Hydroponic Green Roof Systems as an Alternative to Traditional Pond and Green Roofs: A Literature Review
Abstract
:1. Introduction
2. Materials and Methods
3. Principles of Using Hydroponic Green Roofs as Cooling Systems
Hydroponic Systems
4. Passive Cooling Designs
4.1. Passive Cooling Performance of Hydroponic Green Roof Systems (HGRS)
4.2. Passive Cooling Performance of Traditional Roof Gardens and Pond Roofs
5. Rainwater Management and Water Quality Improvement
6. Urban Agriculture and Mitigation of Crop Supply Impact
7. Modelling Approach
8. Discussion and Future Development
8.1. Passive Cooling Properties
8.2. Rainwater Management and Water Quality Improvement
8.3. Further Environmental Benefits
8.4. Knowledge Gap and Potential Developments
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
HGRS | Hydroponic green roof systems |
iRTGs | Integrated rooftop greenhouses |
BIA | Building integrated agriculture |
UHI | Urban heat island |
UA | Urban agriculture |
CEA | Controlled environment agriculture |
LCA | Life cycle assessment |
NFT | Nutrient film technique |
DWC | Deep water culture |
RH | Relative humidity |
PET | Physiological equivalent temperature |
NT | Normalized temperature |
LID | Low-impact development |
HRT | Hydraulic retention time |
BOD5 | Five-day biochemical oxygen demand |
COD | Chemical oxygen demand |
DO | Dissolved oxygen |
WAHE | Water to air heat exchanger |
TDR | Temperature difference ratio |
WBT | Wet bulb temperature |
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Ref. | Country | Investigated System | Type of Study | Topic | Climate | Time Period | Methodology |
---|---|---|---|---|---|---|---|
Dong et al. [4] | Xiamen Island, China | Green roofs | Case study | Cooling effect of green roofs in high-density urban areas | - | 2015 2017 | Quantitative assessment of green roofs’ cooling effect at the urban scale through LST comparison |
Paithankar and Taji [5] | Maharashtra State, India | Green roofs | Model | Hydrological performance of green roofs (storm water management model) | Subtropical | Rainfall data from 2005 to 2015 | Simulation through Storm Water Management Model (SWMM) |
Berardi et al. [6] | California, USA | Green roofs pond roofs | Experimental | Indoor thermal comfort enhancement through water-to-air heat exchangers and indirect evaporative and radiant cooling | hot and dry | August 2015–September 2016 | In situ measurement of thermal characteristic of two test cells with a green roof coupled with a WAHE for assessing cooling performance in the nighttime |
Huang et al. [12] | Taichung, Taiwan | HGRS 1 | Experimental | Rooftop temperature and heat amplitude reduction effect of hydroponic green roofs | Subtropical | 27 July–15 September 2014 | Measurement of hydroponic roofs’ (1) thermal performance, at different depths of water and (2) thermal performance with and without vegetation. Comparison of thermal performance of hydroponic green roofs and extensive green roofs |
Goodman et al. [17] | NYC, USA | Hydroponics CEA 3 | Case study | Vertical and soil-less systems for controlled environment agriculture | - | 2016 | Data collection on the state of CEA and critical analysis to assess the environmental, economic and social potential of projects located on publicly owned rooftops and land |
Tanaka et al. [18] | Osaka, Japan | HGRS 1 | Experimental Modelling | Rooftop heating mitigation during summer | Warm and temperate | 1 July–31 August 2013 | Observation of air temperature, rooftop surface temperature, and conductive heat flux; calculation of three thermal mitigation indices; definition of normalized types of mitigation indices |
Tanaka et al. [19] | Osaka-Kyoto, Japan | HGRS 1 | Experimental Modelling | Rooftop heating mitigation during summer | Warm and temperate | 1 July–31 August 2013 1 July–31 August 2014 | Observation of air temperature, rooftop surface temperature, and conductive heat flux; heat balance assessment through net radiation and latent heat flux equations |
Xu et al. [20] | Wenzhou, China | HGRS 1 | Experimental | Performance of hydroponic green roof systems in rainwater and greywater management | Warm and temperate | September 2017–August 2018 | In situ collection of rainwater samples and synthetic greywater treatment; observation of changes in water concentration |
Almodovar and La Roche [22] | Pomona (CA) | Pond roofs | Experimental | Cooling performance of a pond roof combined with a WAHE system | hot and dry with mild winters | August–October 2016 | In situ measurements of surface and air temperature; definition of predictive equations to effectively dimension the WAHE system |
Alexandri and jones [23] | Athens, Mumbai, Riyadh | Green roofs pond roofs pergolas | Experimental | Cooling techniques for urban spaces | hot and dry hot and humid hot and arid | July May July | Measurement of air and surface temperature |
Pearlmutter and Berliner [25] | Negev Highlands, Israel | Pond roofs | Experimental | Pond roof variants to enhance their cooling performance | hot and arid | August 2013 | Observation of a psychrometric roof pond (PRP), using an elevated lightweight shading structure to eliminate radiant heat loads at daytime and allowing free air flow to maximize evaporation |
Krüger et al. [26] | Brazil | Pond roofs | Experimental | Cooling performance of an indirect evaporative cooling system (IECS) | subtropical | October 2014–January 2016 | In situ assessment of the thermal performance of an IECS on experimental test cells |
Su et al. [29] | Guangzhou, China | Hydroponics UA 2 | Experimental | Increase in crop production in hydroponic based rooftop farming | Subtropical | 2018 | Production tests of 10 leafy vegetables, using a low-cost reflector-assisted two-layer hydroponic system |
Jiménez-Arias et al. [30] | Canary Islands, Spain | Hydroponics, soil-less | Experimental | Recycling of rejected brine (RB) from desalination for hydroponic culture | - | - | Chemical analysis for comparing the tested RB with a standard solution for hydroponic culture; crop yield and commercial quality analysis |
Gagliano et al. [32] | Catania, Italy | Green roofs | Experimental Modelling | Thermal behavior of extensive green roofs | Mediterranean with dry summer and mild winter | 27 July–24 August 2015 | Measurement of outdoor surface temperature of the green roof and dynamic simulation for a numerical model |
Maximum Surface Temperature Decrease | Average Surface Temperature Decrease | Maximum Air Temperature Decrease (at 1 m) | Average Air Temperature Decrease (at 1 m) | |
---|---|---|---|---|
Concrete roof covered with white coating | 20.9 °C | 12.4 °C | 4.1 °C | 2.2 °C |
Green roof | 26.2 °C | 14.4 °C | 7.3 °C | 2.7 °C |
Pond roof | 28.1 °C | 14.8 °C | 4.2 °C | 3.1 °C |
Pergola | 28.8 °C | 15.6 °C | 12.6 °C | 8.1 °C |
Maximum Surface Temperature Decrease | Average Surface Temperature Decrease | Maximum Air Temperature Decrease (at 1 m) | Average Air Temperature Decrease (at 1 m) | |
---|---|---|---|---|
Concrete roof covered with white coating | 20.8 °C | 11.7 °C | 4.1 °C | 2.1 °C |
Green roof | 27.6 °C | 15.0 °C | 8.0 °C | 3.1 °C |
Pond roof | 27.8 °C | 13.4 °C | 5.5 °C | 2.4 °C |
Pergola | 30.9 °C | 16.8 °C | 15.4 °C | 10.6 °C |
Maximum Surface Temperature Decrease | Average Surface Temperature Decrease | Maximum Air Temperature Decrease (at 1 m) | Average Air Temperature Decrease (at 1 m) | |
---|---|---|---|---|
Concrete roof covered with white coating | 17.9 °C | 10.4 °C | 3.5 °C | 1.9 °C |
Green roof | 29.5 °C | 18.5 °C | 8.8 °C | 4.7 °C |
Pond roof | 22.9 °C | 11.1 °C | 4.6 °C | 2.1 °C |
Pergola | 33.3 °C | 21.0 °C | 23.3 °C | 17.6 °C |
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Rapisarda, R.; Nocera, F.; Costanzo, V.; Sciuto, G.; Caponetto, R. Hydroponic Green Roof Systems as an Alternative to Traditional Pond and Green Roofs: A Literature Review. Energies 2022, 15, 2190. https://doi.org/10.3390/en15062190
Rapisarda R, Nocera F, Costanzo V, Sciuto G, Caponetto R. Hydroponic Green Roof Systems as an Alternative to Traditional Pond and Green Roofs: A Literature Review. Energies. 2022; 15(6):2190. https://doi.org/10.3390/en15062190
Chicago/Turabian StyleRapisarda, Renata, Francesco Nocera, Vincenzo Costanzo, Gaetano Sciuto, and Rosa Caponetto. 2022. "Hydroponic Green Roof Systems as an Alternative to Traditional Pond and Green Roofs: A Literature Review" Energies 15, no. 6: 2190. https://doi.org/10.3390/en15062190
APA StyleRapisarda, R., Nocera, F., Costanzo, V., Sciuto, G., & Caponetto, R. (2022). Hydroponic Green Roof Systems as an Alternative to Traditional Pond and Green Roofs: A Literature Review. Energies, 15(6), 2190. https://doi.org/10.3390/en15062190