| Literature DB >> 36080830 |
Seepana Praveenkumar1, Aminjon Gulakhmadov2,3,4,5, Ephraim Bonah Agyekum1, Naseer T Alwan1, Vladimir Ivanovich Velkin1, Parviz Sharipov1, Murodbek Safaraliev6, Xi Chen2,3.
Abstract
As is already known, solar photovoltaic (PV) technology is a widely accepted technology for power generation worldwide. However, it is scientifically proven that its power output decreases with an increase in the temperature of the PV module. Such an important issue is controlled by adopting a number of cooling mechanisms for the PV module. The present experimental study assesses the effect of a fanless CPU heat pipe on the performance of a PV module. The experiment was conducted in June in real weather conditions in Yekaterinburg, Russian Federation. The comparative analysis of two PV panels (i.e., cooled, and uncooled) based on the electrical energy, exergy performance, economic, embodied energy and energy payback (5E) for the two systems is presented and discussed. The key results from the study are that the average temperature reduction from the cooling process is 6.72 °C. The average power for the cooled panel is 11.39 W against 9.73 W for the uncooled PV panel; this represents an increase of 1.66 W for the cooled module. Moreover, the average improvements in the electrical efficiency, and embodied energy recorded for a cooled PV panel 2.98%, and 438.52 kWh, respectively. Furthermore, the calculations of the levelized cost of energy (LCE) for the cooled PV panel indicate that it can range from 0.277-0.964 USD/kWh, while that for the uncooled PV panel also ranges from 0.205-0.698 USD/kWh based on the number of days of operation of the plant.Entities:
Keywords: CPU fanless heat pipes; LCE; embodied energy; energy; exergy; photovoltaic
Year: 2022 PMID: 36080830 PMCID: PMC9460871 DOI: 10.3390/s22176367
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1Heat pipe operation [56].
Figure 2Modified PV panel with integrated fanless heat pipe sink.
Specifications for the fanless heat pipe sink [58,64].
| Specifications | Value |
|---|---|
| Origin | China |
| Model Name | 249761 |
| Manufacturer | Seomic |
| Size (L × W × H), mm | 98 × 95 × 135 |
| Cooling Type | Air Cooler |
| Material | Metal |
| Use | CPU enhance cooling |
| Color | Silver |
| Measurement error | +/−1–3 cm |
Figure 3Fanless heat pipe sink.
Figure 4(a) Experimental setup (b) Schematic diagram of experimental test rig.
Figure 5Effect of temperature on efficiency and global solar radiation (obtained from PVsyst software).
Figure 6Effect of incident radiation on the P-V plot at 45 °C cell temperature (obtained from PVsyst software).
Uncertainties of Measuring Instruments [67,81].
| S. No | Instrument | Units | Range | Accuracy (%) | Uncertainty (%) |
|---|---|---|---|---|---|
| 1 | TM-207 Pyranometer | W/m2 | 0–2000 | ±5 | 2.886 |
| 2 | K-Thermocouple | °C | –270 to 1260 | ±0.75 | 0.433 |
| 3 | Clamp Meter | - | ±3% | 1.732 | |
| 4 | Thermometer | °C | −30 to 70 | ±2 | 1.15 |
| 5 | Digital anemometer | m/s | 0–30 | ±3 | 1.732 |
Figure 7Weather characteristics for the period of the experiment (i.e., solar radiation and ambient temperature).
Figure 8Weather characteristics for the period of the experiment day in relative humidity and wind speed.
Figure 9Time dependence of temperature of the two PV panels.
Figure 10Thermal image of a cooled PV panel.
Figure 11Thermal image of an uncooled PV panel.
Figure 12Time dependence of (a) Voltage and (b) Current of both PV panels.
Figure 13Temperature dependence power output of both PV panels.
Figure 14Time dependence (a) electrical efficiency (b) improvement in efficiency.
Comparison of other published works.
| Reference | Type | Proposed Mechanism | Key Results |
|---|---|---|---|
| [ | Active Cooling | Heat exchanger |
Output power is increased by 2.94 W. Improvement in electrical efficiency by 1.23%. |
| [ | Active Cooling | PVT |
Thermal efficiency increases by 1.96%. Panel efficiency increased by 1.5%. |
| [ | Active Cooling | Thermoelectric radiant |
Temperature reduced from 3–8 °C. Average electrical efficiency improvement is 2.6%. |
| [ | Active Cooling | Nano-fluid |
Temperature reduction 18.5 °C. Improvement in efficiency is 1.17%. |
| [ | Passive Cooling | Water |
Heating rate and cooling rate is operated experimentally. Average difference in temperature is 10 °C. |
| [ | Active Cooling | Thermo-electric model |
The average RMSE is 1.75 °C. The MAE is 1.14 °C. Experimental data is validated with MATLAB/Simulink. |
| [ | Active Cooling | Water Heat Exchanger |
Numerical results are compared with the experimental results. Reduction in average power output from the experiment is 4 W. |
| [ | Passive cooling | PCM |
Reduction in temperature is about 5 °C. |
| Present Study | Active and Passive Cooling | Fanless CPU Heat Pipe sink with Water |
Average temperature achieved is 6.72 °C. Electrical efficiency had 2.98% improvement. |
Figure 15Time-dependent exergy efficiency.
Estimated cost of the experiment.
| Items | Cooled PV (USD) | Uncooled PV (USD) |
|---|---|---|
| PV Panel | 50 | 50 |
| Aluminum Sheet | 8 | 0 |
| Fanless heat Pipe sink | 14.25 × 4 = 57 | 0 |
| Thermal grease | 1 | 1 |
| Silicone Gel | 2 | 2 |
| Thermocouples | 2 | 2 |
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Parameters used for LCE calculations.
| Parameters | Cooled PV | Un-Cooled PV | Reference |
|---|---|---|---|
| Effective discount rate (i | 5 | 5 | [ |
| Nominal escalation rate (r | 1 | 1 | [ |
| K | 0.96 | 0.96 | Calculated |
| Capital recovery factor (CRF) | 0.065 | 0.065 | Calculated |
| Constant escalation levelized factor O&M, (CELF), % | 0.9975 | 0.9975 | Calculated |
| Annual operation and maintenance cost (C | 3.75 | 3.75 | Calculated |
| Lifetime of the years (n), years | 25 | 25 | Assumed |
| Total investment cost (C | 120 | 52 | Calculated |
| Levelized cost of fuel (LC | 0 | 0 | - |
Note: The cost was taken into consideration at the time of the purchase of materials; it may increase or decrease from the present market price.
Embodied energy for PV panels.
| Component | Quantity | Energy Density (kWh/kg) | Cooled PV Panel (kWh) | Uncooled PV Panel |
|---|---|---|---|---|
| PV Panel | 0.4275 m2 | 999 kWh/m2 | 427.5 | 427.5 |
| Aluminum Sheet | 1.5 kg | 4.11 | 6.165 | - |
| CPU Pipe | 0.600 | 8.1 | 4.86 | - |
| Total Embodied Energy | - | - | 438.525 | 427.5 |
| Annual Energy (kWh) | - | - | 41.5735 | 35.5145 |
| Energy Payback Time (Yr) | 10.54 | 12.03 |