Realizing ecosystem-safe hydropower from dams.

Renewables: wind, water, and solar Pub Date : 2020-01-01 Epub Date: 2020-06-01 DOI:10.1186/s40807-020-00060-9
Shahryar Khalique Ahmad, Faisal Hossain
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引用次数: 2

Abstract

For clean hydropower generation while sustaining ecosystems, minimizing harmful impacts and balancing multiple water needs is an integral component. One particularly harmful effect not managed explicitly by hydropower operations is thermal destabilization of downstream waters. To demonstrate that the thermal destabilization by hydropower dams can be managed while maximizing energy production, we modelled thermal change in downstream waters as a function of decision variables for hydropower operation (reservoir level, powered/spillway release, storage), forecast reservoir inflow and air temperature for a dam site with in situ thermal measurements. For data-limited regions, remote sensing-based temperature estimation algorithm was established using thermal infrared band of Landsat ETM+ over multiple dams. The model for water temperature change was used to impose additional constraints of tolerable downstream cooling or warming (1-6 °C of change) on multi-objective optimization to maximize hydropower. A reservoir release policy adaptive to thermally optimum levels for aquatic species was derived. The novel concept was implemented for Detroit dam in Oregon (USA). Resulting benefits to hydropower generation strongly correlated with allowable flexibility in temperature constraints. Wet years were able to satisfy stringent temperature constraints and produce substantial hydropower benefits, while dry years, in contrast, were challenging to adhere to the upstream thermal regime.

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实现大坝水电生态安全。
清洁水力发电在维持生态系统的同时,最大限度地减少有害影响和平衡多种用水需求是一个不可或缺的组成部分。水电运营没有明确管理的一个特别有害的影响是下游水域的热不稳定。为了证明水电站大坝的热失稳可以在最大限度地提高能源生产的同时得到控制,我们将下游水域的热变化建模为水电运行决策变量(水库水位、动力/溢洪道释放、蓄水量)的函数,并通过现场热测量预测水库入水量和坝址的空气温度。在数据有限的区域,利用Landsat ETM+多坝热红外波段建立了基于遥感的温度估计算法。利用水温变化模型对多目标优化施加可容忍的下游降温或升温(1-6°C变化)约束,以实现水电效益最大化。导出了适合水生物种热最佳水平的水库释放策略。美国俄勒冈州的底特律大坝采用了这种新颖的设计理念。由此产生的水力发电效益与温度约束下的允许灵活性密切相关。湿润年份能够满足严格的温度限制,并产生大量的水力发电效益,而干燥年份则相反,坚持上游热状态具有挑战性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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