Impact of spatial and annual solar variability on the economic viability of non-tracking solar heating systems

被引:1
|
作者
Tambula, Shaibu [1 ]
Musademba, Downmore [1 ]
Chihobo, Chido H. [1 ]
机构
[1] Chinhoyi Univ Technol, Dept Fuels & Energy Engn, P Bag 7724, Chinhoyi, Zimbabwe
关键词
Solar heating system; Spatial variability; Annual variability; Levelized cost of heat; RENEWABLE ENERGY; RISK; CSP;
D O I
10.1016/j.egyr.2023.08.016
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Solar energy is stochastic, varying with time and space, which is a risk factor hindering the deployment of solar heating systems (SHS) in industries. Little is known about the level of risk associated with SHS due to spatial and annual variation. This research thus seeks to quantify the level of risk due to spatial and annual weather variation. The novelty of the study is that it assesses the variability in energy production of different non-tracking SHS at different operating temperatures (60 and 100 degrees C), different locations, and different time series. The level of risk is quantified using the coefficient of variation (CV) and the z-score. The yearly energy gains are simulated for each collector using the solar collector energy output calculator. The weather data for each location is produced using Meteonorm for a typical meteorological year (TMY). To analyze the annual variability 3 TMYs were produced from the time range 1981-2020 and the spatial variation was analyzed for 9 different locations. In terms of the annual variation, the results show that the CV of the energy gain for all the SHS was between 13 and 26 %. The highest z-score for spatial energy variation was 1.6 and-1.9. Both results indicate a considerably low risk factor. Economic predictions considering 1 TMY showed an underestimation of 4 and 7 % on the levelized cost of heat (LCOH) when operating at 60 and 100 degrees C respectively. Furthermore, operating at high temperatures has a high variability risk compared to lower temperatures. In terms of the variability of each SHS the compound parabolic concentrator (CV-10) and evacuated tube collector (CV-11) are more stable compared to the solar air heater (CV-14) and flat plate collector (CV-18). Knowing the extent of variability and risk involved for each collector will help investors plan their entire portfolio.& COPY; 2023 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页码:1379 / 1386
页数:8
相关论文
共 50 条
  • [41] ECONOMIC FEASIBILITY OF PASSIVE SOLAR SPACE HEATING SYSTEMS.
    Taul Jr., James W.
    Moncrief, Carol Y.
    Bohannon, Marcia L.
    IIHR Report (Iowa Institute of Hydraulic Research), 1979, : 186 - 191
  • [42] Economic and Environmental Analysis of Investing in Solar Water Heating Systems
    Serban, Alexandru
    Barbuta-Misu, Nicoleta
    Ciucescu, Nicoleta
    Paraschiv, Simona
    Paraschiv, Spiru
    SUSTAINABILITY, 2016, 8 (12)
  • [43] Performance evaluation and economic optimisation of solar heating systems for shillong
    Pratihar, A.K.
    Varma, H.K.
    Journal of the Institution of Engineers (India), Part ME: Mechanical Engineering Division, 1990, 71 (pt 2):
  • [45] Geographic maps of the impact of government incentives on the economic viability of solar power
    MacDougall, Hillary
    Tomosk, Steve
    Wright, David
    RENEWABLE ENERGY, 2018, 122 : 497 - 506
  • [46] Comparison of the optics of non-tracking and novel types of tracking solar thermal collectors for process heat applications up to 300°C
    Grass, C
    Schoelkopf, W
    Staudacher, L
    Hacker, Z
    SOLAR ENERGY, 2004, 76 (1-3) : 207 - 215
  • [47] Domestic application of solar PV systems in Ireland: The reality of their economic viability
    Li, Zhe
    Boyle, Fergal
    Reynolds, Anthony
    ENERGY, 2011, 36 (10) : 5865 - 5876
  • [48] Effect of Solar Tracking on the Economic Viability of a Large-Scale PV Power Plant
    Agyekum, Ephraim Bonah
    Afornu, Bright Kwame
    Ansah, Michael Nii Sanka
    ENVIRONMENTAL AND CLIMATE TECHNOLOGIES, 2020, 24 (03) : 55 - 65
  • [49] CFD Prediction of dust deposition and installation parametric optimisation for soiling mitigation in non-tracking solar PV modules
    Chiteka, Kudzanayi
    Arora, Rajesh
    Jain, Vineet
    INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2021, 42 (11) : 1307 - 1320
  • [50] Transforming the cost of solar-to-electrical energy conversion: Integrating thin-film GaAs solar cells with non-tracking mini-concentrators
    Lee, Kyusang
    Lee, Jaesang
    Mazor, Bryan A.
    Forrest, Stephen R.
    LIGHT-SCIENCE & APPLICATIONS, 2015, 4 : e288 - e288