| Literature DB >> 33807398 |
Congzheng Qi1,2,3, Zemin Ding3, Lingen Chen1,2, Yanlin Ge1,2, Huijun Feng1,2.
Abstract
Based on finite time thermodynamics, an irreversible combined thermal Brownian heat engine model is established in this paper. The model consists of two thermal Brownian heat engines which are operating in tandem with thermal contact with three heat reservoirs. The rates of heat transfer are finite between the heat engine and the reservoir. Considering the heat leakage and the losses caused by kinetic energy change of particles, the formulas of steady current, power output and efficiency are derived. The power output and efficiency of combined heat engine are smaller than that of single heat engine operating between reservoirs with same temperatures. When the potential filed is free from external load, the effects of asymmetry of the potential, barrier height and heat leakage on the performance of the combined heat engine are analyzed. When the potential field is free from external load, the effects of basic design parameters on the performance of the combined heat engine are analyzed. The optimal power and efficiency are obtained by optimizing the barrier heights of two heat engines. The optimal working regions are obtained. There is optimal temperature ratio which maximize the overall power output or efficiency. When the potential filed is subjected to external load, effect of external load is analyzed. The steady current decreases versus external load; the power output and efficiency are monotonically increasing versus external load.Entities:
Keywords: combined cycle; efficiency; finite time thermodynamics; performance optimization; power output; thermal Brownian heat engine
Year: 2021 PMID: 33807398 PMCID: PMC8065476 DOI: 10.3390/e23040419
Source DB: PubMed Journal: Entropy (Basel) ISSN: 1099-4300 Impact factor: 2.524
Figure 1Irreversible combined thermal Brownian heat engine model.
Figure 2Schematic diagram of combined TBHE.
Figure 3and characteristics about and .
Figure 4and characteristics about and .
Figure 5The curves of about .
Figure 6and characteristics versus .
Figure 7and characteristics about and without .
Figure 8The curves of dimensionless power output and efficiency under different objectives.
Figure 9The characteristics of and about and .
Figure 10and characteristics about and .
Figure 11and characteristics about and .
Figure 12and characteristics versus .
Figure 13and characteristics of single and combined TBHE about .
The power output performance comparisons between single and combined TBHE with .
| External Load |
|
|
|
|---|---|---|---|
| Single TBHE | 0.768 | 0.812 | 0.857 |
| Combined TBHE | 0.408 | 0.513 | 0.62 |
| Increasement of | −46.9% | −36.8% | −27.7% |
The efficiency performance comparisons between single and combined TBHE with .
| External Load |
|
|
|
|---|---|---|---|
| Single TBHE | 0.208 | 0.219 | 0.23 |
| Combined TBHE | 0.122 | 0.154 | 0.186 |
| Increasement of | −41.3% | −29.7% | −19.1% |