Total Cost of Ownership of Light Commercial Electrical Vehicles in City Logistics
Abstract
:1. Introduction
1.1. Environmental Hazards in Urban Areas Generated by Transport
1.2. The Policy of the European Union in the Context of the Electromobility of Utility Vehicles
1.3. Light Commercial Vehicle (N1) Market in the European Union
2. Methodology
2.1. Assumptions for TCO Model Used for the Research
2.2. Costs Considered in the Analysis
- −
- one-off costs: purchase of vehicle, administrative costs, costs of adapting the vehicle to fleet;
- −
- recurring costs: the purchase of vehicle insurance, vehicle’s technical inspections, operating budget (e.g., car wash);
- −
- variable costs: electric power (fuel), maintenance service, repair of damages not subject to insurance.
- −
- avoidable costs: public parking fees, clean transport zone entry fees, costs of saved time (ability to use bus lanes).
2.3. One-Off Costs
- (1)
- without the consideration of any additional funding,
- (2)
- with the consideration of a maximum amount of additional funding, i.e., PLN 70,000.
2.4. Recurring Costs
2.5. Variable Costs
3. Case Study—Analysis of Scenarios
3.1. Selection of Vehicles for Analysis
- ✓
- variant 1—vehicle with an electric motor,
- ✓
- variant 2—vehicle with a diesel engine.
3.2. Analysed Scenarios for Electric Vehicles
- A.
- Without any refund for the purchase of an electric vehicle
- −
- Scenario A1—the electric vehicle is recharged only at home via an electrical socket;
- −
- Scenario A2—the electric vehicle is recharged only at public AC charging stations (the lowest price for 1 kWh was included in the calculations);
- −
- Scenario A3—the electric vehicle is recharged only at public AC charging stations (the maximum price for 1 kWh was included in the calculations);
- −
- Scenario A4—the electric vehicle is recharged only at public DC charging stations (the lowest price for 1 kWh was included in the calculations);
- −
- Scenario A5—the electric vehicle is recharged only at public DC charging stations (the maximum price for 1 kWh was included in the calculations);
- B.
- With the consideration of a maximum possible refund for the purchase of an electric vehicle (PLN 70,000)
- −
- Scenario B1—the electric vehicle is recharged only at home via an electrical socket;
- −
- Scenario B2—the electric vehicle is recharged only at public AC charging stations (the lowest price for 1 kWh was included in the calculations);
- −
- Scenario B3—the electric vehicle is recharged only at public AC charging stations (the maximum price for 1 kWh was included in the calculations);
- −
- Scenario B4—the electric vehicle is recharged only at public DC charging stations (the lowest price for 1 kWh was included in the calculations);
- −
- Scenario B5—the electric vehicle is recharged only at public DC charging stations (the maximum price for 1 kWh was included in the calculations);
3.3. Results of Analysis
- A.
- Without any refund for the purchase of an electric vehicleFigure 16. Total cost of ownership of vehicle during the whole operating period (vehicle is recharged only at home via an electrical socket—Scenario A1).Figure 16. Total cost of ownership of vehicle during the whole operating period (vehicle is recharged only at home via an electrical socket—Scenario A1).Figure 17. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario A2).Figure 17. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario A2).Figure 18. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the highest price for 1 kWh was included in the calculations—Scenario A3).Figure 18. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the highest price for 1 kWh was included in the calculations—Scenario A3).Figure 19. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario A4).Figure 19. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario A4).Figure 20. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the highest price for 1 kWh was included in the calculations—Scenario A5).Figure 20. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the highest price for 1 kWh was included in the calculations—Scenario A5).
- B.
- With the consideration of a maximum possible refund for the purchase of an electric vehicleFigure 21. Total cost of ownership of vehicle during the whole operating period (vehicle is recharged only at home via an electrical socket—Scenario B1).Figure 21. Total cost of ownership of vehicle during the whole operating period (vehicle is recharged only at home via an electrical socket—Scenario B1).Figure 22. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario B2).Figure 22. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario B2).Figure 23. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the highest price for 1 kWh was included in the calculations—Scenario B3).Figure 23. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public AC charging stations (the highest price for 1 kWh was included in the calculations—Scenario B3).Figure 24. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario B4).Figure 24. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the lowest price for 1 kWh was included in the calculations—Scenario B4).Figure 25. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the highest price for 1 kWh was included in the calculations—Scenario B5).Figure 25. Total cost of ownership of vehicle during the whole operating period—electric vehicle is recharged only at public DC charging stations (the highest price for 1 kWh was included in the calculations—Scenario B5).
4. Results
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Electric Vehicle | Combustion Powered Vehicle | |
---|---|---|
Annual service | ||
Oil change | No | Yes |
Oil filter change | No | Yes |
Air filter change | No | Yes |
Cabin air filter change | Yes | Yes |
General diagnostics | Yes | Yes |
Maintenance service | ||
Valvetrain elements replacement | No | Yes |
Clutch replacement | No | Yes |
Replacement/cleaning of spark plugs | No | Yes |
Replacement of belts | No | Yes |
Replacement of seals | No | Yes |
Replacement of traction battery | Yes (if efficiency falls below 70%) | No |
Replacement of brake pads and disks | Yes (ca. every 80,000 km) | Yes |
Replacement of operating fluids | Yes | Yes |
Incidental service | ||
Turbocharger failure | No | Yes |
Cylinder head gasket damage | No | Yes |
DPF filter replacement | No | Yes |
Gearbox damage | No | Yes |
Failure of accessories | Yes | Yes |
Cost of Refuelling | ||
---|---|---|
Diesel | 78.29 | |
Cost of Charging | ||
Operator | Type of charging | |
AC | DC | |
Greenway | 45.24–58.68 | 49.05–97.73 |
PKN Orlen | 34.40 | 60.86–73.03 |
EV+ | 28.20–50.93 | 64.44–100.02 |
PGE Nowa Era | 27.92 | 49.40–51.91 |
REVNET | 30.74 | 64.44 |
Lotos | 59.00 | 59.00 |
GO + Eauto | 32.43 | 57.28 |
TAURON | 34.12–36.94 | 71.24–82.70 |
IONITY | - | 53.70–125.30 |
charging at home | 27.21 | - |
Parameters | Variant 2 | Variant 1 |
---|---|---|
Kerb weight [kg] | 1757 | 1969 |
Loading capacity [kg] | 1043 | 1131 |
Total length [m] | 5.05 | 5.07 |
Total width [m] | 2.07 | 2.07 |
Type of “fuel” | diesel oil | electricity |
Average consumption of diesel oil [L]/electricity [kWh] needed to cover a distance of 100 km | 9.20 | 35.80 |
Maximum power [kW] | 74 | 56 |
Maximum torque [Nm] | 285 | 225 |
Maximum speed [km/h] | 135 | 100 |
Acceleration to 100 km/h [s] | 21.50 | 22 |
Maximum range [km] | 1012 | 117 |
Cost of purchase of vehicle [PLN] * | 168,313 | 317,586 |
Price of 1 L of diesel oil/1 kWh [PLN] * | 8.51 | 0.76 |
Mileage [km/year] | 30,000 | 30,000 |
Analysed period [years] | 10 | 10 |
BEV Charging Method | With Compression Ignition Engine | |
---|---|---|
w/o Refund | Max Refund | |
at home via electrical socket | −0.8 | −14.8 |
public AC charging stations (lowest price for 1 kWh considered in the calculations) | −0.4 | −14.4 |
public AC charging stations (highest price for 1 kWh considered in the calculations) | 18.3 | 4.29 |
public DC charging stations (lowest price for 1 kWh considered in the calculations) | 12.3 | −1.7 |
public DC charging stations (highest price for 1 kWh considered in the calculations) | 58.2 | 44.2 |
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Sendek-Matysiak, E.; Pyza, D.; Łosiewicz, Z.; Lewicki, W. Total Cost of Ownership of Light Commercial Electrical Vehicles in City Logistics. Energies 2022, 15, 8392. https://doi.org/10.3390/en15228392
Sendek-Matysiak E, Pyza D, Łosiewicz Z, Lewicki W. Total Cost of Ownership of Light Commercial Electrical Vehicles in City Logistics. Energies. 2022; 15(22):8392. https://doi.org/10.3390/en15228392
Chicago/Turabian StyleSendek-Matysiak, Ewelina, Dariusz Pyza, Zbigniew Łosiewicz, and Wojciech Lewicki. 2022. "Total Cost of Ownership of Light Commercial Electrical Vehicles in City Logistics" Energies 15, no. 22: 8392. https://doi.org/10.3390/en15228392
APA StyleSendek-Matysiak, E., Pyza, D., Łosiewicz, Z., & Lewicki, W. (2022). Total Cost of Ownership of Light Commercial Electrical Vehicles in City Logistics. Energies, 15(22), 8392. https://doi.org/10.3390/en15228392