Analysis of Outburst Coal Structure Characteristics in Sanjia Coal Mine Based on FTIR and XRD
Abstract
:1. Introduction
2. Sample Preparation and Test Method
2.1. Sampling Cite
2.2. Proximate and Ultimate Analyses of Coal Samples
2.2.1. Infrared Spectroscopy Experiments
2.2.2. X-ray Diffraction (XRD) Analysis
3. Experimental Results and Analysis
3.1. Standard Coal Quality Parameters
3.2. FTIR Fitting Spectral Characteristics Analysis
3.2.1. Absorption Band of Aromatic Structure
3.2.2. Absorption Band of Oxygen Functional Groups
3.2.3. CHal Structure Absorption Band
3.2.4. Hydroxyl Absorption Band
3.3. Analysis of FTIR Structural Parameters
3.3.1. Hydrogen Aromaticity ƒHa
3.3.2. Aromatic Carbon Ratio ƒC
3.3.3. Aromaticity I
3.3.4. Degree of Aromatic Ring Condensation DOC
3.3.5. ACH2/ACH3
3.3.6. Maturity Csd
3.4. Summary of Structural Parameters of Infrared Spectroscopy
3.5. X-ray Diffraction (XRD) Analysis of Coal Samples
3.5.1. XRD Peak Fitting
3.5.2. Structure Analysis of Aromatic Microcrystals
4. Conclusions
- (1)
- The proximate analysis results show that the volatile matter and moisture content of outburst coal are higher than those of primary coal, but that the ash content is lower than that of primary coal. The ultimate analysis shows that the proportions of N and S in outburst coal and primary coal are small.
- (2)
- The aromatic structure absorption band analysis showed that the trisubstituted benzene ring and the disubstituted benzene ring in the primary coal were higher than that in outburst coal, and that the tetrasubstituted benzene ring and the pentasubstituted benzene ring in outburst coal were higher than that in primary coal. This may be due to the substitution reaction of fat chain cyclization and the orientation group of the aromatic ring. The absorption band of fat structure indicates that hydrogen volatilization or fat chain rupture is caused by thermal effect in the outburst process. Moreover, the hydroxyl absorption band shows that the internal structure of the molecule is tighter, which increases the probability of self-association hydroxyl synthesis.
- (3)
- By analyzing and calculating the structural parameters of infrared spectroscopy, it is concluded that the aromatic hydrogen rate, aromatic carbon rate and I1 and I2 of outburst coal are higher than those of primary coal. The ACH2/ACH3 raw coal is relatively low, and the maturity is slightly higher than that of the outburst coal, indicating that the raw coal has more straight chains than side chains and that the aliphatic hydrocarbons are mostly short chains and have high branched degree.
- (4)
- Through the analysis and calculation of XRD microcrystalline structure parameters, the number of aromatic flakes in outburst coal is lower than in primary coal, which suggests that the prominent heating effect increases the degree of aromatization, increases the d100 and d002 values and, finally, changes the dense ring structure in coal. Moreover, from the coal degree index P, it can be seen that the primary coal has a smaller increase than the outburst coal.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Component | Proximate Analysis | Ultimate Analysis | |||||||
---|---|---|---|---|---|---|---|---|---|
Coal Samples | Aad/% | Vad/% | Mad/% | C | H | N | S | O | |
outburst coal | 6.1 | 5.4 | 4.6 | 82.9 | 2.87 | 1.51 | 0.42 | 4.05 | |
primary coal | 9.3 | 4.7 | 4.3 | 81.7 | 2.69 | 1.65 | 0.38 | 3.92 |
Component | Functional Groups Ratios | ||||
---|---|---|---|---|---|
Coal Samples | AS/% | OC/% | FS/% | HY/% | |
outburst coal | 2.19 | 16.10 | 7.38 | 43.34 | |
primary coal | 2.71 | 24.58 | 7.27 | 42.31 |
Component | ƒHa | ƒC | I1 | I2 | DOC | ACH2/ACH3 | Csd | |
---|---|---|---|---|---|---|---|---|
Coal Samples | ||||||||
outburst coal | 0.271 | 0.986 | 0.477 | 0.373 | 1.560 | 0.850 | 0.969 | |
primary coal | 0.229 | 0.984 | 0.454 | 0.298 | 1.010 | 0.916 | 0.976 |
Diffraction Peak | 002 Peak | 100 Peak | γ Peak | |
---|---|---|---|---|
Coal Samples | ||||
outburst coal | 24.92 | 42.73 | 15.87 | |
primary coal | 25.08 | 42.85 | 16.15 |
Structural Parameters | d002 | d100 | Lc | La | Mc | P | |
---|---|---|---|---|---|---|---|
Coal Samples | |||||||
outburst coal | 3.570 | 2.114 | 13.016 | 3.089 | 3.646 | 65.22% | |
primary coal | 3.548 | 2.109 | 12.951 | 3.240 | 3.651 | 68.83% |
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Jiao, A.; Tian, S.; Lin, H. Analysis of Outburst Coal Structure Characteristics in Sanjia Coal Mine Based on FTIR and XRD. Energies 2022, 15, 1956. https://doi.org/10.3390/en15061956
Jiao A, Tian S, Lin H. Analysis of Outburst Coal Structure Characteristics in Sanjia Coal Mine Based on FTIR and XRD. Energies. 2022; 15(6):1956. https://doi.org/10.3390/en15061956
Chicago/Turabian StyleJiao, Anjun, Shixiang Tian, and Huaying Lin. 2022. "Analysis of Outburst Coal Structure Characteristics in Sanjia Coal Mine Based on FTIR and XRD" Energies 15, no. 6: 1956. https://doi.org/10.3390/en15061956
APA StyleJiao, A., Tian, S., & Lin, H. (2022). Analysis of Outburst Coal Structure Characteristics in Sanjia Coal Mine Based on FTIR and XRD. Energies, 15(6), 1956. https://doi.org/10.3390/en15061956