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Green wall

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biodegrade, and hence stay viable as an active substrate for 20+ years. Vertical wall systems utilising polyurethane sheeting typically employ a sandwich construction where a water proof membrane is applied to the back, the polyurethane sheeting (typically two sheets with irrigation lines in between) is laid and then a mesh or anchor braces/bars secure the assembly to the wall. Pockets are cut into the face of the first urethane sheet into which plants are inserted. Soil is typically removed from the roots of any plants prior to insertion into the urethane mattress substrate. A flaked or chopped noodle version of the same polyurethane material can also be added to existing structural media mixes to boost water retention.
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in Asia that have solved the loose media erosion problem by use of shielding systems to hold the media within the green wall system even when soil liquefaction occurs under seismic load. In these systems, the plants can still up-root themselves in the liquified soil under seismic load, and therefore it is required that the plants be secured to the system to prevent them from falling from the wall.
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period is minor. As there is no watering system involved this method eliminates potential mold, algae and moss problems that can plague other systems. Because of the lack of media and water, these screens can also be installed horizontally, and the first of these screens ever installed was for a 2023 installation on the rooftop of the City of Melbourne's
390:, or provide aesthetic enhancement as art installations. They are particularly suitable for cities, as they allow good use of available vertical surface areas. They are also suitable in arid areas, as the circulating water on a vertical wall is less likely to evaporate than in horizontal gardens. It is sometimes built indoors to help alleviate 210:, can be used because they absorb available atmospheric water and nutrients via trichome leaf cells, and their roots have developed to hold onto a support structure, unlike other plants which use their roots as a medium to absorb nutrients. The other benefit of Tillandsias within a media-free system is that these plants use a 202:
mesh, which is then attached to the façade of the structure, and plants are individually attached to this wire mesh. These frames are offset from the supporting structure to allow airflow between the green wall and the supporting structure, and this offset results in additional cooling to the adjoining building.
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The method of reparation of these systems is to replace large sections of the system at a time by cutting the mat out of the wall and replacing it with new mat. This process compromises the root structures of the neighboring plants on the wall and often kills many surrounding plants in the reparation
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Loose soil systems are not well suited for areas with any seismic activity. Most importantly, because these systems can easily have their medium blown away by wind-driven rain or heavy winds, these should not be used in applications over 2.5 metres (8 ft 2 in) high. There are some systems
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Loose medium walls tend to be "soil-on-a-shelf" or "soil-in-a-bag" type systems. Loose medium systems have their soil packed into a shelf or bag and are then installed onto the wall. These systems require their media to be replaced at least once a year on exteriors and approximately every two years
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Freestanding media are portable living walls that are flexible for interior landscaping and are considered to have many biophilic design benefits. Zauben living walls are designed with hydroponic technology that conserves 75% more water than plants grown in soil, self-irrigates, and includes moisture
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level, noise level and air pollution abatement. However, to have the optimal effect on the indoor climate it is important that the plants in the green wall have the best conditions for growth, both when talking about watering, fertilizing and the right amount of light. To have the best result on all
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Mat systems are particularly water inefficient and often require constant irrigation due to the thin nature of the medium and its inability to hold water and provide a buffer for the plant roots. This inefficiency often requires that these systems have a water re-circulation system put into place at
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Traditional green facades are best characterised as ‘Xerothermophilous’ habitats comparable to cliffs, while continuous felt and modular substrate-filled living wall types are best characterised as damp and cool habitats comparable to vegetated waterfalls. Systems with increased substrate depth are
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There is also some discussion involving "active" living walls. An active living wall actively pulls or forces air through the plants le quality to the point that the installation of other air quality filtration systems can be removed to provide a cost-savings. Therefore, the added cost of design,
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Structural media are growth medium "blocks" that are not loose, nor mats, but which incorporate the best features of both into a block that can be manufactured into various sizes, shapes and thicknesses. These media have the advantage that they do not break down for 10 to 15 years, can be made to
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Media-free green walls are those that do not require soil substrates, fertilizers, or reticulated watering systems, and which utilize a method of selecting plant species which are best suited to the local climate. Media-free green walls often use a structural steel frame that is infilled with wire
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typology of 'green facades' as they have the growth medium supported on the vertical face of the host wall (as described below), while green facades have the growth medium only at the base (either in a container or as a ground bed). Green facades typically support climbing plants that climb up the
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Green walls provide an additional layer of insulation that can protect buildings from heavy rainwater which leads to management of heavy storm water and provides thermal mass. They also help reduce the temperature of a building because vegetation absorbs large amounts of solar radiation. This can
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Semi-open cell polyurethane sheet media utilising an egg crate pattern has successfully been used in recent years for both outdoor roof gardens and vertical walls. The water holding capacity of these engineered polyurethanes vastly exceeds that of coir and felt based systems. Polyurethanes do not
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Every three-to-five-years, any additional plant growth can be harvested to reduce weight, and these plant pups can be utilized for additional green walls. As long as suitable species are matched to the climate of the green wall's location, then potential plant losses across any three-to-five-year
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Mat type systems tend to be either coir fiber or felt mats. Mat media are quite thin, even in multiple layers, and as such cannot support vibrant root systems of mature plants for more than three to five years before the roots overtake the mat and water is not able to adequately wick through the
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These media-free systems result in green walls which are considerably lighter than other methods, and also require significantly less maintenance, while the risk of liquid migration into adjoining structural walls is eliminated. The plant species which can be used in media-free systems varies
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Green walls have seen a surge in popularity in recent times. An online database provided by greenroof.com for example had reported 80% of the 61 large-scale outdoor green walls listed as constructed after 2009, with 93% after 2007. Many notable green walls have been installed at institutional
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buildings and public places, with both outdoor and indoor installations gaining significant attention. As of 2015, the largest green wall is said to cover 2,700 square meters (29,063 square feet) and is located at the Los Cabos International Convention Centre designed by Mexican architect
410:) by absorbing the dissolved nutrients. Bacteria mineralize the organic components to make them available to the plants. A study is underway at the Bertschi School in Seattle, Washington, using a GSky Pro Wall system, however, no publicly available data on this is available at this time. 456:, created a computer model of a green wall with a broad selection of vegetation. The study showed results of the green wall absorbing nitrogen dioxide and particulate matter. In street canyons where polluted air is trapped, green walls can absorb the polluted air and purify the streets. 247:
Loose-soil systems without physical media erosion systems are best suited for the home gardener where occasional replanting is desired from season to season or year to year. Loose-soil systems with physical media erosion systems are well suited for all green wall applications.
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is a vertical built structure intentionally covered by vegetation. Green walls include a vertically applied growth medium such as soil, substitute substrate, or hydroculture felt; as well as an integrated hydration and fertigation delivery system. They are also referred to as
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released by paints, furniture, and adhesives. Off-gassing from VOCs can cause headaches, eye irritation, and airway irritation and internal air pollution. Green walls can also purify the air from mould growth in building interiors that can cause asthma and allergies.
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planning and implementation of an active living wall is still in question. With further research and UL standards to support the air quality data from the living wall, building code may one day allow for our buildings to have their air filtered by plants.
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vertical face of the host wall, while green walls can accommodate a variety of plant species. Green walls may be implanted indoors or outdoors; as freestanding installations or attached to existing host walls; and applied in a variety of sizes.
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These systems are best used on the interior of a building and are a good choice in areas with low seismic activity and small plants that will not grow to a weight that could rip the mat apart under their own weight over time.
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Indoor green walls can have a therapeutic effect from exposure to vegetation. The aesthetic feel and visual appearance of green walls are other examples of the benefits - but also affects the indoor climate with reduced
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Reggev, K. (2018, January 18). Living Green Walls 101: Their Benefits and How They're Made. Retrieved March 2, 2019, from https://www.dwell.com/article/living-green-walls-101-their-benefits-and-how-theyre-made-350955f3
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The area of air quality and plants is continuing to be researched. Early studies in this area include NASA studies performed in the 1970s and 1980s by B. C. Wolverton. There was also a study performed at the
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have a higher or lower water holding capacity depending on the plant selection for the wall, can have their pH and EC's customized to suit the plants, and are easily handled for maintenance and replacement.
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Pictures: Green Walls May Cut Pollution in Cities. (2016, May 17). Retrieved from https://news.nationalgeographic.com/news/2013/03/pictures/130325-green-walls-environment-cities-science-pollution/
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Green walls are often constructed of modular panels that hold a growing medium and can be categorized according to the type of growth media used: loose media, mat media, and structural media.
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Hyatt, B. (2017, June 29). The ins and outs of green wall installation and maintenance. Retrieved March 2, 2019, from https://www.totallandscapecare.com/landscaping/green-wall-maintenance/
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at indoor applications in contrast is likely to be significantly limited owing to the restricted ecosystems created, with introductions most likely at planting or replanting stages.
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from 1922 to 1959, patented a 'vegetation-Bearing Architectonic Structure and System' in 1938, though his invention did not progress beyond prototypes in his backyard in
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Fjeld, Tove; Veiersted, Bo; Sandvik, Leiv; Riise, Geir; Levy, Finn (1998). "The Effect of Indoor Foliage Plants on Health and Discomfort Symptoms among Office Workers".
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to photosynthesize, and they have evolved to withstand long periods of heat and drought, and as a result, these plants grow slowly and require minimal maintenance.
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by absorbing, diffracting, reflecting, and scattering sound. Vegetated installations have as a result been widely used as means to improve outdoor and indoor
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an additional cost. Mat media are better suited for small installations no more than eight feet in height where repairs are easily completed.
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Darlington, A; Chan, M; Malloch, D; Pilger, C; Dixon, MA (March 2000). "The biofiltration of indoor air: implications for air quality".
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of the aforementioned, some green wall systems has special and patented technologies that is developed to the benefit of the plants.
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Coronado, S. (2015). Grow a living wall - create vertical gardens with purpose: Pollinators - he. Cool Springs Press.
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in Paris, and has since been involved with the design and implementation of a number of notable installations (e.g.
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where the plants reduce overall temperatures of the building. "The primary cause of heat build-up in cities is
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Media-free tillandsia green wall structural cross section. Designed by Lloyd Godman, East Melbourne, Australia.
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An increasing number of airports are investing in vertical gardens and living walls to create a unique setting
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Manso, Maria; Castro-Gomes, JoĂŁo (January 2015). "Green wall systems: A review of their characteristics".
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Ong, Boon Lay (May 2003). "Green plot ratio: an ecological measure for architecture and urban planning".
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by Alan Darlington. Other research has shown the effect the plants have on the health of office workers.
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Clapp, L., & Klotz, H. (2018). Vertical gardens. London ; Sydney ; Auckland: New Holland.
920: 3017: 2971: 2821: 1067: 1006: 436: 303: 3206: 3196: 3191: 2411: 2268: 1777: 1011: 923:"The effectiveness of green infrastructure for improvement of air quality in urban street canyons" 3055: 2831: 2733: 2728: 2446: 2323: 1800: 969: 1222:"A vertical garden: origins of the Vegetation-Bearing Architectonic Structure and System (1938)" 131: 2956: 2893: 2841: 2804: 2799: 2273: 2049: 391: 103: 3145: 2903: 2620: 2238: 2233: 2126: 1836: 193: 181: 3007: 2948: 2441: 2392: 2253: 2228: 2208: 1811: 1712: 1641: 1563: 1456: 1137: 1079: 937: 877: 823: 418: 345: 65: 8: 2926: 2789: 2345: 2213: 2198: 2146: 2136: 1575: 749: 1716: 1701:"Building biodiversity: Vegetated façades as habitats for spider and beetle assemblages" 1645: 1567: 1141: 1083: 941: 881: 3128: 3002: 2916: 2881: 2767: 2660: 2640: 1816: 1614: 1424: 1275: 1241: 1161: 893: 624: 387: 321: 261: 99: 85: 1653: 1125: 1068:"Vertical greening systems – A review on recent technologies and research advancement" 3050: 2911: 2876: 2871: 2738: 2580: 2365: 2313: 1928: 1730: 1618: 1579: 1165: 1153: 1095: 953: 921:
Thomas A. M. Pugh; A. Robert MacKenzie; J. Duncan Whyatt; C. Nicholas Hewitt (2012).
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Another significant function in urban areas is acoustic moderation. Plants attenuate
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Gunawardena, K., & Steemers, K. (2019). Living walls in indoor environments.
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Madre, Frédéric; Clergeau, Philippe; Machon, Nathalie; Vergnes, Alan (2015).
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Wall or vertical structure covered by living vegetation and growth substrate
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depending on the location of the planned green wall. Xeric plants, such as
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Green wall the Simon Fraser University, Burnaby, British Columbia, Canada.
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typically found to offer the highest diversity and abundance of species.
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Wolverton, B. C.; Johnson, Anne; Bounds, Keith (15 September 1989).
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select 'green wall' as type and 'living wall' under 'greenroof type'
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Medl, Alexandra; Stangl, Rosemarie; Florineth, Florin (2017-11-15).
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and management. The plants purify slightly polluted water (such as
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to implement the first successful large indoor green wall or
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Studies in the History of Gardens & Designed Landscapes
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Green walls differ from the more established vertical
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Gunawardena, Kanchane; Steemers, Koen (2019-01-15).
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City Tree helping to deliver cleaner air for Putney
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Air pollution-eating moss cleans hotspots in Europe
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Down to the Vertical Gardens. 867: 517:List of plants best suited for Media Free gardens 260:A green wall (mat media) in a children's museum, 3183: 435:reduce energy demands and cleanse the air from 102:, a Professor of Landscape Architecture at the 2105: 1457:"Council House 2 horizontal Tillandsia screen" 1192: 2091: 1785: 185:Media-free tillandsia green wall designed by 159: 2967:List of organic gardening and farming topics 454:Karlsruhe Institute of Technology in Germany 414:Phytoremediation and air quality improvement 646:Edible plants best suited for green facades 539:List of herbs best suited for green facades 2098: 2084: 1792: 1778: 1398:Eric Martin; Nacha Cattan (Jun 20, 2012). 1724: 870:Renewable and Sustainable Energy Reviews 500: 492: 417: 355: 255: 192: 180: 153: 59: 47: 14: 3184: 1219: 930:Environmental Science & Technology 2079: 1773: 1201:from the original on January 25, 2013 1126:"Living walls in indoor environments" 402:Living walls may also be a means for 360:An indoor green wall in an office in 225: 162:Universidad del Claustro de Sor Juana 3152: 1576:10.1034/j.1600-0668.2000.010001039.x 1342:from the original on 18 October 2013 1119: 1117: 1115: 1113: 1111: 1109: 1061: 1059: 1057: 452:Thomas Pugh, a biogeochemist at the 367:Green walls are found most often in 3164: 1799: 1752:Green Infrastructure Resource Guide 1631: 910:Living walls in indoor environments 799: 293: 128:CitĂ© des Sciences et de l'Industrie 24: 1533:"Wolverton Environmental Services" 1410:from the original on 16 April 2015 1307:www.verticalgardenpatrickblanc.com 437:VOC’s (Volatile Organic Compounds) 25: 3223: 1745: 1435:from the original on 3 March 2016 1396:For largest wall as of 2012, see 1375:from the original on 31 July 2016 1106: 1054: 708: 3163: 3151: 3140: 3139: 3127: 1220:Hindle, Richard L. (June 2012). 313: 302: 1705:Global Ecology and Conservation 1692: 1678: 1660: 1625: 1590: 1547: 1525: 1514:from the original on 2017-10-18 1496: 1475: 1449: 1390: 1313:from the original on 2017-01-06 1252:from the original on 2019-06-26 982:Building-integrated agriculture 908:, 148 (January 2019), 478–487. 382:Living walls could function as 134:, collaborating with architect 1537:www.wolvertonenvironmental.com 1357: 1324: 1295: 1279:. Feb 14, 2013. Archived from 1263: 1213: 1186: 1172: 1150:10.1016/j.buildenv.2018.11.014 1092:10.1016/j.buildenv.2017.08.054 1022:The Hanging Gardens of Babylon 284: 234: 168:historic center of Mexico City 149: 13: 1: 1654:10.1016/S0169-2046(02)00191-3 1047: 176: 1634:Landscape and Urban Planning 1599:Indoor and Built Environment 1238:10.1080/14601176.2011.653535 970:Down to the Vertical Gardens 251: 212:crassulacean acid metabolism 189:, East Melbourne, Australia. 64:An indoor green wall at the 7: 2998:Index of pesticide articles 1726:10.1016/j.gecco.2014.11.016 975: 351: 10: 3228: 2142:Climate-friendly gardening 1611:10.1177/1420326x9800700404 890:10.1016/j.rser.2014.07.203 852: 36: 29: 3121: 3043: 3018:Plant disease forecasting 2980: 2972:Vegan organic agriculture 2947: 2822:Genetically modified tree 2709: 2252: 2117: 1807: 1007:Great Green Wall (Africa) 488: 1504:"Purdue Solar Decathlon" 1130:Building and Environment 1072:Building and Environment 1012:Great Green Wall (China) 906:Building and Environment 476:Biodiversity enhancement 37:Not to be confused with 1431:. 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2581:Pollinator 2474:Greenhouse 2417:Sharawadgi 2405:Vietnamese 2366:East Asian 2274:Australian 2229:Raised bed 2194:Green wall 1965:Monopteros 1934:Jeux d'eau 1902:Green wall 1897:Greenhouse 1556:Indoor Air 1518:2017-06-26 1489:2022-09-02 1439:17 October 1414:17 October 1346:17 October 1317:2017-01-06 1256:2019-06-26 1048:References 1017:Green roof 794:Westringia 703:Watercress 682:Silverbeet 595:Lemongrass 590:Lemon balm 550:Bay laurel 528:Tillandsia 373:insolation 222:building. 177:Media-free 120:Peter Rice 73:green wall 52:Detail of 3103:Perennial 3066:Floristry 3013:Pesticide 2993:Herbicide 2988:Fungicide 2882:hardiness 2646:Shrubbery 2626:Sculpture 2447:landscape 2376:Cantonese 2351:Container 2346:Community 2314:Byzantine 2309:Butterfly 2299:Botanical 2199:Guerrilla 2147:Community 2137:Butterfly 2132:Arboretum 2127:Allotment 2119:Gardening 2111:gardening 1985:Nymphaeum 1975:Moon gate 1939:Labyrinth 1892:Gloriette 1837:Belvedere 1735:2351-9894 1619:111319315 1467:April 23, 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600:Marjoram 585:Lavender 508:, 2019, 352:Function 264:, Canada 112:Illinois 93:greening 3158:Commons 3071:Ikebana 3023:Pruning 2949:Organic 2899:Roguing 2785:Cutting 2676:Victory 2651:Spanish 2631:Sensory 2576:Prairie 2544:Persian 2534:Orchard 2499:Kitchen 2494:Keyhole 2489:Italian 2484:Islamic 2479:Hanging 2438:French 2424:Fernery 2412:English 2371:Chinese 2356:Cottage 2284:Baroque 2256:gardens 2209:History 2050:Trellis 2045:Topiary 2040:Terrace 2010:Pergola 1842:Cascade 1832:Bosquet 1713:Bibcode 1642:Bibcode 1564:Bibcode 1138:Bibcode 1080:Bibcode 938:Bibcode 878:Bibcode 853:Sources 816:Begonia 768:Liriope 693:Spinach 667:Lettuce 615:Parsley 610:Oregano 555:Caraway 533:Vriesea 523:Aechmea 166:in the 2908:Urban 2805:Taiwan 2800:Canada 2763:Botany 2756:Saikei 2751:Bonsai 2696:Winter 2681:Walled 2616:School 2611:Sacred 2566:Physic 2529:Mughal 2509:Market 2464:German 2442:formal 2434:Flower 2400:Korean 2319:Cactus 2304:Bottle 2264:Alpine 2214:Native 2167:Garden 2152:Forest 1907:Grotto 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Index

Vertical gardens
Vertical farming
Great Green Wall
The Green Wall

Patrick Blanc

University of Ottawa
ecosystem services
greening
Stanley Hart White
University of Illinois
Urbana
Illinois
Patrick Blanc
Peter Rice
Cité des Sciences et de l'Industrie
Musée du quai Branly
Jean Nouvel
Fernando Romero

Universidad del Claustro de Sor Juana
historic center of Mexico City

Lloyd Godman

Tillandsias
crassulacean acid metabolism
Council House 2

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