The production of ordinary portland cement (OPC) is a CO2 intensive process. Specifically, OPC clinkering reactions not only require substantial energy in the form of heat, but they also result in the release of CO2; i.e., from both the decarbonation of limestone and the combustion of fuel to provide heat. To create alternatives to this CO2 intensive process, this paper demonstrates a new route for clinkering-free cementation by the carbonation of fly ash; i.e., a by-product of coal combustion. It is shown that in moist environments and at sub-boiling temperatures, Ca-rich fly ashes react readily with gas-phase CO2 to produce robustly cemented solids. After seven days of exposure to vapor-phase CO2 at 75 °C, such formulations achieve a comp...
During cement production large amounts of CO2 are emitted, about 1 tonne CO2 per tonne clinker, if n...
Cement manufacture is one of the major contributors (7-10%) to global anthropogenic CO2 emissions. C...
Fly ash containing high alkaline metal oxides has been an attractive material for CO2 sequestration ...
The production of ordinary portland cement (OPC) is a CO2 intensive process. Specifically, OPC clink...
The utilization of high-calcium fly ashes (HCFA) from coal-fired power plants in the construction in...
In this study, fly ash (FA) compacts were prepared by accelerated carbonation as a potential sustain...
Abstract Carbon dioxide (CO₂) emissions from industrial processes contribute largely to the greenho...
The reduction of greenhouse gases emissions is highly discussed ecological theme at present. In addi...
As the link between climate change and carbon dioxide (CO2) emissions becomes increasingly harder to...
Carbonation of industrial wastes rich in earth-alkali oxides is found to have a significant potentia...
According to the Intergovernmental Panel on Climate Change (IPCC), global climate change induced tem...
Using CO2 as an addition in concrete is a technological advancement made possible by CO2 curing tech...
Long-term storage of carbon dioxide (CO2) inside depleted reservoirs can help reduce the impact of g...
The fixation of CO2 in the form of inorganic carbonates, also known as mineral carbonati...
Growing concerns on global industrial greenhouse gas emissions have boosted research for developing ...
During cement production large amounts of CO2 are emitted, about 1 tonne CO2 per tonne clinker, if n...
Cement manufacture is one of the major contributors (7-10%) to global anthropogenic CO2 emissions. C...
Fly ash containing high alkaline metal oxides has been an attractive material for CO2 sequestration ...
The production of ordinary portland cement (OPC) is a CO2 intensive process. Specifically, OPC clink...
The utilization of high-calcium fly ashes (HCFA) from coal-fired power plants in the construction in...
In this study, fly ash (FA) compacts were prepared by accelerated carbonation as a potential sustain...
Abstract Carbon dioxide (CO₂) emissions from industrial processes contribute largely to the greenho...
The reduction of greenhouse gases emissions is highly discussed ecological theme at present. In addi...
As the link between climate change and carbon dioxide (CO2) emissions becomes increasingly harder to...
Carbonation of industrial wastes rich in earth-alkali oxides is found to have a significant potentia...
According to the Intergovernmental Panel on Climate Change (IPCC), global climate change induced tem...
Using CO2 as an addition in concrete is a technological advancement made possible by CO2 curing tech...
Long-term storage of carbon dioxide (CO2) inside depleted reservoirs can help reduce the impact of g...
The fixation of CO2 in the form of inorganic carbonates, also known as mineral carbonati...
Growing concerns on global industrial greenhouse gas emissions have boosted research for developing ...
During cement production large amounts of CO2 are emitted, about 1 tonne CO2 per tonne clinker, if n...
Cement manufacture is one of the major contributors (7-10%) to global anthropogenic CO2 emissions. C...
Fly ash containing high alkaline metal oxides has been an attractive material for CO2 sequestration ...