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Updated: Oct 2, 2025

A Rapid Method for Modeling a Variable Cycle Engine
Published on: August 13, 2019
Otto Engine for the q-State Clock Model
Michel Angelo Aguilera1, Francisco José Peña1, Oscar Andrés Negrete1,2
1Department of Physics, Universidad Técnica Federico Santa María, Avenida España 1680, Valparaíso 2390123, Chile.
This study on thermal-magnetic engines found the q=4 clock model optimal for work extraction. Performance is linked to magnetic phase transitions, with ferromagnetic-to-paramagnetic transitions yielding more work.
Area of Science:
- Thermodynamics
- Statistical Mechanics
- Condensed Matter Physics
Background:
- Thermal-magnetic engines offer potential for energy conversion.
- Spin models are crucial for understanding magnetic phenomena and their thermodynamic implications.
Purpose of the Study:
- To investigate the performance of a thermal-magnetic Otto-type engine.
- To analyze the thermodynamic quantities of the q-state clock model as a working substance.
- To explore the influence of magnetic phases on engine performance.
Main Methods:
- Exact calculation of the partition function for small lattices (3x3).
- Application of the mean-field approximation for larger lattices.
- Analysis of thermodynamic quantities across different q-values (2, 4, 6, 8).
Main Results:
- The q=4 clock model demonstrated the highest work extraction.
- The Ising model (q=2) exhibited the lowest performance.
- Work extraction is higher during ferromagnetic-to-paramagnetic transitions compared to BKT-to-paramagnetic transitions.
- Increasing lattice size decreased work extraction for all q-values.
Conclusions:
- The choice of working substance (q-state clock model) significantly impacts engine performance.
- Engine efficiency is intrinsically linked to the underlying magnetic phase transitions.
- Lattice size plays a critical role in determining the work output of the thermal-magnetic engine.
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