Life Cycle Assessment of the Sustainability of Alkali-Activated Binders.

LCA TOPSIS alkali-activated binders carbon dioxide embodied energy geopolymer concrete greenhouse sustainability

Journal

Biomimetics (Basel, Switzerland)
ISSN: 2313-7673
Titre abrégé: Biomimetics (Basel)
Pays: Switzerland
ID NLM: 101719189

Informations de publication

Date de publication:
01 Feb 2023
Historique:
received: 22 12 2022
revised: 19 01 2023
accepted: 26 01 2023
entrez: 22 2 2023
pubmed: 23 2 2023
medline: 23 2 2023
Statut: epublish

Résumé

Limiting the consumption of nonrenewable resources and minimizing waste production and associated gas emissions are the main priority of the construction sector to achieve a sustainable future. This study investigates the sustainability performance of newly developed binders known as alkali-activated binders (AABs). These AABs work satisfactorily in creating and enhancing the concept of greenhouse construction in accordance with sustainability standards. These novel binders are founded on the notion of utilizing ashes from mining and quarrying wastes as raw materials for hazardous and radioactive waste treatment. The life cycle assessment, which depicts material life from the extraction of raw materials through the destruction stage of the structure, is one of the most essential sustainability factors. A recent use for AAB has been created, such as the use of hybrid cement, which is made by combining AAB with ordinary Portland cement (OPC). These binders are a successful answer to a green building alternative if the techniques used to make them do not have an unacceptable negative impact on the environment, human health, or resource depletion. The Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) software was employed for choosing the optimal materials' alternative depending on the available criteria. The results revealed that AAB concrete provided a more ecologically friendly alternative than OPC concrete, higher strength for comparable water/binder ratio, and better performance in terms of embodied energy, resistance to freeze-thaw cycles, high temperature resistance, and mass loss due to acid attack and abrasion.

Identifiants

pubmed: 36810389
pii: biomimetics8010058
doi: 10.3390/biomimetics8010058
pmc: PMC9944458
pii:
doi:

Types de publication

Journal Article

Langues

eng

Références

Materials (Basel). 2021 Jun 25;14(13):
pubmed: 34202266
Materials (Basel). 2022 Jan 09;15(2):
pubmed: 35057200
Biomimetics (Basel). 2022 Nov 04;7(4):
pubmed: 36412718

Auteurs

Mohammad Alhassan (M)

Civil Engineering Program, College of Engineering, Al Ain University (AAU), Al Ain 64141, United Arab Emirates.
Department of Civil Engineering, College of Engineering, Jordan University of Science and Technology (JUST), Irbid 21110, Jordan.

Ayah Alkhawaldeh (A)

Department of Civil Engineering, College of Engineering, Jordan University of Science and Technology (JUST), Irbid 21110, Jordan.

Nour Betoush (N)

Department of Civil Engineering, College of Engineering, Jordan University of Science and Technology (JUST), Irbid 21110, Jordan.

Mohammad Alkhawaldeh (M)

Department of Civil Engineering, College of Engineering, Al-Ahliyya Amman University, Amman 19328, Jordan.

Ghasan Fahim Huseien (GF)

Department of the Built Environment, College of Design and Engineering, National University of Singapore, Singapore 117566, Singapore.

Layla Amaireh (L)

Civil Engineering Program, College of Engineering, Al Ain University (AAU), Al Ain 64141, United Arab Emirates.

Ahmad Elrefae (A)

Department of Civil, Materials, and Environmental Engineering, College of Engineering, University of Illinois at Chicago (UIC), Chicago, IL 60607, USA.

Classifications MeSH