Experimental and Finite Element Investigation of Thermal Distribution and Heat Flux in an Internal Combustion Engine Cylinder
- Authors
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Sunday IWERIOLOR
Author
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Ngozi G. EMORDI
Author
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Festus O. ISAAC
Author
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Linus CHUKWUKA
Author
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Onyekachukwu N. AKPENYI-ABOH
Author
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Liberty ANWULE
Author
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- Keywords:
- Thermal Analysis, Engine Cylinder, Temperature, Finite Element, Heat transfer.
- Abstract
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The radial temperature variation, heat flow, heat-transfer rate, and convective cooling pattern within an engine cylinder wall were all examined using experimental and finite-element methods. At particular points along the cylinder wall, radial temperature measurements were taken from the inner combustion surface. The simulated temperatures resulting from steady-state finite-element thermal analysis were compared with experimental data. Experimented temperature data displayed a steady temperature drop from 450 °C at the inner wall to 158 °C at the exterior wall. Errors margins of 0.50 °C, 11.48 °C, and 3.13 °C were observed as simulated temperatures nearly approximate to interpolated experimental data. A maximum total heat flow of 5.415 × 10² W/m² became apparent via Temperature Contour analysis, resulting to a simulated heat-transfer rate of 146 kW.This is consistent with the experimental figure of 147 kW (0.68% deviation). The experimental result of 1100 W/m²•K differs 1.8% from the estimated convective heat-transfer coefficient of 1080 W/m²•K. The remarkable correlation between the observed and simulated temperatures, heat flux, heat-transfer rate, and convective coefficient indicates that the well-established finite-element framework provides a reliable and experimentally validated technique for quantifying heat transfer in engine cylinders. This provides a strong basis for the development of improved coatings, high-temperature-resistant materials, and cooling techniques in the future as well as a verifiable technique for establishing engine cylinder performance, durability, and thermal variables.
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- Published
- 14-08-2026
- Section
- Articles
- License
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Copyright (c) 2026 Sunday IWERIOLOR, Ngozi G. EMORDI, Festus O. ISAAC, Linus CHUKWUKA, Onyekachukwu N. AKPENYI-ABOH, Liberty ANWULE (Author)

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.
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