A Review of Roof and Pond Rainwater Harvesting Systems for Water Security: The Design, Performance and Way Forward
Abstract
:1. Introduction
2. System Design and Its Components
2.1. Categories of RWHS
2.2. Components of RWHS
3. Performance of RWHS
3.1. Water Quantity
3.1.1. Peak Flow Reduction
3.1.2. Water Supply
3.2. Water Quality
3.3. Energy Saving
3.4. Economic Saving
4. Challenges and Way Forward
4.1. Challenges
4.2. Way Forward
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Country | Storage Tank (m3) | Annual Rainfall (mm) | Rainfall Runoff | References |
---|---|---|---|---|
China | 4083 | 1106 ** | decreased 13.9%, 30.2% and 57.7% for maximum daily rainfall, annual average maximum daily rainfall and critical rainfall, respectively, in Nanjing | Zhang et al. [33] |
Italy | N/A | 1086 ** | decreased 26% of runoff volume in Genoa | Palla et al. [39] |
2040 (5 for each house) | 700 * | decreased 35% if the rainfall depth up to 50 mm in Palermo | Freni and Liuzzo [34] | |
United States | N/A | 1016 ** | decreased 28% of runoff volume in New York city | Basinger et al. [37] |
N/A | 1600 * | decreased more than 20% runoff volume in Florida Panhandle | Deitch and Feirer [40] | |
South Africa | 0.5–30 | 600–1500 * | decreased 44% of runoff volume in Lisbeek River Catchment, Western Cape Town | Fisher-Jeffes et al. [36] |
South Korea | 139–566 | 1000 ** | decreased 9% to 12% of runoff volume in Seoul National University (SNU), Korea Institute of Construction Technology (KITC) and Daejeon World Cup Stadium (WCS) | Kim and Yoo [35] |
Country | Storage Tank (m3) | Annual Rainfall (mm) | Water Supply | References |
---|---|---|---|---|
Developed Countries | ||||
Australia | 50 | 1318 * | met 90% of domestic water demand in Brisbane | Cook et al. [25] |
5–20 | 973 * | met 96% to 99% (wet seasons) and 69% to 99% (dry seasons) of toilet flushing and laundry in demand Sydney (New South Wales) | Hajani and Rahman [54] | |
5 | 811 * | met 91% of drinking water demand in New South Wales | Alim et al. [55] | |
France | 5 | 760 * | saved 87% of toilet flushing water demand in Southwestern France | Vialle et al. [56] |
Greece | 50 | 412 ** | met 50% of water demand for 5 people during dry period up to 133 days. | Londra et al. [45] |
United States | 5 | 1100 * | saved 53% of domestic water demand in New York | Basinger et al. [37] |
76 | 1857 ** | met 77% of toilet flushing in Washington, DC | Ghimire et al. [57] | |
United Kingdom (UK) | 5 | 1417 ** | met 20-year period of average non-potable water demand | Melville-Shreeve et al. [58] |
Poland | 5–75 | 501 ** | saved 57% of toilet flushing and garden watering demand in Warsaw | Slyś and Stec [46] |
Taiwan | N/A | 2405 ** | met 70% of potable water demand in four-story building in Taipei | Lin et al. [47] |
Developing Countries | ||||
Bangladesh | N/A | 3000 * | met 20 L/person/day of 5 people in each accommodation for Chittagong | Akter and Ahmed [59] |
30 | 2600 * | met 30% to 40% of water demand | Bashar et al. [48] | |
0.5–50 | 2200 * | met 91.9% of drinking and cooking water demand in Dhaka | Karim [60] | |
Brazil | 2–12 | 1362 * | saved 12% to 79% of potable water demand in South East Brazil | Ghisi et al. [51] |
20 | 1740 * | saved 6.5% of potable water demand in Florianópolis | Kuntz et al. [52] | |
Colombia | 2 | 1053 * | saved 44% of potable water demand in Bucaramanga | Oviedo-Ocaña et al. [53] |
Jordan | 2000 | 428 ** | saved 125% to 145% of potable water demand in Irbik | Awawdeh M. et al. [19] |
Lebanon | N/A | 600 * | met 70% of the current deficit in the domestic water demand in Beirut | Traboulsi and Traboulsi [61] |
Malaysia | 10 | 2400 * | saved 30% to 40% of water demand in common areas in 4 blocks of condominium comprising 965 units of apartments in Penang | Chan [29] |
10 | 2400 * | saved 40% to 50% of water demand in Penang | Chan [20] | |
160 | 1945 * | saved 58% of water demand for community of 200 houses in Rengam, Johor | Hashim et al. [49] | |
Nigeria | N/A | 3553 * | met 80% of three-story building and 70% of bungalow water demand in Calabar | Nnaji and Mama [62] |
Southwestern Nigeria | 5 | 1156 * | met 90% of toilet flushing and 50% of laundry demand during the dry period in Abeokuta | Aladenola and Adeboye [50] |
Country | Storage Area (m3) | Annual Rainfall (mm) | Water Supply | Additional Method | References | |
---|---|---|---|---|---|---|
Irrigation | Domestic | |||||
Bangladesh | 1500–6500 | 1544 ** | met 43% of water demand in Tanore, Rajshahi | N/A | N/A | Hasan et al. [77] |
Ethiopia | 102 | 1257 ** | met 45% of seedling, fruit production and 50% of livestock watering in Shenkora | meet 5% of water demand | Plastic lining or geo-membrane | Teshome et al. [67] |
Guatemala | 2500 | 1166 * | 424,070.81 m3 total volume of harvested water | N/A | N/A | Wu et al. [66] |
India | 23,530 | 836 * | N/A | 23,000 m3 meet of drinking water demand for the 1632 population in Dindigul, Tamil Nadu | Retaining wall | Farook et al. [32] |
1200 | 549 * | 5000 m3 total volume of harvested water in Satara, Maharashtra | N/A | N/A | Ramotra and Gaikwad [65] | |
Kenya | 30–100 | 280–1100 * | 50 m3 total volume of harvested water to irrigate a kitchen garden in Laikipia | N/A | N/A | Ngigi et al. [69] |
Country | Water Quality | Water Treatment | References |
---|---|---|---|
Roof Harvesting System (RHS) | |||
Bangladesh | meets the requirement except pH | low-cost flushing device | Alam et al. [79] |
suitable for drinking water without any treatment in Dhaka areas | sand filter | Islam et al. [80] | |
Canada | contaminated with zinc and cadmium | first-flush device UV disinfection slow sand filtration storing rainwater at temperature (50–70 °C) | Despins et al. [28] |
Colombia | N/A | first flush diversion device | Oviedo-Ocaña et al. [53] |
Delta State, Nigeria | meets the requirements for physiochemical and biological parameters of WHO standard but treatment is needed for pH, TSS, Fe and color | N/A | Efe [81] |
Greece | meets the requirement for physical and chemical parameters for drinking water except for microbial indicators (total coliforms, E. coli and enterococci) | chlorination | Sazakli et al. [78] |
Ireland | contaminated with three bacterial indicators (coliforms, E. coli and enterococci) | filtration system chlorination | Li et al. [26] |
Jordan | meets the requirements of WHO standard except for nitrates and biological contaminants | N/A | Awawdeh M. et al. [19] |
meets the requirements of WHO standards for drinking water except fecal coliform | first flush device | Abdulla and Al-Shareef [17] | |
Malaysia | meets the requirements for potable use, except for E. coli | first flush device disinfection | Shaheed and Mohtar [82] |
relatively clean but required treatment for potable uses. | filtration with pH adjustment chlorination | Hafizi Md Lani et al. [22] | |
United States (US) | not suitable for drinking water (exceeds USEPA standards for pH, fecal coliforms, aluminum, lead and zinc) suitable for non-potable use with 200 cfu fecal coliforms | filtration UV disinfection | DeBusk et al. [83] |
Northern Ethiopia | not suitable for drinking water | N/A | Taffere et al. [84] |
Palestinian | not suitable for drinking water (contaminated with coliforms and heterotrophic bacteria) | regularly cleaning chlorination first flush device | Daoud et al. [85] |
Portugal | N/A | first flush device filtration | Silva et al. [86] |
Zambia | suitable for drinking water but concerned with its taste and debris | N/A | Handia et al. [87] |
Pond Harvesting System (PHS) | |||
India | for potable uses, contaminated with excess iron, turbidity and fecal coliform | chlorination | Farook et al. [32] |
Kenya | suitable for drinking water and non-potable use | N/A | Qi et al. [88] |
South Africa | for non-potable uses, contaminated with high value of total suspended solid and E. coli | filtration UV disinfection | Rohrer and Armitage [44] |
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Zabidi, H.A.; Goh, H.W.; Chang, C.K.; Chan, N.W.; Zakaria, N.A. A Review of Roof and Pond Rainwater Harvesting Systems for Water Security: The Design, Performance and Way Forward. Water 2020, 12, 3163. https://doi.org/10.3390/w12113163
Zabidi HA, Goh HW, Chang CK, Chan NW, Zakaria NA. A Review of Roof and Pond Rainwater Harvesting Systems for Water Security: The Design, Performance and Way Forward. Water. 2020; 12(11):3163. https://doi.org/10.3390/w12113163
Chicago/Turabian StyleZabidi, Husnna Aishah, Hui Weng Goh, Chun Kiat Chang, Ngai Weng Chan, and Nor Azazi Zakaria. 2020. "A Review of Roof and Pond Rainwater Harvesting Systems for Water Security: The Design, Performance and Way Forward" Water 12, no. 11: 3163. https://doi.org/10.3390/w12113163
APA StyleZabidi, H. A., Goh, H. W., Chang, C. K., Chan, N. W., & Zakaria, N. A. (2020). A Review of Roof and Pond Rainwater Harvesting Systems for Water Security: The Design, Performance and Way Forward. Water, 12(11), 3163. https://doi.org/10.3390/w12113163