Optimization and Predictive Correlation of Thermal-Hydraulic Performance for Transcritical Methane in an Airfoil-Fin Printed Circuit Heat Exchanger
Abstract
1. Introduction
2. Geometry Model of Airfoil-Fin PCHE
3. Numerical Analysis and Methodology
3.1. Numerical Scheme and Boundary Conditions
3.2. Transcritical Methane Properties
3.3. Governing Equations and Turbulence Model
3.4. Definition of Performance Parameters
3.5. Mesh Generation and Grid Independence Verification
3.5.1. Mesh Generation
3.5.2. Grid Independence Verification
3.6. Model Validation
4. Results and Discussion
4.1. Effect of Airfoil Fin Array Longitudinal Staggering Ratio (Ks)
4.2. Effect of Airfoil Fin Array Transverse Pitch Ratio (Kb)
4.3. Effect of Airfoil Fin Array Longitudinal Pitch Ratio (Ka)
4.4. Heat Transfer Performance Prediction
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
| Cp | specific heat capacity, J·kg−1·K−1 |
| Dh | hydraulic diameter, mm |
| ERMS | root mean square deviation, % |
| F1 | model parameters |
| fFanning | Fanning friction factor |
| G | mass flux, kg·m−2·s−1 |
| h | heat transfer coefficient, W·m−2·K−1 |
| Ka | airfoil fin array longitudinal pitch ratio |
| Kb | airfoil fin array transverse pitch ratio |
| Ks | airfoil fin array longitudinal staggering ratio |
| L | total flow path length, mm |
| La | airfoil fin array longitudinal pitch, mm |
| Lb | airfoil fin array transverse pitch, mm |
| Lc | airfoil chord length, mm |
| Ld | airfoil upper surface perimeter, mm |
| Lh | channel height, mm |
| Ls | airfoil fin array longitudinal staggering |
| Ln | single pitch length, mm |
| n | number of data points |
| Nu | Nusselt number |
| p | pressure, MPa |
| Pr | Prandtl number |
| q | heat flux density, W·m−2 |
| Re | Reynolds number |
| Sa | half of the airfoil upper surface area, mm2 |
| T | temperature, K |
| Tb | average fluid temperature in the channel, K |
| TW | wall temperature, K |
| mean velocity, m·s−1 | |
| velocity vector, m·s−1 | |
| Xnum | simulated values |
| Xpred | predicted values |
Greek Symbols
| σω | model parameters |
| σk | model parameters |
| ρ | fluid density, kg·m−3 |
| μt | turbulent viscosity, Pa·s |
| μ | dynamic viscosity, Pa·s |
| λ | thermal conductivity, W·m−1·K−1 |
| γ | model parameters |
| β* | model parameters |
| β | model parameters |
| ∆T | logarithmic mean temperature difference, K |
| ∆p | pressure drop, Pa |
| ∆pf | frictional pressure drop, Pa |
Abbreviations
| FSRU | floating storage and regasification unit |
| LNG | liquefied natural gas |
| NACA | National Advisory Committee for Aeronautics |
| NG | natural gas |
| PCHE | printed circuit heat exchanger |
| TPF | the thermal performance factor |
| UDF | user-defined function |
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| Symbol | Value for NACA 0020 Airfoil/mm |
|---|---|
| L | 480 |
| Lc | 6.0 |
| La | 6.0–12.0 |
| Lb | 3.0–4.2 |
| Lh | 1.0 |
| Parameters | Cold Channel (CH4) | Hot Channel (EGWS) | ||
|---|---|---|---|---|
| Inlet | Outlet | Inlet | Outlet | |
| T/K | 110 | — | 343.15 | — |
| P/MPa | — | 8.00 | — | 0.40 |
| G/kg·m−2·s−1 | 100–300 | — | 250–1500 | — |
| T/K | Value | |
|---|---|---|
| Cp/ J·kg−1·K−1 | 100.00–201.07 | −139,471 + 5294.940 T − 77.874081 T2 + 0.568005416 T3 − 0.002055837992 T4 + 2.96123118 × 10−6 T5 |
| 201.07–230.10 | 2,002,157,650 − 46,541,536.180 T + 432,313.583830 T2 − 2005.807821461 T3 + 4.648594724190 T4 − 4.305237019249 × 10−3 T5 | |
| 230.10–380.00 | 894,845 − 13,892.327 T + 86.614360 T2 − 0.269923026 T3 + 4.2004972 × 10−4 T4 − 2.6093962 × 10−7 T5 | |
| ρ/ kg·m−3 | 100.00–199.74 | −7.36 + 16.05319 T − 0.193898572 T2 + 9.6630367 × 10−4 T3 − 1.83305 × 10−6 T4 |
| 199.74–230.69 | −610,201.80 + 11,309.91144 T − 78.36465942 T2 + 0.240730569 T3 − 2.7674608 × 10−4 T4 | |
| 230.69–380.00 | 3338.65 − 38.78081 T + 0.17407336 T2 − 3.5046538 × 10−4 T3 + 2.6546299 × 10−7 T4 | |
| λ/ W·m−1·K−1 | 100.00–212.44 | 0.2248 + 0.0018988 T − 3.30252 × 10−5 T2 + 1.464454 × 10−7 T3 − 2.364564 × 10−10 T4 |
| 212.44–237.27 | −87.8483 + 1.6063521 T − 0.0109614669 T2 + 3.3122684465 × 10−5 T3 − 3.74177905 × 10−8 T4 | |
| 237.27–380.00 | 0.8911 − 0.0104169 T + 4.72869 × 10−5 T2 − 9.48681 × 10−8 T3 + 7.17469 × 10−11 T4 | |
| μ/ Pa·s | 100.00–161.19 | 0.00275132 − 6.670457 × 10−5 T + 6.5116435 × 10−7 T2 −2.92435980 × 10−9 T3 + 5.01159500 × 10−12 T4 |
| 161.19–223.04 | 0.00622501 − 1.2949471 × 10−4 T + 1.02437810 × 10−6 T2 − 3.61382924 × 10−9 T3 + 4.77175361 × 10−12 T4 | |
| 223.04–380.00 | 2.67271608 × 10−4 − 3.21883 × 10−6 T + 1.507953 × 10−8 T2 − 3.113266 × 10−11 T3 + 2.405444 × 10−14 T4 |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Sun, C.; Ma, X.; Zhang, Y.; Li, L.; Yin, J.; Yang, T. Optimization and Predictive Correlation of Thermal-Hydraulic Performance for Transcritical Methane in an Airfoil-Fin Printed Circuit Heat Exchanger. Energies 2026, 19, 575. https://doi.org/10.3390/en19020575
Sun C, Ma X, Zhang Y, Li L, Yin J, Yang T. Optimization and Predictive Correlation of Thermal-Hydraulic Performance for Transcritical Methane in an Airfoil-Fin Printed Circuit Heat Exchanger. Energies. 2026; 19(2):575. https://doi.org/10.3390/en19020575
Chicago/Turabian StyleSun, Changyu, Xiaolin Ma, Yaxin Zhang, Lin Li, Jianzhong Yin, and Tao Yang. 2026. "Optimization and Predictive Correlation of Thermal-Hydraulic Performance for Transcritical Methane in an Airfoil-Fin Printed Circuit Heat Exchanger" Energies 19, no. 2: 575. https://doi.org/10.3390/en19020575
APA StyleSun, C., Ma, X., Zhang, Y., Li, L., Yin, J., & Yang, T. (2026). Optimization and Predictive Correlation of Thermal-Hydraulic Performance for Transcritical Methane in an Airfoil-Fin Printed Circuit Heat Exchanger. Energies, 19(2), 575. https://doi.org/10.3390/en19020575

