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Wind characterization in Taranto city as a basis for innovative sustainable urban development

机译:塔兰托市的风能表征是创新型可持续城市发展的基础

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The city of Taranto, in the south-east of Italy, is experiencing a transition from one of the most polluted and industrialized area characterized by the presence of the largest integrated steelworks in Europe, to a center of attractions of investments in innovation on sustainability and tourism. Among sustainability projects, urban wind energy is emerging as a technology useful in diffusion of smart grids for energetic sustainable development and also an interesting growing niche market in which there could be new investment opportunities. Numerous projects aimed at developing wind energy production are under constructions and wind characteristics and power potential of various sites have been studied in many Mediterranean countries. The urban wind analysis may represent a new tool to complete local wind atlases including the built environment, to evaluate changes that weathering may cause in the physical and architectural state of buildings, and to analyze the dispersion of pollutants from sources to receptor sites. In this paper, an analysis of wind potential and characteristics in Taranto, Apulia, a north Jonian urban site in Italy, has been performed by using high time resolved (10 min) meteorological data collected over a time span of two years, in the aim to describe the numerical procedures adopted to perform fitting of wind speed data without using special software. This urban site, in the first year of investigation from May 1st, 2009 to April 30th, 2010, was subjected to main wind regimes that come mostly from N with 12.27% and SSW with 9.89% of total hours; the calm occurred with a frequency of 10.94%. In the second year, from May 1st, 2010 to April 30th, 2011, the winds also blown predominantly from N with 12.56% of the total annual hours, and SSW with 9.33%, while the calms reached 11.08%. Dispersion of pollutants emitted from various sources among cement factory, a quarry/landfill, a refinery and the steelworks, poses serious health risks to population mainly resident downwind the prevalent wind directions. Simply computed mean wind speeds had values of 1.84 (sd = 0.26 m/s) in the first year and 1.90 m/s (sd = 0.30 m/s) in the second year under investigation. Weibull's k values, measuring the wind potential of the site, were higher during the spring-summer warmest months and lower during the autumn-winter; the lowest appeared in November 2009 (0.639) the highest in June 2010 (1.665). Mean yearly values of k were 1.210 (sd = 0.18) in the first year and 1.065 (sd = 0.24) in the second year of the study, the correlation between the monthly values of k in the years under consideration was R2 = 0.59 (p = 0.043) indicating that although variations occurred, the wind potential remain partly unaltered from one year to the other examined. LCOE (Levelized Cost of Electricity) for the wind turbines chosen among the 35 ones listed in the "Catalogue of European Urban Wind Turbine Manufactures", excluding those with rated power below 0.1 kW, ranged from 0.12 to 10.6 /kWh and differs slightly in the two years examined. The values were competitive with some off-shore and on-shore installations, biogas and photovoltaic, but it does not consider pollution costs and subsidies. The proposed solution was economically viable, also by considering the possible integration in a hybrid photovoltaic-wind system, or fossil-based heat generator system supplemented by solar photovoltaic and wind energy. (C) 2017 Elsevier Ltd. All rights reserved.
机译:位于意大利东南部的塔兰托(Taranto)市正经历着从以欧洲最大的综合钢铁厂为特征的污染最严重,工业化程度最高的地区之一向投资于可持续性和可持续性创新的投资中心的转变。旅游。在可持续发展项目中,城市风能正在成为一种技术,可用于智能电网的扩散,以实现充满活力的可持续发展,同时也是一个有趣的不断发展的利基市场,其中可能会有新的投资机会。许多旨在发展风能生产的项目正在建设中,许多地中海国家已经研究了各种场所的风能和发电潜力。城市风分析可能代表了一种新工具,可以完成包括建筑环境在内的局部风向图,评估风化可能导致建筑物的物理和建筑状态变化,并分析污染物从源头到接收点的扩散。在本文中,通过使用在两年时间跨度内收集的高分辨时间(10分钟)气象数据,对意大利北部约尼安市区阿普利亚塔兰托的风势和特征进行了分析。描述不使用特殊软件而用于拟合风速数据的数值程序。在2009年5月1日至2010年4月30日的第一年调查中,这个城市站点遭受了主要风向的影响,其中主要来自N的风速为12.27%,SSW的风时为9.89%。平静发生的频率为10.94%。在第二年(从2010年5月1日到2011年4月30日),主要以N吹风,占全年总风时的12.56%,以SSW吹风,占全年总风时的9.33%,而风向则达到11.08%。水泥厂,采石场/垃圾填埋场,精炼厂和钢铁厂之间各种来源散发的污染物的扩散对主要居住在顺风向的居民构成了严重的健康风险。简单计算的平均风速在调查的第一年为1.84(sd = 0.26 m / s),第二年为1.90 m / s(sd = 0.30 m / s)。 Weibull的k值(用于测量站点的风势)在春夏季最暖的月份较高,而在秋冬季则较低。最低的是2009年11月(0.639),最高的是2010年6月(1.665)。研究的第一年k的年平均值为1.210(sd = 0.18),第二年为k的年平均值为1.065(sd = 0.24),所考虑年份中k的月度值之间的相关性为R2 = 0.59(p = 0.043),表明尽管发生了变化,但从一年到另一年的风势仍保持部分不变。在“欧洲城市风力涡轮机制造目录”中列出的35台风力涡轮机中,选择的风力涡轮机的LCOE(平均电力成本)(额定功率低于0.1 kW的那些除外)的范围为0.12至10.6 / kWh,并且在两年审查。该值与某些海上和陆上设施,沼气和光伏发电设备相比具有竞争力,但它并未考虑污染成本和补贴。所提出的解决方案在经济上也是可行的,还考虑了在光伏-风电混合系统或由太阳能光伏和风能补充的基于化石的热发生器系统中的可能集成。 (C)2017 Elsevier Ltd.保留所有权利。

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