Figure 1.
SEM image of catalyst.
Figure 1.
SEM image of catalyst.
Figure 2.
Direct photos of the plasma burner assisted SCR system.
Figure 2.
Direct photos of the plasma burner assisted SCR system.
Figure 3.
Schematic drawing with actual behavior.
Figure 3.
Schematic drawing with actual behavior.
Figure 4.
SCR system with a plasma burner.
Figure 4.
SCR system with a plasma burner.
Figure 5.
Schematic diagram of the micro reactor.
Figure 5.
Schematic diagram of the micro reactor.
Figure 6.
Relative ammonia adsorption capacity at 250 °C and 350 °C.
Figure 6.
Relative ammonia adsorption capacity at 250 °C and 350 °C.
Figure 7.
NOx conversion rates of the catalysts at AV 25 m/h and 340 °C.
Figure 7.
NOx conversion rates of the catalysts at AV 25 m/h and 340 °C.
Figure 8.
Combustion pattern as load change.
Figure 8.
Combustion pattern as load change.
Figure 9.
Temperature profiles of the plasma burner operation; (a) Case1, (b) Case2.
Figure 9.
Temperature profiles of the plasma burner operation; (a) Case1, (b) Case2.
Figure 10.
PM loading with and without catalyst at different engine loads.
Figure 10.
PM loading with and without catalyst at different engine loads.
Figure 11.
Change in differential pressure after 6 h.
Figure 11.
Change in differential pressure after 6 h.
Figure 12.
Evaluation of the performance of catalysts aged by SOF and ABS at 250 °C for 10 h.
Figure 12.
Evaluation of the performance of catalysts aged by SOF and ABS at 250 °C for 10 h.
Figure 13.
NOx conversion rate of the aged catalyst; (a) with non-injection urea, (b) with injection urea.
Figure 13.
NOx conversion rate of the aged catalyst; (a) with non-injection urea, (b) with injection urea.
Figure 14.
NOx conversion rate for engine 1 and 2 as a function of operating time.
Figure 14.
NOx conversion rate for engine 1 and 2 as a function of operating time.
Figure 15.
Sampling positions and condition of the used catalyst before and after regeneration.
Figure 15.
Sampling positions and condition of the used catalyst before and after regeneration.
Figure 16.
Evaluation of sample 1 and 2 at different temperatures.
Figure 16.
Evaluation of sample 1 and 2 at different temperatures.
Figure 17.
NOx conversion rate as a function of (a) HC conversion and (b) HC concentration from downstream of the catalyst.
Figure 17.
NOx conversion rate as a function of (a) HC conversion and (b) HC concentration from downstream of the catalyst.
Figure 18.
De-NOx performance with burner operation after SOx poisoning and after regeneration under different temperature conditions; (a) Case 1, (b) Case 2.
Figure 18.
De-NOx performance with burner operation after SOx poisoning and after regeneration under different temperature conditions; (a) Case 1, (b) Case 2.
Table 1.
Operating conditions of medium speed marine engines.
Table 1.
Operating conditions of medium speed marine engines.
Description | Unit | Design Value |
---|
Engine | Power | kW | 250–500 |
Speed | Rpm | 750 |
Exhaust gas flow rate | Kg/h | 3500–4500 |
Exhaust gas temperature | °C | 280 |
Before SCR chamber | °C | 260 |
Table 2.
Properties of the catalysts.
Table 2.
Properties of the catalysts.
Property | Cat 1 | Cat 2 | Cat 3 |
---|
Type | WIW | Metal | Homogeneously extruded |
Cell density (CPSI) | 45.9 | 100 | 35 |
Geometric surface area (m2/m3) | 882 | 1522 | 807 |
Open frontal area (%) | 68.7 | 79 | 74.7 |
Table 3.
Compressive strength of the catalysts.
Table 3.
Compressive strength of the catalysts.
| Compressive Strength (kgf/cm2) |
---|
Cat 1 | 68 |
Cat 2 | 2200 |
Cat 3 | 37 |
Table 4.
Experimental conditions for ignition.
Table 4.
Experimental conditions for ignition.
Condition | Burner Fuel Rate [g/min] | Engine Power [kW] | Exh. Flow Rate [kg/h] | Exh. Flow Velocity [m/s] |
---|
Case1 | 180 | 250 | 3500 | 25 |
Case2 | 180 | 350 | 4000 | 35 |
Case3 | 180 | 500 | 4500 | 45 |
Table 5.
Experimental conditions for plasma burner performance.
Table 5.
Experimental conditions for plasma burner performance.
Description | | Unit | Design Value |
---|
Case1 | Case2 |
---|
Plasma burner | Before SCR chamber | °C | 260 |
| Specific heat of exh. Gas | kJ/kgK | 1.116 |
| Rising Temp. | °C | 100 | 150 |
| Required heat (*) | kW | 97.7 | 168.8 |
| Required fuel rate (**) | g/min | 167.4 | 279.0 |
Table 6.
Estimation of combustion efficiency by comparing measured and calculated temperature.
Table 6.
Estimation of combustion efficiency by comparing measured and calculated temperature.
Condition | Fuel Rate [g/min] | Tmeasure [°C] | Tcalculation [°C] | Ethermal [%] |
---|
Case1 | 167.4 | 349 | 350 | 99 |
Case2 | 279.0 | 409 | 410 | 99 |
Table 7.
De-NOx performance with plasma burner operation at different temperatures (exhaust condition refer to
Table 3).
Table 7.
De-NOx performance with plasma burner operation at different temperatures (exhaust condition refer to
Table 3).
Description | Urea Flow Rate | Differ. Press. | De-NOx Rate |
---|
[L/min] | [Pa] | [%] |
---|
Catalyst Regeneration @ 360 °C [Case 1] |
Fresh condition | 4.61 | 1384 | 68.3 |
After SOx poisoning | 1539 | 44.4 |
After regeneration | 1346 | 70.6 |
Catalyst regeneration @ 410 °C [Case 2] |
Fresh condition | 5.10 | 1391 | 68.1 |
After SOx poisoning | 1564 | 23.6 |
After regeneration | 1427 | 68.3 |