2023
DOI: 10.3390/min13050634
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Rapid Estimation of Sulfur Content in High-Ash Indian Coal Using Mid-Infrared FTIR Data

Abstract: High-ash Indian coals are primarily used as thermal coal in power plants and industries. Due to the presence of sulfur in thermal coal, flue gas is a major environmental concern. Conventional methods (Ultimate Analysis of Coal) for sulfur content estimation are time-consuming, relatively costly, and destructive. In this study, Fourier-transform infrared (FTIR) spectroscopy has emerged as a promising alternative method for the rapid and nondestructive analysis of the sulfur content in coal. In the present study… Show more

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Cited by 10 publications
(2 citation statements)
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“…The estimation model has been used to predict the phosphorus content in coal and coal ash by computing the relationship between a set of independent variables (derived from the FTIR spectra) and a dependent variable (observed P content from XRF). A piecewise linear empirical equation with a breakpoint and quasi-newton method, along with a least squares loss function, was used to solve the coefficients of the model using the training data 42 . Through the iterative convergence of an empirical equation that has been predefined, this non-linear method can be utilised to achieve the goal of minimizing the least square's function.…”
Section: Piecewise Linear Regression (Plr)mentioning
confidence: 99%
“…The estimation model has been used to predict the phosphorus content in coal and coal ash by computing the relationship between a set of independent variables (derived from the FTIR spectra) and a dependent variable (observed P content from XRF). A piecewise linear empirical equation with a breakpoint and quasi-newton method, along with a least squares loss function, was used to solve the coefficients of the model using the training data 42 . Through the iterative convergence of an empirical equation that has been predefined, this non-linear method can be utilised to achieve the goal of minimizing the least square's function.…”
Section: Piecewise Linear Regression (Plr)mentioning
confidence: 99%
“…, energy, environmental, chemical industry, agriculture, and medicine) because of their fast, convenient, accurate, highly sensitive, and non-destructive characteristics. 4–7 Spectral data usually contain baseline drift due to changes in the measurement environment, and the influence of the instrument itself. 8,9 Baseline drift can lead to serious measurement errors and deteriorate the results of qualitative and quantitative analyses.…”
Section: Introductionmentioning
confidence: 99%