| Literature DB >> 32616796 |
Dongyi Zhou1,2,3, Jiawei Yuan1, Yuhong Zhou1, Yicai Liu4.
Abstract
Myristic acid/expanded graphite (MA/EG) composite phase-change material (CPCM) was prepared by absorbing liquid MA (as the PCM) into EG (as the supporting material). Its chemical structure, microstructure, and thermal properties were characterized and studied. In the MA/EG CPCM, the largest mass content of MA was 93.5% by using the diffusion-exudation circle method for the first time. Fourier transform infrared spectroscopy (FTIR) analysis indicated that the MA and EG were a pure physical mixture of which the structure does not change, and they undergo no chemical reaction. Differential-scanning-calorimetry (DSC) analysis results showed that the melting and freezing temperatures of the MA/EG CPCM were 53.3 and [Formula: see text], respectively, and the melting and freezing latent heats were 189.5 and 187.8 J/g, respectively. After several heat-cycle accelerations, the material still had good thermal-energy-storage effect. MA/EG CPCM thermoconductivity was greatly enhanced after adding EG, and the results of thermal-storage/-release experiments indicated that the thermal-storage and -release ratios of the MA/EG phase-change unit was greatly improved when compared with that of MA. These results indicated that the MA/EG CPCM was a suitable low-temperature thermal-energy-storage material.Entities:
Year: 2020 PMID: 32616796 PMCID: PMC7331584 DOI: 10.1038/s41598-020-67849-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Diffusion–exudation-circle test diagram. (1. Filter paper; 2. composite material test area; 3. composite material exudation circle).
Seepage-stability-assessment standard.
| Item | Leakage percentage | Stability |
|---|---|---|
| Considered no exudation | Very stable | |
| Microscale exudation | Stable | |
| Slight exudation | Basically stable | |
| Medium amount of exudation | Unstable | |
| Large amount of exudation | Extremely unstable |
Figure 2MA/EG CPCMs before (a) and after (b) heat treatment.
Fatty acid seepage-stability assessment.
| MA quality content (%) | Average exudation-circle diameter (mm) | Leakage percentage | Assessment standard | Assessment result |
|---|---|---|---|---|
| 92.0 | 35.34 | 17.8 | Basically stable | |
| 93.0 | 37.64 | 25.5 | Basically stable | |
| 93.2 | 37.85 | 26.2 | Basically stable | |
| 93.4 | 38.01 | 26.7 | Basically stable | |
| 93.5 | 38.14 | 27.1 | Basically stable | |
| 93.6 | 39.70 | 32.3 | Unstable | |
| 93.7 | 40.20 | 34.0 | Unstable | |
| 94.0 | 43.18 | 43.9 | Unstable | |
| 95.0 | 51.48 | 71.6 | Extremely unstable |
Figure 3FTIR spectra of MA and MA/EG CPCMs.
Figure 4SEM pictures of EG (a) and MA/EG (b) CPCMs.
Figure 5DSC curves of MA and MA/EG CPCMs.
DSC data of MA and MA/EG CPCMs.
| PCM | Melting | Freezing | ||||
|---|---|---|---|---|---|---|
| Onset temperature ( | Peak temperature ( | Latent heat (kJ/kg) | Onset temperature ( | Peak temperature ( | Latent heat (kJ/kg) | |
| MA | 53.6 | 59.5 | 199.4 | 51.8 | 46.3 | 199.0 |
| MA/EG | 53.3 | 58.0 | 189.5 | 52.4 | 48.1 | 187.8 |
Comparison of experiment and calculated values of latent thermals of MA/EG.
| MA mass content in MA/EG (%) | Melting | Freezing | ||||
|---|---|---|---|---|---|---|
| Experimental value (kJ/kg) | Calculated value (kJ/kg) | Difference (%) | Experimental value (kJ/kg) | Calculated value (kJ/kg) | Difference (%) | |
| 93.5 | 189.5 | 186.8 | 1.5 | 187.8 | 186.3 | 0.8 |
Figure 6Thermoconductivity variation with packing density of MA/EG CPCMs.
Figure 7Experiment diagram for thermal-storage/-release measurement.
Figure 8Storage (a) and release (b) curves of MA and MA/EG CPCMs.
Figure 9TGA curves of MA/EG CPCMs.
Figure 10DSC curves of MA/EG CPCMs before and after thermal cycles.
Thermal performance of MA/EG CPCMs before and after thermal cycles.
| Number of thermal cycling | Melting | Freezing | Extent of supercooling ( | ||
|---|---|---|---|---|---|
| Temperature ( | Latent heat (kJ/kg) | Temperature ( | Latent heat (kJ/kg) | ||
| 0 | 53.3 | 189.5 | 52.4 | 187.8 | 0.9 |
| 50 | 53.0 | 189.3 | 52.6 | 188.0 | 0.4 |
| 100 | 53.2 | 187.8 | 52.4 | 185.0 | 0.8 |
| 200 | 52.8 | 180.9 | 52.2 | 179.9 | 0.6 |