Techno-Economic Evaluation of Biodiesel Production from Waste Cooking Oil—A Case Study of Hong Kong
"> Figure 1
<p>Biodiesel production cost (BPC) breakdown for each catalyst with waste cooking oil (WCO) as a feedstock.</p> "> Figure 2
<p>Internal rate of return (IRR) sensitivity analysis with WCO price variation.</p> "> Figure 3
<p>IRR sensitivity analysis with biodiesel price variation.</p> "> Figure 4
<p>Biodiesel production process using base catalyst.</p> "> Figure 5
<p>Biodiesel production process using acid catalyst.</p> "> Figure 6
<p>Biodiesel production process with enzyme catalyst.</p> ">
Abstract
:1. Introduction
2. Results and Discussion
2.1. Process Results
Components | Catalyst | ||
---|---|---|---|
Base | Acid | Enzyme | |
Reaction temperature (°C) | 65 | 65 | 50 |
Molar ratio (oil:methanol = 1:x) | 4 | 4 | 4 |
Lipase recyclability (times) | - | - | 200 |
Feed streams per day | |||
Waste cooking oil (L) | 26,848.90 | 26,848.90 | 26,848.90 |
Catalyst (kg) | 1,206.72 | 1,206.72 | 12.07 |
Methanol (L) | 4,339.70 | 4,339.70 | 4,339.70 |
Product streams per day | |||
Biodiesel (100%) (kg) | 24,242.42 | 24,242.42 | 24,242.42 |
Glycerol (kg) | 2,469.18 | 2,469.18 | 2,469.18 |
Biodiesel conversion (%) | 100.00 | 100.00 | 100.00 |
2.2. Economic Assessment
Equipment | Amount | Unit Cost (USD) | Total Cost (USD) | ||||
---|---|---|---|---|---|---|---|
Base | Acid | Enzyme | Base | Acid | Enzyme | ||
Tank (100 m3) | 7 | 6 | 6 | $66,478.00 | $465,346.00 | $398,868.00 | $398,868.00 |
Splitter, mixer (double-arm sigma) (15 kW) | 4 | 2 | 1 | $56,550.00 | $226,200.00 | $113,100.00 | $56,550.00 |
Reactor (15 m3) | 5 | 4 | 1 | $88,906.00 | $444,530.00 | $355,624.00 | $88,906.00 |
Separator (decanter) (bottom driven 0.6 m diameter) | 4 | 3 | 2 | $13,769.00 | $55,076.00 | $41,307.00 | $27,538.00 |
Extraction column, distillation column (1 m diameter, 15 m height) | 4 | 4 | 1 | $169,971.00 | $679,884.00 | $679,884.00 | $169,971.00 |
TEC | $1,871,036.00 | $1,588,783.00 | $741,833.00 |
Capital Investment Category | Percentage of TEC (%) | Cost (USD) | ||
---|---|---|---|---|
Base | Acid | Enzyme | ||
Total equipment cost (TEC) | 100 | $1,871,036.00 | $1,588,783.00 | $741,833.00 |
Equipment delivery cost | 10 | $187,103.60 | $158,878.30 | $74,183.30 |
Installation cost | 20 | $374,207.20 | $317,756.60 | $148,366.60 |
Instrumentation & control | 10 | $187,103.60 | $158,878.30 | $74,183.30 |
Piping | 20 | $374,207.20 | $317,756.60 | $148,366.60 |
Electrical system | 15 | $280,655.40 | $238,317.45 | $111,274.95 |
Buildings | 15 | $280,655.40 | $238,317.45 | $111,274.95 |
Service facilities | 25 | $467,759.00 | $397,195.75 | $185,458.25 |
Land acquisition | 10 | $187,103.60 | $158,878.30 | $74,183.30 |
Yard improvement | 10 | $187,103.60 | $158,878.30 | $74,183.30 |
Engineer training | 30 | $561,310.80 | $476,634.90 | $222,549.90 |
Legal expenses | 10 | $187,103.60 | $158,878.30 | $74,183.30 |
Contingency | 15 | $280,655.40 | $238,317.45 | $111,274.95 |
Total capital cost (TCC) | $5,426,004.40 | $4,607,470.70 | $2,151,315.70 | |
Working capital | 25% of TCC | 25% of TCC | 25% of TCC | |
Capital investment cost (CIC) | $6,782,505.50 | $5,759,338.38 | $2,689,144.63 | |
Specific investment cost (SIC) | $847.81 | $719.92 | $336.14 |
Category | Unit Cost (USD) | Cost (USD) | ||
---|---|---|---|---|
Base | Acid | Lipase | ||
Raw material cost | $0.57 (base), $0.48 (acid), $0.88 (enzyme)/L WCO | $5,008,424.12 | $4,250,217.89 | $7,098,606.93 |
Glycerol revenues | $160.00/ton | $ 130,372.92 | $ 130,372.92 | $ 130,372.92 |
Electricity (assuming 60 kWh/ton of biodiesel produced for base catalyst, 55 kWh/ton for acid catalyst, and 40 kWh/ton for lipase) | $0.15/kWh | $72,000.00 | $66,000.00 | $48,000.00 |
Labor (assuming 15 employees for base catalyst, 14 employees for acid catalyst, and 12 employees for lipase) | $50,000/employee/year | $750,000.00 | $700,000.00 | $600,000.00 |
Maintenance and operational costs (M & O) | 10% of TEC | $187,103.60 | $158,878.30 | $74,183.30 |
Plant overhead costs | 50% of labor and M & O | $468,551.80 | $429,439.15 | $337,091.65 |
Depreciation | Straight-line depreciation over 15-year factory life | $124,735.73 | $105,918.87 | $49,455.53 |
General expenses | 25% of labor and M & O | $234,275.90 | $214,719.58 | $168,545.83 |
Property insurance costs | 5% of TEC | $93,551.80 | $79,439.15 | $37,091.65 |
Contingency | 10% of labor, M & O, and plant overhead costs | $140,565.54 | $128,831.75 | $101,127.50 |
Biodiesel production cost (BPC) | $6,948,835.57 | $6,003,071.75 | $8,383,729.46 | |
Biodiesel production cost/ton | $868.60 | $750.38 | $1,047.97 |
2.3. Sensitivity Analysis
3. Process Design and Case Study
3.1. Background of the Case Study
3.2. Biodiesel Production Process Using Chemical Catalysts
3.3. Biodiesel Production Process Using Lipase
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Karmee, S.K.; Patria, R.D.; Lin, C.S.K. Techno-Economic Evaluation of Biodiesel Production from Waste Cooking Oil—A Case Study of Hong Kong. Int. J. Mol. Sci. 2015, 16, 4362-4371. https://doi.org/10.3390/ijms16034362
Karmee SK, Patria RD, Lin CSK. Techno-Economic Evaluation of Biodiesel Production from Waste Cooking Oil—A Case Study of Hong Kong. International Journal of Molecular Sciences. 2015; 16(3):4362-4371. https://doi.org/10.3390/ijms16034362
Chicago/Turabian StyleKarmee, Sanjib Kumar, Raffel Dharma Patria, and Carol Sze Ki Lin. 2015. "Techno-Economic Evaluation of Biodiesel Production from Waste Cooking Oil—A Case Study of Hong Kong" International Journal of Molecular Sciences 16, no. 3: 4362-4371. https://doi.org/10.3390/ijms16034362
APA StyleKarmee, S. K., Patria, R. D., & Lin, C. S. K. (2015). Techno-Economic Evaluation of Biodiesel Production from Waste Cooking Oil—A Case Study of Hong Kong. International Journal of Molecular Sciences, 16(3), 4362-4371. https://doi.org/10.3390/ijms16034362