| Literature DB >> 33808885 |
Cătălina Dobre1, Lavinia Grosu2, Alexandru Dobrovicescu1, Georgiana Chişiu3, Mihaela Constantin1.
Abstract
The purpose of the study is to show that two simple models that take into account only the irreversibility due to temperature difference in the heat exchangers and imperfect regeneration are able to indicate refrigerating machine behavior. In the present paper, the finite physical dimensions thermodynamics (FPDT) method and 0-D modeling using the Schmidt model with imperfect regeneration were applied in the study of a β type Stirling refrigeration machine.The 0-D modeling is improved by including the irreversibility caused by imperfect regeneration and the finite temperature difference between the gas and the heat exchangers wall. A flowchart of the Stirling refrigerator exergy balance is presented to show the internal and external irreversibilities. It is found that the irreversibility at the regenerator level is more important than that at the heat exchangers level. The energies exchanged by the working gas are expressed according to the practical parameters, necessary for the engineer during the entire project. The results of the two thermodynamic models are presented in comparison with the experimental results, which leads to validation of the proposed FPDT model for the functional and constructive parameters of the studied refrigerating machine.Entities:
Keywords: Stirling refrigerator; imperfect regeneration; numerical model; thermodynamic analysis
Year: 2021 PMID: 33808885 PMCID: PMC8003697 DOI: 10.3390/e23030368
Source DB: PubMed Journal: Entropy (Basel) ISSN: 1099-4300 Impact factor: 2.524
Figure 1Experimental device using a β-type Stirling refrigerating machine.
Figure 2Representation of three volumes of machine and their boundaries.
Figure 3Temperature gradient in refrigerator regenerator.
Figure 4Exergy balance for β-type Stirling refrigerating machine.
Figure 5Exergetic and entropic functional diagram of expansion volume.
Figure 6Exergetic and entropic functional diagram of compression volume.
Figure 7Exo-irreversible reversed Stirling cycle. (A) Logp-LogV diagram in the range limit of , , and ; (B) energy balance scheme.
Figure 8Variation of overall heat transfer coefficient depending on rotational speed .
Centralization of experimental data obtained for the Stirling refrigerator.
| Δ
| |||||||
|---|---|---|---|---|---|---|---|
| 2.85 | 249 | 348.69 | 99.69 | 12.35 | 32.57 | 20.22 | 0.61 |
| 3.04 | 249.5 | 343.99 | 94.49 | 13.40 | 33.56 | 20.16 | 0.66 |
| 3.31 | 250.3 | 338.03 | 87.73 | 14.70 | 34.54 | 19.84 | 0.74 |
| 3.47 | 250.4 | 332.72 | 82.32 | 16.50 | 35.53 | 19.03 | 0.87 |
| 3.60 | 249 | 330.34 | 81.34 | 17.94 | 37.51 | 19.57 | 0.92 |
| 3.86 | 250.7 | 329.10 | 78.40 | 19.20 | 39.48 | 20.28 | 0.95 |
Dimensional data of the actual engine.
| 0.01885 | 0.03717 | 1.906 | 3.278 | 0.06 | 0.0484 | 110 |
Initial conditions of a simulated point.
| 3.86 | 250.7 | 268.5 | 329.1 | 295 | 293 |
Analyzed heat flow rates.
| Experiment | 0-D Model | 0-D Error (%) | FPDT Model | FPDT Error (%) | |
|---|---|---|---|---|---|
|
| 19.21 | 29.17 | 51.92 | 17.79 | 7.39 |
|
| 39.47 | 40.22 | 1.90 | 37.48 | 5.04 |
|
| 20.28 | 11.26 | 44.47 | 19.68 | 2.95 |
Exergetic calculation of cold-end heat exchanger.
| Experiment | 0-D Model | 0-D Error (%) | FPDT Model | FPDT Error (%) | |
|---|---|---|---|---|---|
|
| 3.24 | 4.92 | 51.85 | 3 | 7.41 |
|
| 1.75 | 2.66 | 52 | 1.62 | 7.43 |
|
| 1.49 | 2.26 | 51.67 | 1.38 | 7.38 |
|
| 54.01 | 54.06 | 0.09 | 54.08 | 0.13 |
|
| 45.98 | 45.93 | 0.10 | 46 | 0.15 |
Exergetic calculation of the hot-end heat exchanger.
| Experiment | 0-D Model | 0-D Error (%) | FPDT Model | FPDT Error (%) | |
|---|---|---|---|---|---|
|
| 4.33 | 4.41 | 1.85 | 4.11 | 5.08 |
|
| 0.27 | 0.27 | 0 | 0.25 | 7.40 |
|
| 4.06 | 4.13 | 1.70 | 3.86 | 4.92 |
|
| 6.23 | 6.12 | 1.76 | 6.18 | 0.80 |
|
| 93.76 | 93.65 | 0.11 | 93.91 | 0.16 |
Figure 9Flowchart of exergy balance equation.
Global exergetic efficiency values.
| Experiment | 0-D Model | FPDT Model | |
|---|---|---|---|
|
| 8.63 | 23.65 | 8.23 |
Comparison of experimental and analytical results from analyzed methods.
| n = 3.86 (rot/min) | |||||
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| (–) | (W) | (–) | (W) | (–) | (W) |
| 0.947 | 20.280 | 2.570 | 11.260 | 0.905 | 19.68 |