This invention relates to control of exhaust emissions from internal combustion engines.
The catalytic converter has been recognized and adopted as an effective device for oxidizing and thereby controlling the emission of exhaust gas hydrocarbons and carbon monoxide. Various exhaust system configurations involving use of single and multiple catalytic converters have been proposed for V-type internal combustion engines. In one such proposal, the left and right exhaust manifolds are connected by left and right exhaust pipes respectively to a single main catalytic converter: during engine warm-up, a valve in one of the exhaust pipes diverts exhaust gases from its associated manifold through a crossover passage to the other manifold for flow through the other exhaust pipe and eventual oxidation in the main converter while an auxiliary catalytic converter in the other exhaust pipe initiates early oxidation; during normal operation, the valve is open to allow exhaust gases to flow from each manifold directly to the main converter. The auxiliary converter thus receives all of the exhaust gases during engine warm-up, and receives only half of the exhaust gases during normal operation. The auxiliary converter is accordingly preserved against rapid deterioration.
In some applications, however, additional air must be mixed with the exhaust gases to provide the most effective oxidation reaction. In such applications, it has been discovered that the auxiliary converter may deteriorate rapidly if additional air is mixed with the exhaust gases it receives during normal operation.
The usual method for mixing air with exhaust gases has been to deliver the air to the engine exhaust ports near the inlet legs of the exhaust manifolds. However, it has been found that exhaust gases and air may be adequately mixed for oxidation in a catalytic converter by delivering the air to a single point in the exhaust manifold or exhaust pipe ahead of the converter, U.S. Pat. No. 3,662,540 illustrating one example of that approach.
This invention utilizes the advantages of the single point air delivery approach to control exhaust emissions in a V-type internal combustion engine having main and auxiliary converters, as in the proposal described above, in a manner which preserves the auxiliary converter against rapid deterioration. In this invention, air is delivered to one -- or if desired several -- locations in the exhaust manifold associated with the control valve so that, when the control valve is closed during engine warm-up, air is delivered with the exhaust gases flowing through the auxiliary converter to the main converter and, when the control valve is open for normal operation, air is delivered with the exhaust gases flowing directly to the main converter without passing through the auxiliary converter. Accordingly, oxidation in the auxiliary converter is limited during normal operation to preclude rapid deterioration of the auxiliary converter.
The details as well as other features and advantages of this invention are set forth in the following detailed description of the invention and in the drawing which schematically shows a top plan view of an engine employing this invention.
Referring to the drawing, an internal combustion engine 10 has combustion chambers arranged in left- and right-hand banks 12 and 14. A left-hand exhaust manifold or plenum 16 receives exhaust gases from left bank 12 and has an exhaust pipe 18 which provides a passage to a main catalytic converter 20. A right-hand exhaust manifold or plenum 22 receives exhaust gases from right bank 14 and has an exhaust pipe 24 which provides a passage to main converter 20.
An auxiliary catalytic converter 26 is disposed in left exhaust pipe 18, and a control valve 28 is disposed in right exhaust pipe 24.
An exhaust crossover passage 30 extends from the middle leg 32 of right exhaust manifold 22 to the middle leg 34 of left exhaust manifold 16. Crossover passage 30 extends beneath and in heat-exchange relation with the induction passage bores 36 to heat the air-fuel mixture passing therethrough.
An engine driven air pump 38 delivers additional air through a pipe 40 to another leg 42 of right exhaust manifold 22. It is emphasized that pump 38 does not deliver air directly to left exhaust manifold 16. In addition, it seems preferable that air pump 38 not deliver air directly to the middle leg 32 of right exhaust manifold 22 (the leg which is connected directly to crossover passage 30), although air may be delivered to the forward leg 44 of right exhaust manifold 22 if such seems desirable.
In operation, control valve 28 is closed during engine warm-up and exhaust gases received in right exhaust manifold 22, together with the additional air received through pipe 40, are directed through crossover passage 30 into left exhaust manifold 16. All the exhaust gases and the air then flow though auxiliary catalytic converter 26, which initiates oxidation of exhaust gas hydrocarbons and carbon monoxide, and on through exhaust pipe 18 to main converter 20, which promotes further oxidation.
Control valve 28 is open during normal operation to permit exhaust gases received in right exhaust manifold 22, together with the additional air received through pipe 40, to pass directly through right exhaust pipe 24 to main converter 20 while exhaust gases received in left exhaust manifold 16 pass through auxiliary converter 26 and left exhaust pipe 18 to main converter 20. The absence of substantial additional air in the exhaust gases passing through auxiliary converter 26 limits oxidation in auxiliary converter 26 and thus preserves auxiliary converter 26 against rapid deterioration.