Towards Real-Time Sustainable Post-Harvest Operations: Gate-to-Gate Life Cycle Assessment of Sensor-Informed Sweet Cherry Sorting and Packing in Greece
Abstract
1. Introduction
2. Materials and Methods
2.1. System Boundary and Process Description
2.2. Life Cycle Inventory and Virtual Sensors
2.3. Data Categorization and Secondary Sources
3. Results
3.1. Environmental Impact Results
3.2. Mitigation Scenarios
- Scenario 1—Packaging optimization
- Scenario 2—Partial substitution of grid electricity with photovoltaic generation
- Scenario 3—Increased water recirculation and improved water management
4. Discussion: The Necessity for Real-Time LCA
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Flow Category | Unit | Value per FU |
|---|---|---|
| Electricity—Core facility (total) | kWh/kg | 0.20 |
| Fresh/process water intake | m3/kg | 1.27 |
| Wastewater discharge | m3/kg | 1.27 |
| Corrugated cardboard (all trays) | g/kg | 47.7 |
| Plastics (films, liners, etc.) | g/kg | 0.10 |
| Rejected fruit (solid waste) | g/kg | 5.7 |
| Cleaning agent Scola | mL/kg | 0.18 |
| Cleaning agent Fresh Start | mL/kg | 0.18 |
| Final packed yield (packed/received) | kg/kg | 0.995 |
| Stage | GWP100 (kg CO2-eq) * | Share (%) |
|---|---|---|
| Upstream | 80,640.03 | 70.61 |
| Core | 32,464.66 | 28.43 |
| Downstream | 1102.62 | 0.97 |
| Total | 114,207.32 | 100.00 |
| Process | Stage | GWP100 (kg CO2-eq) |
|---|---|---|
| Pickup of cherries | Upstream | 80,640.03 |
| Electricity for machines, freezers and administration | Core | 31,175.88 |
| Packaging—palletizing | Core | 1017.43 |
| Calibration—sorting | Core | 342.80 |
| Passing through the hydrocooler | Core | 41.50 |
| Solid waste (municipal solid waste) | Downstream | 1092.62 |
| Loading of finished products | Downstream | 10.00 (approx.) |
| Indicator (Unit) | Total Value | Upstream (%) | Core (%) | Downstream (%) |
|---|---|---|---|---|
| GWP100—climate change (kg CO2-eq) | 114,207.32 | 70.61 | 28.43 | 0.97 |
| TAP—terrestrial acidification (kg SO2-eq) | 776.74 | 86.78 | 13.16 | 0.05 |
| FETP—freshwater ecotoxicity (kg 1.4-DCB-eq) | 16,017.42 | 75.20 | 8.79 | 16.01 |
| METP—marine ecotoxicity (kg 1.4-DCB-eq) | 12,142.48 | 58.00 | 15.67 | 26.32 |
| TETP—terrestrial ecotoxicity (kg 1.4-DCB-eq) | 578,798.60 | 90.21 | 9.61 | 0.18 |
| FFP—fossil fuel potential (kg oil-eq) | 29,578.94 | 64.39 | 35.54 | 0.07 |
| FEP—freshwater eutrophication (kg P-eq) | 57.66 | 39.19 | 60.61 | 0.20 |
| MEP—marine eutrophication (kg N-eq) | 20.60 | 82.17 | 11.58 | 6.26 |
| HTPc—human toxicity, carcinogenic (kg 1.4-DCB-eq) | 20,778.57 | 79.90 | 19.66 | 0.44 |
| HTPnc—human toxicity, non-carc. (kg 1.4-DCB-eq) | 167,523.35 | 59.70 | 25.07 | 15.23 |
| IRP—ionizing radiation (kBq Co-60-eq) | 2455.68 | 69.49 | 30.43 | 0.08 |
| LOP—agricultural land occupation (m2·a crop-eq) | 135,102.79 | 90.94 | 9.06 | 0.00 |
| SOP—surplus ore potential (kg Cu-eq) | 2933.29 | 90.66 | 9.25 | 0.10 |
| ODP—ozone depletion (kg CFC-11-eq) | 0.45 | 96.52 | 3.23 | 0.25 |
| PMFP—particulate matter formation (kg PM2.5-eq) | 246.25 | 79.56 | 20.37 | 0.08 |
| HOFP—photochemical oxidant formation, humans (kg NOx-eq) | 471.20 | 91.02 | 8.81 | 0.16 |
| EOFP—photochemical oxidant formation, ecosystems (kg NOx-eq) | 486.48 | 90.77 | 9.07 | 0.16 |
| WCP—water consumption (m3) | 28,862.73 | 99.53 | 0.46 | 0.01 |
| Metric | Baseline | Scenario 2 (PV) |
|---|---|---|
| Total GWP100 (kg CO2-eq) | 114,207.32 | 92,622.30 |
| Upstream GWP100 share (%) | 70.61 | 87.06 |
| Core GWP100 share (%) | 28.43 | 11.75 |
| Downstream GWP100 share (%) | 0.97 | 1.19 |
| Core GWP100 (kg CO2-eq) | 32,464.66 | 10,879.65 |
| Electricity for machines, freezers and administration (kg CO2-eq) | 31,175.88 | 9590.86 |
| Loading of finished products (kg CO2-eq) | 10.43 | 10.43 |
| Scenario | Total GWP (kg CO2-eq) | Change vs. Baseline | Core GWP (kg CO2-eq) | Change vs. Baseline |
|---|---|---|---|---|
| Baseline | 114,207.32 | – | 32,464.66 | – |
| Scenario 1—Packaging optimization | 114,127.38 | −0.07% | 32,384.72 | −0.25% |
| Scenario 2—Low-carbon electricity | 92,622.30 | −18.9% | 10,879.65 | −66.5% |
| Scenario 3—Water management | 114,165.23 | −0.04% | 32,422.58 | −0.13% |
| Combined scenario | 92,500.27 | −19.0% | 10,757.62 | −66.9% |
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Spanos, K.; Kladovasilakis, N.; Achillas, C.; Aidonis, D. Towards Real-Time Sustainable Post-Harvest Operations: Gate-to-Gate Life Cycle Assessment of Sensor-Informed Sweet Cherry Sorting and Packing in Greece. Sustainability 2026, 18, 6097. https://doi.org/10.3390/su18126097
Spanos K, Kladovasilakis N, Achillas C, Aidonis D. Towards Real-Time Sustainable Post-Harvest Operations: Gate-to-Gate Life Cycle Assessment of Sensor-Informed Sweet Cherry Sorting and Packing in Greece. Sustainability. 2026; 18(12):6097. https://doi.org/10.3390/su18126097
Chicago/Turabian StyleSpanos, Konstantinos, Nikolaos Kladovasilakis, Charisios Achillas, and Dimitrios Aidonis. 2026. "Towards Real-Time Sustainable Post-Harvest Operations: Gate-to-Gate Life Cycle Assessment of Sensor-Informed Sweet Cherry Sorting and Packing in Greece" Sustainability 18, no. 12: 6097. https://doi.org/10.3390/su18126097
APA StyleSpanos, K., Kladovasilakis, N., Achillas, C., & Aidonis, D. (2026). Towards Real-Time Sustainable Post-Harvest Operations: Gate-to-Gate Life Cycle Assessment of Sensor-Informed Sweet Cherry Sorting and Packing in Greece. Sustainability, 18(12), 6097. https://doi.org/10.3390/su18126097

