MODELING OF HEAT TRANSFER IN BURNING ZONE OF ROTARY CEMENT KILN

Author(s):  
Mohamed Aldeib ◽  
Abdulati El-Alem ◽  
Hesham Ibrahim
Cerâmica ◽  
2020 ◽  
Vol 66 (380) ◽  
pp. 496-506
Author(s):  
P. H. G. da Silva ◽  
J. Moreira ◽  
A. O. S. Costa ◽  
E. F. Costa Jr.

Abstract The present study aimed to evaluate the temperature profile along the inside of the wall of a clinker kiln from a cement industry. The problem was modeled by the equation of transient heat conduction in cylindrical coordinates, considering radial symmetry. Being the wall composed of different materials, even adopting constant physical properties, there is no analytical solution to the problem. The method of the lines was used, being the radial and axial directions discretized by finite differences and the resulting system of ordinary differential equations integrated in time until obtaining the temperature field in steady state. The obtained field was compatible with heat transfer fundamentals and presented a good fit in relation to industrial data. The main limitations of the modeling performed in this study include the fact that the gases and solids contained in the kiln have not been modeled, and the variation in thicknesses of the layers of the kiln wall has not been considered. The program developed in this study can be used to evaluate the performance of different refractories or to infer the refractory wear level from experimental kiln surface temperature profiles.


2007 ◽  
Vol 62 (9) ◽  
pp. 2590-2607 ◽  
Author(s):  
Kaustubh S. Mujumdar ◽  
K.V. Ganesh ◽  
Sarita B. Kulkarni ◽  
Vivek V. Ranade

Author(s):  
Atinder Pal Singh ◽  
P.S. Ghoshdastidar

Abstract The paper presents computer simulation of heat transfer in alumina and cement rotary kilns. The model incorporates radiation exchange among solids, wall and gas, convective heat transfer from the gas to the wall and the solids, contact heat transfer between the covered wall and the solids, and heat loss to the surroundings as well as chemical reactions. The mass and energy balances of gas and solids have been performed in each axial segment of the kilns. The energy equation for the wall is solved numerically by the finite-difference method. The dust entrainment in the gas is also accounted for. The solution marches from the solids inlet to the solids outlet. The kiln length predicted by the present model of the alumina kiln is 77.5 m as compared to 80 m of the actual kiln of Manitius et al. (1974, Manitius, A., Kurcyusz, E., and Kawecki, W., “Mathematical Model of an Aluminium Oxide Rotary Kiln,” Ind. Eng. Chem. Process Des. Dev., 13 (2), pp. 132-142). In the second part, heat transfer in a dry process cement rotary kiln is modelled. The melting of the solids and coating formation on the inner wall of the kiln are also taken into account. A detailed parametric study lent a good physical insight into axial solids and gas temperature distributions, and axial variation of chemical composition of the products in both the kilns. The effect of kiln rotational speed on the cement kiln wall temperature distribution is also reported.


2011 ◽  
Vol 12 (1) ◽  
pp. 22-31 ◽  
Author(s):  
Jenwit Krobthong ◽  
Manaskorn Rachakornk ◽  
Viboon Sricharoen

2019 ◽  
Vol 241 ◽  
pp. 118422 ◽  
Author(s):  
Tongsheng Zhang ◽  
Chang Wu ◽  
Bin Li ◽  
Chao Wang ◽  
Xinzhi Chen ◽  
...  

1935 ◽  
Vol 27 (4) ◽  
pp. 379-382 ◽  
Author(s):  
William N. Lacey ◽  
Hubert Woods

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