Optimizing Biodiesel Synthesis: From Process Parameters to the Distinct and Sub-Additive Effects of Water and Iron in Supercritical Methanol
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Esterification Reaction of Oleic Acid and Methanol
2.3. Product Separation
2.4. Product Analysis
2.5. Orthogonal Experimental Design
3. Results and Discussion
3.1. Effects of Different Reaction Parameters on the Esterification of Methanol and Oleic Acid
3.1.1. Effects of Reaction Temperature on the Esterification of Methanol and Oleic Acid
3.1.2. Effects of Residence Time on the Esterification of Methanol and Oleic Acid
3.1.3. Effects of the Molar Ratio of Methanol and Oleic Acid on Their Esterification
3.1.4. Orthogonal Experiment Analysis
3.1.5. Kinetic Analysis of Oleic Acid Esterification
3.2. Effects of Water and Iron Contents on the Esterification of Methanol and Oleic Acid
3.2.1. Water Content
3.2.2. Iron Content
3.2.3. Effects of Iron–Water Mixture on the Conversion Rate
4. Conclusions
- (1)
- Through single-factor experiments and orthogonal design optimization, the optimal reaction conditions were identified as a temperature of 250 °C, a residence time of 30 min, and a methanol-to-oleic acid molar ratio of 15:1. Under these conditions, the conversion of oleic acid to methyl oleate reached 76.8%. The conversion exhibited a volcano-shaped dependence on both temperature and molar ratio, while it increased with residence time before reaching a plateau.
- (2)
- Both water and iron enhanced the esterification reaction at loadings below 5.0 wt%. With 5.0 wt% water or iron, the conversion increased to 80.6% and 81.5%, respectively. However, beyond this threshold, water exhibited an inhibitory effect, whereas the promotional effect of iron remained constant.
- (3)
- The co-addition of 5.0 wt% water and 5.0 wt% iron resulted in a conversion of 80.7%, which was higher than that with water alone but lower than that with iron alone, indicating a positive but sub-additive effect. Water accelerates the oxidation of metallic iron to Fe3O4, partially consuming the active Fe0 and reducing its catalytic activity. Control experiments confirmed that Fe3O4 itself is catalytically inactive, and statistical analysis confirmed that the sub-additive effect is statistically significant.
- (4)
- Kinetic analysis using a pseudo-first-order model yielded an activation energy of 27.35 kJ/mol, which is in good agreement with the literature value (21.98 kJ/mol), confirming the validity of the kinetic treatment under supercritical conditions.
- (5)
- A limitation of this study is the use of pure model compounds (oleic acid, zero-valent iron powder, and deionized water) instead of real cold-rolling oily sludge. While this study provides fundamental mechanistic insights into the individual and combined effects of Fe and water on the supercritical esterification of oleic acid (the predominant FFA in the oil phase of the sludge), further validation using real cold-rolling oily sludge is necessary to confirm the applicability of these findings to practical waste valorization. Future work will focus on supercritical methanol treatment of actual cold-rolling oily sludge to simultaneously achieve demulsification, esterification of mixed fatty acids, and recovery of iron resources.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Number | A Temperature (°C) | B Residence Time (min) | C Molar Ratio (mol/mol) |
|---|---|---|---|
| 1 | 225 | 5 | 6 |
| 2 | 250 | 15 | 15 |
| 3 | 275 | 30 | 20 |
| Number | A Temperature (°C) | B Residence Time (min) | C Molar Ratio (mol/mol) | Conversion Rate/% |
|---|---|---|---|---|
| 1 | 225 | 5 | 6 | 66.4 ± 0.09% |
| 2 | 225 | 15 | 15 | 69.1 ± 0.11% |
| 3 | 225 | 30 | 20 | 72.5 ± 0.11% |
| 4 | 250 | 5 | 15 | 75.0 ± 0.13% |
| 5 | 250 | 15 | 20 | 73.4 ± 0.12% |
| 6 | 250 | 30 | 6 | 73.3 ± 0.38% |
| 7 | 275 | 5 | 20 | 72.6 ± 0.12% |
| 8 | 275 | 15 | 6 | 71.0 ± 0.08% |
| 9 | 275 | 30 | 15 | 75.2 ± 0.46% |
| K1 | 208.0 | 214.1 | 210.8 | |
| K2 | 221.8 | 213.5 | 219.3 | |
| K3 | 218.9 | 221.1 | 218.5 | |
| k1 | 69.3 | 71.4 | 70.3 | |
| k2 | 73.9 | 71.2 | 73.1 | |
| k3 | 73.0 | 73.7 | 72.8 | |
| R | 3.6 | 2.3 | 2.6 | |
| Optimal level | A2 | B3 | C2 |
| Methanol State | Temperature | MeOH/FFA Molar Ratio | Time | Catalyst | Conversion/Yield | References |
|---|---|---|---|---|---|---|
| Supercritical | 250 °C | 15:1 | 30 min | - | 76.8% | This study |
| Supercritical | 250 °C | 20:1 | 30 min | - | 71.0% | Jin et al. 2015 [27] |
| Subcritical | 100 °C | 3:1 | 2 h | 15.0 wt% Amberlyst 46 | 98.6% | Ilgen et al. 2014 [33] |
| Subcritical | 200 °C | 5:1 | 6 h | - | 98.6% | Lie et al. 2018 [34] |
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Zhang, K.; Que, Z.; Luo, J.; Fu, Y.; Cheng, X.; Huang, R.; Gu, F.; Qiu, X. Optimizing Biodiesel Synthesis: From Process Parameters to the Distinct and Sub-Additive Effects of Water and Iron in Supercritical Methanol. Processes 2026, 14, 1498. https://doi.org/10.3390/pr14091498
Zhang K, Que Z, Luo J, Fu Y, Cheng X, Huang R, Gu F, Qiu X. Optimizing Biodiesel Synthesis: From Process Parameters to the Distinct and Sub-Additive Effects of Water and Iron in Supercritical Methanol. Processes. 2026; 14(9):1498. https://doi.org/10.3390/pr14091498
Chicago/Turabian StyleZhang, Ke, Zhigang Que, Jie Luo, Yinxuan Fu, Xiaodi Cheng, Rong Huang, Fan Gu, and Xianhua Qiu. 2026. "Optimizing Biodiesel Synthesis: From Process Parameters to the Distinct and Sub-Additive Effects of Water and Iron in Supercritical Methanol" Processes 14, no. 9: 1498. https://doi.org/10.3390/pr14091498
APA StyleZhang, K., Que, Z., Luo, J., Fu, Y., Cheng, X., Huang, R., Gu, F., & Qiu, X. (2026). Optimizing Biodiesel Synthesis: From Process Parameters to the Distinct and Sub-Additive Effects of Water and Iron in Supercritical Methanol. Processes, 14(9), 1498. https://doi.org/10.3390/pr14091498
