This paper presents the computational fluid dynamics (CFD) model of small-scale α-type Stirling engine. The developed mathematical model comprises of unsteady Reynolds averaged Navier–Stokes set of equations, i.e., continuity, momentum, and energy equations; turbulence was modeled using standard κ–ω model. Moreover, presented numerical model covers all modes of heat transfer inside the engine: conduction, convection, and radiation. The model was built in the framework of the commercial CFD software ANSYS fluent. Piston movements were modeled using dynamic mesh capability in ANSYS fluent; their movement kinematics was described based on the crankshaft geometry and it was implemented in the model using user-defined functions written in C programming language and compiled with a core of the ANSYS fluent software. The developed numerical model was used to assess the performance of the analyzed Stirling engine. For this purpose, different performance measures were defined, including coefficient of performance (COP), exergy efficiency, and irreversibility factor. The proposed measures were applied to evaluate the influence of different heating strategies of the small-scale α-type Stirling engine.
Skip Nav Destination
Article navigation
March 2018
Research-Article
Performance Analysis of the Small-Scale α-Type Stirling Engine Using Computational Fluid Dynamics Tools
Zbigniew Buliński,
Zbigniew Buliński
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: zbigniew.bulinski@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: zbigniew.bulinski@polsl.pl
Search for other works by this author on:
Ireneusz Szczygieł,
Ireneusz Szczygieł
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Ireneusz.szczygiel@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Ireneusz.szczygiel@polsl.pl
Search for other works by this author on:
Adam Kabaj,
Adam Kabaj
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: adam.kabaj@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: adam.kabaj@polsl.pl
Search for other works by this author on:
Tomasz Krysiński,
Tomasz Krysiński
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Tomasz.krysinski@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Tomasz.krysinski@polsl.pl
Search for other works by this author on:
Paweł Gładysz,
Paweł Gładysz
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Pawel.gladysz@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Pawel.gladysz@polsl.pl
Search for other works by this author on:
Lucyna Czarnowska,
Lucyna Czarnowska
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Lucyna.czarnowska@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Lucyna.czarnowska@polsl.pl
Search for other works by this author on:
Wojciech Stanek
Wojciech Stanek
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: wojciech.stanek@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: wojciech.stanek@polsl.pl
Search for other works by this author on:
Zbigniew Buliński
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: zbigniew.bulinski@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: zbigniew.bulinski@polsl.pl
Ireneusz Szczygieł
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Ireneusz.szczygiel@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Ireneusz.szczygiel@polsl.pl
Adam Kabaj
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: adam.kabaj@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: adam.kabaj@polsl.pl
Tomasz Krysiński
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Tomasz.krysinski@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Tomasz.krysinski@polsl.pl
Paweł Gładysz
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Pawel.gladysz@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Pawel.gladysz@polsl.pl
Lucyna Czarnowska
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Lucyna.czarnowska@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: Lucyna.czarnowska@polsl.pl
Wojciech Stanek
Institute of Thermal Technology,
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: wojciech.stanek@polsl.pl
Silesian University of Technology,
Konarskiego 22,
Gliwice 44-100, Poland
e-mail: wojciech.stanek@polsl.pl
1Corresponding author.
Contributed by the Advanced Energy Systems Division of ASME for publication in the JOURNAL OF ENERGY RESOURCES TECHNOLOGY. Manuscript received December 15, 2016; final manuscript received August 24, 2017; published online September 28, 2017. Editor: Hameed Metghalchi.
J. Energy Resour. Technol. Mar 2018, 140(3): 032001 (10 pages)
Published Online: September 28, 2017
Article history
Received:
December 15, 2016
Revised:
August 24, 2017
Citation
Buliński, Z., Szczygieł, I., Kabaj, A., Krysiński, T., Gładysz, P., Czarnowska, L., and Stanek, W. (September 28, 2017). "Performance Analysis of the Small-Scale α-Type Stirling Engine Using Computational Fluid Dynamics Tools." ASME. J. Energy Resour. Technol. March 2018; 140(3): 032001. https://doi.org/10.1115/1.4037810
Download citation file:
Get Email Alerts
Fuel Consumption Prediction in Dual-Fuel Low-Speed Marine Engines With Low-Pressure Gas Injection
J. Energy Resour. Technol (December 2024)
A Semi-Analytical Rate-Transient Analysis Model for Fractured Horizontal Well in Tight Reservoirs Under Multiphase Flow Conditions
J. Energy Resour. Technol (November 2024)
Experimental Investigation of New Combustion Chamber Geometry Modification on Engine Performance, Emission, and Cylinder Liner Microstructure for a Diesel Engine
J. Energy Resour. Technol (December 2024)
Downdraft Gasification for Biogas Production: The Role of Artificial Intelligence
J. Energy Resour. Technol (December 2024)
Related Articles
An Axisymmetric Computational Fluid Dynamics Approach to the Analysis of the Working Process of a Solar Stirling Engine
J. Sol. Energy Eng (February,2006)
Basic Limitations on the Performance of Stirling
Engines
J. Eng. Gas Turbines Power (January,2007)
Design Improvements to a Biomass Stirling Engine Using Mathematical Analysis and 3D CFD Modeling
J. Energy Resour. Technol (September,2006)
Related Proceedings Papers
Related Chapters
The Stirling Engine
Air Engines: The History, Science, and Reality of the Perfect Engine
Completing the Picture
Air Engines: The History, Science, and Reality of the Perfect Engine
Two Decades of Optimism
Air Engines: The History, Science, and Reality of the Perfect Engine