Ecodesign for Industrial Furnaces and Ovens: A Review of the Current Environmental Legislation
Abstract
:1. Introduction
2. Base Cases and Environmental Impacts
- BC2a: Medium-size batch oven (electric);
- BC2b: Medium-size batch oven (gas);
- BC3a: Batch chamber furnace (electric);
- BC3b: Batch chamber furnace (gas);
- BC4a: Continuous oven (electric);
- BC4b: Continuous oven (gas);
- BC5a: Continuous belt furnace (electric);
- BC5b: Continuous belt furnace (gas);
- BC6: Large furnace (gas);
- BC7: Very large oven (gas).
- Raw materials use and manufacturing (production phase);
- Distribution phase;
- Use phase;
- End-of-life phase.
3. Implementation of Eco-Scenarios
3.1. Energy Consumption and GHG Emissions
- The no action scenario (referred also as BaU—Business as Usual);
- The policy recommendation scenario: implementation of minimum energy performance standards in three tiers (2014, 2018, and 2024);
- The LLCC (Least Life Cycle Cost scenario): implemented from 2014;
- The BAT (best available technologies scenario): implemented from 2014, expressing the maximum energy-saving potential achievable.
- 5.
- Draft recommendations for base case-specific ecodesign implementing measures that are applicable to Lot 4 furnaces and ovens;
- 6.
- Regulating Lot 4 furnaces and ovens by the Industrial Emissions Directive (IED) sectoral BAT conclusions (greater likelihood of being more effective through sectoral customization) or the Horizontal Energy Efficiency BAT conclusions, via the same “ecodesign-style” requirements. Clearer energy consumption objectives would be provided by this approach, which would improve IED but not interfere with ETS’s “benchmarking” method.
- No action scenario;
- Policy options-related scenarios (Table 4).
3.2. Case Study: Waste to Energy (WtE) Industry—BAT Conclusions of the European Union
- Energy efficiency improving techniques are not novel and may not be suitable for a few facilities/markets;
- Different nature of BAT conclusions and BAT-AELs between 2006 BREF and new BREF (AEL: associated emission levels);
- Different reference for compliance between rules of the IED and BREF (NOC: Normal Operating Conditions; EOT: Effective Operating Time);
- No guidance on how to interpret the BAT-AEL ranges to set new ELVs (Emission Limit Values);
- New potentially complex requirements for waste acceptance procedures;
- Potential challenge to comply with uncertainty requirements when new ELVs are set around the lower end of the BAT-AEL ranges. This is associated with a likely increase in the relative measurement uncertainty (i.e., the uncertainty expressed as a percentage of the measured value) with decreasing emission levels;
- Ambitious requirements for water emissions;
- New rules for bottom ash handling and metal recovery—dry discharge from the bottom ash is suggested.
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Annual Energy Consumption and GHG Emissions by Furnaces/Ovens in the EU | |||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Base Cases | BC2a | BC2b | BC3a | BC3b | BC4a | BC4b | BC5a | BC5b | BC6 | BC7 | Total |
Total Energy (PJ) | 347.00 | 48.67 | 39.17 | 5.49 | 252.91 | 35.37 | 28.30 | 3.97 | 4952.74 | 212.45 | 5926.00 |
Electricity Consumption (PJ) | 347.00 | 0.01 | 39.03 | 0.00 | 251.35 | 0.04 | 28.25 | 0.00 | 8.87 | 0.43 | 675.00 |
GHG in GWP100 (million tons of CO2 eq.) | 15.00 | 2.69 | 1.72 | 0.30 | 11.11 | 1.96 | 1.24 | 0.22 | 274.79 | 11.81 | 321.00 |
Heat Recovery | |||||||
---|---|---|---|---|---|---|---|
Size of the Process | Temperature of the Process | Minimum Amount of Heat Recovery per Specific Time Period | |||||
2016 and Onwards % Recovered and Reused | 2019 and Onwards % Recovered and Reused | 2025 and Onwards % Recovered and Reused | |||||
Medium | <1000 °C | - | ≥25% (flue gas ≤ 500 °C) | ≥35% (Flue gas ≤ 350 °C) | |||
Large | <1000 °C | Flue gas ≤ 600 °C | ≥35% (flue gas ≤ 500 °C) | ≥50% (flue gas ≤ 350 °C) | |||
Medium | ≥1000 °C | - | ≥30% (flue gas ≤ 550 °C) | ≥40% (flue gas ≤ 400 °C) | |||
Large | ≥1000 °C | A minimum of 40% heat recovery | ≥40% (flue gas ≤ 500 °C) | ≥55% (flue gas ≤ 300 °C) | |||
Insulation (heat losses) | |||||||
Base Case | 2 | 3 | 4 | 5 | 6 (>1000 °C o.t. *) | 6 (450 °C to 1000 °C o.t.) | 7 (< 450 °C o.t.) |
Mandatory Requirements (W/m2 away from “hot-spots”) | <300 | <300 | <500 | <400 | <500 | <400 | <200 |
* o.t.: operating temperature | |||||||
Maximum λ value | |||||||
Time Period | 2016 and onwards | 2019 and onwards | |||||
NG | 1.25 | 1.15 | |||||
LPG | 1.25 | 1.15 | |||||
Fuel oil | Not yet determined | Not yet determined |
Type of Furnace/Oven | Average Power Rate (MW) | Energy Consumption (GWh/Year) | Working Hours, Capacity Utilization |
---|---|---|---|
Cement rotary kiln | 130 | 1000 | 8000 h/year, 60% |
Flat glass melting gas | 60 | 156–477 | Continuous for 15 years |
Rotary ferrous melting furnace gas | 1–4 | 0.2 to 27 | 3650 h/day |
Rotary non-ferrous melting gas | 1–4 | 0.3–43 (copper) | 3650 h/day |
Steel wire heat treatment (various, gas) | 1.1–1.5 | 11 | 8000 h/year, 90% |
Steel wire galvanizing (various, gas) | 0.3–1 | 7.2 | 8000 h/year, 90% |
Heat treatment aluminum gas | 1–20 | 6.4–128 | 8000 h/year, 80% |
<1 | 4 | 6500 h/year, 60% | |
Wall tile kiln | 6 | 14 (estimate) | 8040 days/year |
Policy Option 1 | Policy Option 2 | ||||
---|---|---|---|---|---|
Ecodesign measures (only for sales of new products) | BAT applied through the already existing legislation (IED, etc.)—implemented on existing stock and new sales | ||||
Three scenarios | Three scenarios | ||||
Mandatory Ecodesign Requirements (MERs) scenario | Least Life Cycle Cost (LLCC) scenario—only for reference | BAT | Optimistic | Realistic | Pessimistic |
Three tiers—starting from 2016 (2020 and 2026) | Hypothetically implemented from 2016 | Starts in 2016 | Starts in 2018 | Starts in 2022 |
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Bourtsalas, A.C.; Papadatos, P.E.; Kiskira, K.; Kalkanis, K.; Psomopoulos, C.S. Ecodesign for Industrial Furnaces and Ovens: A Review of the Current Environmental Legislation. Sustainability 2023, 15, 9436. https://doi.org/10.3390/su15129436
Bourtsalas AC, Papadatos PE, Kiskira K, Kalkanis K, Psomopoulos CS. Ecodesign for Industrial Furnaces and Ovens: A Review of the Current Environmental Legislation. Sustainability. 2023; 15(12):9436. https://doi.org/10.3390/su15129436
Chicago/Turabian StyleBourtsalas, Athanasios C. (Thanos), Petros E. Papadatos, Kyriaki Kiskira, Konstantinos Kalkanis, and Constantinos S. Psomopoulos. 2023. "Ecodesign for Industrial Furnaces and Ovens: A Review of the Current Environmental Legislation" Sustainability 15, no. 12: 9436. https://doi.org/10.3390/su15129436
APA StyleBourtsalas, A. C., Papadatos, P. E., Kiskira, K., Kalkanis, K., & Psomopoulos, C. S. (2023). Ecodesign for Industrial Furnaces and Ovens: A Review of the Current Environmental Legislation. Sustainability, 15(12), 9436. https://doi.org/10.3390/su15129436