biomass ashes
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Fuel ◽  
2021 ◽  
pp. 122766
Author(s):  
Stanislav V. Vassilev ◽  
Christina G. Vassileva ◽  
Nadia L. Petrova

2021 ◽  
Vol 82 (3) ◽  
pp. 192-194
Author(s):  
Stanislav Vassilev ◽  
Christina Vassileva ◽  
Nadia Petrova

The CO2 capture and storage by carbonation of eight short-term stored, long-term stored and weathered biomass ashes was studied. It was found that the CO2 uptake by BAs is up to 2–32% (mean 16%). Hence, the future large-scale sustainable biomass production and combustion can contribute greatly for reducing CO2 emissions in the atmosphere.


2021 ◽  
Vol 13 (22) ◽  
pp. 12634
Author(s):  
Paola Comodi ◽  
Azzurra Zucchini ◽  
Umberto Susta ◽  
Costanza Cambi ◽  
Riccardo Vivani ◽  
...  

The authors would like to make the following corrections to the published paper [...]


2021 ◽  
pp. 131198
Author(s):  
L. Soriano ◽  
A. Font ◽  
M.V. Borrachero ◽  
J.M. Monzó ◽  
J. Payá ◽  
...  

Author(s):  
Grzegorz Czerski ◽  
Katarzyna Śpiewak ◽  
Przemysław Grzywacz ◽  
Faustyna Wierońska-Wiśniewska

Author(s):  
Sunil K. Deokar ◽  
Nachiket A. Gokhale ◽  
Sachin A. Mandavgane

Abstract Biomass ashes like rice husk ash (RHA), bagasse fly ash (BFA), were used for aqueous phase removal of a pesticide, diuron. Response surface methodology (RSM) and artificial neural network (ANN) were successfully applied to estimate and optimize the conditions for the maximum diuron adsorption using biomass ashes. The effect of operational parameters such as initial concentration (10–30 mg/L); contact time (0.93–16.07 h) and adsorbent dosage (20–308 mg) on adsorption were studied using central composite design (CCD) matrix. Same design was also employed to gain a training set for ANN. The maximum diuron removal of 88.95 and 99.78% was obtained at initial concentration of 15 mg/L, time of 12 h, RHA dosage of 250 mg and at initial concentration of 14 mg/L, time of 13 h, BFA dosage of 60 mg respectively. Estimation of coefficient of determination (R 2) and mean errors obtained for ANN and RSM (R 2 RHA = 0.976, R 2 BFA = 0.943) proved ANN (R 2 RHA = 0.997, R 2 BFA = 0.982) fits better. By employing RSM coupled with ANN model, the qualitative and quantitative activity relationship of experimental data was visualized in three dimensional spaces. The current approach will be instrumental in providing quick preliminary estimations in process and product development.


2021 ◽  
Vol 108 ◽  
pp. 103305
Author(s):  
Diarmaid S. Clery ◽  
Patrick E. Mason ◽  
Douglas C. Barnes ◽  
János Szuhánszki ◽  
Muhammad Akram ◽  
...  

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