Kinetics and Mechanism of NaOH-Impregnated Calcined Oyster Shell-Catalyzed Transesterification of Soybean Oil
Abstract
:1. Introduction
2. Materials and Methods
2.1. Catalyst Preparation
2.2. Catalyst Characterization
2.3. Batch Experiments
2.4. Gas Chromatograph–Mass Spectrometer (GC-MS) Analysis
2.5. Experimental Design
3. Results and Discussion
3.1. Catalyst Characterization
3.2. Batch Reactor Experiments
3.3. Kinetics of the Transesterification
- The transesterification reaction occurred only on the Na-COS surface. The homogeneous transesterification reaction was negligible and thus was not considered.
- The produced FAMEs did not neutralize the basic site of the Na-COS. Therefore, the total amount of the basic site for the Na-COS did not change throughout the reaction.
- Because of continuous stirring of reactants (800 rpm), there was no mass transfer limitation between reactant and the Na-COS surface. Therefore, the production rate of FAMEs depended only on the transesterification reaction rate.
- The catalyst was assumed to be covered by triglyceride (TG*) only.
- TG was assumed to have high adsorption on the catalyst surface.
- The TG adsorption/desorption process (shown below) was fast and at equilibrium.
- The transesterification occurred in a stepwise manner as below:
- The stepwise reaction of transesterification was assumed to be irreversible in the initial period (0–20 min).
- The reaction from TG* to DG* was assumed to be the rate-determining step.
3.4. Proposed Reaction Mechanism
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
a | Molar ratio of Methanol to oil (MR) |
ΣA | Summation of peak areas of all methyl esters |
ΣAIS | The peak area of internal standard |
CIS | The concentration of internal standard in the final diluted solution |
CF | Concentration of FAMEs (mol/L) |
CM | Concentration of methanol (mol/L) |
Coil | The concentration of soybean oil (g/mL) in the final diluted solution |
Ctot | Concentration of total basic site of the catalyst (mol/L) |
CTG | Concentration of triglyceride (mol/L) |
C°TG | Starting concentration of triglyceride in the reaction (mol/L) |
CTG* | Concentration of adsorbed triglyceride (mol/L) |
C* | Concentration of vacant basic site of the catalyst (mol/L) |
kad | Triglyceride adsorption rate constant (L mol−1 min−1) |
k-ad | Triglyceride desorption rate constant (min−1) |
k1 | Reaction rate constant of transesterifying triglyceride to diglyceride (L mol−1 min−1) |
k2 | Reaction rate constant of transesterifying diglyceride to monoglyceride (L mol−1 min−1) |
k3 | Reaction rate constant of transesterifying monoglyceride to glycerol (L mol−1 min−1) |
mF | Mass of FAMEs (g) |
m°TG | Starting mass of triglyceride (g) |
MF | Averaged molecular weight of FAMEs (g/mol) |
MTG | Molecular weight of triglyceride (g/mol) |
r | Fatty acid methyl esters (FAMEs) production rate (mol L−1 min−1) |
t | Reaction time (min) |
V0 | Volume of the reaction mixture (L) |
y | Biodiesel yield |
z | Dilution ratio |
Greek Symbols | |
Density of soybean oil (g/mL) | |
Abbreviation | |
CL | Catalyst loadings (mass of catalyst/mass of oil) (%) |
F | Fatty acid methyl esters |
G | Glycerol |
M | Methanol |
MR | Molar ratio of methanol to oil |
TG | Triglyceride |
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Catalyst | MR | CL | Reaction Temperature (°C) | Reaction Time (h) | Yield | Reference |
---|---|---|---|---|---|---|
CaO | 12 | 8% | 65 | 1.5 h | ≥95% | [7] |
CaO/Al2O3 | 12.14 | 5.97% | 64.29 | 5 h | 98.64% | [36] |
KNO3/Al2O3 | 12 | 6% | 70 | 6 h | 84% | [37] |
KOH/Al2O3 | 15 | 3% | 60 | 2 h | 91.07% | [9] |
Eggshell | 9 | 3% | 65 | 3 h | 95% | [21] |
Mussel shell | 24 | 12% | 60 | 8 h | 94.1% | [22] |
Capiz shell | 8 | 3% | 60 | 6 h | 93% | [23] |
Turtle shell | 9 | 3% | 70 | 3 h | 97.5% | [24] |
Na-COS | 18 | 8% | 62 | 1.33 h | 89.7% | This research |
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Jin, H.; Kolar, P.; Peretti, S.W.; Osborne, J.A.; Cheng, J.J. Kinetics and Mechanism of NaOH-Impregnated Calcined Oyster Shell-Catalyzed Transesterification of Soybean Oil. Energies 2017, 10, 1920. https://doi.org/10.3390/en10111920
Jin H, Kolar P, Peretti SW, Osborne JA, Cheng JJ. Kinetics and Mechanism of NaOH-Impregnated Calcined Oyster Shell-Catalyzed Transesterification of Soybean Oil. Energies. 2017; 10(11):1920. https://doi.org/10.3390/en10111920
Chicago/Turabian StyleJin, Han, Praveen Kolar, Steven W. Peretti, Jason A. Osborne, and Jay J. Cheng. 2017. "Kinetics and Mechanism of NaOH-Impregnated Calcined Oyster Shell-Catalyzed Transesterification of Soybean Oil" Energies 10, no. 11: 1920. https://doi.org/10.3390/en10111920
APA StyleJin, H., Kolar, P., Peretti, S. W., Osborne, J. A., & Cheng, J. J. (2017). Kinetics and Mechanism of NaOH-Impregnated Calcined Oyster Shell-Catalyzed Transesterification of Soybean Oil. Energies, 10(11), 1920. https://doi.org/10.3390/en10111920