Асосий контентга ўтиш
AkademIndex

Маҳсулотлар

Ишлаб чиқувчилар учун

AkademBaseЭкотизим учун очиқ API
Мақола

Enzymatic Carbon-Sequestering Bio-Cement: A Bacteria-Driven Approach for Sustainable and Low-Carbon Construction

Ravinder SharmaKalinga University,Department of Management,Raipur,IndiaAnita Sofia Liz.D.R.Kurbonova Marguba YuldashevnaTuran International University,Faculty of Humanities & Pedagogy,Namangan,UzbekistanRamee RiadHwseinIslamic University of Najaf,College of Technical Engineering,Department of Computers Techniques Engineering,Najaf,IraqR. SarankumarKarpagam College of Engineering,Department of Electronics and Communication Engineering,Coimbatore,641032Karthikayen ASaveetha Institute of Medical and Technical Sciences,Saveetha School of Engineering,Department of Electronics and Communication Engineering,Chennai,Tamilandu,India,602105Zokhira Riskulovna KhidralievaTashkent State University of Uzbek Language and Literature Named After Alisher Navoi,Tashkent,UzbekistanKeerthi ShettyNitte (Deemed to be University), NMAM Institute of Technology (NMAMIT),Department of Master of Computer Applications,Nitte,India
2025
ABI

Аннотация

Cement accounts for approximately 8% of total anthropogenic carbon dioxide emissions, and traditional cement production is a major culprit of this. Sustainable alternatives are imperative to lessen the environmental impact of the construction industry so urgently. The invention described herein proposes an innovative enzymatic carbon sequestering bio-cement that utilizes microbial-induced calcite precipitation (MICP) to develop a low-carbon and self-healing cement substitution. Rather than allowing the aggregates to disperse or settle out of suspension, a bioanalytical approach is used, which takes advantage of urease-producing bacteria like Sporosarcina pasteurii for capturing atmospheric CO<inf xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</inf> through biochemical reactions that precipitate CaCO<inf xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">3</inf> while binding aggregates as well. This process is different from conventional cement, requiring ambient temperature, which reduces energy consumption and lowers emissions. The experimental results show that bio-cements possess similar compressive strength, long service life, and the ability to self-heal micro-cracks, thereby increasing the life span of the infrastructure and reducing maintenance costs. Furthermore, the life cycle assessment shows a huge decrease in the carbon footprint of Portland cement. This means that enzymatic bio cement has the potential to change green construction by providing a scalable, inexpensive, and environmentally friendly replacement for conventional cement. We would identify ways in the future to improve bacterial performance, large-scale implementation, and integration with current multi-part construction practices to rapidly accelerate the adoption of bio cement in public and private implementations.

Ҳали таржима қилинмаган

Мавзулар

Идентификаторлар

Иқтибослар ва манбалар