| Literature DB >> 32294115 |
Hongguang Guo1,2, Xingfeng Li1,2, Jinlong Zhang1,2, Zaixing Huang3, Michael A Urynowicz4, Weiguo Liang2,5.
Abstract
Biogenic CBM is an important component of detected CBM, which is formed by coal biodegradation and can be regenerated by anaerobic microorganisms. One of the rate-limiting factors for microbial degradation is the bioavailability of coal molecules, especially for anthracite which is more condense and has higher aromaticity compared with low-rank coal. In this paper, NaOH solution with different concentrations and treating time was employed to pretreat anthracite from Qinshui Basin to alter the coal structure and facilitate the biodegradation. The results showed that the optimal pretreatment conditions were 1.5 M NaOH treating for 12 h, under which the biomethane production was increased by 17.65% compared with untreated coal. The results of FTIR and XRD showed that NaOH pretreatment mainly reduced the multi-substituted aromatics, increased the C-O in alcohols and aromatic ethers and the branching degree of aliphatic chain, and decreased the aromatic ring structure, resulting in the improvement of coal bioavailability and enhancement of biomethane yield. And some organics with potential to generate methane were released to filtrate as revealed by GC-MS. Our results suggested that NaOH was an effective solution for pretreating coal to enhance biogenic methane production, and anthracite after treating with NaOH could be the better substrate for methanogenesis.Entities:
Year: 2020 PMID: 32294115 PMCID: PMC7159192 DOI: 10.1371/journal.pone.0231623
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Methane productions from coal pretreated by 0.1 M, 0.5 M, and 1.5 M NaOH.
Fig 2Methane productions from coal pretreated by 1.5 M NaOH for 0 h, 4 h, 8 h, 12 h, and 16 h.
Fig 3The FTIR spectrograms and curve-fitting peaks of coal samples untreated and treated with 1.5 M NaOH for 12 h.
(a) Original FTIR spectrograms; (b) Curve-fitting peaks of aromatic functional groups; (c) Curve-fitting peaks of oxygen-containing functional groups; (d) Curve-fitting peaks of aliphatic functional groups.
Fig 4XRD diffraction patterns of raw coal and coal treated with 1.5 M NaOH for 12 h.
The structural parameters of raw coal and coal samples treated with 1.5 M NaOH for 12 h revealed by XRD analysis.
| sample | d002/Å | Lc/Å | La/Å | N | La/Lc |
|---|---|---|---|---|---|
| raw coal | 0.3520 | 1.80 | 9.45 | 5.11 | 5.25 |
| 1.5M-12h | 0.3562 | 1.66 | 5.61 | 4.66 | 3.38 |
The organic composition of filtrate after coal treatment with 1.5 M NaOH for 12 h revealed by GC-MS analysis.
| Compounds | Retention time | Molecular formula | Percentage |
|---|---|---|---|
| p-Xylene | 4.384 | C8H10 | 15.54% |
| 1,3,5-Trioxane | 4.696 | C3H6O3 | 15.62% |
| 1,3,5-Trioxane | 4.825 | C3H6O3 | 27.22% |
| o-Xylene | 4.965 | C8H10 | 19.82% |
| 3-Penten-1-ol, 2-methyl- | 6.901 | C6H12O | 4.99% |
| Benzene, 1-methyl-3-(1-methylethyl)- | 8.862 | C10H14 | 0.89% |
| Benzene, 1,2,3,5-tetramethyl- | 10.543 | C10H14 | 1.15% |
| p-Cymene | 11.991 | C10H14 | 0.79% |
| Azulene | 18.705 | C10H8 | 0.47% |
| Phenol, 2,6-bis(1,1-dimethylethyl)-4-methyl-, methylcarbamate | 23.364 | C17H27NO2 | 0.70% |
| Phenol | 25.839 | C6H6O | 2.96% |
| 2,4-Di-tert-butylphenol | 32.865 | C14H22O | 0.81% |
| 5-Oxotetrahydrofuran-2-carboxylic acid, ethyl ester | 36.232 | C7H10O4 | 7.36% |
| 2(3H)-Furanone, dihydro-4-hydroxy- | 38.681 | C4H6O3 | 1.68% |
Fig 5Schematic mechanism of NaOH pretreatment of coal to enhance biomethane production modified from Liu et al (2015) [46].