Architectural Simulation of Hybrid Energy Harvesting: A Design Experiment in Lanzarote Island
Abstract
:1. Introduction
2. Research Scope and Subjects
3. Design Concept
3.1. Plan of Open Space with Good Accessibility to the Square
3.2. Plan of Energy Self-Sufficient Architecture
4. Design Development
4.1. Architectural Design Based on Energy Harvesting Technology with Macro-Energy Sources
4.1.1. Analysis of Shadow Inference Generated by the Buildings Surrounding Lanzarote Dynamic Square
4.1.2. Optimal Tilt Angle (βo) Setting for the Installation of Solar Panels
4.1.3. Calculation of Generation of Solar Energy According to the Optimal Tilt Angle (βo)
4.2. Architectural Design Based on Energy Harvesting Using Micro-Energy Sources
4.2.1. Wind Direction Analysis of the Research Subject Location, Lanzarote Dynamic Square
4.2.2. Installation Plan for Piezoelectric Materials (PVDF, Polyvinylidene Fluoride)
4.2.3. Measuring Energy Generation by Vibration of PVDF Driven by Wind
5. Results and Discussion
6. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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N. | Month | Solar Declination (deg) | Coefficients | Optimal Tilt Angle (deg) βo | |
---|---|---|---|---|---|
a1 | a1 | ||||
1 | January | d1 = −21.269 | 31.33 | 0.68 | 51.0 |
2 | February | d2 = −13.289 | 16.25 | 0.86 | 41.1 |
3 | March | d3 = −2.819 | 6.80 | 0.84 | 31.0 |
4 | April | d4 = 9.415 | −6.07 | 0.87 | 19.1 |
5 | May | d5 = 18.792 | −14.95 | 0.87 | 10.2 |
6 | June | d6 = 23.314 | −19.27 | 0.87 | 5.9 |
7 | July | d7 = 21.517 | −15.65 | 0.83 | 8.3 |
8 | August | d8 = 13.784 | −4.23 | 0.75 | 17.4 |
9 | September | d9 = 2.217 | 6.42 | 0.77 | 28.7 |
10 | October | d10 = −9.599 | 15.84 | 0.83 | 39.8 |
11 | November | d11 = −19.148 | 23.61 | 0.84 | 47.9 |
12 | December | d12 = −23.335 | 30.56 | 0.76 | 52.5 |
Type | Parameter | Value |
---|---|---|
Solar panel module | Model | Q.PEAK.DUO L–G7.4 |
Length (mm) | 2000 | |
Width (mm) | 1000 | |
Power capacity (kW/unit) | 390–405 Wp | |
Efficiency (%) | 20.3% |
N. | Month | Optimal Tilt Angle (deg) βo | Solar Energy Generation (kWh·m−2·Month−1) |
---|---|---|---|
1 | January | 51.0 | 53,200 |
2 | February | 41.1 | 60,728 |
3 | March | 31.0 | 105,107 |
4 | April | 19.1 | 115,625 |
5 | May | 10.2 | 140,935 |
6 | June | 5.9 | 125,662 |
7 | July | 8.3 | 132,661 |
8 | August | 17.4 | 116,094 |
9 | September | 28.7 | 105,767 |
10 | October | 39.8 | 84,129 |
11 | November | 47.9 | 54,844 |
12 | December | 52.5 | 55,446 |
Total | 1,150,198 |
N. | Month | Average Wind Speed (m−1·s−1·month−1) | Dominant Wind Direction |
---|---|---|---|
1 | January | 5.7 | NE |
2 | February | 6.6 | NE |
3 | March | 7.2 | NNE |
4 | April | 5.6 | NNE |
5 | May | 6.4 | NNE |
6 | June | 6.4 | NNE |
7 | July | 8.1 | NNE |
8 | August | 8.6 | NNE |
9 | September | 6.0 | NNE |
10 | October | 6.3 | NE |
11 | November | 5.3 | NE |
12 | December | 6.3 | NE |
N. | Month | Average Wind Speed (m−1·s−1·Month−1) | Energy Generation (µW·cm−3·Month−1) |
---|---|---|---|
1 | January | 5.7 | 1.1 |
2 | February | 6.6 | 2.3 |
3 | March | 7.2 | 3.2 |
4 | April | 5.6 | 1.1 |
5 | May | 6.4 | 2.1 |
6 | June | 6.4 | 2.1 |
7 | July | 8.1 | 4.3 |
8 | August | 8.6 | 4.8 |
9 | September | 6.0 | 1.8 |
10 | October | 6.3 | 2.1 |
11 | November | 5.3 | 0.8 |
12 | December | 6.3 | 2.1 |
Total | 27.8 |
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Choi, H.S. Architectural Simulation of Hybrid Energy Harvesting: A Design Experiment in Lanzarote Island. Appl. Sci. 2021, 11, 12146. https://doi.org/10.3390/app112412146
Choi HS. Architectural Simulation of Hybrid Energy Harvesting: A Design Experiment in Lanzarote Island. Applied Sciences. 2021; 11(24):12146. https://doi.org/10.3390/app112412146
Chicago/Turabian StyleChoi, Ho Soon. 2021. "Architectural Simulation of Hybrid Energy Harvesting: A Design Experiment in Lanzarote Island" Applied Sciences 11, no. 24: 12146. https://doi.org/10.3390/app112412146
APA StyleChoi, H. S. (2021). Architectural Simulation of Hybrid Energy Harvesting: A Design Experiment in Lanzarote Island. Applied Sciences, 11(24), 12146. https://doi.org/10.3390/app112412146