ENGINE HAVING EGR COOLER
20180274497 ยท 2018-09-27
Inventors
Cpc classification
F02M26/29
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M26/29
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An engine having an exhaust gas recirculation (EGR) cooler includes: a high-pressure EGR cooler; an intake manifold which has an intake inlet which is supplied with intake gas, a high-pressure EGR inlet which is supplied with high-pressure EGR gas, a connecting hole which delivers the supplied high-pressure EGR gas to the high-pressure EGR cooler, and a distribution hole which is supplied with the high-pressure EGR gas cooled by the high-pressure EGR cooler; and a high-pressure EGR valve which is disposed on the intake manifold, and controls a flow of the high-pressure EGR gas delivered from the intake manifold to the high-pressure EGR cooler.
Claims
1. An engine having an exhaust gas recirculation (EGR) cooler, the engine comprising: a high-pressure EGR cooler; an intake manifold comprising: an intake inlet which is supplied with intake gas; a high-pressure EGR inlet which is supplied with high-pressure EGR gas; a connecting hole which delivers the supplied high-pressure EGR gas to the high-pressure EGR cooler; and a distribution hole which is supplied with the high-pressure EGR gas cooled by the high-pressure EGR cooler; and a high-pressure EGR valve which is disposed on the intake manifold and controls a flow of the high-pressure EGR gas delivered from the intake manifold to the high-pressure EGR cooler.
2. The engine of claim 1, further comprising: a distribution pipe which is inserted into the distribution hole and mixes the high-pressure EGR gas with the intake gas.
3. The engine of claim 2, wherein: the distribution pipe has an opening which is opened in a direction in which the intake gas flows.
4. The engine of claim 1, wherein: the high-pressure EGR cooler is made of an aluminum material.
5. The engine of claim 1, further comprising: coolant inlet and outlet pipes which supply and discharge a coolant to and from the high-pressure EGR cooler and the high-pressure EGR valve, respectively.
6. The engine of claim 1, wherein: low-pressure EGR gas is mixed with the intake gas to be delivered to the intake manifold.
7. The engine of claim 6, further comprising: an intake control valve which is disposed in the intake inlet of the intake manifold and controls the amount of intake gas.
8. The engine of claim 1, wherein: the high-pressure EGR cooler is disposed at one side of an upper side of the intake manifold.
9. The engine of claim 8, wherein: the high-pressure EGR valve is disposed at another side of the upper side of the intake manifold.
10. An engine having an EGR cooler, the engine comprising: an intake manifold which is disposed on a cylinder head, the intake manifold having: an EGR inlet which is supplied with high-pressure EGR gas from the cylinder head; a plurality of intake ports which delivers a gas mixture to the engine through the cylinder head; and an intake inlet into which intake gas is introduced; and a high-pressure EGR cooler which is connected directly to the intake manifold, is supplied with the high-pressure EGR gas, which is delivered to the intake manifold, through a connecting hole formed in the intake manifold, and delivers the high-pressure EGR gas to a distribution hole formed in the intake manifold.
11. The engine of claim 10, further comprising: a distribution pipe which is inserted into the distribution hole and mixes the high-pressure EGR gas with the intake gas.
12. The engine of claim 11, wherein: an opening, which is opened in a direction in which fresh air flows, is formed at a tip of the distribution pipe which is inserted into the intake manifold.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0026] Hereinafter, exemplary embodiments of the present disclosure will be described in detail with reference to the accompanying drawings.
[0027] The size and thickness of each component illustrated in the drawings are arbitrarily shown for understanding and ease of description, but the present disclosure is not limited thereto. Thicknesses of several portions and regions are enlarged for clearly describing the above. Parts irrelevant to the description will be omitted to clearly describe the exemplary embodiments of the present disclosure, and the same or similar constituent elements will be designated by the same reference numerals throughout the specification. In the following description, names of constituent elements are classified as a first . . . , a second . . . , and the like so as to discriminate the constituent elements having the same name, and the names are not essentially limited to the order in the description below.
[0028] Referring to
[0029] In addition, the intake manifold 130 has a high-pressure EGR inlet 136 into which high-pressure EGR gas is introduced, and the high-pressure EGR gas is delivered to the high-pressure EGR cooler 150.
[0030] The high-pressure EGR cooler 150 is mounted at an upper side of the intake manifold 130, is supplied with the high-pressure EGR gas through the intake manifold 130, cools the high-pressure EGR gas, and delivers the cooled high-pressure EGR gas back to the intake manifold 130.
[0031] Further, the high-pressure EGR bypass valve 140 is mounted on the high-pressure EGR cooler 150 so as to bypass the high-pressure EGR cooler 150.
[0032] The high-pressure EGR valve 120 is mounted on the intake manifold 130 in order to control a flow of the high-pressure EGR gas supplied through a cylinder head 210 (see
[0033] A connecting hole 180 is formed in the intake manifold 130, and the high-pressure EGR gas is delivered to the high-pressure EGR cooler 150 through the connecting hole 180.
[0034] Referring to
[0035] Because the structures of the fins and the tubes and the U-shaped flow path are technologies applied to a general EGR cooler, a specific description thereof will be omitted. A distribution hole 160 is formed in the intake manifold 130, and the distribution hole 160 is supplied with the high-pressure EGR gas cooled by the high-pressure EGR cooler 150. As described above, the intake manifold 130 is formed integrally with the high-pressure EGR inlet 136 which is supplied with the high-pressure EGR gas, the valve hole 100 in which the high-pressure EGR valve 120 is mounted, the connecting hole 180 which is connected to the high-pressure EGR cooler 150, and the distribution hole 160 which is supplied with the high-pressure EGR gas cooled by the high-pressure EGR cooler 150. The high-pressure EGR cooler 150 is mounted directly on the intake manifold 130. Here, the high-pressure EGR inlet 136 of the intake manifold 130, which is supplied with the high-pressure EGR gas, is connected directly to the cylinder head 210. In the present disclosure, a passageway for the high-pressure EGR gas is formed in the cylinder head 210, and this passageway may be connected to the high-pressure EGR inlet 136 of the intake manifold 130. As described above, the high-pressure EGR valve 120 and the high-pressure EGR cooler 150 are mounted directly on the intake manifold 130, and the intake manifold 130 is supplied with the high-pressure EGR gas directly from the cylinder head 210.
[0036] Since the cooled high-pressure EGR gas is supplied directly to the intake manifold 130, EGR pipes for delivering the high-pressure EGR gas may be removed or minimized, responsiveness in controlling the EGR gas may be improved, a weight and production costs may be reduced, and productivity may be improved.
[0037] In the present disclosure, intake gas, which is delivered to the intake manifold, may be fresh air or a gas mixture of fresh air and low-pressure EGR gas, and an intake control valve 170 may control the amount of intake gas to be introduced through the intake inlet 133.
[0038]
[0039] Referring to
[0040] An opening 300 is formed at a tip portion of the distribution pipe 200 which is inserted into the intake manifold 130. The opening 300 is opened in a direction in which the intake gas flows, and closed in a direction in which the intake gas is introduced.
[0041]
[0042] Referring to
[0043] With this structure, intake efficiency of the supplied high-pressure EGR gas may be improved, and mixing properties of the intake gas and the EGR gas may be improved.
[0044] In addition, the distribution pipe 200 prevents a reverse flow of the EGR gas, thereby preventing contamination of the intake control valve 170.
[0045] While this invention has been described in connection with what is presently considered to be practical example embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.