Optimal inverter and wire selection for solar photovoltaic fencing applications
Tài liệu tham khảo
K.S. Hayibo, P. Mayville, R.K. Kailey, J.M. Pearce, Water Conservation Potential of Self-Funded Foam-Based Flexible Surface-Mounted Floatovoltaics, Energies 13(23), Art. no. 23, Jan. 2020, doi: 10.3390/en13236285.
SEIA, Siting, Permitting & Land Use for Utility-Scale Solar, SEIA, Nov. 13, 2020. https://www.seia.org/initiatives/siting-permitting-land-use-utility-scale-solar (accessed Nov. 13, 2020).
Calvert, 2013, Toward renewable energy geo-information infrastructures: Applications of GIScience and remote sensing that build institutional capacity, Renew. Sustain. Energy Rev., 18, 416, 10.1016/j.rser.2012.10.024
Poggi, 2018, Planning renewable energy in rural areas: Impacts on occupation and land use, Energy, 155, 630, 10.1016/j.energy.2018.05.009
Dias, 2019, Interplay between the potential of photovoltaic systems and agricultural land use, Land Use Policy, 81, 725, 10.1016/j.landusepol.2018.11.036
de Castro, 2013, Global solar electric potential: A review of their technical and sustainable limits, Renew. Sustain. Energy Rev., 28, 824, 10.1016/j.rser.2013.08.040
Engelke, 2015
Denholm, 2008, Land-use requirements and the per-capita solar footprint for photovoltaic generation in the United States, Energy Policy, 36, 3531, 10.1016/j.enpol.2008.05.035
Wüstenhagen, 2007, Social acceptance of renewable energy innovation: An introduction to the concept, Energy Policy, 35, 2683, 10.1016/j.enpol.2006.12.001
Sovacool, 2009, Exploring and Contextualizing Public Opposition to Renewable Electricity in the United States, Sustainability, 1, 702, 10.3390/su1030702
B.K. Sovacool, P. Lakshmi Ratan, Conceptualizing the acceptance of wind and solar electricity, Renew. Sustain. Energy Rev. 16(7), pp. 5268–5279, Sep. 2012, doi: 10.1016/j.rser.2012.04.048.
Batel, 2013, Social acceptance of low carbon energy and associated infrastructures: A critical discussion, Energy Policy, 58, 1, 10.1016/j.enpol.2013.03.018
Calvert, 2015, More solar farms or more bioenergy crops? Mapping and assessing potential land-use conflicts among renewable energy technologies in eastern Ontario, Canada, Appl. Geogr., 56, 209, 10.1016/j.apgeog.2014.11.028
Nonhebel, 2005, Renewable energy and food supply: will there be enough land?, Renew. Sustain. Energy Rev., 9, 191, 10.1016/j.rser.2004.02.003
Nations Unies, Ed., The world population situation in 2014: a concise report, illustrated ed. United Nations, New York, 2014.
FAO, How to Feed the World in 2050. FAO, 2009. Accessed: Oct. 16, 2021. [Online]. Available: http://www.fao.org/fileadmin/templates/wsfs/docs/Issues_papers/HLEF2050_Global_Agriculture.pdf
C.F. Runge, B. Senauer, How Biofuels Could Starve the Poor, Jan. 28, 2009. Accessed: Oct. 16, 2021. [Online]. Available: https://www.foreignaffairs.com/articles/2007-05-01/how-biofuels-could-starve-poor
Tomei, 2016, Food versus fuel? Going beyond biofuels, Land Use Policy, 56, 320, 10.1016/j.landusepol.2015.11.015
Thompson, 2012, The Agricultural Ethics of Biofuels: The Food vs. Fuel Debate, Agriculture, 2, 339, 10.3390/agriculture2040339
D.J. Tenenbaum, Food vs. Fuel: Diversion of Crops Could Cause More Hunger, Environ. Health Perspect. 116(6), Jun. 2008, doi: 10.1289/ehp.116-a254.
Dupraz, 2011, Combining solar photovoltaic panels and food crops for optimising land use: Towards new agrivoltaic schemes, Renewable Energy, 36, 2725, 10.1016/j.renene.2011.03.005
Dinesh, 2016, The potential of agrivoltaic systems, Renew. Sustain. Energy Rev., 54, 299, 10.1016/j.rser.2015.10.024
D.D. Mavani, P.M. Chauhan, V.P. Joshi, Beauty of Agrivoltaic System regarding double utilization of same piece of land for Generation of Electricity & Food Production, Int. J. Sci. Eng. Res. V, vol. 10, no. 6, 2019.
B. Mow, Solar Sheep and Voltaic Veggies: Uniting Solar Power and Agriculture, State, Local, & Tribal Governments, Jun. 2018. https://www.nrel.gov/state-local-tribal/blog/posts/solar-sheep-and-voltaic-veggies-uniting-solar-power-and-agriculture.html (accessed Oct. 18, 2021).
Adeh, 2019, Solar PV Power Potential is Greatest Over Croplands, Sci Rep, 9, 11442, 10.1038/s41598-019-47803-3
Ravi, 2016, Colocation opportunities for large solar infrastructures and agriculture in drylands, Appl. Energy, 165, 383, 10.1016/j.apenergy.2015.12.078
Pringle, 2017, Aquavoltaics: Synergies for dual use of water area for solar photovoltaic electricity generation and aquaculture, Renew. Sustain. Energy Rev., 80, 572, 10.1016/j.rser.2017.05.191
Marrou, 2013, Productivity and radiation use efficiency of lettuces grown in the partial shade of photovoltaic panels, Eur. J. Agron., 44, 54, 10.1016/j.eja.2012.08.003
Elamri, 2018, Water budget and crop modelling for agrivoltaic systems: Application to irrigated lettuces, Agric. Water Manag., 208, 440, 10.1016/j.agwat.2018.07.001
Malu, 2017, Agrivoltaic potential on grape farms in India, Sustain. Energy Technol. Assess., 23, 104
Amaducci, 2018, Agrivoltaic systems to optimise land use for electric energy production, Appl. Energy, 220, 545, 10.1016/j.apenergy.2018.03.081
Sekiyama, 2019, Solar Sharing for Both Food and Clean Energy Production: Performance of Agrivoltaic Systems for Corn, A Typical Shade-Intolerant Crop, Environments, 6, 65, 10.3390/environments6060065
Marrou, 2013, Microclimate under agrivoltaic systems: Is crop growth rate affected in the partial shade of solar panels?, Agric. For. Meteorol., 177, 117, 10.1016/j.agrformet.2013.04.012
M.H. Riaz, H. Imran, H. Alam, M.A. Alam, N.Z. Butt, Crop-specific Optimization of Bifacial PV Arrays for Agrivoltaic Food-Energy Production: The Light-Productivity-Factor Approach, arXiv:2104.00560 [physics], Apr. 2021, Accessed: Oct. 18, 2021. [Online]. Available: http://arxiv.org/abs/2104.00560
P. Santra, P.C. Pande‘, S. Kumar‘, D. Mishra, R. Singh, Agri-voltaics or Solar farming: the concept of integrating solar PV based electricity generation and crop production in a single land use system, Int. J. Renew. Energy Res. (IJRER) 7(2), Art. no. 2, Jun. 2017.
Guerin, 2019, Impacts and opportunities from large-scale solar photovoltaic (PV) electricity generation on agricultural production, Environ. Qual. Manage., 28, 7
Barron-Gafford, 2019, Agrivoltaics provide mutual benefits across the food–energy–water nexus in drylands, Nat Sustain, 2, 848, 10.1038/s41893-019-0364-5
A.S. Pascaris, C. Schelly, J.M. Pearce, A First Investigation of Agriculture Sector Perspectives on the Opportunities and Barriers for Agrivoltaics, Agronomy 10(12), Art. no. 12, Dec. 2020, doi: 10.3390/agronomy10121885.
Pascaris, 2021, Integrating solar energy with agriculture: Industry perspectives on the market, community, and socio-political dimensions of agrivoltaics, Energy Res. Social Sci., 75, 10.1016/j.erss.2021.102023
A.S. Pascaris, C. Schelly, M. Rouleau, J.M. Pearce, Do Agrivoltaics Improve Public Support for Solar Photovoltaic Development? Survey Says: Yes!, SocArXiv, preprint, May 2021. doi: 10.31235/osf.io/efasx.
D. Feldman, V. Ramasamy, R. Fu, A. Ramdas, J. Desai, R. Margolis, U.S. Solar Photovoltaic System and Energy Storage Cost Benchmark: Q1 2020,” National Renewable Energy Laboratory, Golden, CO, USA, Technical Report NREL/TP-6A20-77324, Jan. 2021. Accessed: Oct. 01, 2021. [Online]. Available: https://www.nrel.gov/news/program/2021/documenting-a-decade-of-cost-declines-for-pv-systems.html
S. Masna, S.M. Morse, K.S. Hayibo, J.M. Pearce, The Potential for Fencing to be Used as Low-Cost Solar Photovoltaic Racking (To be published), 2022.
Bird, 1998, Tree windbreaks and shelter benefits to pasture in temperate grazing systems, Agrofor. Syst., 41, 35, 10.1023/A:1006092104201
Cleugh, 1998, Effects of windbreaks on airflow, microclimates and crop yields, Agrofor. Syst., 41, 55, 10.1023/A:1006019805109
Vidrih, 2008, Evaluation of different designs of temporary electric fence systems for the protection of maize against wild boar (Sus scrofa L., Mammalia, Suidae), Acta agriculturae Slovenica, 91, 343, 10.2478/v10014-008-0014-5
K. VerCauteren, M. Lavelle, S. Hygnstrom, A Simulation Model for Determining Cost-Effectiveness of Fences for Reducing Deer Damage, USDA Wildlife Services - Staff Publications 106, p. 8, Aug. 2006.
Standard Fencing Measures - LSB. https://www.lifestyleblock.co.nz/lifestyle-file/running-the-farm/fencing/item/937-standard-fencing-measures (accessed Oct. 12, 2021).
CIR851/AE017: Construction of High Tensile Wire Fences. https://edis.ifas.ufl.edu/publication/AE017 (accessed Oct. 12, 2021).
F. and F. Ministry of Agriculture, B.C. Agricultural Fencing Handbook - Province of British Columbia. https://www2.gov.bc.ca/gov/content/industry/agriculture-seafood/business-market-development/structures-mechanization/agricultural-structures-fencing (accessed Oct. 12, 2021).
J.M. Freeman, et al., System Advisor Model (SAM) General Description (Version 2017.9.5), Technical Report NREL/TP--6A20-70414, 1440404, May 2018. doi: 10.2172/1440404.
Nair, 2016, An Effective Cable Sizing Procedure Model for Industries and Commerial Buildings, IJECE, 6, 34, 10.11591/ijece.v6i1.pp34-39
L.-P. Hayoun, A. Arrigoni, Les installations photovoltaïques: conception et dimensionnement des installations raccordées au réseau, Eyrolles. Paris: Eyrolles, 2012. Accessed: Oct. 15, 2021. [Online]. Available: http://search.ebscohost.com/login.aspx?direct=true&scope=site&db=nlebk&db=nlabk&AN=594416
H. Joshi, Cables, in: Residential, Commercial and Industrial Electrical Systems, vol. 1, 2 vols., McGraw-Hill Education, 2008. Accessed: Oct. 12, 2021. [Online]. Available: https://www.accessengineeringlibrary.com/content/book/9780070620964/chapter/chapter12
Enphase Store, Enphase IQ 7 Microinverter, Enphase Store IQ7 Microinverter, Oct. 01, 2021. https://store.enphase.com/storefront/en-us/iq7-microinverter-2 (accessed Oct. 01, 2021).
J. Yuan, F. Blaabjerg, Y. Yang, A. Sangwongwanich, Y. Shen, An Overview of Photovoltaic Microinverters: Topology, Efficiency, and Reliability, in: 2019 IEEE 13th International Conference on Compatibility, Power Electronics and Power Engineering (CPE-POWERENG), Apr. 2019, pp. 1–6. doi: 10.1109/CPE.2019.8862334.
Hasan, 2017, Grid-connected isolated PV microinverters: A review, Renew. Sustain. Energy Rev., 67, 1065, 10.1016/j.rser.2016.09.082
Trina Solar, Trina Solar TSM-230 Specsheet, Trina Solar, Sep. 2018. Accessed: Oct. 13, 2021. [Online]. Available: https://static.trinasolar.com/sites/default/files/PC05_Datasheet_40mm_EN.pdf
Hayibo, 2021, Optimal inverter and wire selection for solar photovoltaic small-scale fencing applications, OSF
NREL, LK Script - System Advisor Model (SAM), NREL System Advisor Model, Oct. 13, 2021. https://sam.nrel.gov/lk-script.html (accessed Oct. 13, 2021).
Hayibo, 2021, A review of the value of solar methodology with a case study of the U.S. VOS, Renew. Sustain. Energy Rev., 137, 10.1016/j.rser.2020.110599
Phinikarides, 2014, Review of photovoltaic degradation rate methodologies, Renew. Sustain. Energy Rev., 40, 143, 10.1016/j.rser.2014.07.155
P. Gilman, SAM Photovoltaic Model Technical Reference, National Renewable Energy Lab. (NREL), Golden, CO (United States), Golden, CO, USA, Technical Report NREL/TP-6A20-64102, May 2015. doi: 10.2172/1215213.
M. Woodhouse, et al., On the Path to SunShot. The Role of Advancements in Solar Photovoltaic Efficiency, Reliability, and Costs, National Renewable Energy Laboratory, Golden, CO, USA, Technical Report NREL/TP--6A20-65872, 1253983, May 2016. doi: 10.2172/1253983.
Sangwongwanich, 2018, Lifetime Evaluation of Grid-Connected PV Inverters Considering Panel Degradation Rates and Installation Sites, IEEE Trans. Power Electron., 33, 1225, 10.1109/TPEL.2017.2678169
Branker, 2011, A review of solar photovoltaic levelized cost of electricity, Renew. Sustain. Energy Rev., 15, 4470, 10.1016/j.rser.2011.07.104
Lai, 2017, Levelized cost of electricity for solar photovoltaic and electrical energy storage, Appl. Energy, 190, 191, 10.1016/j.apenergy.2016.12.153
Kang, 2016, Quantitative analysis of the levelized cost of electricity of commercial scale photovoltaics systems in the US, Sol. Energy Mater. Sol. Cells, 154, 71, 10.1016/j.solmat.2016.04.046
Products Brochures & Price Lists - Havells India, Products Brochures & Price Lists, Sep. 29, 2021. https://www.havells.com/en/experience-zone/brochures-and-price-lists.html#gref (accessed Sep. 29, 2021).
Polycab, Polycab Wires & Cables Pricelist – Vashi Electricals, Polycab Price List Download, Sep. 29, 2021. https://vashielectricals.com/pricelist/polycab-wires-cables/ (accessed Sep. 29, 2021).
Thermal Zero, Amazon.com: Snap Strip Stainless Steel Zip Tie 10 Pack 14“ Long Locking Cable Tie: Electronics, Cable Ties, Oct. 25, 2021. https://www.amazon.com/Strip-Stainless-Steel-Locking-Cable/dp/B004C3C22K (accessed Oct. 25, 2021).
A. Gharakhani Siraki, P. Pillay, Study of optimum tilt angles for solar panels in different latitudes for urban applications, Solar Energy 86(6), pp. 1920–1928, Jun. 2012, doi: 10.1016/j.solener.2012.02.030.
Jacobson, 2018, World estimates of PV optimal tilt angles and ratios of sunlight incident upon tilted and tracked PV panels relative to horizontal panels, Sol. Energy, 169, 55, 10.1016/j.solener.2018.04.030
J.A. Duffie, W.A. Beckman, Chapter 1: Solar Radiation, in: Solar Engineering of Thermal Processes, 4th ed., Hoboken, New Jersey, USA: John Wiley & Sons, Inc., 2013. Accessed: Nov. 10, 2021. [Online]. Available: https://nbn-resolving.org/urn:nbn:de:101:1-201411102948
Kadam, 2011, Performance of solar power fencing system for agriculture, Int. J. Agric. Technol., 7, 1199
G. Nair, M. Chawla, N. Bawane, Automatic Farming for Minimum Water Usage and Animal Protection Using Solar Fencing with GSM, in: 2020 International Conference on Innovative Trends in Information Technology (ICITIIT), Feb. 2020, pp. 1–6. doi: 10.1109/ICITIIT49094.2020.9071530.
K.D. Sharma, S.S.S. Sharma, P. Sharma, A. Saxena, Solar Based Electric Fence for Smart Farming, Int. J. Electr. Power Syst. Technol. 2(1), Art. no. 1, Jan. 2016, doi: 10.37628/ijepst.v2i1.229.
Wakode, 2008, Solar electric fencing on farm in Vidarbha region of Maharastra, India, Int. J. Agric. Eng., 1, 140
Lowder, 2016, The Number, Size, and Distribution of Farms, Smallholder Farms, and Family Farms Worldwide, World Dev., 87, 16, 10.1016/j.worlddev.2015.10.041
H. Ritchie, Smallholders produce one-third of the world’s food, less than half of what many headlines claim, Our World in Data, Aug. 06, 2021. https://ourworldindata.org/smallholder-food-production (accessed Nov. 01, 2021).
Grafman, 2021
C.G. Bates, The windbreak as a farm asset, undefined, p. 16, 1937.
Cornelis, 2005, Optimal windbreak design for wind-erosion control, J. Arid Environ., 61, 315, 10.1016/j.jaridenv.2004.10.005
Brandle, 1992, Field Windbreaks: Are They Economical?, J. Prod. Agric., 5, 393, 10.2134/jpa1992.0393
L. Hodges, J. Brandle, Windbreaks: An Important Component in a Plasticulture System, Agronomy & Horticulture -- Faculty Publications, Jul. 1996, [Online]. Available: https://digitalcommons.unl.edu/agronomyfacpub/391.
Brandle, 2004, Windbreaks in North American agricultural systems, Agrofor. Syst., 61, 65
Wiesmeier, 2018, Rebuilding soil carbon in degraded steppe soils of Eastern Europe: The importance of windbreaks and improved cropland management, Land Degrad. Dev., 29, 875, 10.1002/ldr.2902
Ito, 2008, A comparative study on cost and life-cycle analysis for 100 MW very large-scale PV (VLS-PV) systems in deserts using m-Si, a-Si, CdTe, and CIS modules, Prog. Photovolt. Res. Appl., 16, 17, 10.1002/pip.770
Ito, 2016, Life cycle assessment and cost analysis of very large-scale PV systems and suitable locations in the world, Prog. Photovolt. Res. Appl., 24, 159, 10.1002/pip.2650
H. Ritchie, M. Roser, Energy, Our World in Data, Nov. 28, 2020. https://ourworldindata.org/energy-access (accessed Nov. 01, 2021).