Investigation of the Emission Characteristics of Light-Duty Diesel Vehicles in Korea Based on EURO-VI Standards According to Type of After-Treatment System
Abstract
:1. Introduction
2. Analysis of Certification Results, Experimental Set-Up, and Procedure
2.1. Analysis of Certification Results
2.2. Experimental Set-Up and Procedure
2.2.1. Test Vehicles
2.2.2. Experimental Setup
Experimental Apparatus (Chassis Dynamometer and Emission Analyzer)
Experimental Apparatus (PEMS)
2.2.3. Experimental Procedure
Test Mode (Chassis Dynamometer)
Test Method (RDE)
3. Results and Discussion
3.1. Analysis of NOx Emission from Certification Results in Korea
3.1.1. NOx Emission According to the Year of Certification
3.1.2. NOx Emission According to Vehicle Power and Displacement
3.1.3. NOx After-Treatment Systems
3.1.4. NOx Emission Characteristics of RDE Test Results
3.2. Emission Characteristics According to the After-Treatment System
3.2.1. Emission Characteristics by Chassis Dynamometer According to After-Treatment System
3.2.2. Emission Characteristics by PEMS According to After-Treatment System
4. Conclusions
- (1)
- The amount of NOx emissions has been decreasing since the implementation of RDE standards in 2017 and the advancements in after-treatment systems. It was found that the application of EGR and LNT systems tends to be limited to domestic and imported vehicle models with low displacement, and the SCR system is applied in all vehicle models regardless of displacement. It was also determined that the combination of LNT and SCR systems can be applied in vehicle models regardless of the power and displacement, and that it decreases the emissions.
- (2)
- The results of analysis of the status of NOx after-treatment systems installed in 266 vehicle models sold in Korea indicate that the SCR system accounts for ~47% of all after-treatment systems installed in the test vehicle models, thus constituting the highest proportion. The number of vehicle models equipped with both LNT and SCR systems has been increasing since the implementation of standards for RDE in 2017. Moreover, the measurement results of the RDE of 83 vehicle models that comply with the Euro 6 standards, which were obtained through compliance tests and inspection on certification of conformity, were analyzed according to after-treatment systems. Based on the obtained results, it was verified that both LNT and SCR systems should be simultaneously applied in vehicles to satisfy the standards for permissible emissions for certification and the acceptable level of emissions generated during real road driving.
- (3)
- The test results obtained according to the driving modes and after-treatment systems indicate that the amount of CO, NOx, and HC emissions generated in the NEDC driving mode was low, at ≤0.1 g/km. In addition, significant changes in patterns according to after-treatment systems were not observed. It was also found that the amount of NOx emissions generated from vehicles equipped with the SCR system displayed insignificant changes and tended to decrease.
- (4)
- An analysis of NOx emissions from real-road in Euro-6 light-duty diesel vehicle equipped with after-treatment devices operating in Korea showed that vehicles equipped with SCRs had lower emissions than those equipped with LNT. From these findings, it is believed that SCR fitment would be more advantageous to meet future emissions reduction of light-duty diesel vehicles on real-roads and enhanced emissions regulations above Euro-6.
Author Contributions
Funding
Conflicts of Interest
References
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Vehicle Origin | Domestic Vehicle | Imported Vehicle | Total | |||||
---|---|---|---|---|---|---|---|---|
Displacement | ~1.6 L | 1.6~2.5 L | ~2.5 L | ~1.6 L | 1.6–2.5 L | ~2.5 L | ||
Certification test | 11 | 39 | 12 | 18 | 121 | 65 | 266 | |
Compliance test | 9 | 20 | 2 | 6 | 15 | 11 | 63 | |
Real Driving Emission (RDE) test | Certification of Conformity | 6 | 6 | - | 1 | 5 | 2 | 20 |
Total of RDE test | 15 | 26 | 2 | 7 | 20 | 13 | 83 |
Vehicle Origin | Domestic Vehicle | Imported Vehicle | Total | ||||||
---|---|---|---|---|---|---|---|---|---|
After-Treatment System | EGR | LNT | SCR | LNT+SCR | EGR | LNT | SCR | LNT+SCR | |
Number of cars | - | 22 | 9 | 31 | 15 | 44 | 117 | 28 | 266 |
Test Vehicle | Max Power (ps) | Displacement (cc) | After-Treatment System |
---|---|---|---|
Veh. 1 | 150 | 1997 | EGR + LNT |
Veh. 2 | 170 | 1956 | EGR + LNT |
Veh. 3 | 170 | 2143 | EGR + SCR |
Veh. 4 | 150 | 1968 | EGR + SCR |
Veh. 5 | 190 | 1995 | EGR + LNT + SCR |
Veh. 6 | 186 | 1995 | EGR + LNT + SCR |
Item | Specification |
---|---|
Power Absorption | AC motor (150 kW) |
Roller | 48 “INLINE 4 × 2 |
Vmax Dyno | 200 km/h |
Min Inertia | 800 kg |
Max Inertia | 5448 kg |
Maximum calibration force | 10,200 N |
Fan | Vehicle proportional type |
Item | Specification | |||
---|---|---|---|---|
Component | CO | CO2 | HC | NOx |
Measuring principle | NDIR | NDIR | HFID | CLD |
Measuring concentration range | 50, 100, 200, 1000 ppm | 1, 2, 3, 6% | 10, 20, 50, 200 ppm | 10, 20, 50, 1000 ppm |
Repeatability | With ±1% of fuel scale per 8 h (at an ambient temperature difference of 5 °C) | |||
Zero drift | With ±1% of fuel scale per 8 h (at an ambient temperature difference of 5 °C) | |||
Span drift | With ±1% of fuel scale per 8 h (at an ambient temperature difference of 5 °C) |
Item | Principle | Range |
---|---|---|
CO | Heated non-dispersive infrared (NDIR) | 0–8 vol% |
CO2 | Heated NDIR | 0–18 vol% |
NO, NOx | NDUV | 0–3000 ppm |
Exhaust flow | Pilot flow meter | 0–670 kg/h |
Standard signal measurement | Ambient pressure, temperature, humidity Exhaust temperature and pressure, global positioning system (GPS) |
Test Mode | NEDC | WLTC |
---|---|---|
Driving time | 1180 s | 1800 s |
Driving distance | 11 km | 23.26 km |
Maximum speed | 120 km/h | 131.3 km/h |
Average speed | 33.6 km/h | 46.5 km/h |
Route | Link | Road Type | Distance (km) | |
---|---|---|---|---|
Cold start condition | NIER–(Gimpo) Bukbyeon Crossroad–Pyeongri Field | Urban | 28 | 90 |
Pyeongri Field–Gaehwa IC–Hyeoncheon IC–Sinpyeong IC | Rural | 32 | ||
(Incheon Airport) Gangmae IC–Geumsan IC | Motorway | 30 | ||
Hot start condition | (Ilsan) Neunggok Crossroad–Gwanghawmun Three-way Intersection–Seogang Bridge | Urban | 23 | 74 |
Seogang Bridge–Gangmae IC–Neunggok IC–Gangmae IC | Rural | 21 | ||
(Incheon Airport) Gangmae IC–Geumsan IC | Motorway | 30 |
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Kim, H.J.; Lee, S.H.; Kwon, S.I.; Park, S.; Lee, J.; Keel, J.H.; Lee, J.T.; Park, S. Investigation of the Emission Characteristics of Light-Duty Diesel Vehicles in Korea Based on EURO-VI Standards According to Type of After-Treatment System. Energies 2020, 13, 4936. https://doi.org/10.3390/en13184936
Kim HJ, Lee SH, Kwon SI, Park S, Lee J, Keel JH, Lee JT, Park S. Investigation of the Emission Characteristics of Light-Duty Diesel Vehicles in Korea Based on EURO-VI Standards According to Type of After-Treatment System. Energies. 2020; 13(18):4936. https://doi.org/10.3390/en13184936
Chicago/Turabian StyleKim, Hyung Jun, Sang Hyun Lee, Sang Il Kwon, Sangki Park, Jonghak Lee, Ji Hoon Keel, Jong Tae Lee, and Suhan Park. 2020. "Investigation of the Emission Characteristics of Light-Duty Diesel Vehicles in Korea Based on EURO-VI Standards According to Type of After-Treatment System" Energies 13, no. 18: 4936. https://doi.org/10.3390/en13184936
APA StyleKim, H. J., Lee, S. H., Kwon, S. I., Park, S., Lee, J., Keel, J. H., Lee, J. T., & Park, S. (2020). Investigation of the Emission Characteristics of Light-Duty Diesel Vehicles in Korea Based on EURO-VI Standards According to Type of After-Treatment System. Energies, 13(18), 4936. https://doi.org/10.3390/en13184936