The Effect of Back Pressure Change on Exhaust Emissions According to the Confluence Geometry of a Dual Exhaust System in Idling
Abstract
:1. Introduction
2. Prototype Design
3. Experiment Method
3.1. Back Pressure Measurement
3.2. Exhaust Emission Measurement
4. Results and Discussion
4.1. Analysis of the Measured Back Pressure
4.2. Analysis of the Measured Exhaust Emissions
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Type (Unit) | Y-Type | X-Type | H-Type |
---|---|---|---|
Pipe size (mm) | 63.5 | 50.8 | 50.8 |
Cross section (mm2) | 2874.75 | 3262.98 | 3589.02 |
Description | Specification |
---|---|
Type of Engine | DOHC 24-valve |
Cylinder Type | V6 |
Bore, stroke | 95.5, 86.0 mm |
Compression ratio(:1) | 11.0 |
Maximum Power | 330 hp/7000 |
Maximum Torque | 36.8 kgf∙m/5200 |
Description | Specification |
---|---|
Transducer type | Piezo resistive |
Measurable Range | −30~30 kPa |
Accuracy | ±0.25 |
Operating temperature range | −20~100 °C |
Output type | 4~20 mA (2 wire) |
Description | Specification |
---|---|
Number of input channels | 20 channels |
Accuracy | Voltage ± 0.1% |
Sampling interval | 10 ms (1 channel), 50 ms (4 channel) |
Operating environment | 0 to 45 °C, 5 to 85% RH |
Description | Specification |
---|---|
Measuring item | CO, THC, CO2, O2, λ, AFR, NOx |
Measuring method | CO, THC, CO2: NDIR, O2, NOx: Electrochemical cell |
Repeatability | Less than ±2% FS |
Operating temperature range | 0~40 °C |
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Kang, I.-s.; Yang, S.-m. The Effect of Back Pressure Change on Exhaust Emissions According to the Confluence Geometry of a Dual Exhaust System in Idling. Appl. Sci. 2022, 12, 1855. https://doi.org/10.3390/app12041855
Kang I-s, Yang S-m. The Effect of Back Pressure Change on Exhaust Emissions According to the Confluence Geometry of a Dual Exhaust System in Idling. Applied Sciences. 2022; 12(4):1855. https://doi.org/10.3390/app12041855
Chicago/Turabian StyleKang, Il-seok, and Sung-mo Yang. 2022. "The Effect of Back Pressure Change on Exhaust Emissions According to the Confluence Geometry of a Dual Exhaust System in Idling" Applied Sciences 12, no. 4: 1855. https://doi.org/10.3390/app12041855
APA StyleKang, I. -s., & Yang, S. -m. (2022). The Effect of Back Pressure Change on Exhaust Emissions According to the Confluence Geometry of a Dual Exhaust System in Idling. Applied Sciences, 12(4), 1855. https://doi.org/10.3390/app12041855