Abstract
Urban development is a key driver of global biodiversity loss. “Green” infrastructure is integrated to offset some impacts of development on ecosystem quality by supporting urban biodiversity, a prominent example being green roofs. The effects of green infrastructures on urban biodiversity are not well understood and poorly included in life cycle assessment (LCA) methodology. Here, we present a novel methodology that quantifies the local impact of green infrastructures on terrestrial biodiversity—demonstrated here for sedum roofs in London, UK—and integrates within LCA. It relates energy provision by plants to the metabolic requirements of animals to determine what species richness (number of species) and species abundance (number of individuals) are supported. We demonstrate this methodology using a case study, comparing the life cycle impact of developing 18 buildings, with either asphalt concrete or sedum roofs, on ecosystem quality. We found the sedum roofs (0.018 km 2) support 53 species (673 individuals), equivalent to 1.3% of the development's life cycle impacts on ecosystem quality. Complete offsetting requires considerable reduction in transport use throughout the development's lifetime, and lower environmental impact material selection during construction (contributing 98% and 2%, respectively). The results indicate sedum roofs offer minor impact mitigation capacities in the context of urban development, and this capacity is limited for all green infrastructures by species richness in local species pools. This paper demonstrates the potential and limitations of quantifying terrestrial biodiversity offsets offered by green infrastructures alongside urbanization, and the need for realistic expectations of what role it might play in sustainable urban design.
| Original language | English |
|---|---|
| Pages (from-to) | 496-511 |
| Number of pages | 16 |
| Journal | Journal of Industrial Ecology |
| Volume | 28 |
| Issue number | 3 |
| Early online date | 22 Mar 2024 |
| DOIs | |
| Publication status | Published - Jun 2024 |
Bibliographical note
This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.Funder
Funding provided by Imperial College London is gratefully acknowledged. The research leading to this publication benefitted from EPSRC grants EP/S006079/1, EP/S006079/2, and EP/L01682671; and NERC grant NE/S00349571.Funding
Funding provided by Imperial College London is gratefully acknowledged. The research leading to this publication benefitted from EPSRC grants EP/S006079/1, EP/S006079/2, and EP/L01682671; and NERC grant NE/S00349571.
| Funders | Funder number |
|---|---|
| Engineering and Physical Sciences Research Council | EP/S006079/1, EP/S006079/2, EP/L01682671 |
| Natural Environment Research Council | NE/S00349571 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
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SDG 11 Sustainable Cities and Communities
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SDG 12 Responsible Consumption and Production
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SDG 15 Life on Land
Keywords
- biodiversity
- green roofs
- industrial ecology
- life cycle assessment
- nature-based solutions
- urbanization
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