The present invention is a dual-stage fuel injection strategy for compression ignition engines in which 15-40% of the fuel is injected into the combustion chamber no later than about −20 to −30 CA ATDC and as early as IVC. The remaining fuel is then injected in one or more fuel pulses, none of which start before about −20 to −30 CA ATDC. The fuel injected early in the compression stroke forms a lean mixture that burns with low soot and low NOx emissions. The combustion of that fuel serves to increase in-cylinder temperature such that the ignition delay of subsequent fuel injection pulses is short. This mode is utilized when it is predicted that a NOx spike is imminent. Various other alternative methods for reducing NOx spikes are also disclosed such as specialized EGR systems that can provide EGR with low manifold vacuum.
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1. A system for an engine having an intake manifold coupled to an intake conduit and an exhaust manifold coupled to an exhaust conduit, the system comprising:
, the engine having a compression device coupled with a first portion to the engine, and comprising a compressor coupled to into to the intake conduit and a second portion turbine coupled to the exhaust manifold of the engine, the system comprising: into the exhaust conduit and configured to drive the compressor;
a combustion chamber communicating with the intake manifold and with the exhaust manifold;
a soot filter coupled into the exhaust conduit downstream of the turbine;
a fuel injector configured to inject a first pulse of fuel into the combustion chamber during a compression stroke and a second pulse of fuel during an expansion stroke, the compression stroke and the expansion stroke occurring during a first operating condition and in one engine cycle;
a first exhaust gas exhaust-gas recirculation system having a first end coupled to the exhaust manifold upstream of the second portion of the compression device turbine and a second end coupled to the intake manifold downstream of the first portion compression device compressor, said first the first exhaust-gas recirculation system also having a first valve that, which adjusts a first flow amount from the exhaust manifold to the intake manifold; and
a second exhaust gas exhaust-gas recirculation system having a first end coupled downstream of the second portion of the compression device turbine and the soot filter and a second end coupled to the intake manifold, said first the second exhaust-gas recirculation system also having a second valve that, which adjusts a second flow amount from the exhaust conduit to the intake manifold.
7. A system for a diesel engine, comprising:
a turbine coupled to an exhaust side of the engine;
a compressor coupled to into an intake manifold on an intake side of the engine;
a turbine coupled into an exhaust conduit on an exhaust side of the engine and configured to drive the compressor;
a soot filter coupled into the exhaust conduit downstream of the turbine;
a first exhaust gas exhaust-gas recirculation path from the exhaust side of the engine conduit to the an intake side of the engine manifold, the first exhaust gas exhaust-gas recirculation path having an exhaust portion and an intake portion, the exhaust portion coupled to the exhaust side of the engine conduit upstream of the turbine and the intake portion coupled to the intake side of the engine manifold downstream of the compressor; and
a second exhaust gas exhaust-gas recirculation path from the exhaust side of the engine conduit to the intake side of the engine conduit, the second exhaust gas exhaust-gas recirculation path having an exhaust portion and an intake portion, the exhaust portion coupled to the exhaust side of the engine conduit downstream of the turbine and the soot filter and the intake portion coupled to the intake side of the engine manifold;
a fuel injector capable of delivering multiple injections per engine cycle to a combustion chamber of the engine; and
a controller operatively coupled to the fuel injector and configured to:
during a first operating mode, inject a first pulse of fuel into the combustion chamber during a compression stroke and a second pulse of fuel during an expansion stroke, the compression stroke and the expansion stroke occurring in one engine cycle; and
during a second operating mode, draw some exhaust through the second exhaust-gas recirculation path.
5. A system for an internal combustion engine having an intake manifold coupled to an intake conduit and an exhaust manifold coupled to an exhaust conduit, the system comprising:
a first exhaust gas exhaust-gas recirculation path for introducing a first amount of burnt exhaust gas into an the intake manifold of the engine;
a first valve located in said coupled into the first exhaust-gas recirculation path;
a second exhaust gas exhaust-gas recirculation path for introducing a second amount of burnt exhaust gas into an the intake manifold of the engine;
a second valve located in said coupled into the second exhaust-gas recirculation path;
a compression device powered by exhaust flow that, which raises manifold pressure, the compression device comprising a compressor coupled into the intake conduit and a turbine coupled into the exhaust conduit and configured to drive the compressor;
a soot filter coupled into the exhaust conduit downstream of the turbine;
a fuel injector capable of delivering multiple injections per engine cycle to a combustion chamber; and
a controller for operatively coupled to the fuel injector and configured to:
determining determine an engine load engine-load condition associated with decreased NOx emissions, and controlling control both said the first and second valve valves to be open during said the decreased NOx emissions;
estimate an interval where increased nitrogen-oxide emissions are predicted, a start of said interval responsive to fuel demand, an end of said interval responsive to manifold air pressure (MAP); and
during said interval, enact one or more of: injecting a first pulse of fuel into the combustion chamber during a compression stroke and a second pulse of fuel during an expansion stroke, the compression stroke and the expansion stroke occurring in one engine cycle; and drawing some exhaust through the second exhaust-gas recirculation path.
2. The system recited in
0. 3. The system recited in
4. The system recited in claim 3 1, wherein the engine is a diesel engine, and wherein said second end of said second exhaust gas recirculation system is coupled to the intake manifold downstream of the first portion of the compression device.
6. The system of
8. The system recited in
9. The system recited in
10. The system recited in
0. 11. The system recited in
12. The system recited in of
13. The system recited in of
0. 15. A system for a diesel engine, comprising:
a turbine coupled to an exhaust side of the engine;
a compressor coupled to an intake side of the engine;
a first exhaust gas recirculation path from the exhaust side of the engine to the intake side of the engine, the first exhaust gas recirculation path having an exhaust portion and an intake portion, the exhaust portion coupled to the exhaust side of the engine upstream of the turbine and the intake portion coupled to the intake side of the engine downstream of the compressor; and
a second exhaust gas recirculation path from the exhaust side of the engine to the intake side of the engine, the second exhaust gas recirculation path having an exhaust portion and an intake portion, the exhaust portion coupled to the exhaust side of the engine downstream of the turbine and the intake portion coupled to the intake side of the engine downstream of the compressor.
0. 16. The system recited in
0. 17. The system recited in
0. 18. The system recited in
0. 19. The system recited in
0. 20. The system recited in
0. 21. The system recited in
0. 22. The system of claim 1, wherein the second pulse of fuel is injected before +20 crank-angle degrees after top-dead-center (CA ATDC) of the engine cycle.
0. 23. The system of claim 22, wherein the first pulse of fuel begins at or before −10 crank-angle degrees after top-dead-center (CA ATDC) of the engine cycle.
0. 24. The system of claim 23, wherein the first pulse of fuel begins between −90 and −10 crank-angle degrees after top-dead-center (CA ATDC) of the engine cycle.
0. 25. The system of claim 1, wherein the first pulse of fuel comprises between 5 and 25 percent of the fuel injected into the combustion chamber during the engine cycle.
0. 26. The system of claim 1, further comprising a heat exchanger coupled into the second exhaust-gas recirculation system and configured to cool exhaust gas therein.
0. 27. The system of claim 1, further comprising a heat exchanger coupled into the first exhaust-gas recirculation system and configured to cool exhaust gas therein via a coolant liquid.
0. 28. The system of claim 1, further comprising a lean nitrogen-oxide catalyst coupled into the exhaust conduit downstream of the turbine.
0. 29. The system of claim 1, wherein the first operating condition is predictive of increased nitrogen-oxide release from the combustion chamber, and wherein the fuel injector is further configured to inject fuel during a second operating condition predictive of less nitrogen-oxide release from the combustion chamber relative to the first operating condition.
0. 30. The system of claim 29, wherein the increased nitrogen-oxide release comprises a spike in nitrogen-oxide release.
0. 31. The system of claim 29, wherein the first valve is configured to close during the first operating condition, thereby restricting a flow of exhaust gas through the first exhaust-gas recirculation system.
0. 32. The system of claim 29, wherein the second valve is configured to stay at least partly open during the first and second operating conditions, thereby admitting exhaust gas through the second exhaust-gas recirculation system.
0. 33. The system of claim 1 wherein the second end of the second exhaust-gas recirculation system is coupled to the intake manifold upstream of the compressor.
0. 34. The system of claim 5, wherein the controller is further configured to close the first valve during said interval.
0. 35. The system of claim 7, wherein the controller is further configured to restrict exhaust flow through the first exhaust-gas recirculation path during the first or second operating modes.
0. 36. The system of claim 7, wherein during the first operating mode, the first pulse of fuel is injected beginning at or before −10 crank-angle degrees after top-dead-center (CA ATDC) of the engine cycle, and the second pulse of fuel is injected before +20 crank-angle degrees after top-dead-center (CA ATDC) of the engine cycle.
0. 37. The system of claim 7, wherein the first and second operating modes overlap.
0. 38. The system of claim 7, wherein the first and second operating modes are entered upon in response to first and second conditions, respectively, the first and second conditions predictive of increased nitrogen-oxide release from the combustion chamber.
0. 39. The system of claim 38, wherein the increased nitrogen-oxide release comprises a spike in nitrogen-oxide release.
0. 40. The system of claim 38, further comprising injecting fuel into the combustion chamber during a third operating mode, wherein the third operating mode is entered upon in response to a third condition, the third condition predictive of reduced nitrogen-oxide release from the combustion chamber relative to the first and second conditions.
0. 41. The system of claim 40, wherein the first or second condition comprises a fuel-injection demand exceeding a threshold value, and wherein the third condition comprises the fuel-injection demand being less than the threshold value.
0. 42. The system of claim 40, wherein the first or second condition comprises one or more of an air-to-fuel ratio and an exhaust-gas recirculation flow rate falling below a threshold value, and wherein the third condition comprises the one or more of the air-to-fuel ratio and the exhaust-gas recirculation flow rate being above the threshold value.
0. 43. The system of claim 40, wherein the first or second condition comprises one or more of a manifold air pressure exceeding a threshold rate of change and an engine load decreasing, and wherein the third condition comprises one or more of the manifold air pressure not exceeding the threshold rate of change and the engine load failing to decrease.
0. 44. The system of claim 7, wherein the first pulse of fuel forms a homogeneous lean mixture, and the second pulse of fuel forms a stratified mixture.
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This application is This application is a reissue application of U.S. Pat. No. 6,820,599, issued Nov. 23, 2004, entitled “SYSTEM AND METHOD FOR REDUCING NOx EMISSIONS DURING TRANSIENT CONDITIONS IN A DIESEL FUELED VEHICLE WITH EGR”, which is related to Ser. No. 10/248,633, titled, “SYSTEM AND METHOD FOR REDUCING NOx EMISSIONS DURING TRANSIENT CONDITIONS IN A DIESEL FUELED VEHICLE”, now U.S. Pat. No. 6,863,058, assigned to the assignee of the present application, and filed on the same day as the present application. The entire contents of Ser. No. 10/248,633 these applications are hereby incorporated by reference into the present application.
1. Field of the Invention
The present invention relates generally to the control of an internal combustion engine powered by diesel fuel, and more specifically to reducing transient NOx generation produced by such a vehicle.
2. Background of the Invention
Controlling NOx emissions in diesel engines has posed significant challenges to the automotive industry. While emission control devices, such as NOx catalysts, can be used, these devices may be insufficient to meet ever-increasing emission standards.
A method to reduce NOx in diesel engines is the use of exhaust gas recirculation (EGR). EGR reduces NOx emissions during steady, or near steady, engine operation.
However, under transient engine operation in which a vehicle is required to accelerate, EGR can limit the performance of the vehicle by reducing the amount of airflow through the engine. EGR reduces airflow by displacing air in the combustion chamber, heating up the intake charge, and redirecting exhaust gas that would normally go through the turbocharger to the intake manifold. This last effect reduces the energy flow through the turbine, thus restricting the engine's ability to create boost. This phenomenon can be dubbed “the EGR-Boost” tradeoff.
Typically, conventional diesel systems suspend the use of EGR in order to accelerate aggressively. However, the inventors herein have recognized that without EGR, NOx emissions (concentration) increase dramatically. This comes at a time when the air mass flow rates are very high, causing NOx production to spike. Thus, the place where EGR is most needed is the place where it is not used.
The difficulty of this problem can be further appreciated by considering two types of EGR system that could be used with turbo-charged engines: the high pressure system and the low pressure system. The inventors herein have recognized the following disadvantages with each system.
In heavy duty applications, high pressure EGR systems have difficulty providing sufficient EGR flow at high load conditions, especially at low speed, since there is a negative pressure differential between the exhaust and intake manifold. One method to improve EGR flow is to throttle the engine. However, throttling the engine increases engine pumping work and decreases the gas flow to the engine.
Similarly, low pressure EGR systems allow only limited amounts of EGR under light load conditions, especially at low speed, since there is little pressure differential. Further, the low pressure EGR system adds significant purging volume that causes delays when trying to accelerate.
The above disadvantages are overcome by a system for an engine having an intake and exhaust manifold, the engine having a compression device coupled with a first portion coupled to the intake and a second portion coupled to the exhaust manifold of the engine, the system comprising: a first exhaust gas recirculation system having a first end coupled to the exhaust manifold upstream of the second portion of the compression device and a second end coupled to the intake manifold downstream of the first portion compression device, said first system also having a first valve that adjusts a first flow amount from the exhaust manifold to the intake manifold; a second exhaust gas recirculation system having a first end coupled downstream of the second portion of the compression device and a second end coupled to the intake manifold, said first system also having a second valve that adjusts a second flow amount from the exhaust to the intake manifold.
By providing multiple EGR loops, it is possible to reduce NOx emissions during high engine load, even in the presence of a compression device such as a supercharger. In other words, by using both a two EGR loops, one can obtain the benefits of each of the high pressure and low pressure EGR systems and thereby minimize the disadvantages of each system since the two systems complement each other.
Another advantage of the present invention is the ability to reduce transient NOx spikes.
Yet another advantage of the present invention is the ability of multiple loop EGR systems to enable the use of EGR throughout the entire engine map without using a throttle.
The advantages described herein will be more fully understood by reading an example of an embodiment in which the invention is used to advantage, referred to herein as the Description of the Preferred Embodiment, with reference to the drawings wherein:
During the a typical urban driving cycle, the time in which the engine is operated under conditions that produce these spikes accounts for only about 4-5% of the total cycle time. However, approximately 30-45% of the NOx produced during the cycle comes from these NOx spikes, as illustrated in
The present invention provides several methods to overcome these NOx spikes.
Exhaust air/fuel ratio sensors can also be used in the present invention. For example, either a 2-state EGO sensor or a linear UEGO sensor can be used. Either of these can be placed in the exhaust manifold 48, or downstream of devices 19a, 22, or 20.
Intake manifold 44 communicates with throttle body 64 via throttle plate 66. In one embodiment, an electronically controlled throttle can be used. In this case, the throttle can be used to throttle airflow to help drive in more EGR. In one embodiment, the throttle is electronically controlled to periodically, or continuously, maintain a specified vacuum level in manifold 44. Intake manifold 44 is also shown having fuel injector 68 coupled thereto for delivering fuel in proportion to the pulse width of signal (fpw) from controller 12. This configuration is one potential way to get a premixed mixture for dual-stage combustion, as is known in the art. Fuel is delivered to fuel injector 68 by a conventional fuel system (not shown) including a fuel tank, fuel pump, and fuel rail (not shown). In the case of direct injection engines, as shown in
Controller 12 receives various signals from sensors coupled to engine 10, in addition to those signals previously discussed, including: measurements of inducted mass air flow (MAF) from mass air flow sensor 110 coupled to the air filter [A on
Exhaust gas is delivered to intake manifold 44 by EGR tube 202 communicating with exhaust manifold 48. EGR valve assembly 200 is located in EGR tube 202. Stated another way, exhaust gas travels from exhaust manifold 44 first through valve assembly 200, then to intake manifold 44. EGR valve assembly 200 can then be said to be located upstream the intake manifold. There is also optionally an EGR cooler [Y in
Pressure sensor 205 provides a measurement of manifold pressure (MAP) to controller 12. EGR valve assembly 200 has a valve position (not shown) for controlling a variable area restriction in EGR tube 202, which thereby controls EGR flow. EGR valve assembly 200 can either minimally restrict EGR flow through tube 202 or completely restrict EGR flow through tube 202. Vacuum regulator 224 is coupled to EGR valve assembly 200. Vacuum regulator 224 receives actuation signal (226) from controller 12 for controlling valve position of EGR valve assembly 200. In a preferred embodiment, EGR valve assembly 200 is a vacuum actuated valve. However, any type of flow control valve may be used such as, for example, an electrical solenoid powered valve or a stepper motor powered valve.
Also, particulate filter 20 and lean NOx catalyst 22 are shown coupled in the exhaust path downstream of compression device 19. Compression device 19 can be a turbocharger or any other such device. Device 19 has a turbine 19a coupled in the exhaust manifold 48 and a compressor 19b coupled in the intake manifold 44 via an intercooler [X in
Controls methods for transient NOx reduction are now described with reference to
Referring now to
Next, in step 314, the routine calculates the manifold pressure (MAP) and the rate of change of manifold pressure (ΔMAP). In this particular embodiment, the change in manifold pressure is approximated as the difference in manifold pressure between the current sample and the previous sample. In one example, manifold pressure is measured from sensor 205. Note that the desired EGR amount and the EGR valve position for the common high pressure loop will depend on the mode of operation chosen from the routine that determines whether a NOx spike is predicted/detected/occurring.
Next, in step 320, the routine determines whether a NOx spike is predicted/determined as described in more detail below with particular reference to
When the answer to step 320 is yes, the routine continues to step 324 where an alternate mode is performed to reduce NOx generation. The first step to all of the alternative NOx reduction strategies is to shut off the flow of EGR through the conventional high pressure EGR loop in order to quickly increase engine boost by maximizing the exhaust flow through the turbine. In this example, a multiple injection strategy is used to provide the desired fuel demand in such a way that a substantial portion of the fuel burns under fuel lean conditions, thus reducing NOx emissions. Alternatively, other multiple injection strategies could also be used to reduce NOx emissions. In another example, the high pressure EGR loop is shut off to maximize exhaust flow through the turbine and a low pressure EGR loop is used to deliver EGR to the intake air. Thus, according to the present invention, it is possible to reduce engine NOx generation while at the same time allowing engine boosting.
Referring now to
However, according to the present invention, if multiple EGR loops are utilized, at least modest levels of EGR can be scheduled even at high fuel demands thereby allowing for decreased NOx emissions, as shown in
Referring now to
If spike_flg=0 during step 500, then a NOx spike was not in progress and the routine determines whether a NOx spike starting condition is present. Various parameters can be used to make this determination such as, for example, whether the combustion air/fuel ratio is less than about 17:1, whether the desired fuel amount is greater than a fuel threshold (MF threshold), and/or whether the EGR amount is lower than an EGR threshold. (One could also potentially use concentration of O2, NO, CO2, soot, or other relevant specie in the exhaust, engine torque, pedal position, EGR valve position. However, the preferred method based on the data analyzed is described below with reference to
If spike_flg was equal to 1 during step 500, a NOx spike was already in progress and, in step 514, the routine determines whether a NOx ending condition is present. There are various methods for determining whether the NOx spike ending condition is present such as, for example, whether a change in manifold pressure is greater than a threshold, whether this change in pressure is present for a predetermined time, whether desired fuel amount is less than the threshold (including a small margin x), and/or whether engine load is decreasing. As described below, this determination of a NOx spike is used to dynamically select between operating modes in order to reduce tailpipe NOx emissions. Still other conditions that can be used include a rate of change of desired torque, required fuel injection amounts, pedal position, air/fuel ratio (oxygen/fuel ratio), or species such as O2, CO2 in the intake or exhaust. When the answer to step 514 is yes, the routine continues to step 516 to set the spike flag to zero and ends the routine. If the answer to step 514 is no, the spike flag remains at 1 and the routine ends.
Note that the methods described above allow for anticipation of a NOx spike, therefore giving a priori information that can be used to preset engine conditions to avoid the NOx spike generation.
As explained in
As stated earlier, NOx spikes occur because EGR and boost appear to be mutually exclusive when a typical high pressure EGR loop is used. The main reason for these NOx spikes during aggressive acceleration comes from the engine's need for air, which translates to a need for boost. When high pressure EGR is used, the flow of EGR robs the turbine used to drive the intake compressor of the energy it needs to create that boost. Consequently, high pressure EGR must be shut off during acceleration, which causes NOx emissions to increase dramatically. Thus, the onset of NOx spikes is dictated by the point at which it is decided that the engine can no longer operate without boost.
Note that a 17:1 AFR without boost or EGR was used in this case as the point at which the engine could no longer be operated without boost. This was done because, typically at that point, diesel combustion efficiency drops of due to a lack of available oxygen. However, the choice of air/fuel ratio used to decide this break point involves a tradeoff between engine performance during acceleration and NOx emissions. The quicker high pressure EGR is shut off, the shorter the turbocharger lag is and the quicker the engine accelerates, but at the expense of NOx emissions. The longer the EGR is used, the lower the NOx is, but at the cost of longer turbocharger lag and poorer engine performance. Further analysis shows that the end of a NOx spike is marked by a drop in boost pressure, which is an indication that the load has decreased significantly.
One aspect of the present invention is based on using the information described above to predict the start and end of a NOx spike using readily available engine parameters. This information leads to the following criterion for the particular engine selected:
A NOx spike begins when the fuel demand (MFDES) increases above a value at which the air requirement of the engine exceeds what can be achieved without boost (based on a minimum air/fuel ratio of, for example, 17:1). This will signify the point where either additional or alternative steps should be taken to enable simultaneous NOx control and boosting.
When a NOx spike is in progress, the signal that the spike is over should not be sought until the fuel demand drops below a value that is equal to or somewhat less (2-3 mg less) than that used to signify the start of the NOx spike. Using a value somewhat less than that used in the previous step may help prevent choppy engine operation caused by jumping in and out of modes of operation too frequently.
A NOx spike ends when the manifold air pressure (boost) has decreased over the last 1-2 seconds. This signifies a drop in the airflow and engine load.
Note that this data is merely an example of the criteria that can be selected for use in the flow charts and routines described above herein with particular reference to
The strategy described herein could facilitate drastic reductions in NOx during transient cycles. The extent of the reduction would depend on the alternative mode of operation used to reduce NOx emissions without the use of high pressure EGR. Some possible alternate modes of operation are:
1. To immediately remove most or all EGR and use dual-stage combustion. Using this method and assuming that a 70% NOx reduction would be obtained during that time (as projected from combustion simulations), it is projected that a 33% reduction in FTP cycle NOx emissions would result. However, it may be possible to achieve even further reduction by combining the dual stage combustion and corresponding control routines with EGR.
2. To remove EGR and use other split injection strategies aimed at reducing NOx emissions. Split main injection has been shown in the SAE literature (see SAE 960633).
3. Continue using EGR at high to moderate levels and use Electric Assisted Boosting to increase intake pressure. No projections of the NOx benefit for this method have been developed. (Note, however, that this approach has a potential drawback in that it will reduce and ultimately eliminate the EGR driving force.)
4. Have both low pressure and high pressure EGR loops on the engine. Close the high pressure EGR loop during NOx spikes and use the low pressure EGR loop to provide a base level of EGR. That level may be smaller than that used during steady state in order to avoid displacing too much air. (Even a small level of EGR would reduce NOx better during acceleration since the high pressure EGR valve would have to be shut anyway.)
Next, a detailed explanation of the dual stage combustion is described. This is a method for diesel combustion in which combustion occurs in two separate stages, lean pre-mixed combustion and normal diesel combustion. Lean pre-mixed combustion is accomplished by introducing a significant portion of the fuel either into the combustion chamber very early in the compression stroke through one or a series of pilot injections or into the intake manifold during induction. The early introduction of this fuel gives it enough time to mix with the air and form a lean (and potentially homogeneous) mixture that ignites due to the increased temperature during compression, potentially in HCCl-like combustion. The remainder of the fuel is injected in any number of injection events to produce standard diesel combustion. This method of combustion obtains low NOx emissions with very little smoke penalty.
Because its formation rates increase with temperature, NOx emissions are primarily produced in an internal combustion engine in combustion regions where the local equivalence ratio is close to stoichiometric. Soot is formed in high temperature rich regions of the combustion chamber. Diesel combustion is a process in which fuel progresses through both of these regions, despite the fact that the overall equivalence ratio is usually fairly lean. Most of the fuel injected in a diesel engine is initially broken down under locally rich equivalence ratios either in the premixed burn stage or in the fuel-rich premixed flame. These regions mainly produce CO, UHC, and soot precursors. That broken down fuel ultimately proceeds through a thin diffusion flame that exists at or near stoichiometric equivalence ratios, where complete products are produced and full heat release is achieved and NOx is produced (see SAE 970873).
The present invention includes a combustion strategy designed to burn significant portion of the fuel under lean conditions, thus avoiding both NOx and soot production.
This concept was tested using simulations of the closed cycle portion of a diesel engine (IVC to EVO). Simulations were conducted for a single engine operating condition: 1500 rpm, 5 bar BMEP (˜30 mg/stroke). Thirteen different injection schemes were assessed. The baseline case was a single injection pulse delivering 100% of the fuel starting at +3.2 CA ATDC. The basic injection parameters defining this baseline case and the other twelve cases are shown in Table 1. [t1]
TABLE 1
Simulation Injection Strategies
Case
1st Inj. Qty.
Dwell SOI
Main
Dwell
Number
(% of total)
(CA)
(CA ATDC)
(CA)
1
0
N/A
+3.2
N/A
2
7
10
+3.2
10
3
7
20
+3.2
20
4
7
40
+3.2
40
5
7
90
+3.2
90
6
21
10
+3.2
10
7
21
20
+3.2
20
8
21
40
+3.2
40
9
21
90
+3.2
90
10
49
10
+3.2
10
11
49
20
+3.2
20
12
49
40
+3.2
40
13
49
90
+3.2
90
The simulations suggest that two major mechanisms contribute to the decrease in NOx emissions using pre-injection. First, the fuel that is pre-injected has time to mix with air and create a lean mixture before combustion. This can be seen in
The second factor contributing to NOx reduction is a decrease in the ignition delay caused by the addition of heat in the combustion chamber. The amount of fuel injected during ignition delay has a strong correlation with the amount of NOx produced by the engine.
This method of NOx reduction has an added benefit to noise, much like pilot injection.
The Figure shows that noise is reduced significantly from a single injection case when part of the fuel is injected early in the compression stroke. The Figure also shows that this noise reduction is comparable to that of what should be representative of a conventional pilot injection.
The following Figures and description relate to various types of EGR systems that can be used to solve the EGR-boost problem described above. Some of these are alternative EGR systems in which all or part of the EGR flows from the exhaust line after a diesel particulate filter (low pressure) to either a point before the compressor (low pressure) or to the intake manifold (high pressure). Since the EGR gases flowing through these lines would still flow through the turbine, this EGR would not diminish the performance of the turbine. Thus, the turbine would be able to spin up quickly even with modest or possibly high levels of EGR. For cases in which only some of the EGR flows through this low pressure loop, a second EGR loop, one that is identical to a conventional EGR loop, is used. In this case, only the low pressure loop is used when trying to accelerate.
A typical EGR system takes exhaust gas from the exhaust manifold (5) and plumbs it back into the intake manifold (4). Such a system is shown in
Possible EGR Systems given the above criteria:
EGR System #1: 5 to 4 (see
As stated, this is the basic EGR system, described in
EGR System #2: 7 to 4 (see
In this system, EGR is brought from a point after the diesel particulate filter to the intake manifold using an air pump (not shown). An additional cooler (not shown) is placed somewhere in the EGR loop in order to cool the EGR before entering the combustion chamber. The flow rate of EGR is controlled using a valve. Such a system is also shown in
This system provides minimal dirty EGR (better durability), minimal bulk flow pumping losses (intake throttle can be eliminated if desired), all exhaust gas flows through the turbine (improved turbo response), low filling/purging volume (quick response), EGR can be used during transients—NOx control, and a simpler control system (if not using ITH to control EGR). However, all of the EGR is pumped (high pressure, high mass flow), all exhaust flows through DPF—increased back pressure, and there is a longer EGR plumbing loop.
EGR System #3: 7 to 1 (see
In this system, EGR is brought from a point after the diesel particulate filter to a point before the compressor using an air pump or a venturi (not shown). A cooler (Ya) is also placed in the EGR loop in order to cool the EGR before entering the compressor. The flow rate of EGR is controlled using a valve such as valve 200. An optional pump Za is also shown. An optional intake throttle 117 is also shown.
Such a system gives minimal dirty EGR (better durability), minimal bulk flow pumping losses—(intake throttle can be eliminated), all exhaust gas flows through the turbine (improved turbo response), potential to use a venturi to pump EGR, EGR during transient NOx control, and a potentially simpler control system (if throttle eliminated). Further, there is potential for better EGR distribution/mixing. However, there may be a need for a pump, all exhaust flows through DPF increased back pressure, there is a longer EGR plumbing loop, and there is an increased filling/purging volume—degraded transient response.
EGR System #4: 5 to 4 & 7 to 4 (see
In this system, shown in
This system allows partially free EGR, minimal bulk flow pumping losses (potential to eliminate intake throttle), EGR during transient—NOx control, more exhaust flow through turbine during normal operation—less turbo lag, all exhaust flows through the turbine during transient—better response, and low filling/purging volume (quick response). However, there may be durability issues. Further, this system may require pumping EGR (high pressure, low mass flow), added cost, longer EGR plumbing, coordinated control between the loops, and slightly higher flow through DPF (increased back pressure).
EGR System #5: 5 to 4 & 7 to 1 (see
This system includes two EGR loops. One EGR loop connects the exhaust manifold to the intake manifold, like those used currently. The other takes exhaust gases from a point after the DPF and pumps it to a point before the compressor using either an air pump or a venturi. When the vehicle is not accelerating (no NOx spike predicted), the first EGR loop is used as much as is needed, and the second loop is used to supplement the EGR flow if required, thus avoiding the use of the intake throttle. When the vehicle is trying to accelerate (or a NOx spike is predicted), the first EGR valve is shut to maximize the exhaust flow through the turbine, thus improving transient response of the engine. The second loop is used to supply a base amount of EGR to the engine to control NOx emissions. Optional Coolers (Y) cab be present in both EGR loops to reduce EGR temperature. Further, optional pumps (Z) could also be used.
This system allows partially free EGR, minimal bulk flow pumping losses (possibility to eliminate intake throttle), EGR during transient—NOx control, more exhaust flows through turbine during normal operation—less turbo lag, all exhaust flows through the turbine during transient—better response, low filling/purging volume for most EGR flow (quick response), some of EGR, most during transient operation, will be well mixed, and likely to use a venturi instead of an air pump (low pressure, low mass flow). However, in additional to durability, there may be added cost due to the dual loops, longer EGR plumbing, coordinated control, and slightly higher flow through DPF (increased back pressure).
The inventors here have conducted tests both on an engine dynamometer and in a vehicle and have found a benefit to using this loop to NOx (˜10-12% reduction) without sacrificing engine performance or fuel economy. In fact, there may even be a fuel economy benefit to using this system over the convention system, system #1), depending on the engine and system configuration.
EGR System #6: 7 to 2 (see
This system has essentially the same benefits and disadvantages as EGR system #3, with only two exceptions. First, the pressure just after the compressor is slightly higher than in the intake manifold, therefore flowing EGR in this loop would be more difficult. Second, using the intercooler to cool the EGR with the intake air would introduce a potential cost save since it would eliminate the need for an EGR cooler. An optional pump Zc, optional intercooler Yc, are shown routing exhaust gas via line 202c upstream of the device 19b. A vacuum regulator 224c is also shown providing an EGR pressure signal (EGRPc), along with an EGR valve 200c. Note that System #6 can be considered as a possible variation of the low to high pressure EGR loop configuration of system #2.
(CR System #7: 5 to 4 & 7 to 2 (see
This system has essentially the same benefits and disadvantages as EGR system #5, with only two exceptions. First, the pressure just after the compressor is slightly higher than in the intake manifold, therefore flowing EGR in this loop would be more difficult. Second, using the intercooler to cool the EGR with the intake air would introduce a potential cost save since it would eliminate the need for an EGR cooler. Note that System #7 can be considered as a possible variation of system #4.
Finally, note that systems 4, 5, and 7 are especially suited for use with the strategy described above herein. Thus, according to the present invention, it is possible to use a dual loop EGR system to reduce NOx. In one example, the two EGR loops are each adjusted via valves to control the amount of EGR based on engine operating conditions. In some conditions, both EGR loops are used, and in other conditions, only one of the loops it utilized. Further still, in other example, neither loop is used.
In one specific example described above, at least two operating modes are utilized. A first mode is used where two EGR loops are utilized (both a high pressure loop and a low pressure loop). In this case, the lop pressure loop is used to put in a low level of EGR while the high pressure loops is used to control EGR amount in total (or airflow). A second mode uses only the low pressure EGR loop to maximize the mass flow through the turbine.
In this way, it is possible to minimize NOx emissions, even during tip-in NOx spikes.
This concludes the detailed description. As noted above herein, there are various alterations that can be made to the present invention.
Kurtz, Eric Matthew, Vanderslice, John H.
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