Long-life low-carbon concrete switches
80% of its cement for coal ash
By Loz Blain, May 21, 2024

Long-life low-carbon concrete switches 80% of its cement for coal ash By Loz Blain, May 21, 2024

Engineers at RMIT University have partnered with AGL’s Loy Yang Power Station and the Ash Development Association of Australia to substitute 80 percent of the cement in concrete with coal fly ash.

Dr Chamila Gunasekara of the RMIT University has developed a new low-carbon concrete that is supposed to have better recycling applications, lower cement requirements, and strong long-term durability.?


RMIT’s modeling has revealed that the concrete could recycle double the amount of coal ash compared to current standards and halve the amount of cement required to make concrete.?

More than 1.2 billion tonnes of coal ash were produced by coal-fired power plants in 2022. In Australia, it accounts for nearly a fifth of all waste and will remain abundant for decades, even as we shift to renewables.

Meanwhile, cement production makes up eight percent of global carbon emissions, and demand for concrete – which uses cement as a key ingredient, is growing rapidly.

Addressing both challenges head-on, engineers at RMIT have partnered with AGL’s Loy Yang Power Station and the Ash Development Association of Australia to substitute 80 percent of the cement in concrete with coal fly ash.

RMIT project lead, Dr Chamila Gunasekara, said this represents a significant advance as existing low-carbon concretes typically have no more than 40 percent of their cement replaced with fly ash.

“Our addition of nano additives to modify the concrete’s chemistry allows more fly ash to be added without compromising engineering performance,” said Dr Gunasekara.?

Finding new opportunities in overlooked pond ash

Comprehensive lab studies have shown the team’s approach can also harvest and repurpose lower grade and underutilized ‘pond ash’– taken from coal slurry storage ponds at power plants – with minimal pre-processing.

Large concrete beam prototypes have been created using both fly ash and pond ash and have been shown to meet Australian Standards for engineering performance and environmental requirements.

“It’s exciting that preliminary results show similar performance with lower-grade pond ash, potentially opening a whole new hugely underutilized resource for cement replacement.?

“Compared to fly ash, pond ash is underexploited in construction due to its different characteristics. There are hundreds of megatonnes of ash waste sitting in dams around Australia, and much more globally.”

“These ash ponds risk becoming an environmental hazard, and the ability to repurpose this ash in construction materials at scale would be a massive win.”

New modeling technology shows low-carbon concrete’s long-term resilience

A pilot computer modeling program developed by RMIT in partnership with Hokkaido University’s Dr. Yogarajah Elakneswaran has now been used to forecast the time-dependent performance of these new concrete mixtures.

According to Dr Yuguo Yu, an expert in virtual computational mechanics at RMIT, a longstanding challenge in the field has been understanding how newly developed materials will stand the test of time.

“We’ve now created a physics-based model to predict how the low-carbon concrete will perform over time, which offers us opportunities to reverse engineer and optimize mixes from numerical insights,” Dr. Yu said.?

This pioneering approach – recently unveiled in the Cement and Concrete Research journal – reveals how various ingredients in the new low-carbon concrete interact over time.

Dr Gunesekara said that through the model, researchers can see how the quick-setting nano additives in the mix act as a performance booster during the early stages of setting, compensating for the large amounts of slower-setting fly ash and pond ash in the mixes.?

“The inclusion of ultra-fine nano additives significantly enhances the material by increasing density and compactness.”

This modeling, with its wide applicability to various materials, marks a crucial stride towards digitally assisted simulation in infrastructure design and construction.

By leveraging this technology, the team aims to instill confidence among local councils and communities in adopting novel low-carbon concrete for various applications.

This research was enabled by the ARC Industrial Transformation Research Hub for Transformation of Reclaimed Waste Resources to Engineered Materials and Solutions for a Circular Economy (TREMS). Led by RMIT’s Professor Sujeeva Setunge, TREMS brings together top scientists, researchers, and industry experts from nine Australian universities and 36 state, industry, and international partners to minimize landfill waste and repurpose reclaimed materials for construction and advanced manufacturing.

Featured image: Dr Chamila Gunasekara holds a sample of the low-carbon concrete. Image credit: RMIT University.


Source:

https://utilitymagazine.com.au/rmit-finds-concrete-solution-for-repurposing-coal-fly-ash/#:~:text=RMIT%20University%20has%20developed%20a%20new%20low-carbon%20concrete,standards%20and%20halving%20the%20amount%20of%20cement%20required.

Very useful information

回复
Tarun Kumar Ramdas

Architect and Engineering consultant at Sarnath Consultants

5 个月

Good Information Dr. N.S. THANKS

ajay vani

Senior CIVIL Quality Engineer at Maruti buildcon

5 个月

Good

James D. Kelley, M.Sc.Eng, P.E.

Senior Principal Engineer | EFI Global Large & Complex Loss | Structural & Architectural Forensic Engineer | Empire State, Gotham City, NYC??

5 个月

Nice…?? Next steps: Lets get a portal frame cast, with rebar, and exposed to the elements under bridge live loading simulation, in a cold climate for a year or two to see how it performs with freeze-thaw.

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