加拿大萨斯喀彻温省盐碱梯度太阳能池作为热能来源的可行性

M. Ito, S. Azam
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引用次数: 4

摘要

发展可再生能源对可持续发展至关重要。本文评估了盐梯度太阳能池(SGSP)作为加拿大萨斯喀彻温省替代能源的可行性。主要成果包括从理论和实践的角度对SGSP进行全球评估,评估盐度和气候标准对SGSP潜力的影响,了解受热物理性质影响的传热机制,以及模拟SGSP瞬态热扩散的数值模拟。结果表明,萨斯喀彻温省日照量大(1100 ~ 1400 kWh/m),适合从含盐水体中收集热能。这种系统中的太阳辐射在盐浓度梯度下被捕获。在当地,十个钾肥尾矿场(360克/升或36%盐)和两个咸水湖(250克/升或25%盐)可能适合SGSP的部署。研究发现,热导率随温度升高而升高,但随水盐度升高而降低(0.55 ~ 0.675 W/mK),而密度(1000 ~ 1200 kg/m)则相反。同样,比热容随温度略有增加,与盐度呈负相关(3000 ~ 4200 J/kg K)。此外,热扩散模型充分模拟了钾肥尾矿围护设施中典型SGSP的温度分布。在调查的7月(最高日晒月),温度从顶部20 ~ 52 oC的初始值上升到底部37 oC。需要对该方法进行全面的风险评估,以保护特定地点的空气、水、土壤和生物群。
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Feasibility of Saline Gradient Solar Ponds as Thermal Energy Sources in Saskatchewan, Canada
Advancement of renewable energy is critical for sustainable development. This paper evaluates the feasibility of saline gradient solar ponds (SGSP) as an alternative energy source for Saskatchewan, Canada. The main achievements include global appraisal of SGSP from theoretical and practical perspectives, assessment of salinity and climatic criteria for SGSP potential, understanding of heat transfer mechanisms affected by thermophysical properties, and numerical modeling to simulate transient heat diffusion in SGSP. Results indicated that Saskatchewan is ideal for thermal energy harvesting from saline water bodies because of high solar insolation (1100 to 1400 kWh/m). The solar radiation in such systems is captured under a salt concentration gradient. Locally, ten potash tailings sites (360 g/L or 36% salt) and two saline water lakes (250 g/L or 25% salt) are potentially suitable for SGSP deployment. It was found that thermal conductivity increases with temperature but decreases with water salinity increase (0.55 to 0.675 W/mK) and the opposite is true for density (1000 to 1200 kg/m). Similarly, specific heat capacity slightly increases with temperature and inversely correlates with salinity (3000 to 4200 J/kg K). Furthermore, the heat diffusion model adequately simulated the temperature distribution for a typical SGSP in a potash tailings containment facility. For the investigated month of July (highest solar insolation), the temperatures increased from an initial value of at 20 to 52 oC at top to 37 oC at bottom. A comprehensive risk assessment of this method is required to protect air, water, soil, and biota at specific sites.
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