Study on the Influence of Characteristics of Pore Structure on Adsorption Capacity of Tectonic Coals in Guizhou Province
Abstract
:1. Introduction
2. Geological Setting and Experimental Methods
2.1. Sample Overview
2.2. Methane Adsorption and Desorption Test
2.3. Nitrogen (N2) Adsorption and Desorption Test
3. Experimental Result and Analysis
3.1. Experiment Result and Analysis
3.2. Distribution of Pore Size and Pore Volume for Coals
4. Analysis of Pore Fractal Characteristics and the Main Control Factors on Gas Adsorption Capacity of Tectonic Coals
4.1. Fractal Dimension of Capillary Tortuosity
4.2. Influence of Tortuosity and Fractal Dimension of Tortuosity on Gas Adsorption
4.3. Analysis of the Effect of Structural Parameters on Adsorption Capacity for Coals
5. Discussion
6. Conclusions
- According to the experiment of liquid nitrogen adsorption, coal samples have different adsorption characteristics when the relative pressure is 0~0.5 and 0.5~1.0. respectively. The “hysteresis” phenomenon was presented in the desorption process of the three kinds of tectonic coal samples, and it is difficult to reach the starting point of adsorption when the tectonic coal is desorbed. Therefore, tectonic coals in Guizhou have a large volume of pores and negative connectivity.
- The distribution of pore size was calculated from the curves of liquid nitrogen adsorption and desorption. It is found that the pore size distribution in the three tectonic coals, which mainly contributed to the specific surface area of the pores, were distributed in the range of 1 to 4 nm. Among the three coals, the pores with a diameter of less than 4 nm accounted for the largest proportion in all levels.
- The fractal dimensions of porosity and tortuosity in the three tectonic coals were calculated, and it was found that tortuosity and fractal dimension have a linear correlation with adsorption capacity. The maximum adsorption capacity (VL) of the three tectonic coals increased linearly with the increase of DT and τ, indicating that the adsorption capacity of the tectonic coals was enhanced with the increase of DT and τ.
- The potential relationship between the relevant parameters and adsorption capacity of tectonic coals is discussed, and it can be seen from the Figure 6 that the maximum adsorption capacity is negatively correlated with moisture and ash and volatile fraction. In contrast to the positive correlation of volatile fraction of tectonic coals on the adsorption capacity, the intact coals exhibit the opposite trend.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Df | fractal dimension |
DT | fractal dimension of tortuosity |
D | fitting slope |
V | volume of adsorption at balance pressure, mL/g |
P0 | saturation vapor pressure of gas adsorption, MPa |
P | balance pressure, MPa |
VL | Langmuir volume, cm3/g |
Lm | characteristic length of the capillary, um |
rmin | minimum pore radius, um |
rmax | maximum pore radius, um |
ra | mean radius of capillary, um |
φ | porosity: % |
τ | tortuosity |
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Coal Samples | Rank | Depth(m) | Coalfield |
---|---|---|---|
QL Coal | anthracite | 264 | Qianbei |
XL Coal | anthracite | 258 | Qianbei |
XT Coal | anthracite | 382 | Qianbei |
Coal Samples | Moisture (Mad)% | Ash (Aad)% | Volatile (Vdaf)% | True Density (g/cm3) | Apparent Density (g/cm3) | Porosity Ф/% |
---|---|---|---|---|---|---|
QL Coal | 3.43 | 22.96 | 8.75 | 1.61 | 1.54 | 4.35 |
XL Coal | 3.14 | 10.41 | 8.10 | 1.56 | 1.49 | 4.49 |
XT Coal | 1.67 | 19.99 | 7.86 | 1.57 | 1.51 | 3.85 |
Coal Samples | ΔP (kPa) | a (cm3/g) | b (MPa−1) |
---|---|---|---|
QL Coal | 15.209 | 33.5761 | 0.6338 |
XL Coal | 15.904 | 38.5189 | 0.5384 |
XT Coal | 19.779 | 41.1743 | 0.6590 |
Coal Samples | BET Surface Area (m2/g) | Pore Volume (mL/g) | Average Pore Radius (nm) | Most Probable Pore Radius (nm) |
---|---|---|---|---|
QL Coal | 0.9762 | 0.0047 | 19.26 | 2.98 |
XL Coal | 1.4713 | 0.0054 | 14.68 | 2.98 |
XT Coal | 4.3790 | 0.0106 | 9.68 | 1.76 |
Coal Samples | D | Df = D + 3 | Df = 3D + 3 |
---|---|---|---|
QL Coal | −0.44 | 2.56 | 1.65 |
XL Coal | −0.36 | 2.64 | 1.92 |
XT Coal | −0.32 | 2.68 | 2.04 |
Coal Samples | DT | |
---|---|---|
QL Coal | 1.33 | 11.86 |
XL Coal | 1.34 | 12.41 |
XT Coal | 1.35 | 14.02 |
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Sui, H.; Li, X.; Pei, P. Study on the Influence of Characteristics of Pore Structure on Adsorption Capacity of Tectonic Coals in Guizhou Province. Energies 2022, 15, 3996. https://doi.org/10.3390/en15113996
Sui H, Li X, Pei P. Study on the Influence of Characteristics of Pore Structure on Adsorption Capacity of Tectonic Coals in Guizhou Province. Energies. 2022; 15(11):3996. https://doi.org/10.3390/en15113996
Chicago/Turabian StyleSui, Hao, Xijian Li, and Peng Pei. 2022. "Study on the Influence of Characteristics of Pore Structure on Adsorption Capacity of Tectonic Coals in Guizhou Province" Energies 15, no. 11: 3996. https://doi.org/10.3390/en15113996
APA StyleSui, H., Li, X., & Pei, P. (2022). Study on the Influence of Characteristics of Pore Structure on Adsorption Capacity of Tectonic Coals in Guizhou Province. Energies, 15(11), 3996. https://doi.org/10.3390/en15113996