Industrial-Scale Valorization of Low-Grade Fruits Through Green Polyphenol Extraction: Integrating Process Simulation, Techno-Economic Analysis, and Environmental Assessment
Abstract
1. Introduction
2. Background: Experimental Extraction of Polyphenols from Second-Grade Fruits
2.1. Extraction of Phenolic Compounds—Experimental Data
2.2. Determination of the Total Phenol Content (TPC) and In Vitro Antioxidant Activity
2.3. Effect of Extraction Parameters on Total Phenolic Content and Antioxidant Activity of Apple, Pomegranate, and Fig Extracts
2.4. Statistical Analysis and Model Validation of the Extraction Optimization
3. Process Scale-Up: Case Study of the Region of Central Macedonia, Greece
3.1. SuperPro Designer Modeling
3.2. Economic and Environmental Evaluation
3.2.1. Case Study
3.2.2. Techno-Economic Analysis
| Component | Unit | Value |
|---|---|---|
| Construction period | Months | 18 |
| Startup period | Months | 4 |
| Project lifetime | Years | 20 |
| Inflation | % | 4 |
| NPV interest | % | 7 |
| Income taxes | % | 22 |
3.2.3. Life Cycle Analysis (LCA)
3.2.4. Key Assumptions
4. Results and Discussion
4.1. Material and Energy Balance
4.2. Technoeconomic Assessment
| Throughput (kg/h) | NPV (EUR M) | CAPEX (EUR M) | OPEX (EUR M) |
|---|---|---|---|
| 100 | −26.173 | 16.121 | 2.913 |
| 300 | −18.257 | 19.515 | 3.745 |
| 600 | −3.518 | 24.542 | 4.729 |
| 750 | 2.736 | 27.289 | 5.540 |
| 1000 | 11.814 | 30.441 | 6.349 |
4.3. Life Cycle Assessment
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| UAE | Ultrasound-assisted extraction |
| TPC | Total phenolic content |
| GAE | Gallic acid equivalents |
| TEA | Techno-economic analysis |
| LCA | Life cycle assessment |
| DFC | Direct fixed capital |
| CAPEX | Capital expenditures |
| OPEX | Operating expenditures |
| DCF | Discounted cash flow |
| NPV | Net present value |
| ROI | Return on investment |
| IRR | Internal rate of return |
| RCM | Region of Central Macedonia |
| RU | Regional unit |
| GDP | Gross domestic product |
| CH4 | Methane |
| CO2 | Carbon dioxide |
| OECD | Organisation for Economic Co-operation and Development |
| EU | European Union |
| DW | Dry weight |
Appendix A
Experimental Results
| Duration of Sonication (min) | Temperature (°C) | Concentration of β-Cyclodextrin (mg/mL) | Total Phenol Content (mg GAE/g 100 g Dry Weight) | DPPH Radical Scavenging Activity (μmol Trolox/100 g Dry Fruit) | ||||
|---|---|---|---|---|---|---|---|---|
| Apple | Pomegranate | Fig | Apple | Pomegranate | Fig | |||
| 122.20 | 52.50 | 9.50 | 9.41 ± 0.33 | 74.21 ± 2.62 | 287 ± 1.34 | 6400 ± 750 | 84,108 ± 82,264 | 341 ± 5.9 |
| 62.50 | 52.50 | 9.50 | 8.77 ± 1.08 | 78.91 ± 4.19 | 256 ± 2.7 | 5923 ± 850 | 79,354 ± 2339 | 332 ± 3.5 |
| 62.50 | 23.07 | 9.50 | 7.62 ± 0.60 | 65.30 ± 8.35 | 208 ± 2.6 | 4119 ± 190 | 76,200 ± 1712 | 574 ± 4.7 |
| 62.50 | 52.50 | 9.50 | 9.33 ± 0.65 | 72.20 ± 0.21 | 254 ± 3.1 | 5481 ± 267 | 72,905 ± 10,388 | 330 ± 3.3 |
| 98.00 | 70.00 | 15.00 | 8.67 ± 1.78 | 76.70 ± 6.29 | 248 ± 3.9 | 7918 ± 539 | 87,933 ± 7381 | 432 ± 5.1 |
| 98.00 | 35.00 | 15.00 | 9.69 ± 0.43 | 75.80 ± 9.79 | 209 ± 5.9 | 6114 ± 803 | 74815 ± 4154 | 208.6 ± 5.6 |
| 62.50 | 52.50 | 9.50 | 9.45 ± 0.17 | 73.00 ± 10.23 | 255 ± 3.1 | 5718 ± 382 | 73,123 ± 5216 | 329 ± 2.1 |
| 62.50 | 52.50 | 9.50 | 9.44 ± 0.39 | 78.81 ± 4.45 | 256.0 ± 2.7 | 6264 ± 306 | 73,034 ± 6914 | 331 ± 2.5 |
| 62.50 | 52.50 | 0.25 | 7.21 ± 0.30 | 71.76 ± 1.45 | 230 ± 4.5 | 5102 ± 434 | 78,943 ± 4225 | 344 ± 1.9 |
| 62.50 | 52.50 | 9.50 | 10.20± 0.26 | 71.16 ± 6.31 | 252 ± 4.3 | 6289 ± 264 | 73,470 ± 4496 | 330 ± 1.5 |
| 2.80 | 52.50 | 9.50 | 8.54 ± 0.01 | 74.11 ± 1.85 | 457 ± 14.9 | 6045 ± 149 | 88,054 ± 10,549 | 516 ± 4.9 |
| 27.00 | 70.00 | 4.00 | 10.65 ± 0.55 | 73.31 ± 3.37 | 219 ± 5.7 | 7069 ± 613 | 73,766 ± 948 | 552 ± 5.1 |
| 98.00 | 35.00 | 4.00 | 8.16 ± 0.43 | 59.80 ± 13.18 | 185 ± 7.1 | 5332 ± 525 | 71,378 ± 588 | 366 ± 3.7 |
| 62.50 | 81.93 | 9.50 | 9.88 ± 1.34 | 70.00 ± 2.33 | 227 ± 5.5 | 6899 ± 967 | 79,309 ± 431 | 475 ± 5.5 |
| 27.00 | 35.00 | 15.00 | 9.36 ± 0.69 | 65.86 ± 3.11 | 277 ± 7.1 | 6178 ± 354 | 82,470 ± 438 | 591 ± 5.7 |
| 62.50 | 52.50 | 18.75 | 9.78 ± 0.78 | 74.91 ± 1.59 | 319 ±2.9 | 6589 ± 498 | 82,183 ± 4680 | 211 ± 2.9 |
| 62.50 | 52.50 | 9.50 | 9.61 ± 0.36 | 79.50 ± 6.43 | 255 ± 3.7 | 6765 ± 419 | 84,406 ± 1685 | 328 ± 3.3 |
| 98.00 | 70.00 | 4.00 | 11.02 ± 0.72 | 71.52 ± 3.29 | 210 ± 1.9 | 7831 ± 417 | 86,156 ± 363 | 209 ± 3.0 |
| 27.00 | 70.00 | 15.00 | 12.02 ± 0.6 | 69.50 ± 0.85 | 241 ± 6.1 | 8245 ± 533 | 84,818 ± 367 | 500 ± 5.3 |
| 27.00 | 35.00 | 4.00 | 6.80 ± 0.71 | 78.66 ± 2.87 | 194 ± 3.5 | 5264 ± 229 | 85,916 ± 479 | 543 ± 4.7 |
Appendix B
Appendix B.1. Equipment List
| Equipment ID | Equipment Type | Main Function |
|---|---|---|
| WSH-101 | Washer | Removes surface dirt and contaminants from incoming second-/third-grade fruits before processing |
| FSP-102 | Splitter | Splits washing water recycling (80%) and a purge stream (20%) |
| MX-103 | Mixer | Mixes fresh washing water and recycled washing water |
| SR-101 | Shredder | Reduces fruit size to facilitate freeze-drying and subsequent grinding |
| TR-101 | Tray-dryer | Initial dehydration using steam |
| FDR-101 | Freeze-dryer | Dehydrates shredded fruits to preserve thermosensitive phenolics and improve diffusion during extraction |
| GR-102 | Grinder | Produces fine fruit powders to maximize surface area and minimize internal mass transfer limitations |
| R-101 | Stirred reactor | Performs ultrasound-assisted extraction of phenolics, modeled as stoichiometric reaction, using aqueous β-cyclodextrin solution |
| BC-101 | Bowl centrifuge | Separates solid residue (cellulose) from phenolic-rich liquid phase |
| NF-101 | Nanofiltration | Separates β-cyclodextrin (retentate) from phenolic solution (permeate) |
| TFE-101 | Thin-film evaporator | Concentrates phenolic solution and removes water under mild thermal conditions |
| HX-101 | Condenser | Condenses vapor stream from TFE-101 and cools recycled solvent before mixing |
| MX-101 | Mixer | Mixes recovered β-cyclodextrin with condensed water to form recycled solvent stream |
| FSP-101 | Flow Splitter | Splits mixed solvent stream into purge and recycle fractions |
| MX-102 | Mixer | Combines recycled solvent with fresh water and β-CD to achieve target solvent composition for extraction |
Appendix B.2. Lower-Grade Apple, Fig, and Pomegranate Availability in RCM
| Second- and Third- Grade Fruit Quantities (t/yr) | |||
|---|---|---|---|
| Apples | Figs | Pomegranates | |
| RU Thessaloniki | 163.9 | 40.1 | 56.8 |
| RU Imathia | 3121.2 | 66.9 | 43.4 |
| RU Kilkis | 13.6 | 76.3 | 179.2 |
| RU Pella | 3601.7 | 28.1 | 147.6 |
| RU Pieria | 261.6 | 8.5 | 74.5 |
| RU Serres | 219.7 | 16.4 | 206.4 |
| RU Chalkidiki | 25.2 | 17.5 | 114.6 |
| RCM | 7406.9 | 253.8 | 822.6 |
| Apples | Figs | Pomegranates | Distance from Plant (km) | |
|---|---|---|---|---|
| RU Thessaloniki | 2.2% | 15.8% | 6.9% | 20 |
| RU Imathia | 42.1% | 26.4% | 5.3% | 75.1 |
| RU Kilkis | 0.2% | 30.0% | 21.8% | 44.8 |
| RU Pella | 48.6% | 11.1% | 17.9% | 73.1 |
| RU Pieria | 3.5% | 3.3% | 9.1% | 64.8 |
| RU Serres | 3.0% | 6.5% | 25.1% | 151 |
| RU Chalkidiki | 0.4% | 6.9% | 13.9% | 154 |
| Total distance (km) | 75.1 | 67.1 | 93.4 |
Appendix C
Appendix C.1
| Label | Apple Polyphenol Compound | Fig Polyphenol Compound | Pomegranate Polyphenol Compound |
|---|---|---|---|
| Global warming | 23.2905 | 100 | 3.9709 |
| Stratospheric ozone depletion | 5.4219 | 100 | 1.0036 |
| Ionizing radiation | 19.8663 | 100 | 4.2615 |
| Ozone formation, human health | 13.3737 | 100 | 2.3504 |
| Fine particulate matter formation | 14.1186 | 100 | 2.5535 |
| Ozone formation, terrestrial ecosystems | 13.6476 | 100 | 2.3872 |
| Terrestrial acidification | 7.1259 | 100 | 1.3839 |
| Freshwater eutrophication | 16.4986 | 100 | 2.3406 |
| Marine eutrophication | 1.3245 | 100 | 1.7888 |
| Terrestrial ecotoxicity | 24.5555 | 100 | 8.662 |
| Freshwater ecotoxicity | 29.2508 | 100 | 5.829 |
| Marine ecotoxicity | 28.7988 | 100 | 5.7823 |
| Human carcinogenic toxicity | 20.2404 | 100 | 3.6612 |
| Human non-carcinogenic toxicity | 9.0782 | 100 | 96.4768 |
| Land use | 7.0219 | 100 | 0.5906 |
| Mineral resource scarcity | 15.5747 | 100 | 3.1399 |
| Fossil resource scarcity | 27.7674 | 100 | 4.5754 |
| Water consumption | 48.2772 | 100 | 30.3135 |
Appendix C.2
| Label | Apple Polyphenol Compound | Fig Polyphenol Compound | Pomegranate Polyphenol Compound |
|---|---|---|---|
| Global warming | 0.0228 | 0.098 | 0.0039 |
| Stratospheric ozone depletion | 0.0059 | 0.1084 | 0.001 |
| Ionizing radiation | 0.0087 | 0.0436 | 0.0019 |
| Ozone formation, human health | 0.0164 | 0.1228 | 0.0029 |
| Fine particulate matter formation | 0.0121 | 0.086 | 0.0022 |
| Ozone formation, terrestrial ecosystems | 0.0201 | 0.1473 | 0.0035 |
| Terrestrial acidification | 0.0182 | 0.256 | 0.0035 |
| Freshwater eutrophication | 0.3077 | 1.8651 | 0.0437 |
| Marine eutrophication | 0.004 | 0.3045 | 0.0054 |
| Terrestrial ecotoxicity | 0.0386 | 0.157 | 0.0136 |
| Freshwater ecotoxicity | 0.7278 | 2.4882 | 0.145 |
| Marine ecotoxicity | 0.4947 | 1.7179 | 0.0993 |
| Human carcinogenic toxicity | 2.6202 | 12.9456 | 0.474 |
| Human non-carcinogenic toxicity | 0.0073 | 0.0809 | 0.078 |
| Land use | 0.022 | 0.3127 | 0.0018 |
| Mineral resource scarcity | 4.9 × 10−6 | 3.14 × 10−5 | 9.87 × 10−7 |
| Fossil resource scarcity | 0.0602 | 0.2167 | 0.0099 |
| Water consumption | 0.1023 | 0.212 | 0.0643 |
Appendix C.3
| Label | Pomegranate Feedstock | Transport | β-Cyclodextrin | Electricity, Process | Water for Solvent | Washing Water | Water for Steam | Cooling Water | Electricity, Cooling Water Regeneration | Natural Gas, Steam Regeneration | Wastewater Management |
|---|---|---|---|---|---|---|---|---|---|---|---|
| Global warming | 28.2261 | 4.1782 | 3.7716 | 16.8618 | 0.0345 | 0.0491 | 5.92 × 10−5 | 0.002 | 45.0243 | 1.784 | 0.0681 |
| Stratospheric ozone depletion | 78.3413 | 0.8958 | 6.8747 | 3.7418 | 0.0129 | 0.0096 | 1.68 × 10−5 | 0.0004 | 9.9914 | 0.0022 | 0.1297 |
| Ionizing radiation | 48.562 | 1.3755 | 0.2312 | 13.2849 | 0.134 | 0.5582 | 0.0001 | 0.023 | 35.4733 | 0 | 0.3577 |
| Ozone formation, Human health | 50.14 | 3.529 | 4.0459 | 11.2717 | 0.0344 | 0.057 | 8.01 × 10−5 | 0.0024 | 30.0975 | 0.739 | 0.083 |
| Fine particulate matter formation | 36.319 | 1.7673 | 2.3969 | 15.5615 | 0.0508 | 0.0409 | 6.83 × 10−5 | 0.0017 | 41.5521 | 2.2663 | 0.0434 |
| Ozone formation, Terrestrial ecosystems | 49.3659 | 3.7393 | 4.3567 | 11.3508 | 0.034 | 0.0559 | 7.74 × 10−5 | 0.0023 | 30.3088 | 0.7047 | 0.0816 |
| Terrestrial acidification | 47.2887 | 1.35 | 1.8364 | 12.6355 | 0.0553 | 0.0358 | 4.44 × 10−5 | 0.0015 | 33.7392 | 3.0147 | 0.0428 |
| Freshwater eutrophication | 20.4275 | 0.7203 | 0.9887 | 21.0784 | 0.0197 | 0.0371 | 3.87 × 10−5 | 0.0015 | 56.2833 | 0.0054 | 0.438 |
| Marine eutrophication | 93.4177 | 0.0543 | 0.1988 | 1.4585 | 0.002 | 0.0045 | 2.27 × 10−6 | 0.0002 | 3.8946 | 0.0092 | 0.9601 |
| Terrestrial ecotoxicity | 63.3456 | 9.1645 | 1.0142 | 7.1907 | 0.022 | 0.0197 | 1.2 × 10−5 | 0.0008 | 19.2006 | 0.0025 | 0.0393 |
| Freshwater ecotoxicity | 44.1612 | 1.044 | 0.721 | 14.6843 | 0.029 | 0.0406 | 2.04 × 10−5 | 0.0017 | 39.21 | 0.0416 | 0.0664 |
| Marine ecotoxicity | 39.0979 | 1.4134 | 0.8164 | 15.9314 | 0.0321 | 0.0475 | 2.29 × 10−5 | 0.002 | 42.5398 | 0.0444 | 0.0751 |
| Human carcinogenic toxicity | 40.774 | 5.2663 | 1.0742 | 14.049 | 0.083 | 0.9672 | 8.23 × 10−5 | 0.04 | 37.5137 | 0.0019 | 0.2305 |
| Human non-carcinogenic toxicity | 98.4512 | 0.0513 | 0.0335 | 0.3955 | 0.001 | 0.001 | 1.01 × 10−6 | 4.16 × 10−5 | 1.056 | 0.0025 | 0.0079 |
| Land use | 97.66 | 0.4949 | 0.2768 | 0.4237 | 0.0029 | 0.0046 | 3.48 × 10−6 | 0.0002 | 1.1314 | 0 | 0.0056 |
| Mineral resource scarcity | 53.033 | 2.91 | 1.449 | 11.5093 | 0.0708 | 0.1546 | 3.66 × 10−5 | 0.0064 | 30.732 | 0 | 0.1347 |
| Fossil resource scarcity | 23.2034 | 4.113 | 5.8917 | 17.5962 | 0.0275 | 0.0375 | 4.79 × 10−5 | 0.0015 | 46.9852 | 2.1032 | 0.0407 |
| Water consumption | 47.266 | 0.0073 | 0.0279 | 0.0766 | 0.0784 | 0.1335 | 0.6606 | 45.8778 | 5.8718 | −0.1272 |
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| Independent Values | Levels | |||||
|---|---|---|---|---|---|---|
| Coded Values | ||||||
| −α | −1 | 0 | +1 | +α | ||
| Uncoded Values | ||||||
| X1 | Duration of sonication (min) | 3 | 27 | 63 | 98 | 123 |
| X2 | Temperature (°C) | 23 | 35 | 53 | 70 | 82 |
| X3 | β-cyclodextrin concentration (mg/mL) | 0 | 4 | 9.5 | 15 | 18.7 |
| Fruit | Optimum Conditions (t, T, β-CD) | Response | Predicted | Experimental (n = 3) |
|---|---|---|---|---|
| Apple | 56 min, 64 °C, 18.7 mg/mL | TPC (mg GAE/100 g dw) | 1.00 | 1.23 ± 0.3 |
| Apple | 56 min, 64 °C, 18.7 mg/mL | DPPH (µmol Trolox/100 g dw) | 7600 | 8671 ± 73 |
| Pomegranate | 12 min, 52 °C, 8.5 mg/mL | TPC (mg GAE/100 g dw) | 76.00 | 77.00 ± 2.7 |
| Pomegranate | 12 min, 52 °C, 8.5 mg/mL | DPPH (µmol Trolox/100 g dw) | 83,940 | 83,056 ± 1039 |
| Fig * | 2.8 min, 52.5 °C, 9.5 mg/mL | TPC (mg GAE/100 g dw) | - (no significant model) | 457 ± 14.9 |
| Component | Apples | Figs | Pomegranates | |
|---|---|---|---|---|
| Feedstock, kg/h | Water | 863 | 811 | 810 |
| Cellulose | 135.3 | 188.1 | 175.4 | |
| Gallic acid | 1.7 | 0.9 | 14.6 | |
| Solvent solution, kg/h | Water | 1345.9 | 1873.32 | 1885.78 |
| β-cyclodextrin | 25.47 | 17.87 | 16.12 | |
| Washing water, kg/h | Water | 3500 | 3500 | 3500 |
| Cost/Benefit Components | Unit | Purchase Price |
|---|---|---|
| Feedstock | EUR/kg | 0 (bought for subsequent syrup production) |
| B-cyclodextrin | EUR/kg | 10 |
| Water | EUR/kg | 0.0007 |
| Steam (low P) | EUR/MT | 24.8277 |
| Cooling water | EUR/MT | 0.0828 |
| Natural gas | EUR/MWh | 21.87 |
| Operator, labor | EUR/h | 11.42 [41] |
| Electricity, std power | EUR/kWh | 0.0828 |
| Selling Price | ||
| Polyphenols | EUR/kg | 80 [42,43,44,45] |
| Apples | Figs | Pomegranates | |
|---|---|---|---|
| Feedstock, kg | 553 | 1104 | 68 |
| Transportation (tkm) | 37.1 | 82.9 | 6.4 |
| Process Parameter | Unit | Apples | Figs | Pomegranates |
|---|---|---|---|---|
| Annual Material Inputs | ||||
| Feedstock | kg/yr | 7,920,000 | 7,920,000 | 7,920,000 |
| Solvent solution | kg/yr | 3,259,204 | 4,494,625 | 4,520,088 |
| - β-cyclodextrin | kg/yr | 60,609 | 42,530 | 38,333 |
| - Distilled water | kg/yr | 3,198,695 | 4,452,095 | 4,481,755 |
| Washing water | kg/yr | 5,544,000 | 5,544,000 | 5,544,000 |
| Annual Material Outputs and Streams | ||||
| Cellulose residue | kg/yr | 1,071,734 | 1,489,752 | 1,388,930 |
| Product stream | kg/yr | 15,602 | 10,296 | 119,038 |
| - Gallic acid | kg/yr | 13,306 | 7128 | 115,870 |
| - Moisture | kg/yr | 2296 | 3168 | 3168 |
| Recycled solvent | kg/yr | 7,602,091 | 10,483,625 | 10,542,946 |
| Annual Process Utility Consumption | ||||
| Electricity duty | kWh/yr | 963,108.37 | 1,061,377.25 | 1,095,898.65 |
| Steam | kg/yr | 2616.36 | 3125.82 | 3137.47 |
| Natural gas (steam regeneration) | kg/yr | 15,780.62 | 18,853.43 | 18,923.7 |
| Cooling water | kg/yr | 156,782.09 | 227,279.32. | 228,982.28 |
| Electricity for cooling water regeneration | kWh/yr | 2,003,649.93 | 2,904,593.21 | 2,926,356.77 |
| Parameter | Unit | Apples | Figs | Pomegranates |
|---|---|---|---|---|
| Direct fixed capital (DFC) | EUR | 16,918 × 103 | 18,818 × 103 | 28,830 × 103 |
| Total capital investment | EUR | 18,030 × 103 | 20,021 × 103 | 30,441 × 103 |
| Annual operating cost (AOC) | EUR/yr | 5,709,575 | 5,952,189 | 6,349,283 |
| Total annual revenues | EUR/yr | 1,245,789 | 822,647 | 9,523,651 |
| Gross margin | % | −358.31 | −623.54 | 33.33 |
| Return on investment (ROI) | % | −18.77 | −19.67 | 15.42 |
| Internal rate of return (IRR) | % | - | - | 13.84 |
| Net present value (NPV at 7.0%) | EUR | −42,398 × 103 | −52,795 × 103 | 11,814 × 103 |
| Payback time | Years | - | - | 6.48 |
| Selling Price (EUR/kg) | Annual Revenue (EUR M/yr) | Gross Profit (EUR M/yr) | Net Present Value (NPV) (EUR M) |
|---|---|---|---|
| 40 | 4.77 | −1.59 | −25.2 |
| 50 | 5.96 | −0.4 | −14.35 |
| 60 | 7.14 | 0.794 | −4.68 |
| 66.03 (break-even) | 7.86 | 1.51 | 0 |
| 80 | 9.53 | 2.35 | 11.81 |
| Power Density | Annual Operating Cost (OPEX) (EUR M/yr) | Net Present Value (NPV) (EUR M/yr) |
|---|---|---|
| 2 kW/m3 | 6.349 | 11.814 |
| 10 kW/m3 | 6.353 | 11.784 |
| 30 kW/m3 | 6.361 | 11.711 |
| Flow Element | Unit | Apple | Fig | Pomegranate |
|---|---|---|---|---|
| Technosphere Inputs | ||||
| Feedstock | kg | 595.22 | 1111.11 | 68.35 |
| β-cyclodextrin | kg | 4.55 | 5.97 | 0.33 |
| Solvent water | kg | 240.39 | 624.6 | 38.68 |
| Washing water | kg | 416.65 | 777.78 | 47.88 |
| Grid electricity | kWh | 72.38 | 148.9 | 9.46 |
| Industrial process steam | kg | 0.2 | 0.44 | 0.03 |
| Natural gas (steam regeneration) | kg | 1.19 | 2.64 | 0.16 |
| Cooling water | kg | 11.78 | 31.89 | 1.98 |
| Electricity for cooling water regeneration | kWh | 150.58 | 407.49 | 25.26 |
| Technosphere Outputs | ||||
| Cellulose (by-product) | kg | 80.55 | 208.99 | 11.99 |
| Solvent purge management | m3 | 0.245 | 0.631 | 0.004 |
| Washing water purge management | m3 | 0.417 | 0.778 | 0.048 |
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Melas, L.D.; Skoutida, S.; Batsioula, M.; Mourtzinos, I.; Patsios, S.I.; Banias, G.F. Industrial-Scale Valorization of Low-Grade Fruits Through Green Polyphenol Extraction: Integrating Process Simulation, Techno-Economic Analysis, and Environmental Assessment. Processes 2026, 14, 2975. https://doi.org/10.3390/pr14182975
Melas LD, Skoutida S, Batsioula M, Mourtzinos I, Patsios SI, Banias GF. Industrial-Scale Valorization of Low-Grade Fruits Through Green Polyphenol Extraction: Integrating Process Simulation, Techno-Economic Analysis, and Environmental Assessment. Processes. 2026; 14(18):2975. https://doi.org/10.3390/pr14182975
Chicago/Turabian StyleMelas, Lefteris D., Stamatia Skoutida, Maria Batsioula, Ioannis Mourtzinos, Sotiris I. Patsios, and Georgios F. Banias. 2026. "Industrial-Scale Valorization of Low-Grade Fruits Through Green Polyphenol Extraction: Integrating Process Simulation, Techno-Economic Analysis, and Environmental Assessment" Processes 14, no. 18: 2975. https://doi.org/10.3390/pr14182975
APA StyleMelas, L. D., Skoutida, S., Batsioula, M., Mourtzinos, I., Patsios, S. I., & Banias, G. F. (2026). Industrial-Scale Valorization of Low-Grade Fruits Through Green Polyphenol Extraction: Integrating Process Simulation, Techno-Economic Analysis, and Environmental Assessment. Processes, 14(18), 2975. https://doi.org/10.3390/pr14182975

