检索规则说明:AND代表“并且”;OR代表“或者”;NOT代表“不包含”;(注意必须大写,运算符两边需空一格)
检 索 范 例 :范例一: (K=图书馆学 OR K=情报学) AND A=范并思 范例二:J=计算机应用与软件 AND (U=C++ OR U=Basic) NOT M=Visual
机构地区:[1]北京师范大学环境学院水环境模拟国家重点实验室,北京100875
出 处:《生态学报》2015年第8期2741-2749,共9页Acta Ecologica Sinica
摘 要:如何系统定量地评价小水电开发过程所引起的景观变化、河流局部断流等生态影响,是平息争议、进行合理规划与开发小水电前提之一。运用能值分析方法,以贵州省赤水市观音岩水电站为例,将小水电建设、运行的资源投入,以及河道中水流的时空改变所导致生态服务功能的损失纳入核算体系,对其生态影响进行综合定量评估。从2010年的实际结果来看,由于河流断流,导致水坝下游生态系统服务功能的能值损失为2.77×1018sej,占到了系统建设运行总投入的44.84%,其中重点保护鱼种在影响河段的生境破坏是最大的能值损失。若不考虑下游生态系统服务功能损失,系统的环境负载率为1.92,可持续性指标为1.22;而考虑下游生态影响之后,系统环境负载率增大至4.26,可持续性指标减小为0.34。研究表明,小水电的开发必须遵循适度开发、规划优先,保障河流最基本的生态需水底线,是协调小水电开发和河流健康矛盾、追求小水电持续发展的刚性要求。In China, most of the small hydropower (short for SHP ) plants are currently seeking for benefits in power generation and economic revenue with little consideration of environmental flows for ecosystems, causing great impacts on river ecosystem services in the downstream of the dams. Negative ecological impacts of small hydropower have drawn increasing attention from the public. This paper used emergy analysis, one of the ecological energetic accounting methods, to evaluate the overall ecological impacts of construction and operation of small hydropower and took Guanyinyan hydropower plant in Chishui City, northwest of Guizhou Province as an example. Having capabilities in accounting multiple forms of energy and materials both from environmental and economic points of view on a common energy basis, the method of emergy analysis was widely used for supporting the evaluation of agricultural, wetlands and urban systems and was proved to be a useful tool for evaluating the overall performance of a mixed ecological and economic systems. The related indices and ratios based on emergy flows such as emergy yield ratio (EYR), environmental loading ratio (ELR) and emergy sustainability index (ESI) can be used for characterizing resource consumptions, environmental impacts and overall system sustainability. Through incorporating losses of the downstream ecosystem services into the operation cost of the power production system, the results showed that the studied system was supported by a total emergy of 6.18 x 10~sej in 2010 to produce 2.26x 10nJ of electricity, of which the downstream ecosystem service losses was the largest among multiple marginal costs, accounting for 44.84% of total ecological economic cost. The losses of ecosystem service mainly included those due to biodiversity losses (especially rare species losses) and climate regulation losses, with 2.77× 1018 and 4.63 × 1013 sej/a respectively. Without considering the ecosystem service losses, the ELR of the studied system was 1.92 and the E
分 类 号:TV72[水利工程—水利水电工程] X826[环境科学与工程—环境工程]
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在链接到云南高校图书馆文献保障联盟下载...
云南高校图书馆联盟文献共享服务平台 版权所有©
您的IP:216.73.216.171