Abstract

It is a universal fact that concrete is one of the most employed construction materials and hence its exigency is booming at a rocket pace, which in turn, has resulted in a titanic demand of ordinary Portland cement. Regrettably, the production of this essential binder of concrete is not merely found to consume restricted natural resources but also found to be associated with emission of carbon dioxide—a primary greenhouse gas (GHG) which is directly answerable to earth heating, resulting in the gigantic dilemma of global warming. Nowadays, in order to address all these impasses, researchers are attracted to innovative Geopolymer concrete technology. However, crack development of various sizes within the concrete is inevitable irrespective of its kind, mix design, etc., owing to external and internal factors viz., over-loading, exposure to severe environments, shrinkage, or error in design, etc., which need to be sealed otherwise these openings permits CO2, water, fluids, chemicals, harmful gases, etc., to pass through reducing service life and ultimately causing the failure of concrete structures in the long term. That is why instant repairs of these cracks are essential, but manual mends are time-consuming and costly too. Hence, self-healing of cracks is desirable to ease their maintenances and repairs. Self-healing geopolymer concrete (SHGPC) is a revolutionary product extending the solution to all these predicaments. The present manuscript investigates the self-healing ability of geopolymer paste, geopolymer mortar, and geopolymer concrete—a slag-based fiber-reinforced and a variety of other composites that endow with multifunction have also been compared, keeping the constant ratio of water to the binder. Additionally, the feasibility of bacteria in a metakaolin-based geopolymer concrete for self-healing the cracks employing Bacteria-Sporosarcina pasteurii, producing Microbial Carbonate Precipitations (MCP), was taken into account with leakage and the healing process in a precipitation medium. Several self-healing mechanisms, assistances, applications, and challenges of every strategy are accentuated, compared with their impacts as a practicable solution of autogenously-healing mechanisms while active concretes are subjected to deterioration, corrosion, cracking, and degradation have also been reviewed systematically.

Highlights

  • Authenticity and commercial significance are the root cause for most far-reaching usage of concrete as a building material for constructions and infrastructures worldwide [1].its deterioration through cracks development over a time period is one of the key factors resulting in mitigation of the structure’s quality

  • The findings suggested that toluene diisocyanate (TDI) as the healing agent

  • The findings suggested that the TDI was the TDI was encapsulated fruitfully in the shell of paraffin, and the mortars incorporating encapsulated fruitfully in the shell of paraffin, and the mortars incorporating micro-capmicro-capsules exhibited more encouraging capability of self-healing

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Summary

Introduction

Authenticity and commercial significance are the root cause for most far-reaching usage of concrete as a building material for constructions and infrastructures worldwide [1]. In field applications, factors responsible for cracks formations are either environmental or mechanical types This challenge, essentially, necessitated to be addressed or else the openings in the form of cracks facilitates chemicals, waters, fluids, detrimental gases like CO2 , etc., to penetrate declining its service life which may result in one day in eventual failure of structures for longevity. According to several researchers [6,7,8,9], there are two chief and noteworthy definitions of the self-healing mechanism to heal deterioration of structures of concrete: (1) Autogenously, i.e., the natural mode of hydrates to plug the cracks over a period of time sans any manual interference, and (2) Engineered repair and maintenance, i.e., the artificial means to close up the cracks, essentially, with human intervention. There are few articles about the use of fungus to self-heal concrete designs, the mechanism of fungus for the replenishment of crises or an excellent fungal growth condition has not been fully studied

Geopolymeric Materials
Mechanism of Self-Healing Composites
Key Approaches and Mechanism of Self-Healing
Micro-Encapsulation
Bacterial Bio-Agents of Self-Healing
Self-Healing Coatings
Self-Healing Property
Autogenous Self-Healing
Autonomous Self-Healing
Self-Healing Geopolymer Concrete
10. Life Cycle Analysis of Self-Healing Concrete
11. Summary and Conclusions
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