Investigation on the Emission Characteristics with a Wet-Type Exhaust Gas Cleaning System for Marine Diesel Engine Application
Abstract
:1. Introduction
2. Experimental Apparatus and Method
2.1. Engine Test
2.2. Oxidation and Reduction Agent
- (1)
- Inject 1 mL of the sample into 25 mL of ultrapure water.
- (2)
- Add 1 g of potassium iodide and 1 mL of acetic acid.
- (3)
- Add two to three drops of 1% starch solution. The solution then turns reddish brown.
- (4)
- Add 0.1 N sodium thiosulfate to the reddish-brown solution and measure the amount added until it becomes colorless.
- (5)
- Determine the effective chlorine concentration as follows:
- (1)
- Add 1 mL of sample to 25 mL of ultrapure water.
- (2)
- Add two to three drops of phenolphthalein. The solution turns red.
- (3)
- Add 0.1 M hydrochloric acid to the red solution and measure the amount injected until it becomes colorless.
- (4)
- Determine the concentration of sodium hydroxide as follows:
3. Results and Discussion
3.1. Sulfur Oxide (SOx) Emissions
3.2. Nitric Oxide (NOx) Emissions
3.3. Carbon Dioxide (CO2) Emissions
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Outside ECA (Global Requirement) | Inside ECA |
---|---|
4.5% m/m prior to 1 January 2012 | 1.5% m/m prior to 1 July 2010 |
3.5% m/m on and after 1 January 2012 | 1.0% m/m on and after 1 July 2010 |
0.5% m/m on and after 1 January 2020 | 0.1% m/m on and after 1 January 2015 |
Region | Fuel Type | Year | ||
---|---|---|---|---|
2012 | 2030 | 2050 | ||
Global | HFO | 3114 | 3114 | 3114 |
LSFO | 3114 | 3114 | 3114 | |
MGO | 3206 | 3206 | 3206 | |
LNG | 2750 | 2750 | 2750 |
Item | Description |
---|---|
Engine type | D4BB-G3, four-stroke diesel engine |
Bore × stroke | 91.1 × 100 mm |
Combustion type | Indirect injection |
No. of cylinders | 4 inline |
Displacement volume | 2607 cm3 |
MCR output | 45 PS @ 1800 rpm |
Compression ratio | 22:1 |
Fuel | Diesel oil |
Item | Description |
---|---|
Spraying order | 1st stage: seawater 2nd stage: electrolyzed seawater 3rd stage: NaOH (+Na2S) |
Absorber type | Packed bed |
Packing | 1” Tripack (polypropylene) |
Exhaust gas flow | 130 ± 10 Nm3/h |
Retention time | 6.3–6.9 s |
Liquid–gas ratio | 43–50 L/m3 |
CNOx,i | 887–942 ppmv |
CSO2,i | 430–470 ppmv |
CCO2,i | 5.30–5.45 vol.% |
Cl2 concentration | 4.8–5.3 g Cl2/L |
NaOH concentration | 6.1–7.7 g NaOH/L |
Gas | Solubility in Water [mol/L] |
---|---|
NO | 1.51 × 10−6 |
NO2 | 2.44 × 10−5 |
SO2 | 1.25 × 10−3 |
CO2 | 3.48 × 10−5 |
Cl2 | 8.20 × 10−5 scientific notion |
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Ryu, Y.; Kim, T.; Kim, J.; Nam, J. Investigation on the Emission Characteristics with a Wet-Type Exhaust Gas Cleaning System for Marine Diesel Engine Application. J. Mar. Sci. Eng. 2020, 8, 850. https://doi.org/10.3390/jmse8110850
Ryu Y, Kim T, Kim J, Nam J. Investigation on the Emission Characteristics with a Wet-Type Exhaust Gas Cleaning System for Marine Diesel Engine Application. Journal of Marine Science and Engineering. 2020; 8(11):850. https://doi.org/10.3390/jmse8110850
Chicago/Turabian StyleRyu, Younghyun, Taewoo Kim, Jungsik Kim, and Jeonggil Nam. 2020. "Investigation on the Emission Characteristics with a Wet-Type Exhaust Gas Cleaning System for Marine Diesel Engine Application" Journal of Marine Science and Engineering 8, no. 11: 850. https://doi.org/10.3390/jmse8110850
APA StyleRyu, Y., Kim, T., Kim, J., & Nam, J. (2020). Investigation on the Emission Characteristics with a Wet-Type Exhaust Gas Cleaning System for Marine Diesel Engine Application. Journal of Marine Science and Engineering, 8(11), 850. https://doi.org/10.3390/jmse8110850