RECIPROCATION ENGINE EXHAUST SCAVENGING SYSTEM
20180080354 ยท 2018-03-22
Inventors
Cpc classification
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/089
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An exhaust gas scavenging apparatus includes a series of chambers designed to actively lower the exhaust gas back pressure of an internal combustion engine. The device uses the waste energy from the exhaust system in the form of both the Venturi principle and the amplification of a pulse wave effect. The scavenging system uses a series of in-line tubes or a single tube with perforations, passing through multiple sealed chambers using the Venturi effect to lower the pressure in each chamber.
Claims
1. An exhaust gas scavenging apparatus for an internal combustion engine, comprising: a plurality of sealed interconnected chambers, each having at least one outer sidewall and an end wall to define a cavity therein; a plurality of in line tubes that pass through the plurality of sealed chambers, the plurality of in line tubes interconnected along a length of the exhaust gas scavenging apparatus, the plurality of in line tubes configured to receive an exhaust gas flow from an exhaust of the internal combustion engine and communicate the exhaust gas through the plurality of sealed chambers; the plurality of in line tubes each having a sidewall, an inlet and an outlet, the inlet having a larger diameter than the outlet, wherein the sidewall converges inwardly along a length of the tube to define a Venturi constriction proximal to the outlet; wherein the outlet of a preceding in line tube is received within the inlet of a subsequent in line tube.
2. The exhaust gas scavenging apparatus of claim 1, further comprising: a Venturi opening formed between the outlet of the preceding in line tube and the inlet of a subsequent in line tube.
3. The exhaust gas scavenging apparatus of claim 2, wherein the Venturi opening is formed within each of the plurality of sealed chambers.
4. The exhaust gas scavenging apparatus of claim 3, wherein the end walls are sealed around the sidewall of the in line tubes.
5. The exhaust gas scavenging apparatus of claim 4, wherein the end walls of the plurality of sealed chambers are sealed around an intermediate portion of each in line tube.
6. The exhaust gas scavenging apparatus of claim 5, wherein the Venturi opening is located at an intermediate position within the plurality of sealed chambers.
7. An exhaust gas scavenging apparatus for an internal combustion engine, comprising a plurality of sealed interconnected chambers, each having at least one outer sidewall and an end wall to define a cavity therein; an in line tube carried through the plurality of sealed chambers, the in line tube configured to receive an exhaust gas flow from an exhaust of the internal combustion engine and communicate the exhaust gas through the plurality of sealed chambers; a Venturi constriction defined in the in line tube in each of the plurality of sealed interconnected chambers; and a Venturi opening defined at an end of the Venturi constriction, configured to communicate an exhaust gas pulse between the cavity and an interior of the in line tube.
8. The exhaust gas scavenging apparatus of claim 7, wherein the Venturi opening comprises a perforation through a sidewall of the in line tube.
9. The exhaust gas scavenging apparatus of claim 7, wherein the in line tube comprises a plurality of interconnected in line tube segments each having a sidewall, an inlet and an outlet, the inlet having a larger diameter than the outlet, wherein the sidewall converges inwardly along a length of the in line tube to define a Venturi constriction proximal to the outlet.
10. The exhaust gas scavenging apparatus of claim 9, wherein the Venturi opening formed between the outlet of a preceding in line tube and the inlet of a subsequent in line tube.
11. The exhaust gas scavenging apparatus of claim 10, wherein the end walls are sealed around the sidewall of the in line tube.
12. The exhaust gas scavenging apparatus of claim 11, wherein the end walls of the plurality of sealed chambers are sealed around an intermediate portion of the in line tubes.
13. The exhaust gas scavenging apparatus of claim 5, wherein the Venturi opening is located at an intermediate position within the plurality of sealed chambers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0018]
DETAILED DESCRIPTION OF THE INVENTION
[0019] The following detailed description is of the best currently contemplated modes of carrying out exemplary embodiments of the invention. The description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of the invention, since the scope of the invention is best defined by the appended claims.
[0020] Broadly, embodiments of the present invention provide an exhaust system with a series of chambers designed to actively lower the exhaust gas back pressure in an internal combustion engine. The device uses the waste energy from the exhaust system in the form of both the Venturi principle and the amplification of a pulse wave effect. The scavenging system uses a series of in-line tubes or a single tube with perforations, passing through multiple sealed chambers using the Venturi effect to lower the pressure in each chamber.
[0021] Each exhaust pulse, when passing through the device, is able to multiply the intensity of its own trailing low pressure and reduce the pressure ahead of a subsequent exhaust pressure pulse produced by the engine. The leading pulse is coupled to the trailing pulse by the low pressure zone between the two pulses. The inertia from the leading pulse enables it to continue its direction of flow while the trailing pulse is accelerated or drawn into the low pressure zone between the two pulses. The net effect is that every pulse that passes through the system lowers the resistance for the subsequent pulse until equilibrium is achieved. The resulting action of the exhaust scavenging device is to increased engine performance through increased cylinder exhaust scavenging, reduction of exhaust gas back pressure and increased engine volumetric efficiency.
[0022] As seen in reference to
[0023] The in line tubes 1 have an inlet 9 and an outlet 10, wherein the inlet 9 has a larger diameter that than the outlet. The sidewalls of the in line tubes 1 converge inwardly along a length of the tubes 1 from the inlet 9 to the outlet 10 to form a Venturi constriction at a junction between the respective tube elements 1. The in line tubes 1 are interconnected such that the outlet 9 of a preceding in line tube 1 is received within the inlet 10 of a subsequent lined tube 1. A Venturi opening 3 is formed at a gap between the smaller diameter outlet 9 of the preceding tube 1 and the larger diameter inlet 10 of the subsequent in line tube 1. The end walls 8 of each sealed chamber 2 are sealed around a circumference of the sidewall of the in-line tubes 1.
[0024] As seen in reference to
[0025] Each chamber 2, 18 of the device is able to create a drop in pressure 5 as an exhaust blow down pulse 4 passes through and a volume of trapped air contained within the plurality of chambers 2, 18 is drawn out of the sealed chambers 2 via the Venturi inlets 3, 13. By using multiple chambers 2, 18 in sequence, a greater reduction in pressure is achieved. Given that the blow down pulse 4 has both mass and kinetic energy, it will continue to travel down the exhaust system while pulling against the low pressure it has generated behind it. The next blow down pulse 4 generated by the engine will attempt to accelerate into the low pressure area ahead of it, thereby increasing its speed. The increase in speed also increases the Venturi effect on each of the chambers 2, 18 as this secondary pulse passes through causing a greater drop in pressure 5.
[0026] The system of the present invention installs in-line with an exhaust system as a muffler type device, which can work as low as idle speeds on multiple cylinder engines and may have multiple stages of scavenging in a small relatively inexpensive package.
[0027] As seen in reference to
[0028] It should be understood, of course, that the foregoing relates to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth in the following claims.