This research intends to incorporate LCA into initial design stages employing a parametric approach, developing a workflow to investigate the impact of buildings morphology and attributes, material selection, and surrounding urban context on carbon performance. It examines the trade-offs between embodied and operational carbon. The study uses a parametric workflow, defined in Grasshopper, and examines 54 building morphologies across four cardinal directions, with dimensions derived from a statistical analysis of 154 residential apartment buildings in Tallinn. While the roof, floors, internal walls, and windows have fixed specifications, the external walls offer three material variations. Results indicate that a courtyard building oriented towards the North, with a WWR of 30%, CLT external wall, Env/Vol of 0.19 which was 7 floors high, exhibited the lowest CF of 820 kgCO2e/m2 with EC and OC contribution proportions of 21% and 79% respectively. The highest CF of 1,411 kgCO2e/m2 with EC and OC percentages of 29% and 71% respectively, was observed in a rectangular building with East orientation, WWR of 70% AAC external wall, 5 floors, and Env/Vol of 0.33. Moreover, optimal building shapes vary with orientation, reduced window-to-wall ratio (WWR) improves carbon performance, and more compact buildings with lower envelope-to-volume ratios enhance carbon efficiency.
A Streamlined method to integrate LCA in early-stages design employing a parametric framework / Madelat, P., De Luca, F., Voronova, V.. - In: ARCHITECTURAL SCIENCE REVIEW. - ISSN 1758-9622. - (2026), pp. 1-29. [10.1080/00038628.2026.2628919]
A Streamlined method to integrate LCA in early-stages design employing a parametric framework
De Luca F.;
2026-01-01
Abstract
This research intends to incorporate LCA into initial design stages employing a parametric approach, developing a workflow to investigate the impact of buildings morphology and attributes, material selection, and surrounding urban context on carbon performance. It examines the trade-offs between embodied and operational carbon. The study uses a parametric workflow, defined in Grasshopper, and examines 54 building morphologies across four cardinal directions, with dimensions derived from a statistical analysis of 154 residential apartment buildings in Tallinn. While the roof, floors, internal walls, and windows have fixed specifications, the external walls offer three material variations. Results indicate that a courtyard building oriented towards the North, with a WWR of 30%, CLT external wall, Env/Vol of 0.19 which was 7 floors high, exhibited the lowest CF of 820 kgCO2e/m2 with EC and OC contribution proportions of 21% and 79% respectively. The highest CF of 1,411 kgCO2e/m2 with EC and OC percentages of 29% and 71% respectively, was observed in a rectangular building with East orientation, WWR of 70% AAC external wall, 5 floors, and Env/Vol of 0.33. Moreover, optimal building shapes vary with orientation, reduced window-to-wall ratio (WWR) improves carbon performance, and more compact buildings with lower envelope-to-volume ratios enhance carbon efficiency.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


