Assessing efficiency and economic viability of rainwater harvesting systems for meeting non-potable water demands in four climatic zones of China

被引:86
作者
Jing, Xueer [1 ]
Zhang, Shouhong [1 ]
Zhang, Jianjun [1 ]
Wang, Yujie [1 ]
Wang, Yunqi [1 ]
机构
[1] Beijing Forestry Univ, Sch Soil & Water Conservat, Beijing 100083, Peoples R China
基金
中国国家自然科学基金;
关键词
Rainwater harvesting; Water balance equation; Stormwater capture efficiency; Time reliability; Water saving efficiency; Benefit-cost analysis; RELIABILITY-ANALYSIS; STORAGE TANKS; RUNOFF; QUALITY; IRRIGATION; PERFORMANCE; MELBOURNE; SELECTION; SAVINGS; DESIGN;
D O I
10.1016/j.resconrec.2017.07.027
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Rainwater harvesting is now increasingly used to manage urban flood and alleviate water scarcity crisis. In this study, a computational tool based on water balance equation is developed to assess stormwater capture and water saving efficiency and economic viability of rainwater harvesting systems (RHS) in eight cities across four climatic zones of China. It requires daily rainfall, contributing area, runoff losses, first flush volume, storage capacity, daily water demand and economic parameters as inputs. Three non-potable water demand scenarios (i.e., toilet flushing, lawn irrigation, and combination of them) are considered. The water demand for lawn irrigation is estimated using the Cropwat 8.0 and Climwat 2.0. Results indicate that higher water saving efficiency and water supply time reliability can be achieved for RHS with larger storage capacities, for lower water demand scenarios and located in more humid regions, while higher stormwater capture efficiency is associated with larger storage capacity, higher water demand scenarios and less rainfall. For instance, a 40 m(3) RHS in Shanghai (humid climate) for lawn irrigation can capture 17% of stormwater, while its water saving efficiency and time reliability can reach 96% and 98%, respectively. The water saving efficiency and time reliability of a 20 m3 RHS in Xining (semi-arid climate) for toilet flushing are 19% and 16%, respectively, but it can capture 63% of stormwater. With the current values of economic parameters, economic viability of RHS can be achieved in humid and semi-humid regions for reasonably designed RHS; however, it is not financially viable to install RHS in arid regions as the benefit-cost ratio is much smaller than 1.0.
引用
收藏
页码:74 / 85
页数:12
相关论文
共 67 条
[1]  
Allen R. G., 1998, FAO Irrigation and Drainage Paper
[2]  
[Anonymous], 2013, DB11685 BUR QUAL TEC
[3]  
[Anonymous], 2015, EVIDENCE BASED COMPL
[4]  
Appan A., 1999, Urban Water Journal, V1, P317, DOI [DOI 10.1016/S1462-0758(00)00025-X, 10.1016/S1462-0758(00)00025-X]
[5]   EVAPOTRANSPIRATION OF COOL-SEASON TURFGRASSES IN THE HUMID NORTHEAST [J].
ARONSON, LJ ;
GOLD, AJ ;
HULL, RJ ;
CISAR, JL .
AGRONOMY JOURNAL, 1987, 79 (05) :901-905
[6]   Optimal design of rainwater collecting systems for domestic use into a residential development [J].
Bocanegra-Martinez, Andrea ;
Maria Ponce-Ortega, Jose ;
Napoles-Rivera, Fabricio ;
Serna-Gonzalez, Medardo ;
Jaime Castro-Montoya, Agustin ;
El-Halwagi, Mahmoud M. .
RESOURCES CONSERVATION AND RECYCLING, 2014, 84 :44-56
[7]   Optimal sizing of storage tanks for domestic rainwater harvesting in Sicily [J].
Campisano, Alberto ;
Modica, Carlo .
RESOURCES CONSERVATION AND RECYCLING, 2012, 63 :9-16
[8]  
Chen C.H., 2013, URBAN CONSTR THEORY, V24, P17
[9]   The Value of Rain: Benefit-Cost Analysis of Rainwater Harvesting Systems [J].
Dallman, Suzanne ;
Chaudhry, Anita M. ;
Muleta, Misgana K. ;
Lee, Juneseok .
WATER RESOURCES MANAGEMENT, 2016, 30 (12) :4415-4428
[10]   Variations of crop coefficient and its influencing factors in an arid advective cropland of northwest China [J].
Ding, Risheng ;
Tong, Ling ;
Li, Fusheng ;
Zhang, Yanqun ;
Hao, Xinmei ;
Kang, Shaozhong .
HYDROLOGICAL PROCESSES, 2015, 29 (02) :239-249