Comparing the whole life cycle carbon impact of conventional and biogenic building materials across major residential typologies in Ghana and Senegal
Bibliographic Data
| ID | 21230622 |
|---|---|
| Authors | Mae-ling Lokko (0000-0002-5153-9300, Yale University, corresponding author), Frederick Wireko Manu (0000-0002-0998-9519, Council for Scientific and Industrial Research), Nzinga Mboup, Mohamed Aly Etman (0000-0001-8204-9956, Yale University), Marco Raugei (0000-0001-5026-8556, Oxford Brookes University), Ibrahim Niang (Université Alioune Diop de Bambey), Kingdom Ametepe (0009-0007-2971-1139, Council for Scientific and Industrial Research), Rosemary Sarfo-Mensah (Council for Scientific and Industrial Research) |
| Year | 2024 |
| Volume | 106 |
| Pages | 105332 |
| Publication date | 2024-07-01 |
| Peer Reviewed | Yes |
| Open Access | Yes |
| Type | ARTICLE |
| Venue | Sustainable Cities and Society (JOURNAL) |
| Journal identifiers | ISSN: 2210-6707 • E-ISSN: 2210-6715 |
| Publisher | Elsevier BV (PUBLISHER) |
| DOI | 10.1016/j.scs.2024.105332 |
| OpenAlex | W4392896332 |
| Language | EN |
| Citations received | 4 |
| References cited | 37 |
Across West African built environments, patterns of high greenhouse gas emissions are driven by the widespread importation of high embodied carbon building materials by a largely self-built industry and recurring operational carbon costs driven by increased access to fossil-fuel based energy services. Using a whole life cycle assessment (LCA) of major residential typologies in two case-study West African countries, Ghana and Senegal, this paper compares the greenhouse gas emissions of imported building materials with local alternative biogenic and geogenic materials within conventional housing typologies. Results indicated that locally sourced biogenic and geogenic materials may be rendered ineffective in buildings if future typologies do not address the effective space density, passive design strategies and increased renewable energy-use. For the building typology with the highest carbon footprint, the Ghanaian detached house, the substitution of conventional building materials with non-fired earth masonry did not have any significant impact. As shown in the housing typology with the lowest operational to embodied carbon ratio, the Senegalese vertical housing case study, optimizing the thermal mass design of earthen building envelopes can significantly drive down lifetime operational carbon emissions. For tropical low-rise building typologies dominated by high roof area to building volume ratios, roof insulation could drive down operational carbon of the building by a factor of 4 to 5. Although each additional storey results in approximately 10-12% increase in greenhouse gas emissions, the vertical expansion of housing represents an important driver in reducing greenhouse gas emissions per capita
Built environment · Carbon Footprint · Civil engineering · Embodied Energy · Environmental protection · Fossil fuel · Greenhouse gas · Life-cycle assessment · Natural resource economics · Per capita · Renewable energy · Roof · Waste management · Engineering · Environmental Impact and Sustainability · Environmental Science · Sustainable Building Design and Assessment · Urban and Rural Development Challenges · Ecology · Environmental Engineering
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| Unique citing works | 4 |
|---|---|
| Citations per year | 2 |
| Citation span | 2024 - 2025 (2) |
| Citation velocity | recent |
| Highly cited | No |
| Citation types | Neutral: 4 |