A Techno-Economic Appraisal of Green Diesel Generation through Hydrothermal Liquefaction, Leveraging Residual Resources from Seaweed and Fishing Sectors
Abstract
:1. Introduction
2. Methods
2.1. Sequential Hydrothermal Liquefaction (SEQHTL) Process
2.2. Cost–Benefit Data Inputs and Assumptions
2.3. Simulation Method
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Description | Average Energy Cost |
---|---|
Electricity | 0.61 USD/kWh |
Diesel | 1.722 USD/L |
Assumption | Value | Source |
---|---|---|
Size of plant | 50,000 kg per day | [63,64,65,66,67] |
Annual days of operation | 250 days per year | [68,69,70,71,72] |
Cost of hydrothermal liquefaction capital | USD 13,250,000 | [73,74] |
Labor cost | USD 200,000 per year | [75,76,77] |
Maintenance cost | USD 420,000 per year | [78,79,80] |
Energy cost per kWh | 0.61 USD/kWh | [57,81] |
Energy amount required per kg raw material | 0.35 kWh/kg | [82] |
Discount rate(s) | 9% | 12% is the minimum internal rate of return typically used for any private infrastructure project subject to formal economic evaluation [83,84]; and 6% is conventionally used for publicly funded projects [85]. |
Federal tax rate | 21% | In the US, corporate taxable income is subject to a flat rate of 21% [86]. |
Alaska State tax rate | 9.4% | Alaska imposes a corporate income tax on business income, with rates of 9.4% for taxable income brackets at or above USD 222,000 [87]. |
Tax depreciation system | 7-year MACRS | The 7-year modified accelerated cost recovery system (MACRS) depreciation is a federal income tax convention that benefits businesses by helping them plan for the decline in value of, among others, agricultural machinery and equipment over a given period [88,89]. |
Lifetime | 30 years | [90,91,92,93] |
Kelp | ||
Kelp cost per unit | 200 USD/dry t | [39] |
Yield of alginate | 15% | [51] |
Yield from kelp (% ash-free dry weight) | 21% | [94] |
Fishing Waste | ||
Fishing waste cost per unit | 0 USD/kg | |
Yield from seafood waste (% ash-free dry weight) | 55% | [56] |
Upgrading | ||
Yield from hydrotreating | 98% | [95,96] |
Hydrogen consumption | 0.043 kg H2/kg biocrude | [95,96] |
Cost of hydrogen gas | 5 USD/kg | [97] |
Price of alginate | 236 USD/t | [58] |
Kelp Only | Fishing Waste and Kelp (50:50) | Fishing Waste and Kelp (70:30) | |
---|---|---|---|
Bio-oil (t/year) | 2625 | 4750 | 5600 |
Diesel equivalent produced (t/year) | 2573 | 4655 | 5488 |
Alginate (t/year) | 1875 | 938 | 563 |
Net present value, NPV (M USD) | −23.6 | −5.5 | +1.71 |
Strengths | Weaknesses |
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Opportunities | Threats |
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Rosales-Asensio, E.; Segredo-Morales, E.; Gómez-Marín, N.; Pulido-Alonso, A.; Sierra, C. A Techno-Economic Appraisal of Green Diesel Generation through Hydrothermal Liquefaction, Leveraging Residual Resources from Seaweed and Fishing Sectors. Water 2023, 15, 3061. https://doi.org/10.3390/w15173061
Rosales-Asensio E, Segredo-Morales E, Gómez-Marín N, Pulido-Alonso A, Sierra C. A Techno-Economic Appraisal of Green Diesel Generation through Hydrothermal Liquefaction, Leveraging Residual Resources from Seaweed and Fishing Sectors. Water. 2023; 15(17):3061. https://doi.org/10.3390/w15173061
Chicago/Turabian StyleRosales-Asensio, Enrique, Elisabet Segredo-Morales, Natalia Gómez-Marín, Antonio Pulido-Alonso, and Carlos Sierra. 2023. "A Techno-Economic Appraisal of Green Diesel Generation through Hydrothermal Liquefaction, Leveraging Residual Resources from Seaweed and Fishing Sectors" Water 15, no. 17: 3061. https://doi.org/10.3390/w15173061