Fluid Flow Characteristics for Four Lattice Settings in Brick Tunnel Kiln: CFD Simulations

Author:

Refaey Hassanein A.1ORCID,Alharthi Mathkar A.2ORCID,Abdel-Aziz Ali A.3,Elattar Hassan F.4,Almohammadi Bandar Awadh1,Abdelrahman Hany E.3,Karali Mohamed A.5ORCID,Attia El-Awady6ORCID,Al-Dosoky Mamdouh W.3

Affiliation:

1. Department of Mechanical Engineering, College of Engineering at Yanbu, Taibah University, Yanbu Al-Bahr 41911, Saudi Arabia

2. Department of Chemical Engineering, College of Engineering at Yanbu, Taibah University, Yanbu Al-Bahr 41911, Saudi Arabia

3. Department of Mechanical Engineering, Faculty of Engineering at Shoubra, Benha University, Cairo 11629, Egypt

4. Department of Mechanical and Materials Engineering, Faculty of Engineering, University of Jeddah, Jeddah 21589, Saudi Arabia

5. Department of Mechanical Engineering, Faculty of Engineering and Technology, Future University in Egypt, 90 St., New Cairo 11835, Egypt

6. Industrial Engineering Department, College of Engineering, Prince Sattam Bin Abdulaziz University, Al-Kharj 11942, Saudi Arabia

Abstract

The higher the process efficiency, the lower the fuel consumption, and the less impact carbon emissions have on the environment. The flow characteristics around brick settings are an important field of investigation to acquire control over the energy intake and production process. The current work is a numerical CFD investigation to demonstrate fluid flow characterization inside the cooling zone in a brick tunnel kiln for lattice settings (the number of bricks in each layer is identical). Four different lattice settings were examined, and three were validated with published experimental data (settings 1, 2 and 3). In the current study, the BSL κ-ω turbulent model agrees well with the published experimental results. The numerical investigation presents the flow characteristics through four different lattice brick settings (e.g., velocity vectors, velocity contours and streamlines) that could not be measured experimentally. The investigation also looks at the flow zones of the vortex formation upstream, downstream and through the brick column. It was discovered that for settings 1 and 11, the quick air flow in the wall channels is much greater than in the column channels. Setting 3 has a larger vortex formation region, whereas setting 1 has a weaker vortex than the other settings. The cooling of the lattice bricks in Setting 3 is superior to the cooling in the other settings.

Publisher

MDPI AG

Subject

Building and Construction,Civil and Structural Engineering,Architecture

Reference16 articles.

1. Refaey, H.A. (2013). Mathematical Model to Analyze the Heat Transfer in Tunnel Kilns for Burning of Ceramics. [Ph.D. Dissertation, Otto-von-Guericke University].

2. Evaluation of brick kiln performances using computational fluid dynamics (CFD);Tehzeeb;Energy Environ. Eng. J.,2012

3. A model of heat transfer in tunnel kilns used for firing refractories;Dugwell;Int. J. Heat Mass Transf.,1988

4. Refaey, H.A., and Specht, E. (2013, January 19–21). Flow Field Visualization to Simulate the burning of sanitaryware in tunnel Kilns. Proceedings of the ICFD11: Eleventh International Conference of Fluid Dynamics, Alexandria, Egypt.

5. Model-based optimization of heat recovery in the cooling zone of a tunnel kiln;Kaya;Appl. Therm. Eng.,2008

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