| Literature DB >> 35011536 |
Ivo Paulo1, Luis Costa1, Abel Rodrigues2,3, Sofia Orišková1, Sandro Matos1,4, Diogo Gonçalves1, Ana Raquel Gonçalves1, Luciana Silva1, Salomé Vieira1, João Carlos Bordado1, Rui Galhano Dos Santos1.
Abstract
Liquefaction of biomass delivers a liquid bio-oil with relevant chemical and energetic applications. In this study we coupled it with short rotation coppice (SRC) intensively managed poplar cultivations aimed at biomass production while safeguarding environmental principles of soil quality and biodiversity. We carried out acid-catalyzed liquefaction, at 160 °C and atmospheric pressure, with eight poplar clones from SRC cultivations. The bio-oil yields were high, ranging between 70.7 and 81.5%. Average gains of bio-oil, by comparison of raw biomasses, in elementary carbon and hydrogen and high heating, were 25.6, 67, and 74%, respectively. Loss of oxygen and O/C ratios averaged 38 and 51%, respectively. Amounts of elementary carbon, oxygen, and hydrogen in bio-oil were 65, 26, and 8.7%, and HHV averaged 30.5 MJkg-1. Correlation analysis showed the interrelation between elementary carbon with HHV in bio-oil or with oxygen loss. Overall, from 55 correlations, 21 significant and high correlations among a set of 11 variables were found. Among the most relevant ones, the percentage of elementary carbon presented five significant correlations with the percentage of O (-0.980), percentage of C gain (0.902), percentage of O loss (0.973), HHV gain (0.917), and O/C loss (0.943). The amount of carbon is directly correlated with the amount of oxygen, conversely, the decrease in oxygen content increases the elementary carbon and hydrogen concentration, which leads to an improvement in HHV. HHV gain showed a strong positive dependence on the percentage of C (0.917) and percentage of C gain (0.943), while the elementary oxygen (-0.885) and its percentage of O loss (0.978) adversely affect the HHV gain. Consequently, the O/C loss (0.970) increases the HHV positively. van Krevelen's analysis indicated that bio-oils are chemically compatible with liquid fossil fuels. FTIR-ATR evidenced the presence of derivatives of depolymerization of lignin and cellulose in raw biomasses in bio-oil. TGA/DTG confirmed the bio-oil burning aptitude by the high average 53% mass loss of volatiles associated with lowered peaking decomposition temperatures by 100 °C than raw biomasses. Overall, this research shows the potential of bio-oil from liquefaction of SRC biomasses for the contribution of renewable energy and chemical deliverables, and thereby, to a greener global economy.Entities:
Keywords: genotypes; liquefaction; poplar; short rotation crops
Mesh:
Substances:
Year: 2022 PMID: 35011536 PMCID: PMC8746395 DOI: 10.3390/molecules27010304
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Hemicellulose, cellulose, and lignin estimated the content of the poplar genotypes [48].
| Lignocellulosic Content (%) | |||||
|---|---|---|---|---|---|
| Genotype | Origin | Parentage | Hemicellulose | Cellulose | Lignin |
|
| Portugal | Hybrid P. generosa | 23 | 48 | 28 |
|
| Belgium | Hybrid P. trichocarpa × P. maximowiczii | 19 | 52 | 28 |
|
| Belgium | Species P. nigra | 23 | 47 | 29 |
|
| Belgium | Hybrid P. canadensis | 24 | 48 | 26 |
|
| Belgium | Triple hybrid P. deltoides × (P. trichocarpa × P. deltoides) | 24 | 48 | 27 |
|
| Belgium | Hybrid P. canadensis | 23 | 50 | 26 |
|
| Belgium | Hybrid P. trichocarpa × P. maximowiczii | 20 | 49 | 30 |
|
| Belgium | Species P. nigra | 24 | 48 | 27 |
Figure 1Comparison of the yield of bio-oils obtained via acid-catalyzed liquefaction of poplar clones.
Chemical characterization of poplar clones, bio-oils, solid residues, and torrefied biomass.
| Samples | Chemical Composition 1 (%) | Ash | Moisture | HHV 2 | 10H/C | O/C | Empirical | ||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| C | H | N | O | ||||||||
| Biomass [ |
| 51.5 | 5.2 | <0.5 | 43.3 | 2.18 | 9.58 | 17.20 | 1.01 | 0.84 | CH1.22O0.61 |
|
| 51.5 | 5.4 | 0.6 | 42.5 | 1.56 | 10.80 | 17.49 | 1.04 | 0.83 | ||
|
| 52.0 | 5.2 | 0.7 | 42.1 | 2.87 | 8.08 | 17.58 | 1.00 | 0.81 | ||
|
| 51.8 | 5.3 | 0.6 | 42.4 | 2.25 | 10.10 | 17.52 | 1.02 | 0.82 | ||
|
| 52.2 | 5.3 | 0.5 | 42.0 | 1.76 | 9.42 | 17.75 | 1.02 | 0.81 | ||
|
| 51.8 | 5.2 | 0.7 | 42.3 | 2.39 | 7.90 | 17.48 | 1.01 | 0.82 | ||
|
| 51.6 | 5.3 | 0.4 | 42.7 | 1.47 | 9.91 | 17.45 | 1.03 | 0.83 | ||
|
| 51.9 | 5.3 | 0.7 | 42.1 | 2.28 | 9.73 | 17.64 | 1.02 | 0.81 | ||
| Mean | 51.79 | 5.27 | 0.59 | 42.42 | 2.09 | 9.44 | 17.51 | 1.02 | 0.82 | ||
| Bio-oil |
| 64.4 | 8.4 | <0.5 | 27.2 | 0.4 | 1.30 | 29.85 | 1.31 | 0.42 | CH1.61O0.30 |
|
| 65.6 | 8.9 | <0.5 | 25.5 | 0.3 | 1.13 | 30.95 | 1.36 | 0.39 | ||
|
| 64.4 | 8.6 | <0.5 | 27.0 | 0.3 | 1.49 | 30.03 | 1.33 | 0.42 | ||
|
| 66.1 | 8.8 | <0.5 | 25.1 | 0.4 | 1.15 | 31.06 | 1.33 | 0.38 | ||
|
| 64.8 | 8.9 | <0.5 | 26.3 | 0.1 | 0.96 | 30.62 | 1.38 | 0.41 | ||
|
| 65.3 | 8.8 | <0.5 | 25.9 | 0.2 | 1.18 | 30.67 | 1.34 | 0.40 | ||
|
| 64.5 | 8.4 | <0.5 | 27.1 | 0.3 | 1.37 | 29.90 | 1.31 | 0.42 | ||
|
| 65.3 | 8.9 | <0.5 | 25.8 | 0.2 | 1.42 | 30.84 | 1.37 | 0.39 | ||
| Mean | 65.05 | 8.72 | -- | 26.23 | 0.28 | 1.25 | 30.49 | 1.34 | 0.40 | ||
| Solid residues |
| 52.3 | 5.9 | <0.5 | 41.8 | 0.3 | -- | 18.44 | 1.13 | 0.80 | CH1.34O0.66 |
|
| 50.4 | 5.8 | <0.5 | 43.8 | 0.3 | -- | 17.36 | 1.15 | 0.87 | ||
|
| 50.0 | 5.0 | <0.5 | 45.0 | 0.2 | -- | 16.25 | 1.00 | 0.90 | ||
|
| 49.0 | 5.7 | <0.5 | 45.3 | 0.7 | -- | 16.52 | 1.16 | 0.93 | ||
|
| 50.6 | 5.8 | <0.5 | 43.6 | 0.3 | -- | 17.48 | 1.15 | 0.86 | ||
|
| 48.6 | 5.8 | <0.5 | 45.6 | 0.8 | -- | 16.48 | 1.19 | 0.94 | ||
|
| 50.9 | 5.4 | <0.5 | 43.7 | 0.1 | -- | 17.14 | 1.06 | 0.86 | ||
|
| 49.7 | 5.6 | 0.5 | 44.2 | 0.6 | -- | 16.81 | 1.12 | 0.89 | ||
| Mean | 50.19 | 5.62 | 0.52 | 44.13 | 0.41 | -- | 17.06 | 1.12 | 0.88 | ||
| Torrefied biomass [ |
| 66.3 | 4.9 | 0.36 | 28.44 | 3.46 | -- | 24.2 | 0.74 | 0.43 | CH0.89O0.32 |
|
| 65.9 | 4.94 | 0.66 | 28.5 | 2.7 | -- | 24.1 | 0.75 | 0.43 | ||
|
| 66.9 | 4.99 | 0.88 | 27.29 | 4.0 | -- | 24.6 | 0.75 | 0.41 | ||
|
| 67.8 | 5.1 | 0.73 | 26.37 | 3.49 | -- | 25.2 | 0.75 | 0.39 | ||
|
| 68.3 | 5.06 | 0.69 | 25.94 | 2.97 | -- | 25.4 | 0.74 | 0.38 | ||
|
| 67.3 | 4.8 | 0.84 | 27.06 | 3.54 | -- | 24.6 | 0.71 | 0.40 | ||
|
| 67.4 | 5.04 | 0.54 | 27.02 | 2.63 | -- | 24.9 | 0.75 | 0.40 | ||
|
| 63.5 | 4.95 | 0.7 | 30.85 | 2.93 | -- | 22.9 | 0.74 | 0.49 | ||
| Mean | 66.7 | 4.97 | 0.68 | 27.68 | 3.22 | -- | 24.47 | 0.75 | 0.42 | ||
1 Dry basis; 2 calculated HHV.
Ratios of C, H, HHV H/C gain and of O, Ash, Moisture, and O/C loss of the bio-oils obtained from the liquefaction of poplar clone samples.
| Sample | C Gain (%) | H Gain (%) | O Loss (%) | Ash Loss (%) | HHV Gain (%) | Moisture Loss (%) | H/C Gain (%) | O/C Loss (%) |
|---|---|---|---|---|---|---|---|---|
|
| 25.05 | 61.54 | 37.18 | 81.65 | 73.56 | 95.82 | 29.70 | 50.00 |
|
| 27.38 | 64.81 | 40.00 | 80.77 | 76.98 | 97.22 | 30.77 | 53.01 |
|
| 23.85 | 65.38 | 35.87 | 89.55 | 70.82 | 96.29 | 33.00 | 48.15 |
|
| 27.61 | 66.04 | 40.80 | 82.22 | 77.26 | 96.04 | 30.39 | 53.66 |
|
| 24.14 | 67.92 | 37.38 | 94.32 | 72.50 | 98.94 | 35.29 | 49.38 |
|
| 26.06 | 69.23 | 38.77 | 91.63 | 75.48 | 97.47 | 32.67 | 51.22 |
|
| 25.00 | 58.49 | 36.53 | 79.59 | 71.34 | 96.97 | 27.18 | 49.40 |
|
| 25.82 | 67.92 | 38.72 | 91.23 | 74.83 | 97.94 | 34.31 | 51.85 |
| Mean | 25.61 | 65.17 | 38.16 | 86.37 | 74.10 | 97.09 | 31.67 | 50.83 |
Figure 2Comparison of the average ash, carbon, oxygen contents, and HHV between bio-oils, biomass, solid residues, and torrefied biomass.
Figure 3Van Krevelen diagram comparing the H/C and O/C ratios of biomass, solid residues, torrefied biomass, and bio-oils.
Pearson’s correlation (r) from elemental analysis and bio-oil variables.
| Variables (%) | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| C | H | O | C | H | O | Ash | HHV | Moisture | H/C | O/C | ||
|
| C | 1 | 0.669 | −0.980 2 | 0.902 2 | 0.485 | 0.973 2 | 0.042 | 0.917 2 | 0.049 | 0.090 | 0.943 |
| H | 0.669 | 1 | −0.803 1 | 0.389 | 0.814 1 | 0.617 | 0.595 | 0.561 | 0.676 | 0.712 | 0.537 | |
| O | −0.980 2 | −0.803 1 | 1 | −0.827 1 | −0.605 | −0.945 2 | −0.192 | −0.885 2 | −0.219 | −0.261 | −0.899 | |
| C Gain | 0.902 2 | 0.389 | −0.827 1 | 1 | 0.150 | 0.947 2 | −0.311 | 0.943 2 | −0.201 | −0.272 | 0.972 | |
| H Gain | 0.485 | 0.8141 | −0.605 | 0.150 | 1 | 0.405 | 0.650 | 0.400 | 0.502 | 0.868 | 0.291 | |
| O Loss | 0.973 2 | 0.617 | −0.945 2 | 0.947 2 | 0.405 | 1 | −0.119 | 0.978 2 | 0.000 | 0.012 | 0.984 | |
| Ash Loss | 0.042 | 0.595 | −0.192 | −0.311 | 0.650 | −0.119 | 1 | −0.207 | 0.813 | 0.739 | −0.205 | |
| HHV Gain | 0.917 2 | 0.561 | −0.885 2 | 0.943 2 | 0.400 | 0.978 2 | −0.207 | 1 | −0.062 | −0.001 | 0.970 | |
| Moisture Loss | 0.049 | 0.676 | −0.219 | −0.201 | 0.502 | 0.000 | 0.813 1 | −0.062 | 1 | 0.643 | −0.068 | |
| H/C Gain | 0.090 | 0.712 1 | −0.261 | −0.272 | 0.868 2 | 0.012 | 0.739 1 | −0.001 | 0.643 | 1 | −0.091 | |
| O/C Loss | 0.943 2 | 0.537 | −0.899 2 | 0.972 2 | 0.291 | 0.9842 | −0.205 | 0.970 2 | −0.068 | −0.091 | 1 | |
1 p < 0.05; 2 p < 0.01.
Figure 4FTIR-ATR spectra of (a) biomass; (b) bio-oil, and (c) solid residue.
FTIR-ATR relevant peaks for biomass, bio-oil, and solid residues.
| Peaks (cm−1) | Band Assignment | Ref. | |||
|---|---|---|---|---|---|
| Biomass | Bio-Oil | Residues | Functional Group | Compounds | |
| 1720 | 1723 | 1718 | C=O carbonyls in ester groups and acetyl groups in xylan | Ketones, esters, hemicellulose, and carboxylic acids and esters | [ |
| 1646 | O-H bending | Water | [ | ||
| 1604 | 1611 | 1612 | C=C aromatic ring vibration | Lignin | [ |
| 1514 | 1519 | 1514 | C=C aromatic ring stretching | Lignin | [ |
| 1444 | 1465 | 1462 | OCH3-, -CH2-, and C-H stretching | Cellulose, hemicellulose | [ |
| 1378 | 1378 | 1365 | Aromatic C-H deformation | Syringyl rings | [ |
| 1330 | C-O syringyl ring | Lignin | [ | ||
| 1246 | 1248 | 1263 | Aromatic ring vibration | Guaicyl lignin | [ |
| 1164 | 1174 | 1197 | C-O-C asymmetrical stretching | Cellulose, hemicellulose | [ |
| 1096 | 1108 | 1101 | C-O-C stretching | Cellulose, hemicellulose | [ |
| 1020 | 1031 | 1029 | C-O, C=C, and C-C-O stretching | Cellulose, hemicellulose, lignin | [ |
| 906 | Glycosidic linkage | Cellulose, hemicellulose | [ | ||
| 816 | 811 | C-H out-of-plane | Cellulose, hemicellulose | [ | |
Figure 5TGA and DTG thermograms of biomass (blue), bio-oil (yellow), and solid residues (green) of all poplar clones: (a) AF8; (b) Balkan; (c) Brandaris; (d) Grimminge; (e) Hees; (f) Ellert; (g) Skado; (h) Wolterson. The dashed line is gTG and the solid line is TGA.
Mass loss from TGA curves for biomass, bio-oils, and solid residues.
| Samples | TGA Curve | ||||||||
|---|---|---|---|---|---|---|---|---|---|
| 1st Stage | 2nd Stage | 3rd Stage | 4th Stage | ||||||
| Temp. Range (°C) | Mass Loss (%) | Temp. Range (°C) | Mass Loss (%) | Temp. Range (°C) | Mass Loss (%) | Temp. Range (°C) | Mass Loss (%) | ||
|
| Biomass | <120 | 6 | 80–300 | 18 | 300–400 | 46 | >400 | 7 |
| Bio-oil | 50–185 | 18 | 185–300 | 35 | 300–600 | 16 | -- | -- | |
| Residue | <115 | 3 | 125–260 | 32 | 260–525 | 26 | >525 | 4 | |
|
| Biomass | <120 | 8 | 80–300 | 20 | 300–400 | 46 | >400 | 6 |
| Bio-oil | 50–185 | 15 | 185–300 | 37 | 300–600 | 18 | -- | ||
| Residue | <115 | 4 | 125–260 | 26 | 260–525 | 28 | >525 | 6 | |
|
| Biomass | <120 | 8 | 80–300 | 19 | 300–400 | 42 | >400 | 8 |
| Bio-oil | 50–185 | 16 | 185–300 | 37 | 300–600 | 17 | -- | -- | |
| Residue | <115 | 3 | 125–260 | 30 | 260–525 | 25 | >525 | 7 | |
|
| Biomass | <120 | 7 | 80–300 | 20 | 300–400 | 46 | >400 | 7 |
| Bio-oil | 50–185 | 10 | 185–300 | 44 | 300–600 | 18 | -- | ||
| Residue | <115 | 3 | 125–260 | 34 | 260–525 | 24 | >525 | 6 | |
|
| Biomass | <120 | 6 | 80–300 | 19 | 300–400 | 49 | >400 | 6 |
| Bio-oil | 50–185 | 17 | 185–300 | 38 | 300–600 | 16 | -- | -- | |
| Residue | <115 | 4 | 125–260 | 29 | 260–525 | 26 | >525 | 6 | |
|
| Biomass | <120 | 7 | 80–300 | 20 | 300–400 | 46 | >400 | 6 |
| Bio-oil | 50–185 | 16 | 185–300 | 38 | 300–600 | 16 | -- | -- | |
| Residue | <115 | 4 | 125–260 | 31 | 260–525 | 25 | >525 | 6 | |
|
| Biomass | <120 | 8 | 80–300 | 19 | 300–400 | 51 | >400 | 6 |
| Bio-oil | 50–185 | 17 | 185–300 | 35 | 300–600 | 17 | -- | -- | |
| Residue | <115 | 4 | 125–260 | 22 | 260–525 | 28 | >525 | 6 | |
|
| Biomass | <120 | 8 | 80–300 | 19 | 300–400 | 47 | >400 | 6 |
| Bio-oil | 50–185 | 20 | 185–300 | 35 | 300–600 | 16 | -- | -- | |
| Residue | <115 | 4 | 125–260 | 33 | 260–525 | 23 | >525 | 6 | |
| Mean | Biomass | <120 | 7 | 80–300 | 19 | 300–400 | 47 | >400 | 7 |
| Bio-oil | 50–185 | 16 | 185–300 | 37 | 300–600 | 17 | -- | -- | |
| Residue | <115 | 3 | 125–260 | 30 | 260–525 | 26 | >525 | 6 | |