Assessing the Energy Consumption and Driving Range of the QUIET Project Demonstrator Vehicle
Abstract
:1. Introduction
- HVAC system based on the refrigerant R290 (propane);
- Phase change material (PCM) thermal storage system;
- Infrared heating panels in the near field of the passengers;
- Redesigned seat internal structures using lightweight materials, such as aluminium and magnesium (15% weight reduction);
- Glass or carbon fibre composite vehicle doors with a novel APM aluminium foam (20% weight reduction and NVH optimisation);
- Human–machine interface (HMI) specialised on EVs for easy and efficient interaction with the thermal and energy management.
2. Overview of the Implemented Technologies
- Heat pump and propane
- Advanced Thermal Storage
- Lightweight materials and infrared radiative heating
- User-centric design and optimisation
3. Experimental Set-Up
3.1. Test Vehicle and Laboratory
- Vehicle-speed coupled blower;
- Driver’s aid system with a data logger for real-time acquisition of signals;
- Precision power analyser used for the electrical components;
- Flow controlling devices;
- Emission measurement system for gases, PM, and PN (raw and diluted emission).
3.2. Measurement Points
3.3. Test Driving Cycles
- The Mobile Air Conditioning (MAC) [42];
4. Results and Discussion
4.1. WLTP Consecutive Cycle Test Energy Consumption Results
4.1.1. Energy Consumption at 23 °C
4.1.2. Energy Consumption at −10 °C
4.1.3. Energy Consumption at 40 °C
4.2. MAC Test Energy Consumption Results
4.3. Driving Range Results
4.3.1. WLTP Consecutive Cycle Test Driving Range Results
4.3.2. Multi-Cycle Approach for Estimating the Driving Range
4.3.3. WLTP City Driving Range Results
5. Discussion and Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
A/C | Air conditioning |
AC | Alternating current |
APM | Atomically Precise Manufacturing |
BEV | Battery electric vehicle |
CAN | Controller area network |
CCT | Consecutive cycle test |
CFD | Computational fluid dynamics |
CSS | Constant speed segment |
DC | Direct current |
EM | Electric motor |
GHG | Greenhouse gases |
GPS | Global positioning system |
GWP | Global warming potential |
HC | Hydrocarbon |
HMI | Human–machine interface |
HV | High voltage |
HVAC | Heating, ventilation, and air conditioning |
HV-PTC | High-voltage positive thermal coefficient |
ICE | Internal combustion engine |
IFAM | Fraunhofer Institute for Manufacturing Technology and Advanced Materials |
IR | Infrared |
JRC | Joint Research Centre |
MAC | Mobile air conditioning |
NEDC | New European Driving Cycle |
NVH | Noise Vibration Harshness |
ODP | Ozone depleting potential |
PCM | Phase change material |
PM | Particulate mass |
PMV | Predicted mean vote |
PN | Particulate number |
STP | Shortened test procedure |
SUV | Sport utility vehicle |
QUIET | QUalifying and Implementing a user-centric designed and EfficienT electric vehicle |
VELA | Vehicle emission laboratories |
WLTP | Worldwide harmonized Light-duty Test Procedure |
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Architecture | Vehicle Demonstrator |
---|---|
Propulsion | Synchronous electric motor |
Max. Power (kW) | 75 |
Max. Torque (N∙m) | 256 |
Mass (kg) | 1540 |
Battery | 20 kWh–432 Li-Ion cells 331 V (nominal voltage) |
Measurement Point Label | Description |
---|---|
M1 | Energy from the grid to the high-voltage battery (Wh) (acquired directly on the recharging station) |
M2 | Current (A) and Voltage (V), from the high-voltage battery feeding the inverter, the low-voltage auxiliary systems, and the heating and A/C systems (acquired both by CANbus and current clamp measurements) |
M3 | Rotational speed (rpm) and torque (N∙m) of the electric motor (acquired by CANbus) |
M4 | Energy at the wheel (Wh) (acquired by the dyno) |
M5 | Current (A) and Voltage (V), from the high-voltage battery to the heater (acquired by CANbus) |
M6 | Current (A) and Voltage (V), from the high-voltage battery to the A/C compressor (acquired both by CANbus and current clamp measurement) |
Cycle | Ambient Temperature | HVAC |
---|---|---|
WLTP CCT | 23 °C | off |
WLTP CCT | −10 °C | AUTO mode 2 seats occupied 25 °C enforced (heating) |
WLTP CCT | 40 °C | AUTO mode 2 seats occupied 26 °C enforced (cooling) |
WLTP STP | 23 °C | off |
MAC | 25 °C | AUTO mode 2 seats occupied 15 °C enforced (cooling) |
MAC | −10 °C | AUTO mode 2 seats occupied 22 °C enforced (heating) |
TAmb. = 23 °C HVAC OFF | Demonstrator Tests | Baseline Tests (Rep. #1) | ||
---|---|---|---|---|
Case 1 | Case 2 | Case 1 | Case 2 | |
WLTC (Wh/km) (l/100 km) | WLTC (Wh/km) (l/100 km) | WLTC (Wh/km) (l/100 km) | WLTC (Wh/km) (l/100 km) | |
Cycle 1 combined | 136.0 (1.53) | 138.2 (1.55) | 131.3 (1.47) | 128.7 (1.43) |
Cycle 2 combined | 131.0 (1.47) | 137.9 (1.54) | 129.6 (1.46) | 126.7 (1.41) |
Cycle 3 combined | 130.4 (1.46) | 138.4 (1.55) | 129.4 (1.45) | 127.4 (1.42) |
Cycle 4 combined | 132.8 (1.49) | 139.7 (1.57) | 129.2 (1.45) | 127.0 (1.41) |
Cycle 5 combined | 130.8 (1.47) | 138.4 (1.55) | 130.7 (1.47) | 128.5 (1.43) |
Cycle 6 combined | / | / | 131.9 (1.48) | 128.8 (1.43) |
Total from start up to break-off criteria combined | 131.6 (1.48) | 139.4 (1.57) | 128.6 (1.44) | 125. (1.40) |
Total from start up to break-off criteria WLTP (K-weighted values) | 133.1 (1.50) | 138.5 (1.56) | 130.3 (1.46) | 127.8 (1.44) |
Rec. Ratio (Battery) | 22.9% | 22.9% | 24.3% | 25.5% |
TAmb. = −10 °C HVAC ON | Baseline Vehicle Tests (Rep. #3) | |
---|---|---|
Case 1 | Case 2 | |
WLTC (Wh/km) (l/100 km) | WLTC (Wh/km) (l/100 km) | |
Cycle 1 combined | 258.9 (2.91) | 264.6 (2.97) |
Cycle 2 combined | 227.6 (2.56) | 233.2 (2.62) |
Total from start up to break-off criteria combined | 235.9 (2.65) | 186.8 (2.10) |
Total from start up to break-off criteria WLTP (K-weighted values) | 240.5 (2.70) | 249.9 (2.81) |
Rec. Ratio (Battery) | 8.9% | 6.9% |
TAmb. = −10 °C HVAC OFF | Demonstrator Tests | |
---|---|---|
Case 1 | Case 2 | |
WLTC (Wh/km) (l/100 km) | WLTC (Wh/km) (l/100 km) | |
Cycle 1 combined | 159.42 (1.79) | 163.36 (1.83) |
Cycle 2 combined | 145.88 (1.64) | 149.91 (1.68) |
Total from start up to break-off criteria combined | 140.79 (1.58) | 144.70 (1.63) |
Total from start up to break-off criteria WLTP (K-weighted values) | 152.63 (1.71) | 156.59 (1.76) |
Rec. Ratio (Battery) | 18.15% | 18.15% |
Demonstrator Vehicle | Baseline Vehicle | ||||||
---|---|---|---|---|---|---|---|
Case 1 | Case 2 | Case 1 | Case 2 | Case 1 | Case 2 | ||
MAC (Wh/km) (l/100 km) | MAC (Wh/km) (l/100 km) | MAC (Wh/km) (l/100 km) | MAC (Wh/km) (l/100 km) | MAC (Wh/km) (l/100 km) | MAC (Wh/km) (l/100 km) | ||
TAmb. = 25 °C | Phase 1 HVAC ON | 175.8 (1.97) | 168.6 (1.89) | 172.7 (1.94) | 171.3 (1.92) | 143.3 (1.61) | 117.1 (1.32) |
Phase 2 HVAC ON | 155.1 (1.74) | 148.8 (1.67) | 153.6 (1.73) | 152.9 (1.71) | 140.9 (1.58) | 107.6 (1.21) | |
Phase 3 HVAC OFF | 131.1 (1.47) | 116.7 (1.31) | 134.2 (1.51) | 130.2 (1.46) | 128.1 (1.44) | 96.0 (1.08) | |
Ratio | +18.3% | +27.5% | +14.4% | +17.4% | +10.0% | +12.1% | |
TAmb. = −10 °C | Phase 1 HVAC ON | / | / | / | / | 301.7 (3.39) | 298.9 (3.36) |
Phase 2 HVAC ON | / | / | / | / | 237.3 (2.66) | 234.0 (2.63) | |
Phase 3 HVAC OFF | / | / | / | / | 146.7 (1.65) | 136.9 (1.54) | |
Ratio | / | / | / | / | +61.7% | +71.0% |
Demonstrator Test | Baseline Tests | ||||||||
---|---|---|---|---|---|---|---|---|---|
Case 1 | Case 2 | Case 1 | Case 2 | Case 1 | Case 2 | Case 1 | Case 2 | ||
Driving Range (km) | Driving Range (km) | Driving Range (km) | Driving Range (km) | ||||||
TAmb. = 23 °C HVAC OFF | WLTP CCT up to break-off K-weighted | 136.08 | 136.44 | 154.43 | 154.10 | 154.74 | 124.10 | 149.24 | 148.90 |
WLTP CCT up to break-off Not weighted | 136.61 | 156.50 | 156.78 | 148.76 | |||||
TAmb. = −10 °C HVAC ON | Estimated WLTP CCT up to break-off Not weighted | 86.8 | 68 | 63.98 | 63.93 | ||||
TAmb. = 40 °C HVAC ON | Estimated WLTP CCT up to break-off Not weighted | 137–140 | 137 | / | / |
Demonstrator Tests | Baseline Tests | ||||
---|---|---|---|---|---|
WLTC 23 °C HVAC OFF (km) | WLTC −10 °C HVAC OFF (km) | WLTC −10 °C HVAC ON (km) | WLTC 23 °C HVAC OFF (km) | WLTC −10 °C HVAC ON (km) | |
Cycle 1 | 147.04 | 125.46 | 111.66 | 152.37 | 77.26 |
Cycle 2 | 152.64 | 137.10 | / | 154.37 | 87.88 |
Cycle 3 | 153.36 | / | / | 154.55 | / |
Cycle 4 | 150.61 | / | / | 154.77 | / |
Cycle 5 | 152.94 | / | / | 152.99 | / |
Cycle 6 | / | / | / | 151.64 | / |
WLTP CCT | 136 | 51 | 26 | 156 | 68 |
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Patrone, G.L.; Paffumi, E.; Otura, M.; Centurelli, M.; Ferrarese, C.; Jahn, S.; Brenner, A.; Thieringer, B.; Braun, D.; Hoffmann, T. Assessing the Energy Consumption and Driving Range of the QUIET Project Demonstrator Vehicle. Energies 2022, 15, 1290. https://doi.org/10.3390/en15041290
Patrone GL, Paffumi E, Otura M, Centurelli M, Ferrarese C, Jahn S, Brenner A, Thieringer B, Braun D, Hoffmann T. Assessing the Energy Consumption and Driving Range of the QUIET Project Demonstrator Vehicle. Energies. 2022; 15(4):1290. https://doi.org/10.3390/en15041290
Chicago/Turabian StylePatrone, Gian Luca, Elena Paffumi, Marcos Otura, Mario Centurelli, Christian Ferrarese, Steffen Jahn, Andreas Brenner, Bernd Thieringer, Daniel Braun, and Thomas Hoffmann. 2022. "Assessing the Energy Consumption and Driving Range of the QUIET Project Demonstrator Vehicle" Energies 15, no. 4: 1290. https://doi.org/10.3390/en15041290
APA StylePatrone, G. L., Paffumi, E., Otura, M., Centurelli, M., Ferrarese, C., Jahn, S., Brenner, A., Thieringer, B., Braun, D., & Hoffmann, T. (2022). Assessing the Energy Consumption and Driving Range of the QUIET Project Demonstrator Vehicle. Energies, 15(4), 1290. https://doi.org/10.3390/en15041290