NATURALLY ASPIRATED COMMON RAIL DIESEL ENGINE MEETING ULTRA LOW PM EMISSION BY PASSIVE EXHAUST AFTER TREATMENT
20190345900 ยท 2019-11-14
Assignee
Inventors
- Velusamy R (Chennai, IN)
- Dipankar Ray (Chennai, IN)
- Bhosale Sadanand (Chennai, IN)
- Hiranandani Pravesh (Chennai, IN)
- Rane Santosh (Chennai, IN)
- Suresh R (Chennai, IN)
- Dalvi Atmaram (Chennai, IN)
- Deepak S (Chennai, IN)
Cpc classification
B01D53/944
PERFORMING OPERATIONS; TRANSPORTING
B01D53/9495
PERFORMING OPERATIONS; TRANSPORTING
F02M26/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/31242
PERFORMING OPERATIONS; TRANSPORTING
B01F25/3133
PERFORMING OPERATIONS; TRANSPORTING
B01F25/3143
PERFORMING OPERATIONS; TRANSPORTING
B01D53/945
PERFORMING OPERATIONS; TRANSPORTING
F02D41/0077
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/0065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/23
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M26/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/23
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Systems (100, 200 and 300) and methods (400, 500 and 600) for controlling exhaust gas emissions from naturally aspirated engine are disclosed. The system (100, 200 and 300) includes an open loop exhaust gas recirculation flow to the engine. The system (100, 200 and 300) includes a diesel oxidation catalyst (102, 202 and 302) mounted on or near exhaust manifold (106, 206 and 306) of the engine. Furthermore, the system (100 and 200) includes an exhaust gas mixing conduit (114 and 214) inserted into air intake conduit (104 and 204). The system (100, 200 and 300) further includes an exhaust gas recirculation valve (110, 210 and 310) mounted on cold side or a hot side of EGR cooler. Furthermore, the system (100, 210 and 310) includes an electronic control unit to control exhaust gas recirculation valve (110, 210 and 310) along with various other engine calibration parameters.
Claims
1. A system (100) for controlling exhaust gas emissions from a naturally aspirated engine, said system (100) comprising: an exhaust gas mixing conduit (114) inserted into an air intake conduit (104); and an exhaust gas recirculation valve (110) provided in thud communication with an exhaust manifold (106) and said exhaust gas mixing conduit (114), wherein said exhaust gas recirculation valve (110) is adapted to control the flow of exhaust gas recirculation to said exhaust gas mixing conduit (114) based on at least one signal received from an electronic control unit (113); and said exhaust gas mixing conduit (114) defines an angular exhaust gas outlet (114A) adapted to introduce the exhaust gas in the air intake conduit (104) therein to facilitate uniform mixing of exhaust gas with fresh air in the air intake conduit (104).
2. The system (100) as claimed in claim 1, wherein said exhaust gas recirculation valve (110) is provided near a cold side or a hot side of an exhaust gas recirculation cooler (115); said exhaust gas recirculation valve (110) is provided in fluid communication with the exhaust manifold (106) through the exhaust gas recirculation cooler (115) and an exhaust gas recirculation pipe (112); and the electronic control unit (113) includes an open loop control logic to provide a regulated flow of exhaust gas recirculation to the engine.
3. The system (100) as claimed in claim 1, wherein said system (100) comprises, an oxidation catalyst (102) coupled to the exhaust manifold (106), wherein said oxidation catalyst (102) is selected from a combination of precious metal, wherein said precious metal comprises platinum (Pt) and palladium (Pd).
4. The system (100) as claimed in claim 1, wherein one end (114Af) of said angular exhaust gas outlet (114A) is disposed away from another end (114As) of said angular exhaust gas outlet (114A) of said exhaust gas mixing conduit (114), wherein said angular exhaust gas outlet (114A) is facing opposite to the flow of fresh air from the air intake conduit (104); and the exhaust gas mixing conduit (114) is being cut at a predefined angle with respect to a central axis (114X) of said exhaust gas mixing conduit (114) therein to form the angular exhaust gas outlet (114A).
5. The system (100) as claimed in claim 1, wherein said exhaust gas mixing conduit (114) includes flange (114F) adapted to facilitate mounting of said exhaust gas mixing conduit (114) onto the air intake conduit (104), wherein said flange (114F) includes a plurality of locking portions (114FL) adapted to secure said exhaust gas mixing conduit (114) with the air intake conduit (104); and said exhaust gas mixing conduit (114) is adapted to introduce the exhaust gas at center of the air intake conduit (104) for uniform mixing of exhaust gas with fresh air in the air intake conduit (104).
6. The system (100) as claimed in claim 1, wherein an inner diameter of said exhaust gas mixing conduit (114) is half an inner diameter (D) of the air intake conduit (104), wherein a central axis (114X) of said exhaust gas mixing conduit (114) is transverse to a central axis (104X) of the air intake conduit (104).
7. The system (100) as claimed. In claim 6, wherein a distance between the point of intersection of the central axis (114X) of said exhaust gas mixing conduit (114) and the central axis (104X) of the air intake conduit (104) is 0.9 of the inner diameter (D) of the air intake conduit (104).
8. The system (100) as claimed in claim 1, wherein an overall length of said exhaust gas mixing conduit (114) is 1.3 times the inner diameter (D) of the air intake conduit (104).
9. The system (100) as claimed in claim 5, wherein a distance between the flange (114F) of the exhaust gas mixing conduit (114) and the end (114As) of the angular opening (114A) is 0.68 of the inner diameter (D) of the air intake conduit (104).
10. The system (100) as claimed in claim 9, wherein a distance between the flange (114F) and a center of said angular exhaust gas outlet (114A) of said exhaust gas mixing conduit (114) is 0.46 of the inner diameter (D) of the air intake conduit (104).
11. The system (100) as claimed in claim 1, wherein a mixing length between a central axis (104PX) of an outlet (104P) of the air intake conduit (104) and the central axis (114) of said exhaust gas mixing conduit (114) is at least 6 times the inner diameter of the air intake conduit (104).
12. A method (400) for controlling exhaust gas emissions from a naturally aspirated engine, said method (400) comprising: oxidizing organic volatile fractions from the engine, by an oxidation catalyst (102) adapted to be coupled to an exhaust manifold (106) of the engine; controlling the exhaust gas flow to an exhaust gas mixing conduit (114) through an exhaust gas recirculation valve (110) by providing at least one signal from an electronic control unit (113) to the exhaust gas recirculation valve (110); and mixing the exhaust gases with fresh air in an air intake conduit (104), by inserting the exhaust gas mixing conduit (114) into the air intake conduit (104) and allowing exhaust gas flow from an angular exhaust gas outlet (114A) of the exhaust gas mixing conduit (114) to the air intake conduit (104), wherein said electronic control unit (113) includes an open loop control logic to provide a regulated flow of exhaust gas recirculation to the engine; one end (114Af) of the angular exhaust gas outlet (114A) is disposed away from another end (114As) of the angular exhaust gas outlet (114A) of the exhaust gas mixing conduit (114); and the angular exhaust gas outlet (114A) is facing opposite to the flow of fresh air from the air intake conduit (104).
13. The method (400) as claimed in claim 12, wherein said method (400) comprises, selecting the oxidation catalyst (102) from a combination of precious metal, wherein the precious metal comprises platinum (Pt) and palladium (Pd).
14. A system (200) for controlling exhaust gas emissions from a naturally aspirated engine, said system (200) comprising: an exhaust gas mixing conduit (214) inserted into an air intake conduit (204); and an exhaust gas recirculation valve (210) provided in fluid communication with an exhaust manifold (206) and said exhaust gas mixing conduit (214), wherein said exhaust gas recirculation valve (210) is adapted to control the flow of exhaust gas recirculation to said exhaust gas mixing conduit (214) based on at least one signal received from an electronic control unit (213); said exhaust gas mixing conduit (214) defines a plurality of fresh air inlets (214F) adapted to facilitate entry of fresh air from an air inlet (204I) of the air intake conduit (204) into the exhaust gas mixing conduit (214) therein to facilitate uniform mixing of fresh air with exhaust gas in said exhaust gas mixing conduit (214); and said exhaust gas mixing conduit (214) defines an angular exhaust gas outlet (214A) adapted to dispense the mixed fluid from the exhaust gas mixing conduit (214) to the air intake conduit (204).
15. The system (200) as claimed in claim 14, wherein said exhaust gas recirculation valve (210) is provided near a cold side or a hot side of an exhaust gas recirculation cooler (215); said exhaust gas recirculation valve (210) is provided in fluid communication with the exhaust manifold (206) through the exhaust gas recirculation cooler (215) and an exhaust gas recirculation pipe (212); and the electronic control unit (213) includes an open loop control logic to provide a regulated flow of exhaust gas recirculation to the engine.
16. The system (200) as claimed in claim 14, wherein said system (200) comprises, an oxidation catalyst (202) coupled to an exhaust manifold (206) of the engine, wherein said oxidation catalyst (202) is selected from a combination of precious metal, wherein the precious metal comprises platinum (Pt) and palladium (Pd).
17. The system (200) as claimed in claim 14, wherein one end (214Af) of said angular exhaust fluid outlet (214I) is disposed away from another end (214As) of said angular exhaust gas outlet (214A) of said exhaust gas mixing conduit (214), wherein said angular exhaust gas outlet (214A) is facing opposite to the flow of fresh air from the air intake conduit (204); at least a portion of said exhaust gas mixing conduit (214) is disposed along a path of fresh air flow from an air inlet (2041) of the air intake conduit (204); and said exhaust gas mixing conduit (214) is being cut at a predefined angle with respect to a central axis (214X) of the exhaust gas mixing conduit (214) therein to form the angular fluid outlet (214A).
18. The system (200) as claimed in claim 14, wherein a diameter of each fresh air inlet (214F) of said exhaust gas mixing conduit (214) is 0.1 of an inner diameter (D) of the intake conduit (204),
19. The system (200) as claimed in claim 14, wherein an inner diameter of said exhaust gas mixing conduit (214) is half an inner diameter (D) of the air intake conduit (204), wherein a central axis (214X) of said exhaust gas mixing conduit (214) is transverse to a central axis (204X) of the air intake conduit (204).
20. The system (200) as claimed in claim 14, wherein a distance between a center of angular fluid outlet (214) of said exhaust gas mixing conduit (214) and a central axis (2041X) of an inlet (2041) of the air intake conduit (204) is 0.4 of the inner diameter (D) of the air intake conduit (204).
21. The system (200) as claimed in claim 14, wherein a distance between the central axis (214X) of said exhaust gas mixing conduit (214) and a longitudinal axis (204Y) of the air intake conduit (204) is 0.2 of inner diameter (D) of the air intake conduit (204),
22. The system (200) as claimed in claim 14, a distance between the center of the angular fluid outlet (214A) of said exhaust gas mixing conduit (214) and a central axis (204PX) of an outlet (204P) of the air intake conduit (204) is 3 times the inner diameter (D) of the air intake conduit (204).
23. The system (200) as claimed in claim 14, wherein said exhaust gas mixing conduit (214) includes a mounting bracket (214M) adapted to mount said exhaust gas mixing conduit (214) onto the air intake conduit (204), wherein said mounting bracket (214M) is adapted to facilitate fastening of said exhaust gas mixing conduit (214) with the air intake conduit (204) by using fasteners.
24. A method (500) for controlling exhaust gas emissions from a naturally aspirated engine, said method (500) comprising: oxidizing organic volatile fractions from the engine, by an oxidation catalyst (202) adapted to be coupled to an exhaust manifold (206) of the engine; controlling the exhaust gas flow to an exhaust gas mixing conduit (214) through an exhaust gas recirculation valve (210) by providing at least one signal from an electronic control unit (213) to the exhaust gas recirculation valve (210); mixing the exhaust gases with fresh air in the exhaust gas mixing conduit (214), by inserting the exhaust gas mixing conduit (214) into the air intake conduit (204) and allowing fresh air flow from an inlet (2041) of the air intake conduit (204) to a plurality of fresh air inlets (214F) of the exhaust gas mixing conduit (214); and allowing mixed fluid flow from an angular fluid outlet (214A) of the exhaust gas mixing conduit (114) to the air intake conduit (204), wherein said electronic control unit (213) includes an open loop control logic to provide a regulated flow of exhaust gas recirculation to the engine; and one end (214Af) of said angular fluid outlet (214A) is disposed away from another end (214As) of said angular fluid outlet (214A) of said exhaust gas mixing conduit (214); and at least a portion of the exhaust gas mixing conduit (214) is disposed along a path of fresh air flow from an air inlet (2041) of the air intake conduit (204).
25. The method (500) as claimed in claim 24, wherein said method (500) comprises, selecting the oxidation catalyst (102) from a combination of precious metal, wherein the precious metal comprises platinum (Pt) and palladium (Pd).
26. A system (300) for controlling exhaust gas emissions from a naturally aspirated engine, said system (300) comprising: an air intake venturi conduit (304) having an inlet (304I), a throat portion (304T) and an outlet (304P); an exhaust gas mixing conduit (314) adapted to he provided in fluid communication with the throat portion (304I) of said air intake venturi conduit (304); and an exhaust gas recirculation valve (310) provided in fluid communication with an exhaust manifold (306) and said exhaust gas mixing conduit (314), wherein said exhaust gas recirculation valve (310) is adapted to control the flow of exhaust gas recirculation to said exhaust gas mixing conduit (314) based on at least one signal received from an electronic control unit (313); and said throat portion (304T) of said air intake venturi conduit (304) defines a plurality of exhaust gas receiving portion (304Tg) adapted to facilitate entry of exhaust gas from said exhaust gas mixing conduit (314) to said air intake venturi conduit (304) therein to enable uniform mixing of exhaust gas with fresh air in said air intake venturi conduit (304).
27. The system (300) as claimed in claim 26, wherein said exhaust gas recirculation valve (310) is provided near a cold side or a hot side of an exhaust gas recirculation cooler (315); said exhaust gas recirculation valve (310) is provided in fluid communication with the exhaust manifold (306) through the exhaust gas recirculation cooler (315) and an exhaust gas recirculation pipe (312); and the electronic control unit (313) includes an open loop control logic to provide a regulated flow of exhaust gas recirculation to the engine.
28. The system (300) as claimed in claim 26, wherein said system (300) comprises, an oxidation catalyst (302) coupled to an exhaust manifold (306) of the engine, wherein said oxidation catalyst (302) is selected from a combination of precious metal, wherein the precious metal comprises platinum (Pt) and palladium (Pd).
29. The system (300) as claimed in claim 26, wherein a diameter of each exhaust gas receiving portion (304Tg) of said throat portion (304T) of said air intake venturi conduit (304) is 0.16 of the inner diameter (D) of said air intake venturi conduit (304).
30. The system (300) as claimed in claim 26, wherein an inner diameter of said throat portion (304T) of said air intake venturi conduit (304) is 0.68 of the inner diameter (D) of said air intake venturi conduit (304).
31. The system (300) as claimed in claim 26, wherein a distance between the outlet (304P) and the center of the throat portion (304T) of the air intake venturi conduit (304) is 1.6 times the inner diameter (D) of the air intake venturi conduit (304).
32. The system (300 as claimed in claim 26, wherein the exhaust gas mixing conduit (314) is disposed concentrically onto the air intake venturi conduit (304), where a longitudinal axis of said exhaust gas mixing conduit (314) is coaxial to a longitudinal axis of said air intake venturi conduit (304).
33. The system (300) as claimed in claim 26, wherein a diameter of exhaust gas inlet (3141) of said exhaust gas mixing conduit (314) is half the inner diameter (D) of said air intake venturi conduit (314); and an inner diameter of said exhaust gas mixing conduit (314) is 1.24 times the inner diameter (D) of said air intake venturi conduit (304).
34. A method (600) for controlling exhaust gas emissions from a naturally aspirated engine, said method (600) comprising; oxidizing organic volatile fractions from the engine, by an oxidation catalyst (302) adapted to he coupled to an exhaust manifold (306) of the engine; controlling the exhaust gas flow to an exhaust gas mixing conduit (314) through an exhaust gas recirculation valve (310) by providing at least one signal from an electronic control unit (313) to the exhaust gas recirculation valve (310); and mixing the exhaust gases with fresh air in an air intake venturi conduit (304), by allowing exhaust gas flow from the exhaust gas mixing conduit (214) to a plurality of plurality of exhaust gas receiving portion (304Tg) provided to a throat portion (304T) of the air intake venturi conduit (304); wherein said electronic control unit (213) includes an open loop control logic to provide a regulated flow of exhaust gas recirculation to the engine.
35. The method (600) as claimed in claim 34, wherein said method (600) comprises, selecting the oxidation catalyst (102) from a combination of precious metal, wherein the precious metal comprises platinum (Pt) and palladium (Pd).
36. The method (600) as claimed in claim 34, wherein said method (600) comprises, mounting the exhaust gas mixing conduit (314) concentrically onto the air intake venturi conduit (304).
Description
BRIEF DESCRIPTION OF FIGURES
[0015] This invention is illustrated in the accompanying drawings, throughout which like reference letters indicate corresponding parts in the various figures. The embodiments herein will he better understood from the following description with reference to the drawings, in which:
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF INVENTION
[0030] The embodiments herein and the various features and advantageous details thereof are explained more fully with reference to the non-limiting embodiments that are illustrated in the accompanying drawings and detailed in the following description. Descriptions of well-known components and processing techniques are omitted so as to not unnecessarily obscure the embodiments herein. The examples used herein are intended merely to facilitate an understanding of ways in which the embodiments herein may be practiced and to further enable those of skill in the art to practice the embodiments herein. For example, it should be noted that while some embodiments are explained with respect to systems for controlling emissions of naturally aspirated engine using a catalyst, any other engine may also incorporate the subject matter of the invention with little or no modifications. Accordingly, the examples should not be construed as limiting the scope of the embodiments herein.
[0031] The embodiments herein achieve systems for controlling exhaust gas emissions from a naturally aspirated diesel engine. The embodiments herein achieve emission control systems with optimum field fuel consumption and good vehicle drivability while concurrently minimizing exhaust gas emissions such as nitrous oxide and minimizing the release of undesirable particulate matter. The embodiments herein achieve methods of controlling exhaust gas emission of a naturally aspirated diesel engine by providing a diesel oxidation catalyst in exhaust gas flow path. Referring now to the drawings, and more particularly to
[0032]
[0033] The diesel oxidation catalyst (102) is connected to the exhaust manifold (106).The diesel oxidation catalyst (102) is mounted on or near the exhaust manifold (106) to oxidize organic volatile fractions of exhaust emissions from engine. This oxidation reaction in diesel oxidation catalyst (102) helps to reduce tail pipe hydrocarbons (HC) and carbon mono oxide (CO) emissions as well it reduces particulate matter (PM) due to oxidation of volatile organic fractions. The close coupled diesel oxidation catalyst (102) mounted on exhaust manifold (106) helps for faster activation of diesel oxidation catalyst even at light loads. A combination of precious metals (Platinum (Pt.)+Palladium (Pd.)) in right proportion and loading ensures meeting legal emission demand over the entire useful life of the engine. The normal exhaust gas temperature for naturally aspirated diesel engine is 200-650 degree Celsius. The light-off temperature of diesel oxidation catalyst is around 250 degree Celsius. Palladium (Pd.) gives better thermal stability at high gas temperature operation whereas Platinum (Pt.) helps for faster activation at light load. For this application,a predetermined ratio of Pt:Pd combination is used for controlling the particulate matter (PM) emissions throughout the engine operation
[0034] One end of the air intake conduit (104) is coupled to the air cleaner (105, as shown in
[0035] The exhaust manifold (106) is provided in fluid communication with the exhaust gas recirculation cooler (115) through the exhaust gas recirculation pipe (112). One end of the exhaust manifold (106) is connected to an exhaust side of the engine and the other end of the exhaust manifold (106) is connected to the exhaust gas recirculation pipe (112). The intake manifold (108) is provided in fluid communication with the air cleaner (105) through the air intake conduit (104). One end of the intake manifold (108) is connected to the air intake conduit (104) and the other ends of the intake manifold (108) are connected to an intake side of the engine.
[0036] The exhaust gas recirculation valve (110) is provided in fluid communication with the air intake conduit (104) through the exhaust gas mixing conduit (114). The exhaust gas recirculation valve (110) is provided in fluid communication with the exhaust gas recirculation cooler (115). The exhaust gas recirculation valve (110) provided near a cold side or a hot side of the exhaust gas recirculation cooler (115). The exhaust gas recirculation valve (110) is adapted to control the flow of exhaust gas recirculation to the air intake conduit (104) based on the information received from the electronic control unit (113). The flow control of exhaust gas recirculation is open loop. The exhaust gas recirculation valve (110) opening is based on calibrated exhaust gas recirculation map controlled through electronic control unit (113) to maintain the level of particulates emitted in the exhaust gas within prescribed limits. One end of the exhaust gas recirculation pipe (112) is connected to the exhaust manifold (106) and the other end of the exhaust gas recirculation pipe (112) is connected to the exhaust gas recirculation cooler (115).
[0037] The electronic control unit (113) specifically includes open loop control logic to provide a regulated flow of exhaust gas recirculation into the air intake conduit (104) and injected fuel quantity control depending on engine speed, throttle demand, coolant temperature and atmospheric pressure etc. For engine out emission control, a suitable compression ratio is selected. The bowl shape, injector nozzle, injection pressures, injections parameters and cylinder head swirl are chosen after studying interaction effect with intention to minimize engine out emissions. The volatile organic fractions of engine out emissions are further oxidized in diesel oxidation catalyst (102). Tail pipe emissions under steady state (NRSC), NTE and transient cycle (NRTC) are controlled by combination of engine hardware and with calibration of injection parameters and exhaust gas recirculation rate. Corrections in base map are done based on coolant temperature and ambient pressure. Emission control is achieved with open loop system. In an embodiment a transient calibration is performed on said engine to get optimum NOx/PM trade off throughout the engine map meeting the cycle BSFC targets. Rail pressure, start of main injection, start of pilot injection and the quantity, exhaust gas recirculation rate over entire engine map, and water temperature based corrections in exhaust gas recirculation flow rate are tuned to calibrate the engine.
[0038] The exhaust gas recirculation cooler (115) is provided in fluid communication with the air intake conduit (104) through the exhaust gas recirculation valve (110) and the exhaust gas mixing conduit (114). One end of the exhaust gas recirculation cooler (115) is connected to the exhaust manifold (106) and the other end of the exhaust gas recirculation cooler (115) is coupled to the exhaust gas recirculation valve (110).
[0039]
[0040]
[0041] In an embodiment, the exhaust gas mixing conduit (114) includes an angular exhaust gas outlet (114A, as shown in
[0042]
[0043]
[0044]
[0045] The diesel oxidation catalyst (202) is connected to the exhaust manifold (206). The diesel oxidation catalyst (202) is mounted on or near the exhaust manifold (206) to oxidize organic volatile fractions of exhaust emissions from engine. This oxidation reaction in diesel oxidation catalyst (202) helps to reduce tail pipe hydrocarbons (HC) and carbon mono oxide (CO) emissions as well it reduces particulate matter (PM) due to oxidation of volatile organic fractions. The close coupled diesel oxidation catalyst (202) mounted on exhaust manifold (206) helps for faster activation of diesel oxidation catalyst even at light loads. A combination of precious metals (Platinum (Pt.)+Palladium (Pd.)) in right proportion and loading ensures meeting legal emission demand over the entire useful life of the engine. The normal exhaust gas temperature for naturally aspirated diesel engine is 200-650 degree Celsius. The light-off temperature of diesel oxidation catalyst is around 250 degree Celsius, Palladium (Pd.) gives better thermal stability at high gas temperature operation whereas Platinum (Pt.) helps for faster activation at light load. For this application, a predetermined ratio of Pt:Pd combination is used for controlling the particulate matter (PM) emissions throughout the engine operation.
[0046] One end of the air intake conduit (204) is coupled to the air cleaner (205, as shown in
[0047] The exhaust manifold (206) is provided in fluid communication with the exhaust gas recirculation cooler (215) through the exhaust gas recirculation pipe (212). One end of the exhaust manifold (206) is connected to an exhaust side of the engine and the other end of the exhaust manifold (206) is connected to the exhaust gas recirculation pipe (212). The intake manifold (208) is provided in fluid communication with the air cleaner (205) through the air intake conduit (204). One end of the intake manifold (208) is connected to the air intake conduit (204) and the other ends of the intake manifold (208) are connected to an intake side of the engine.
[0048] The exhaust gas recirculation valve (210) is provided in fluid communication with the air intake conduit (204) through the exhaust gas mixing conduit (214). The exhaust gas recirculation valve (210) is provided in fluid communication with the exhaust gas recirculation cooler (215). The exhaust gas recirculation valve (210) provided near a cold side or a hot side of the exhaust gas recirculation cooler (215). The exhaust gas recirculation valve (210) is adapted to control the flow of exhaust gas recirculation to the air intake conduit (204) based on the information received from the electronic control unit (213). The flow control of exhaust gas recirculation is open loop. The exhaust gas recirculation valve (210) opening is based on calibrated exhaust gas recirculation map controlled through electronic control unit (213) to maintain the level of particulates emitted in the exhaust gas within prescribed limits. One end of the exhaust gas recirculation pipe (212) is connected to the exhaust manifold (206) and the other end of the exhaust gas recirculation pipe (212) is connected to the exhaust gas recirculation cooler (215).
[0049] The electronic control unit (213) specifically includes open loop control logic to provide a regulated flow of exhaust gas recirculation into the air intake conduit (204) and injected fuel quantity control depending on engine speed, throttle demand, coolant temperature and atmospheric pressure etc. For engine out emission control, a suitable compression ratio is selected. The bowl shape, injector nozzle, injection pressures, injections parameters and cylinder head swirl are chosen after studying interaction effect with intention to minimize engine out emissions. The volatile organic fractions of engine out emissions are further oxidized in diesel oxidation catalyst (202). Tail pipe emissions under steady state (NRSC), NTE and transient cycle (NRTC) are controlled by combination of engine hardware and with calibration of injection parameters and exhaust gas recirculation rate. Corrections in base map are done based on coolant temperature and ambient pressure. Emission control is achieved with open loop system. In an embodiment a transient calibration is performed on the engine to get optimum NOx/PM trade off throughout the engine map meeting the cycle BSFC targets. Rail pressure, start of main injection, start of pilot injection and the quantity, exhaust gas recirculation rate over entire engine map, and water temperature based corrections in exhaust gas recirculation flow rate are tuned to calibrate the engine.
[0050] The exhaust gas recirculation cooler (215) is provided in fluid communication with the air intake conduit (204) through the exhaust gas recirculation valve (210) and the exhaust gas mixing conduit (214). One end of the exhaust gas recirculation cooler (215) is connected to the exhaust manifold (206) and the other end of the exhaust gas recirculation cooler (215) is coupled to the exhaust gas recirculation valve (210).
[0051]
[0052] In the second embodiment, the exhaust gas mixing conduit (214) includes an angular fluid outlet (214A, as shown in
[0053] In an embodiment, an inner diameter of the exhaust gas mixing conduit (214) is half the inner diameter (D, as shown in
[0054] The exhaust gas mixing conduit (214) includes a mounting bracket (214M, as shown in
[0055]
[0056]
[0057] The diesel oxidation catalyst (302) is connected to the exhaust manifold (306). The diesel oxidation catalyst (302) is mounted on or near the exhaust manifold (306) to oxidize organic volatile fractions of exhaust emissions from engine. This oxidation reaction in diesel oxidation catalyst (302) helps to reduce tail pipe hydrocarbons (HC) and carbon mono oxide (CO) emissions as well it reduces particulate matter (PM) due to oxidation of volatile organic fractions. The close coupled diesel oxidation catalyst (302) mounted on exhaust manifold (106) helps for faster activation of diesel oxidation catalyst even at light loads. A combination of precious metals (Platinum (Pt.)+Palladium (Pd.)) in right proportion and loading ensures meeting legal emission demand over the entire usefill life of the engine. The normal exhaust gas temperature for naturally aspirated diesel engine is 200-650 degree Celsius. The light-off temperature of diesel oxidation catalyst is around 250 degree Celsius. Palladium (Pd.) gives better thermal stability at high gas temperature operation whereas Platinum (Pt.) helps for faster activation at light load. For this application, a predetermined ratio of Pt:Pd combination is used for controlling the particulate matter (PM) emissions throughout the engine operation.
[0058]
[0059] The exhaust manifold (306) is provided. In fluid communication with the exhaust gas recirculation cooler (315) through the exhaust gas recirculation pipe (312). One end of the exhaust manifold (306) is connected to an exhaust side of the engine and the other end of the exhaust manifold (306) is connected to the exhaust gas recirculation pipe (312). The intake manifold (308) is provided in fluid communication with the air cleaner (305) through the air intake venturi conduit (304). One end of the intake manifold (308) is connected to the air intake venturi conduit (304) and the oilier ends of the intake manifold (308) are connected to an intake side of the engine.
[0060] The exhaust gas recirculation valve (310) is provided in fluid communication with the air intake venturi conduit (304) through the exhaust gas mixing conduit (314). The exhaust gas recirculation valve (310) is provided in fluid communication with the exhaust gas recirculation cooler (315). The exhaust gas recirculation valve (310) provided near a cold side or a hot side of the exhaust gas recirculation cooler (315). The exhaust gas recirculation valve (310) is adapted to control the flow of exhaust gas recirculation to the air intake venturi conduit (304) based on the information received from the electronic control unit (313). The flow control of exhaust gas recirculation is open loop. The exhaust gas recirculation valve (310) opening is based on calibrated exhaust gas recirculation map controlled through electronic control unit (313) to maintain the level of particulates emitted in the exhaust gas within prescribed limits. One end of the exhaust gas recirculation pipe (312) is connected to the exhaust manifold (306) and the other end of the exhaust gas recirculation pipe (312) is connected to the exhaust gas recirculation cooler (315).
[0061] The electronic control unit (313) specifically includes open loop control logic to provide a regulated flow of exhaust gas recirculation into the air intake venturi conduit (304) and injected fuel quantity control depending on engine speed, throttle demand, coolant temperature and atmospheric pressure etc. For engine out emission control, a suitable compression ratio is selected. The bowl shape, injector nozzle, injection pressures, injections parameters and cylinder head swirl are chosen after studying interaction effect with intention to minimize engine out emissions. The volatile organic fractions of engine out emissions are further oxidized in diesel oxidation catalyst (302). Tail pipe emissions under steady state (NRSC), NTE and transient cycle (NRTC) are controlled by combination of engine hardware and with calibration of injection parameters and exhaust gas recirculation rate. Corrections in base map are done based on coolant temperature and ambient pressure. Emission control is achieved with open loop system. In an embodiment a transient calibration is performed on said engine to get optimum NOx/PM trade off throughout the engine map meeting the cycle BSFC targets. Rail pressure, start of main injection, start of pilot injection and the quantity, exhaust gas recirculation rate over entire engine map, and water temperature based corrections in exhaust gas recirculation flow rate are tuned to calibrate the engine.
[0062] The exhaust gas recirculation cooler (315) is provided in fluid communication with the air intake venturi conduit (304) through the exhaust gas recirculation valve (310) and the exhaust gas mixing conduit (314). One end of the exhaust gas recirculation cooler (315) is connected to the exhaust manifold (306) and the other end of the exhaust gas recirculation cooler (115) is coupled to the exhaust gas recirculation valve (310).
[0063] In the third embodiment, the exhaust gas mixing conduit (314) is disposed concentrically onto the air intake venturi conduit (304), where a longitudinal axis of the exhaust gas mixing conduit (314) is coaxial to a longitudinal axis of the air intake venturi conduit (304). The exhaust gas mixing conduit (314) is a tubular member concentrically disposed onto the air intake venturi conduit (314). The exhaust gas mixing conduit (314) includes an exhaust gas inlet (3141, as shown in
[0064]
[0065]
[0066]
[0067] It is also within the scope of this invention to transversely insert the exhaust gas mixing conduit into the throat portion (304T) of the air intake venturi conduit (304).
[0068] The foregoing description of the specific embodiments will so fully reveal the general nature of the embodiments herein that others can, by applying current knowledge, readily modify and/or adapt for various applications such specific embodiments without departing from the generic concept, and, therefore, such adaptations and modifications should and are intended to be comprehended within the meaning and range of equivalents of the disclosed embodiments. It is to be understood that the phraseology or terminology employed herein is for the purpose of description and not of limitation. Therefore, while the embodiments herein have been described in terms of preferred embodiments, those skilled in the art will recognize that the embodiments herein can be practiced with modification within the spirit and scope of the embodiments as described herein.