Study of the Heat Transfer Performance of Laminated Paper Honeycomb Panels
Abstract
:1. Introduction
2. Materials and Methodology
2.1. Sample Design and Experimental Materials
2.2. Preparation of LHPs
2.3. Experimental Methods and Data Acquisition
3. Results and Discussion
3.1. Characteristics of LHP Heat Transfer Performance
3.2. Theoretical Model and Derivation of an Equivalent Thermal Conductivity Equation for LHPs
3.2.1. Equivalent Thermal Conductivity of LHP
3.2.2. Heat Transfer Model and Equivalent Thermal Conductivity of Honeycomb Cores
3.3. Calculation of the LHP Equivalent Thermal Conductivity and the Mechanism of Influence
3.3.1. Calculation of the Equivalent Thermal Conductivity of the Honeycomb Core
3.3.2. Analysis of the Theoretical Results of the LHP Equivalent Thermal Conductivity
4. Conclusions
- (1)
- For the first time, comparative experiments were conducted for LHPs with different structural parameters at the same plate thickness. The standardized procedures for the preparation of specimens were described. The equivalent thermal conductivity λequ of the LHP under the experimental conditions in this paper was significantly superior to the value of λequ for LHP8 and LHP16 at small single-layer thicknesses (hci = 10 and 15 mm) than at larger plate thicknesses, and was almost independent of the structural dimensions. It was recommended to preferably use LHP16 with a single-layer thickness of 15–20 mm to obtain better stability of the heat transfer coefficient and a good thermal insulation effect. It was also recommended that LHP16 with a board thickness of 15–20 mm be used preferentially due to its more stable heat transfer coefficient and better thermal insulation.
- (2)
- The main heat transfer path of the LHPs was given, and accordingly, a heat transfer model of LHPs with different honeycomb edge lengths and single-layer plate thicknesses was established. From this model, it was concluded that the heat transfer performance of the LHPs depended critically on the performance of the honeycomb core. Subsequently, the controlling equation of its temperature distribution under steady-state heat transfer was derived using the finite difference method.
- (3)
- Based on the theoretical equation of the honeycomb core equivalent thermal conductivity and the empirical equation of radiation heat transfer, the percentages of three different heat transfer methods, radiation, gas convection, and heat conduction, were obtained for the LHPs. Radiation heat transfer was the main heat transfer mode not only in the single-layer honeycomb panel HP at room temperature but also in the LHPs. Then, the mechanism of the influence of the structure parameters, honeycomb edge length, and single-layer plate thickness on the heat transfer characteristics of LHPs was also revealed.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
A | total cross-sectional area of a basic unit |
Aci | cross-sectional area of the honeycomb core in the i-th layer |
Afi | cross section area of the panel in the i-th layer |
AS | cross-sectional area of the solid heat conduction path |
Ak | radiation surface area of cell k |
cp,m | mass specific heat capacity of cell m |
d | inner tangent circle diameter of the honeycomb core |
net radiation coefficient | |
h | plate thickness/thickness of basic unit |
hci | thickness of i-th layer |
la,b | distance from the center of cell b to cell a |
mm | mass of cell m |
n | number of stacked layers |
Q | total heat flow |
Qa | convection heat flow |
qa | heat flux of entrapped air |
Qf | radiation heat flow |
qf | radiation heat flux |
Qs | conduction heat flow |
qs | conduction heat flux |
ΔQf−m | radiative heat flow of cell m |
ΔQs−m,n | conductive heat flow from cell n to cell m |
ΔTm | temperature change of cell m |
Requ | equivalent thermal resistance |
Rci | equivalent thermal resistance of the honeycomb core in the i-th layer |
Rfi | equivalent thermal resistance of the panel in the i-th layer |
Tm | temperature of cell m |
THi | temperatures of the hotter surface of the i-th honeycomb core |
TCi | temperatures of the cooler surface of the i-th honeycomb core |
t | honeycomb wall thickness |
λ | thermal conductivity |
λci | equivalent thermal conductivity of the honeycomb core in i-th layer |
λequ | equivalent thermal conductivity |
λf | thermal conductivity of panel |
λfci | equivalent thermal conductivity of the i-th honeycomb core contributed by radiation |
λgci, | equivalent thermal conductivity of the i-th honeycomb core contributed by air conduction |
λg | thermal conductivity of the air |
λs | thermal conductivity of the honeycomb wall |
λsci, | equivalent thermal conductivity of the i-th honeycomb core contributed by solid conduction |
time interval | |
α | ratio of the honeycomb core height to its inner tangent circle diameter |
δ | Kronecker delta symbol |
ε | radiation emissivity |
σ | Stefan-Boltzmann coefficient |
[E] | radiation reflectance matrix |
[F] | view factor |
[G] | net radiation coefficient matrix |
[ε] | radiation absorptivity matrix |
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Honeycomb Side Length | LHP8 | LHP16 | |||||||
---|---|---|---|---|---|---|---|---|---|
Layer Thickness | Radiation | Heat Transfer | Air | Total | Radiation | Heat Transfer | Air | Total | |
10 | Honeycomb 1 | 0.0432 | 0.0275 | 0.0052 | 0.0759 | 0.0477 | 0.0275 | 0.0052 | 0.0804 |
Honeycomb 2 | 0.0421 | 0.0272 | 0.0052 | 0.0745 | 0.0464 | 0.0272 | 0.0052 | 0.0788 | |
Honeycomb 3 | 0.0411 | 0.027 | 0.0052 | 0.0733 | 0.0450 | 0.027 | 0.0052 | 0.0772 | |
Honeycomb 4 | 0.0401 | 0.0268 | 0.0052 | 0.0721 | 0.0437 | 0.0268 | 0.0052 | 0.0757 | |
Honeycomb 5 | 0.0391 | 0.0266 | 0.0052 | 0.0709 | 0.0424 | 0.0266 | 0.0052 | 0.0742 | |
Honeycomb 6 | 0.0382 | 0.0264 | 0.0052 | 0.0698 | 0.0411 | 0.0264 | 0.0052 | 0.0727 | |
Integral Board | 0.0406 | 0.0269 | 0.0052 | 0.0727 | 0.0443 | 0.0269 | 0.0052 | 0.0764 | |
15 | Honeycomb 1 | 0.0526 | 0.0274 | 0.0052 | 0.0852 | 0.0633 | 0.0274 | 0.0052 | 0.0959 |
Honeycomb 2 | 0.0507 | 0.0271 | 0.0052 | 0.083 | 0.0607 | 0.0271 | 0.0052 | 0.0930 | |
Honeycomb 3 | 0.0489 | 0.0268 | 0.0052 | 0.0809 | 0.0581 | 0.0268 | 0.0052 | 0.0901 | |
Honeycomb 4 | 0.0471 | 0.0265 | 0.0052 | 0.0788 | 0.0556 | 0.0265 | 0.0052 | 0.0873 | |
Integral Board | 0.0497 | 0.0269 | 0.0052 | 0.0819 | 0.0593 | 0.0269 | 0.0052 | 0.0915 | |
20 | Honeycomb 1 | 0.0597 | 0.0274 | 0.0052 | 0.0923 | 0.0753 | 0.0274 | 0.0052 | 0.1079 |
Honeycomb 2 | 0.0568 | 0.0269 | 0.0052 | 0.0889 | 0.0712 | 0.0269 | 0.0052 | 0.1033 | |
Honeycomb 3 | 0.0541 | 0.0265 | 0.0052 | 0.0858 | 0.0773 | 0.0265 | 0.0052 | 0.0990 | |
Integral Board | 0.0568 | 0.0269 | 0.0052 | 0.0889 | 0.0711 | 0.0269 | 0.0052 | 0.1033 | |
30 | Honeycomb 1 | 0.0701 | 0.0272 | 0.0052 | 0.1025 | 0.0933 | 0.0272 | 0.0052 | 0.1254 |
Honeycomb 2 | 0.0651 | 0.0266 | 0.0052 | 0.0969 | 0.0860 | 0.0266 | 0.0052 | 0.1178 | |
Integral Board | 0.0675 | 0.0269 | 0.0052 | 0.0996 | 0.0894 | 0.0269 | 0.0052 | 0.1315 | |
60 | Honeycomb 1/monolithic board | 0.0883 | 0.0269 | 0.0052 | 0.1204 | 0.1252 | 0.0269 | 0.0052 | 0.1571 |
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Li, Y.; Yang, J.; Chen, J.; Yin, J. Study of the Heat Transfer Performance of Laminated Paper Honeycomb Panels. Biomimetics 2023, 8, 46. https://doi.org/10.3390/biomimetics8010046
Li Y, Yang J, Chen J, Yin J. Study of the Heat Transfer Performance of Laminated Paper Honeycomb Panels. Biomimetics. 2023; 8(1):46. https://doi.org/10.3390/biomimetics8010046
Chicago/Turabian StyleLi, Yinsheng, Jing Yang, Jinxiang Chen, and Jian Yin. 2023. "Study of the Heat Transfer Performance of Laminated Paper Honeycomb Panels" Biomimetics 8, no. 1: 46. https://doi.org/10.3390/biomimetics8010046
APA StyleLi, Y., Yang, J., Chen, J., & Yin, J. (2023). Study of the Heat Transfer Performance of Laminated Paper Honeycomb Panels. Biomimetics, 8(1), 46. https://doi.org/10.3390/biomimetics8010046