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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 37, 2000 - Issue 4
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Original Articles

THE EFFECTIVE THERMAL CONDUCTIVITY OF PACKED BEDS OF SPHERES FOR A FINITE CONTACT AREA

Pages 343-357 | Published online: 29 Oct 2010

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Fatih Koçyiğit, Fatih Ünal & Şermin Koçyiğit. (2020) Experimental analysis and modeling of the thermal conductivities for a novel building material providing environmental transformation. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 42:24, pages 3063-3079.
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Chang-sheng Bu, Dao-yin Liu, Xiao-ping Chen, Cai Liang, Yu-feng Duan & Lun-bo Duan. (2013) Modeling and Coupling Particle Scale Heat Transfer with DEM through Heat Transfer Mechanisms. Numerical Heat Transfer, Part A: Applications 64:1, pages 56-71.
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Shiwei Zhou & Qing Li. (2008) Computational Design of Microstructural Composites with Tailored Thermal Conductivity. Numerical Heat Transfer, Part A: Applications 54:7, pages 686-708.
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M. Ertan Taskin, AnthonyG. Dixon & E. Hugh Stitt. (2007) CFD Study of Fluid Flow and Heat Transfer in a Fixed Bed of Cylinders. Numerical Heat Transfer, Part A: Applications 52:3, pages 203-218.
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Weimin Gao, PeterD. Hodgson & Lingxue Kong. (2006) Numerical Analysis of Heat Transfer and the Optimization of Regenerators. Numerical Heat Transfer, Part A: Applications 50:1, pages 63-78.
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Articles from other publishers (29)

Wei Guo, Shuang Kuang, Deqi Pang, Zhentao Wang & Chuanping Liu. (2023) New Formula for Direct Prediction of the Effective Thermal Conductivity of the Ellipsoidal Granular Bed at High Temperatures. Industrial & Engineering Chemistry Research.
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Ayse BicerAtilla Gencer Devecioglu. (2023) Modelling for determining the thermal conductivity of porous solid materials. Magazine of Concrete Research 75:18, pages 919-926.
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Liling Mo, Xiong Zhou, Xuhong Liu, Meiyan Zhan, Yu-Jun Zhao & Jun Du. (2023) Microstructure and thermal-physical properties of hypereutectic Al-Ni alloys. Journal of Materials Research and Technology 24, pages 6227-6237.
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Atsushi Kondo, Hiroshi Matsuura & Yoshiharu Ito. (2023) Numerical Study on Effect of Contact and Interfacial Resistance on Thermal Conductivity of Dispersed Composites. Materials 16:2, pages 517.
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Mohsen Shamsaei, Alan Carter & Michel Vaillancourt. (2022) A review on the heat transfer in asphalt pavements and urban heat island mitigation methods. Construction and Building Materials 359, pages 129350.
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Yoo Kyung Go, Jungwoo Shin, Gang Chen & Cecilia Leal. (2022) Reorientation of Crystalline Block Copolymer Membranes by Phospholipid Hybridization. Chemistry of Materials 34:19, pages 8577-8592.
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Pengxiang Sui, Yan Su, Vaikuong Sin & Jane H. Davidson. (2022) Effects of Knudsen numbers on natural convection patterns of nanofluids with a sub-continuous lattice Boltzmann model. International Journal of Heat and Mass Transfer 187, pages 122541.
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Tae-Hyun Kim, Jeong-Hyeon Park, Ki Wook Jung, Jaechoon Kim & Eun-Ho Lee. (2022) Application of Convolutional Neural Network to Predict Anisotropic Effective Thermal Conductivity of Semiconductor Package. IEEE Access 10, pages 51995-52007.
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L. Chu, L. He & T.F. Fwa. (2020) Determination of thermal conductivity of asphalt paving mixtures using finite element method. Construction and Building Materials 243, pages 118250.
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Ayse Bicer & Filiz Kar. (2018) A Model for Determining the Effective Thermal Conductivity of Porous Heterogeneous Materials. International Journal of Thermophysics 40:1.
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Bożena Orlik-Kożdoń & Artur Nowoświat. (2017) Modelling and testing of a granular insulating material. Journal of Building Physics 42:1, pages 6-15.
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Parvez Alam, Immanuel Sanka, Lilja Piuli Alam, Saka Wijaya, Erly Sintya, Niken Satuti Nur Handayani & Adolfo Rivero-Müller. (2018) The snapping shrimp dactyl plunger: a thermomechanical damage-tolerant sandwich composite. Zoology 126, pages 1-10.
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Elodie Brisson, Henri Desplats, Patrick Carre, Vincent Keryvin, Philippe Rogeon, Eric Feulvarch & Alexandre Bonhomme. (2016) Effective Thermal and Electrical Conductivities of AgSnO2 During Sintering. Part II: Constitutive Modeling and Numerical Simulation. Metallurgical and Materials Transactions A 47:12, pages 6319-6329.
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Yusuke Asakuma, Masahiro Asada, Yushin Kanazawa & Tsuyoshi Yamamoto. (2016) Thermal analysis with contact resistance of packed bed by a homogenization method. Powder Technology 291, pages 46-51.
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Atiyeh Hoseini, Claire McCague, Mehdi Andisheh-Tadbir & Majid Bahrami. (2016) Aerogel blankets: From mathematical modeling to material characterization and experimental analysis. International Journal of Heat and Mass Transfer 93, pages 1124-1131.
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Liao Pan, Lixin Lu, Jun Wang & Xiaolin Qiu. (2015) Modeling the effect of gas on the effective thermal conductivity of heterogeneous materials. International Journal of Heat and Mass Transfer 90, pages 358-363.
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K.C. Chan & Christopher Y.H. Chao. (2013) A theoretical model on the effective stagnant thermal conductivity of an adsorbent embedded with a highly thermal conductive material. International Journal of Heat and Mass Transfer 65, pages 863-872.
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Anthony G. Dixon, Michiel Nijemeisland & E. Hugh Stitt. (2013) Systematic mesh development for 3D CFD simulation of fixed beds: Contact points study. Computers & Chemical Engineering 48, pages 135-153.
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A. Carotenuto, N. Massarotti & A. Mauro. (2012) A new methodology for numerical simulation of geothermal down-hole heat exchangers. Applied Thermal Engineering 48, pages 225-236.
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Jun Yan Wu, Fei Chen, Ming Zhong Li, Qiang Shen & Lian Meng Zhang. (2012) Thermal Conductivity Design and Evaluation of Zirconium Phosphate Bonded Silicon Nitride Porous Ceramics. Key Engineering Materials 508, pages 21-26.
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K. S. Reddy & P Karthikeyan. (2015) Combinatory Models for Predicting the Effective Thermal Conductivity of Frozen and Unfrozen Food Materials. Advances in Mechanical Engineering 2, pages 901376.
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Moran Wang, Jinku Wang, Ning Pan & Shiyi Chen. (2007) Mesoscopic predictions of the effective thermal conductivity for microscale random porous media. Physical Review E 75:3.
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Majid Bahrami, M. Michael Yovanovich & J. Richard Culham. (2006) Effective thermal conductivity of rough spherical packed beds. International Journal of Heat and Mass Transfer 49:19-20, pages 3691-3701.
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Jianfeng Wang, James K. Carson, Mike F. North & Donald J. Cleland. (2006) A new approach to modelling the effective thermal conductivity of heterogeneous materials. International Journal of Heat and Mass Transfer 49:17-18, pages 3075-3083.
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H.T. Aichlmayr & F.A. Kulacki. 2006. 377 460 .
G. Buonanno, A. Carotenuto, G. Giovinco & N. Massarotti. (2003) Experimental and Theoretical Modeling of the Effective Thermal Conductivity of Rough Steel Spheroid Packed Beds. Journal of Heat Transfer 125:4, pages 693-702.
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Watson L Vargas & J.J McCarthy. (2002) Conductivity of granular media with stagnant interstitial fluids via thermal particle dynamics simulation. International Journal of Heat and Mass Transfer 45:24, pages 4847-4856.
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Watson L. Vargas & J.J. McCarthy. (2002) Stress effects on the conductivity of particulate beds. Chemical Engineering Science 57:15, pages 3119-3131.
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R.J. Goldstein, E.R.G. Eckert, W.E. Ibele, S.V. Patankar, T.W. Simon, T.H. Kuehn, P.J. Strykowski, K.K. Tamma, A. Bar-Cohen, J.V.R. Heberlein, J.H. Davidson, J. Bischof, F.A. Kulacki, U. Kortshagen & S. Garrick. (2002) Heat transfer – a review of 2000 literature. International Journal of Heat and Mass Transfer 45:14, pages 2853-2957.
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