Thermal Decomposition and Kinetic Parameters of Three Biomass Feedstocks for the Performance of the Gasification Process Using a Thermogravimetric Analyzer
Abstract
:1. Introduction
- The thermal behavior of selected biomass feedstocks (HW, SW, and RDF) will be experimentally investigated using a thermogravimetric analyzer (TGA);
- Several parameters such as characteristic reaction temperatures, devolatilization rates, and mass fractions will be introduced to describe the thermogravimetric data and will be evaluated for the three feedstocks listed above;
- A kinetic model, involving first-order independent parallel reactions, will be applied to data obtained from pyrolysis TGA experiments;
- Finally, a comparison will be provided between the TGA experimental measurements and model predictions.
2. Experimental Investigations and Measurements
2.1. Feedstock Materials
2.2. Apparatus and Instrument
2.3. TGA Method
2.4. Thermal Characterization of Samples
2.4.1. Proximate Analysis
2.4.2. Ultimate Analysis
2.4.3. Calorific Values
3. Mathematical Kinetics Model
4. Results and Discussion
4.1. Proximate and Ultimate Analyses
4.2. Thermal Decomposition Analysis
4.3. Thermogravimetric (TG) Analysis
4.4. Differential Thermogravimetric (DTG) Analysis
4.5. Kinetic Parameter Determination
4.5.1. Activation Energy and Frequency Factor
4.5.2. Reaction Rate Constant
5. Concluding Remarks
- The pyrolysis kinetics of three biomass feedstocks was carried out using a thermogravimetric analysis (TG) in the temperature range of 25–900 °C, at a heating rate of 10 °C/min, under a nitrogen atmosphere. It was found that the main pyrolysis process occurred in the temperature range of 200–600 °C for the three feedstock biomass samples;
- The first derivative thermogravimetry (DTG) of the mass change with temperature was plotted on the same TG graph to identify the points at which different mass changes occurred, where the decomposition reaction happened during the process of temperature ramp between 200 and 600 °C;
- The chemical components of the woody biomass (HW and SW) and refuse-derived fuel (RDF) materials were identified and distinguished based on their mass losses over the temperature range during the non-isothermal decomposition process;
- In this work, the kinetic parameters and thermal behavior of feedstocks were presented in terms of Arrhenius parameters and determined by using the Friedman method. The activation energy calculated as a function of conversion and re-exponential factor has been estimated for each biomass material;
- The present work provides insight into the decomposition characterization of biomass feedstocks, and the above results can provide useful information to predict the kinetic parameters of optimizing the gasification process conditions of downdraft gasifier systems in future research work.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
A | pre-exponential (frequency) factor (s−1) |
Ea | apparent activation energy (J mol−1) |
HHV | higher heating value (J/kg−1) |
k | reaction rate (s−1) |
n | reaction order (n = 1, first-order reaction) |
R | universal gas constant (J mol−1 K−1) |
R2 | correlation coefficient (--) |
T | temperature (K or °C) |
t | time (s) |
X | mass fraction (g/g) |
Greek letters | |
β | heating rate (°C/min) |
Abbreviations | |
ASTM | American Society for Testing and Materials |
DSC | differential scanning calorimetry |
DTG | derivative or differential thermogravimetric |
HW | hardwood |
MSW | municipal solid waste |
RDF | refuse-derived fuel |
SRF | solid recovered fuel |
SW | softwood |
TG | thermogravimetric |
TGA | thermogravimetric analysis |
Subscripts | |
0 | initial condition |
f | final condition |
g | gas |
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Sample ID | Moisture Content (%) | Volatile Matter (%) | Fixed Carbon (%) | Ash (%) |
---|---|---|---|---|
HW | 6.06 | 78.96 | 14.02 | 0.96 |
SW | 6.11 | 78.61 | 14.37 | 0.91 |
RDF | 5.45 | 71.03 | 9.61 | 13.91 |
ID | Carbon (%) | Hydrogen (%) | Oxygen (%) | Nitrogen (%) | Sulfur (%) | Calorific Value (kJ/kg) |
---|---|---|---|---|---|---|
HW | 51.93 | 5.61 | 42.00 | 0.42 | 0.04 | 19,230 |
SW | 50.71 | 5.92 | 43.00 | 0.35 | 0.02 | 18,301 |
RDF | 56.30 | 6.93 | 36.07 | 0.51 | 0.19 | 20,900 |
X (%) | HW | SW | RDF | |||
---|---|---|---|---|---|---|
(kJmol−1) | A (s−1) | (kJmol−1) | A (s−1) | (kJmol−1) | A (s−1) | |
30 | 78.92 | 32,316.41 | 61.01 | 12,291.18 | 54.98 | 5621.37 |
50 | 93.62 | 27,141.05 | 69.20 | 10,280.94 | 60.62 | 4725.85 |
70 | 99.62 | 22,620.87 | 77.17 | 8560.15 | 69.33 | 3934.85 |
Mean | 90.72 | 27,359.44 | 69.13 | 10,377.42 | 61.64 | 4760.69 |
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Almusafir, R.; Smith, J.D. Thermal Decomposition and Kinetic Parameters of Three Biomass Feedstocks for the Performance of the Gasification Process Using a Thermogravimetric Analyzer. Energies 2024, 17, 396. https://doi.org/10.3390/en17020396
Almusafir R, Smith JD. Thermal Decomposition and Kinetic Parameters of Three Biomass Feedstocks for the Performance of the Gasification Process Using a Thermogravimetric Analyzer. Energies. 2024; 17(2):396. https://doi.org/10.3390/en17020396
Chicago/Turabian StyleAlmusafir, Rania, and Joseph D. Smith. 2024. "Thermal Decomposition and Kinetic Parameters of Three Biomass Feedstocks for the Performance of the Gasification Process Using a Thermogravimetric Analyzer" Energies 17, no. 2: 396. https://doi.org/10.3390/en17020396
APA StyleAlmusafir, R., & Smith, J. D. (2024). Thermal Decomposition and Kinetic Parameters of Three Biomass Feedstocks for the Performance of the Gasification Process Using a Thermogravimetric Analyzer. Energies, 17(2), 396. https://doi.org/10.3390/en17020396