWSKI P, MORGENEYER M. Calibration and validation of DEM rolling and sliding friction coefficients in angle of repose and shear measurements[C]//Proceedings of the 7th International Conference on Micromechanics of Granular Media, Sydney, Australia, July 8–12, 2013: 851–854.
20.
go back to reference YOON J. Application of experimental design and optimization to PFC model calibration in uniaxial compression simulation[J]. International journal of Rock Mechanics and Mining Sciences, 2007, 44 (6): 871–889. YOON J. Application of experimental design and optimization to PFC model calibration in uniaxial compression simulation[J]. International journal of Rock Mechanics and Mining Sciences, 2007, 44 (6): 871–889.
21.
go back to reference FAVIER J, CURRY D, LAROCHE R. Calibration of DEM material models to approximate bulk particle characteristics[C]//6th World Congress on Particle Technology, Nuremberg, Germany, April 26–29, 2010. FAVIER J, CURRY D, LAROCHE R. Calibration of DEM material models to approximate bulk particle characteristics[C]//6th World Congress on Particle Technology, Nuremberg, Germany, April 26–29, 2010.
22.
go back to reference JOHNSTONE M, OOI J. Calibration of DEM models using rotating drum and confined compression measurements[C]//6th World Congress on Particle Technology, Nuremberg, Germany, April 26–29, 2010. JOHNSTONE M, OOI J. Calibration of DEM models using rotating drum and confined compression measurements[C]//6th World Congress on Particle Technology, Nuremberg, Germany, April 26–29, 2010.
23.
go back to reference HANLEY K J, O’SULLIVAN C, OLIVEIRA J C, et al. Application of Taguchi methods to DEM calibration of bonded agglomerates[J]. Powder Technology, 2011, 210(3): 230–240. HANLEY K J, O’SULLIVAN C, OLIVEIRA J C, et al. Application of Taguchi methods to DEM calibration of bonded agglomerates[J]. Powder Technology, 2011, 210(3): 230–240.
24.
go back to reference GIUSEPPE D R. Moon surface thermal characteristics for moon orbiting spacecraft thermal analysis[J]. Planetary and Space Science, 1995, 43(6): 835-842. GIUSEPPE D R. Moon surface thermal characteristics for moon orbiting spacecraft thermal analysis[J]. Planetary and Space Science, 1995, 43(6): 835-842.
25.
go back to reference YANG S M, TAO W Q. Heat Transfer[M]. 4th edition. Beijing: High Education Press, 2006. (in Chinese). YANG S M, TAO W Q. Heat Transfer[M]. 4th edition. Beijing: High Education Press, 2006. (in Chinese).
26.
go back to reference ZHANG T, AN Y H, DING X L. The design of vacuum test device and the study of pumping method about lunar soil simulants[J]. Journal of Beijing University of Aeronautics and Astronautics, 2015, 41(11): 2110–2115. (in Chinese). ZHANG T, AN Y H, DING X L. The design of vacuum test device and the study of pumping method about lunar soil simulants[J]. Journal of Beijing University of Aeronautics and Astronautics, 2015, 41(11): 2110–2115. (in Chinese).
27.
go back to reference DRAPER N R, LIN D K J. Small Response-Surface Designs[J]. Technometrics, 1990, 32(2): 187–194. DRAPER N R, LIN D K J. Small Response-Surface Designs[J]. Technometrics, 1990, 32(2): 187–194.
Metadata
Title
Calibration of Discrete Element Heat Transfer Parameters by Central Composite Design
Authors
Zongquan DENG
Jinsheng CUI
Xuyan HOU
Shengyuan JIANG
Publication date
20-03-2017
Publisher
Chinese Mechanical Engineering Society
Published in
Chinese Journal of Mechanical Engineering / Issue 2/2017
Print ISSN: 1000-9345
Electronic ISSN: 2192-8258
DOI
https://doi.org/10.1007/s10033-017-0072-x

Other articles of this Issue 2/2017

Chinese Journal of Mechanical Engineering 2/2017 Go to the issue

Premium Partners