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Article

Environmental Footprint of 3D-Printed Concrete Using Recycled Materials

by
Claudia Muñoz-Sanguinetti
1,*,
Mabel Vega-Coloma
2,
Viviana Letelier
3,
Madelyn Marrero
4,
Rodrigo García-Alvarado
5 and
Paulina Wegertseder-Martinez
5
1
Department of Construction Sciences, Architecture, Construction and Design Faculty, Universidad del Bio-Bío, Concepción 4050231, Chile
2
Department of Process Engineering and Bioproducts, Engineering Faculty, Universidad del Bio-Bío, Concepción 4050231, Chile
3
Department of Civil Engineering, Engineering Faculty, Universidad de La Frontera, Temuco 4780000, Chile
4
Department of Building Construction II, University of Seville, 41012 Seville, Spain
5
Department of Architectural Design and Theory, Construction and Design Faculty, University of Bio-Bio, Concepcion 4050231, Chile
*
Author to whom correspondence should be addressed.
Sustainability 2026, 18(1), 288; https://doi.org/10.3390/su18010288 (registering DOI)
Submission received: 24 November 2025 / Revised: 19 December 2025 / Accepted: 25 December 2025 / Published: 26 December 2025

Abstract

The construction sector undeniably has an impact on sustainability in its three dimensions: economic, social, and environmental. In this context, 3D concrete printing (3DCP) has emerged over the last decade as an attractive technology for transforming this sector. It enables the manufacture of construction elements while saving time, reducing waste, and eliminating the need for molds. However, assessments of the environmental performance of implementing this technology are limited, particularly under representative production conditions. This study evaluates the footprint family indicators, carbon footprint (CF), ecological footprint (EF), and water footprint (WF), of different mixtures of 1 m3 of 3D-printed concrete, with 1m of a high printed wall. These mixtures were made with a proportion of fresh solid aggregates; brick and concrete rubble (as demolition waste (CDW) materials) were used as partial replacements for cement. In addition, the environmental impact of using two printing technologies, gantry and robotic arm systems, is analyzed. The results show that materials are the main source of environmental impacts; the replacement of some of the cement reduces CF and EF by up to 20% and 19%, respectively, while preserving printability and buildability, as demonstrated by the stable fabrication of 1 m-high printed wall elements. However, moderate increases in WF were observed, which were associated with the electricity consumption of waste processing. These results confirm the potential for valorizing CDW in 3D printing mixtures. This environmental assessment under full-scale printing conditions supports sustainability-oriented decision-making in the construction industry.
Keywords: additive construction; 3D-printed concrete; lifecycle assessment; sustainability; construction and demolition waste additive construction; 3D-printed concrete; lifecycle assessment; sustainability; construction and demolition waste

Share and Cite

MDPI and ACS Style

Muñoz-Sanguinetti, C.; Vega-Coloma, M.; Letelier, V.; Marrero, M.; García-Alvarado, R.; Wegertseder-Martinez, P. Environmental Footprint of 3D-Printed Concrete Using Recycled Materials. Sustainability 2026, 18, 288. https://doi.org/10.3390/su18010288

AMA Style

Muñoz-Sanguinetti C, Vega-Coloma M, Letelier V, Marrero M, García-Alvarado R, Wegertseder-Martinez P. Environmental Footprint of 3D-Printed Concrete Using Recycled Materials. Sustainability. 2026; 18(1):288. https://doi.org/10.3390/su18010288

Chicago/Turabian Style

Muñoz-Sanguinetti, Claudia, Mabel Vega-Coloma, Viviana Letelier, Madelyn Marrero, Rodrigo García-Alvarado, and Paulina Wegertseder-Martinez. 2026. "Environmental Footprint of 3D-Printed Concrete Using Recycled Materials" Sustainability 18, no. 1: 288. https://doi.org/10.3390/su18010288

APA Style

Muñoz-Sanguinetti, C., Vega-Coloma, M., Letelier, V., Marrero, M., García-Alvarado, R., & Wegertseder-Martinez, P. (2026). Environmental Footprint of 3D-Printed Concrete Using Recycled Materials. Sustainability, 18(1), 288. https://doi.org/10.3390/su18010288

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