The accompanying drawings, which are incorporated into, and form a part of, the specification, illustrate one or more embodiments of the present invention and, together with the description, serve to explain the principles of the invention. The drawings are only for the purpose of illustrating one or more preferred embodiments of the invention and are not to be construed as limiting the invention. In the drawings:
The present invention provides an exhaust gas recirculation (“EGR”) mixer for use with long route EGR (“LREGR”) systems and a system comprising the EGR mixer. The present invention provides for a constant EGR flow and a minimum of pressure loss for the EGR flow.
It is understood that EGR applications may include short route (i.e., high pressure) EGR, LREGR, or a combination of both (i.e., dual EGR systems). The present invention is applicable to the LREGR system regardless of the overall EGR system or system combination utilized.
As used in the specification, including the claims, herein, the terms “a”, “an”, and “the” mean one or more.
Generally, the present invention encompasses an EGR mixer for use with an LREGR loop for use in an internal combustion engine. In the LREGR loop, an exhaust gas turbine that is in fluidic connection with the engine's exhaust manifold is put in fluidic connection with the EGR mixer so that the EGR mixer receives exhaust gas. The EGR mixer is also in fluidic connection with a fresh air inlet to receive fresh air for mixing with the exhaust gas. The EGR mixer is also in fluidic connection with the turbocharger compressor so that after a mixture of fresh air and EGR gas is achieved, the mixture is sent to the compressor and on to the intake manifold of the engine.
Turning now to the figures, which describe non-limiting embodiments of the present invention,
Apertures 281-285 and 281′-285′ are disposed in inner wall 208 so that the axis of each aperture is at an angle, such as a substantially 90° angle, to the axis 215 of chamber 214 (shown in
The dimensions of apertures 281-285 and 281′-285′ and other features of EGR mixer 200 vary depending on the size of the turbocharger to which the EGR mixer will be connected. Preferably, apertures 281-285 and 281′-285′ disposed in sets of two, each aperture in a pair having similar angular positions about chamber 214, with an angle of a first aperture in a set measured counterclockwise from a longitudinal axis of exhaust gas inlet 210 and an angle of the second aperture in the set measured clockwise from the longitudinal axis of exhaust gas inlet 210.
Also, the dimensions of the apertures preferably are designed in reference to the diameter of exhaust gas inlet 210. In one embodiment, illustrated in the figures, the relationship is such that the sum of an axial cross-sectional area of each of the apertures (such as the area derived from diameter 272 of aperture 283′ which is representative of the diameters of the other apertures) is substantially equal to an axial cross-sectional area of exhaust gas inlet 210 (said area derived from diameter 274).
The EGR mixer of the present invention may be disposed in the LREGR system in any manner understood in the art to function as described herein. For example, the EGR mixer can be integrated to the turbocharger compressor inlet or fixed/attached to the compressor inlet with a fresh air conduit and an exhaust gas conduit connected to the EGR mixer.
The invention is further illustrated by the following non-limiting example.
An EGR mixer is constructed comprising ten apertures in five sets of two disposed along the housing inner wall that defines, together with the housing outer wall, the inner cavity. The diameter of the EGR mixer's exhaust gas inlet comprises a diameter of approximately 30 mm. The diameters of each aperture in the first set of two apertures furthest from the exhaust gas inlet are approximately 10.42 mm. The diameters of each aperture in the second set of two apertures closer to the exhaust gas inlet are approximately 9.94 mm. The diameters of each aperture in the third set of two apertures are approximately 9.46 mm. The diameters of each aperture in the fourth set of two apertures are approximately 8.98 mm. The diameters of each aperture in the fifth set of two apertures, closest to the exhaust gas inlet, are approximately 8.50 mm. The sum of the areas of an axial cross-section of each of the ten apertures is substantially equal to the area of an axial cross-section of the exhaust gas inlet, which is substantially 706 mm2.
The apertures are oriented so that the apertures in the set of two furthest from the exhaust gas inlet are each at a 156° angle from either side of the longitudinal axis of the exhaust gas inlet (one measured clockwise, the other counterclockwise). The apertures of the next set closer to the exhaust gas inlet are at 122° angles. The apertures of the third set are at 86° angles, the apertures of the fourth set are at 70° angles, and the apertures of the fifth set, closest to the exhaust gas inlet, are at 14° angles. The axial cross sections of the apertures are oriented at approximately 90° from the longitudinal axis of the chamber defined within the housing inner wall.
The inner diameter of the housing outer wall is 78 mm, the inner diameter of the housing inner wall is 60 mm, and the walls are offset by approximately 3 mm in relation to each other so that the space defined by the two walls (i.e., the distance between the two walls) at a point closest to the exhaust gas inlet is larger than the distance between the two walls at a point furthest from the EGR gas inlet.
The EGR mixer performs so that NOx emissions reduction and EGR rate are improved and so that EGR mixing is improved.
The preceding examples can be repeated with similar success by substituting the generically or specifically described components, mechanisms, materials, and/or operating conditions of this invention for those used in the preceding examples.
Although the invention has been described in detail with particular reference to these preferred embodiments, other embodiments can achieve the same results. Variations and modifications of the present invention will be obvious to those skilled in the art and it is intended to cover in the appended claims all such modifications and equivalents. The entire disclosures of all references, applications, patents, and publications cited above are hereby incorporated by reference.