Performance and Economic Analysis of Designed Different Solar Tracking Systems for Mediterranean Climate
Abstract
:1. Introduction
1.1. Experimental Setup
1.2. Maximum Power Point Tracking (MPTT) Algorithms
1.3. Analysis
- ➢
- The solar power production data of the solar tracking systems are presented experimentally. It is clear from the measurements and analysis that the single-axis solar tracking sys-tem generates 24.367% more electricity than the old-style fixed systems, and the dual-axis solar tracking system generates 32.247% more electricity.
- ➢
- The dual-axis system generates 7.871% more power than the single-axis system when the developed solar tracking systems are compared to one another.
- ➢
- It has been observed that the installation and operation of the solar tracking system do not bring much additional load compared to normal fixed systems. The cost analysis for this is included in the study.
- ➢
- Thanks to the Arduino software and card, solar tracking has been performed, and it has been verified with the production results that sun tracking is performed correctly.
- ➢
- The main purpose of this study is to propose tracking systems with numerical evidence that will enable solar systems to produce more electricity by making more use of the sun.
2. Methods
2.1. Parameters of the Material of the Solar Tracking System
LDR Sensor
2.2. Meteorological Data
2.3. Mathematical Modelling of the Solar Tracker System
2.3.1. Modelling of Sunlight Absorb Sensors
2.3.2. Sun Angle Modelling
2.3.3. Effective Radiation Modelling
3. Performance Analysis
3.1. Cost Analysis of Solar Tracker Systems
3.2. Performance of the Solar Tracking System
4. Discussion
5. Conclusions
- ✓
- The study emphasized the importance of solar energy, a renewable energy source, which is characterized as environmentally friendly, sustainable and clean energy, instead of fossil fuels that harm the environment. Systems that will obtain more efficiency from solar energy have been designed and contributed to their sustainability.
- ✓
- When the energy production of the installed systems is compared to the fixed systems, it is seen that the single-axis solar tracking system produces 24.367% more electricity, and the dual-axis solar tracking system produces 32.247% more electricity.
- ✓
- Comparing several solar tracking systems reveals that the dual-axis system generates 7.871% more power than the single-axis system.
- ✓
- It has been observed that the installation and operation of the solar tracking system do not require additional load compared to normal fixed systems.
- ✓
- Thanks to smart control, accurate sun tracking was performed with the production results.
- ✓
- It has been calculated that the single-axis tracking system pays for itself 0.39 years after the fixed system and 1.48 years after the dual-axis system. As a result of this analysis, it has been seen that the uniaxial system is more profitable and efficient than the fixed system. The amortization period of the biaxial system is 18% longer than that of the fixed system. It was stated that when choosing between biaxial tracking systems, the decision should be made according to feasibility studies to be conducted at the locations where the power plants will be established.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Electrical Parameters | |
---|---|
Maximum Working Current | 20 A |
System Voltage | 12 V/24 V |
Battery Max. Charging Voltage | 13.7 V/27.4 V |
Battery Low Voltage Protection | 10.7 V/21.4 V |
Electrical Characteristics | |||
---|---|---|---|
Module | |||
Maximum Power at STC (Pmax) | 380 W | 400 W | 405 W |
Open-Circuit Voltage (Voc) | 48.3 V | 48.7 V | 48.8 V |
Short-Circuit Current (Isc) | 10.3 A | 10.8 A | 10.9 A |
Optimum Operating Voltage (Vmp) | 39.9 V | 40.7 V | 40.9 V |
Optimum Operating Current (Imp) | 9.55 A | 9.84 A | 9.91 A |
Module Efficiency | 18.9% | 19.9% | 20.1% |
Power Tolerance | 0~+5 W | ||
Maximum System Voltage | 1000 V/1500 V DC | ||
Maximum Series Fuse Rating | 15/20 A |
Mechanical Characteristics | |
---|---|
Solar Cells | Monocrystalline 158.75 × 158.75 mm |
No.of Cells | 72 (6 × 12) |
Dimensions | 2008 mm × 1002 mm × 35 mm |
Weight | 22.5 kg |
Front Glass | High-transmission tempered glass |
Frame | Anodized aluminium alloy |
Junction Box | IP68 |
Cable | 4 mm2 (UL/IEC) Length: 1200 mm |
Connectors | MC4 Compatible |
Packaging Configuration | 30 pcs/box, 715 pcs/40′HQ Container |
Electrical Characteristics | |
---|---|
Normal Output Power: | 600 W |
Continuous Output Power | 600 W |
Maximum Power | 1200 W |
Normal Input Volt | 12 V DC/24 V DC |
Normal Output Volts | 220 V AC |
Frequency | 50 Hz |
Output Layout | ±5% |
Sine Output | Modified Sinus |
Voltage Alarm Range | 10.5 +/− 0.5 V |
Cut-off Voltage Range | 10.5 +/− 0.5 V |
Efficiency Ratio | 85–90% |
Heat Preservation | 65 C +/− 5 C |
Short Circuit Protection | Available |
Insurance Protection | Available |
Short Circuit Protection | Available |
Datasheet of Linear Motor | |
---|---|
Main application | Industrial, Solar tracker |
Input voltage | 12 V DC/24 V DC |
Rated load | 7000 N |
Max. static load | 17,100 N |
Max. dynamic load | 9000 N |
Max. the speed at no load | 5.5 mm/s |
Max. the speed at full load | 4.4 mm/s |
Power cord length | 250 mm (with tinned wires) |
Ambient operation temperature | −25 °C~+65 °C |
Temperature (°C) | Precipitation (mm) | Wind (m/s) | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Long Year Average | Last Month Average | Long Year Maximum | Last Month Maximum | Long Year Minimum | Last Month Minimum | Long Year Months Average | Last Month Total | Long Year Maximum | Last Month Maximum | Long Year Maximum | Last Month Maximum |
25.8 | 27.2 | 43.2 | 37.3 | 9.3 | 17.1 | 17.1 | 0 | 129 | 0 | 25.5 | 9.8 |
Meteorological Data for September 2021 | |||||
---|---|---|---|---|---|
Day | Temperature Maximum | Temperature Minimum | Precipitation Probability (%) | Humidity (%) | Wind (km/h) |
1 | 32 | 25 | 0 | 50 | 21 |
2 | 33 | 25 | 0 | 46 | 21 |
3 | 32 | 25 | 10 | 47 | 19 |
4 | 32 | 25 | 0 | 43 | 21 |
5 | 32 | 25 | 10 | 46 | 20 |
6 | 32 | 25 | 0 | 46 | 19 |
7 | 32 | 25 | 0 | 46 | 19 |
8 | 32 | 25 | 10 | 46 | 18 |
9 | 32 | 25 | 10 | 46 | 19 |
10 | 33 | 24 | 0 | 43 | 21 |
11 | 32 | 25 | 0 | 46 | 19 |
12 | 32 | 25 | 0 | 50 | 21 |
13 | 31 | 24 | 0 | 54 | 20 |
14 | 31 | 24 | 10 | 41 | 19 |
15 | 31 | 24 | 10 | 50 | 20 |
16 | 31 | 24 | 20 | 54 | 19 |
17 | 30 | 24 | 20 | 55 | 19 |
18 | 30 | 24 | 10 | 51 | 19 |
19 | 30 | 23 | 20 | 51 | 18 |
20 | 29 | 23 | 30 | 55 | 19 |
21 | 29 | 23 | 40 | 54 | 19 |
22 | 29 | 22 | 20 | 52 | 19 |
23 | 29 | 23 | 30 | 50 | 15 |
24 | 29 | 23 | 0 | 43 | 17 |
25 | 29 | 23 | 10 | 44 | 16 |
26 | 29 | 23 | 10 | 50 | 15 |
27 | 28 | 23 | 10 | 57 | 18 |
28 | 29 | 22 | 10 | 43 | 19 |
29 | 29 | 23 | 10 | 43 | 18 |
30 | 29 | 22 | 10 | 38 | 18 |
System Name | Weight (kg) | Height (cm) | Dimensions of Panel (cm) |
---|---|---|---|
Fixed System | 24 | 158 | 202 × 102 |
Single Axis System | 39 | 158 | 202 × 102 |
Double Axis System | 51 | 158 | 202 × 102 |
400 W PHOTOVOLTAIC SOLAR PANEL SYSTEMS | |||||
---|---|---|---|---|---|
Date | Fixed System (W) | Single Axis System (W) | Double Axis System (W) | Single % | Double % |
10.09.2021 | 1503.47 | 1867.67 | 1976.60 | 24.224 | 31.469 |
11.09.2021 | 1476.65 | 1839.23 | 1955.17 | 24.554 | 32.406 |
12.09.2021 | 1482.64 | 1842.79 | 1953.76 | 24.291 | 31.776 |
13.09.2021 | 1515.77 | 1872.29 | 1992.76 | 23.521 | 31.468 |
14.09.2021 | 1421.13 | 1759.55 | 1866.50 | 23.813 | 31.339 |
15.09.2021 | 1748.26 | 2185.26 | 2321.37 | 24.996 | 32.782 |
16.09.2021 | 1942.27 | 2421.56 | 2567.29 | 24.677 | 32.180 |
17.09.2021 | 2073.18 | 2591.59 | 2751.05 | 25.006 | 32.697 |
18.09.2021 | 2062.14 | 2580.07 | 2747.17 | 25.116 | 33.219 |
19.09.2021 | 1948.26 | 2428.53 | 2587.35 | 24.651 | 32.803 |
20.09.2021 | 1915.45 | 2403.95 | 2562.54 | 25.503 | 33.783 |
21.09.2021 | 1864.35 | 2308.42 | 2453.48 | 23.819 | 31.600 |
22.09.2021 | 1218.29 | 1500.79 | 1601.60 | 23.188 | 31.463 |
23.09.2021 | 1472.87 | 1819.91 | 1941.89 | 23.562 | 31.844 |
24.09.2021 | 2144.16 | 2674.28 | 2849.08 | 24.724 | 32.876 |
Total | 25,788.89 | 32,095.89 | 34,127.61 | 24.376 | 32.247 |
Cost Analysis of Fixed System | |||
---|---|---|---|
Material Name | Number | Unit | Price ($) |
400 Watt Panel | 1 | number | 315 |
Mechanical Parts | 1 | number | 75 |
Linear Motor | 0 | number | 0 |
LDR Sensor | 0 | number | 0 |
Arduino Uno | 0 | number | 0 |
Energy Analyser | 1 | number | 25 |
Solar Charge Controller | 1 | number | 30 |
Solar Inverter | 1 | number | 72 |
Cable | 10 | meter | 5 |
Solar Gel Battery | 1 | number | 59 |
Total | 581 |
Cost Analysis of Single Axis Tracker System | |||
---|---|---|---|
Material Name | Number | Unit | Price ($) |
400 Watt Panel | 1 | number | 315 |
Mechanical Parts | 1 | number | 75 |
Linear Motor | 1 | number | 180 |
LDR Sensor | 2 | number | 0.2 |
Arduino Uno | 1 | number | 15 |
Energy Analyser | 1 | number | 25 |
Solar Charge Controller | 1 | number | 30 |
Solar Inverter | 1 | number | 72 |
Cable | 10 | meter | 5 |
Solar Gel Battery | 1 | number | 59 |
Total | 776.2 |
Cost Analysis of Double Axis Tracker System | |||
---|---|---|---|
Material Name | Number | Unit | Price ($) |
400 Watt Panel | 1 | number | 315 |
Mechanical Parts | 1 | number | 75 |
Linear Motor | 2 | number | 360 |
LDR Sensor | 4 | number | 0,4 |
Arduino Uno | 1 | number | 15 |
Energy Analyser | 1 | number | 25 |
Solar Charge Controller | 1 | number | 30 |
Solar Inverter | 1 | number | 72 |
Cable | 15 | meter | 7 |
Solar Gel Battery | 1 | number | 59 |
Total | 958.4 |
Systems | 15 Days Production (kW) | Unit Price ($/kW) | Total Profit ($) |
---|---|---|---|
Fixed System | 25.788 | 0.16 | 4.13 |
Single Axis System | 32.095 | 0.16 | 5.14 |
Double Axis System | 34.127 | 0.16 | 5.46 |
Systems | Installation Cost | Difference | Ratio |
---|---|---|---|
Fixed System | 581 | --- | --- |
Single Axis System | 776.2 | 195.2 | 25.15 |
Double Axis System | 958.4 | 377.4 | 39.38 |
Systems | Installation Cost | Difference | Ratio |
---|---|---|---|
Single Axis System | 776.2 | --- | --- |
Double Axis System | 958.4 | 182.2 | 19.01 |
Systems | Annual Gain (year/$) | Installation Cost ($) | Depreciation Period (year) |
---|---|---|---|
Fixed System | 99.03 | 581 | 5.87 |
Single Axis System | 123.24 | 771.2 | 6.26 |
Double Axis System | 131.05 | 963.4 | 7.35 |
Systems | Annual Production (Kw) | Difference | Difference Ratio |
---|---|---|---|
Fixed System | 53.78 | --- | --- |
Single Axis System | 72.34 | 18.56 | 25.65 |
Double Axis System | 79.00 | 25.22 | 31.92 |
Systems | Production Ratio of Portable Systems | Production Ratio of PVGIS-SARAH |
---|---|---|
Fixed System | --- | --- |
Single Axis System | 24.38 | 25.66 |
Double Axis System | 32.25 | 31.92 |
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Demirdelen, T.; Alıcı, H.; Esenboğa, B.; Güldürek, M. Performance and Economic Analysis of Designed Different Solar Tracking Systems for Mediterranean Climate. Energies 2023, 16, 4197. https://doi.org/10.3390/en16104197
Demirdelen T, Alıcı H, Esenboğa B, Güldürek M. Performance and Economic Analysis of Designed Different Solar Tracking Systems for Mediterranean Climate. Energies. 2023; 16(10):4197. https://doi.org/10.3390/en16104197
Chicago/Turabian StyleDemirdelen, Tuğçe, Hakan Alıcı, Burak Esenboğa, and Manolya Güldürek. 2023. "Performance and Economic Analysis of Designed Different Solar Tracking Systems for Mediterranean Climate" Energies 16, no. 10: 4197. https://doi.org/10.3390/en16104197
APA StyleDemirdelen, T., Alıcı, H., Esenboğa, B., & Güldürek, M. (2023). Performance and Economic Analysis of Designed Different Solar Tracking Systems for Mediterranean Climate. Energies, 16(10), 4197. https://doi.org/10.3390/en16104197