High-strength geopolymer based engineered cementitious composites (ECC) for sustainable and resilient construction

Balamurali, B; Anand, N; Thomas, M and Chin, C (2025) High-strength geopolymer based engineered cementitious composites (ECC) for sustainable and resilient construction. Journal of Engineering, Design and Technology, 23(5), pp. 1751-1769. ISSN 1726-0531

Abstract

Purpose – The development of high-strength engineered cementitious composite (ECC) gains a significant leap in structural engineering. Engineers have been looking for new formulations that combine outstanding compressive strength with increased flexural resistance. This research focuses on the main characteristics, techniques and prospective applications of high-strength ECC. The proposed work explores the composition of such concrete, emphasizing the use of novel additives, fiber reinforcements and optimal particle packing to produce excellent mechanical characteristics and demonstrating how high-strength ECC contributes to incorporate sustainability by potentially lowering the need for supplemental reinforcing and resulting in a lower environmental effect. Design/methodology/approach – This research involves on studying the composition of high-strength ECC and geopolymer-based ECC, the use of novel additives, fiber reinforcements and optimal particle packing. It examines the capacity of high-strength ECC to sustain high loads with an allowable deformation without any catastrophic collapse. It discusses the sustainability aspects of high-strength ECC and its potential alternative as geopolymer-based ECC. Findings – High-strength ECC offers an excellent compressive strength while also providing increased flexural capacity. Employment of copper slag (CS) as a filler material for the production of ECC results in 28.92% lower cost, when compared to the mix developed using conventional river sand. Whereas in the case of geopolymer-based ECC, the cost of production was found to be 31.92% lower than that of the conventional. Originality/value – High-strength ECC is developed using conventional river sand and industrial by-product, CS as a filler material. The combination of achieving higher compressive strength with an increased use of industrial by-products leads to the development of sustainable high strength ECC. The potential use of high-strength ECC reduces the need for supplementary reinforcing and increases the structural lifetime, resulting in a lower environmental impact.

Item Type: Article
Uncontrolled Keywords: engineered cementitious composites; geopolymer concrete; strength; sustainability
Index terms: compressive strength, environmental impact, slag, methodology, deformation, composite, engineer, employment, fibre reinforcement, copper, sand, sustainability aspect, environmental effect, geopolymer concrete
Subjects: building materials, profession, traditional and composite building materials, management, material properties and characteristics, waste management, environmental impact, materials science, material analysis and testing, research methods, sustainability assessment
Topics: Human Resources, Roles and Professions, Research Practice, Construction Materials, Sustainability, Engineering Principles
Descriptive scope: 3 PCT

N.B. Descriptive scope is a count of how many of the five facets of empirical research are indicated by the words used in title, abstract and keywords. It is not intended as a judgement on the research; merely a count of the kind of word we would expect to indicate Phenomenon, Concepts, Theoretical framing, Empirical techniques, Analytical techniques. If all five are present, then a code of “5 PCTEA” will indicate this. If you feel the coding for this record is questionable, we welcome discussion around the terms we matched or the way we categorized them. The facet you would expect may not be coded, or a facet may be coded inappropriately. This can also bear on a larger question, of which facets should be treated as defining in construction management research. Please get in touch, and we will look at it. More details here