INTAKE SYSTEM OF ENGINE HAVING INTAKE DUCT
20170022885 ยท 2017-01-26
Assignee
Inventors
- Joon Myung Lee (Seoul, KR)
- Sung Soo Kim (Gimpo-si, KR)
- Kyoung Ik Jang (Yongin-si, KR)
- Jeonjin Park (Suwon-si, KR)
Cpc classification
F02M35/10157
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B29/0443
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10327
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B29/0412
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B29/0462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An intake system of an engine having an intake duct includes an intake line disposed to transmit a gas including ambient air to a combustion chamber of an engine. An intake duct formed in a preset section of the intake line and configured to transmit the gas to the combustion chamber. The intake duct is formed of metal, and a coolant jacket formed in a preset region of an outer surface of the intake duct and disposed to cool a gas flowing in the intake duct. A coolant inlet for supplying a coolant is formed at one side of the coolant jacket and a coolant outlet for discharging the coolant is formed at another side of the coolant jacket.
Claims
1. An intake system of an engine having an intake duct, the intake system comprising: an intake line disposed to transmit a gas to a combustion chamber of an engine; an intake duct formed in a preset section of the intake line and configured to transmit the gas to the combustion chamber, wherein the intake duct is formed of metal; and a coolant jacket formed in a preset region of an outer surface of the intake duct and disposed to cool a gas flowing in the intake duct, wherein a coolant inlet to which a coolant is supplied is formed at a first side of the coolant jacket, and a coolant outlet from which the coolant is discharged is formed at a second side of the coolant jacket.
2. The intake system of claim 1, further comprising: a turbocharger disposed to compress the gas to a preset pressure provided at an upper stream side of the intake duct.
3. The intake system of claim 1, further comprising: a coolant jacket cover formed to be spaced apart from the outer surface of the intake duct, wherein a coolant jacket is formed between the coolant jacket cover and the outer surface of the intake duct.
4. The intake system of claim 3, wherein the coolant jacket cover is integrally formed with the intake duct.
5. The intake system of claim 3, wherein the coolant jacket cover is formed along an outer circumferential surface of the intake duct, and the coolant jacket is formed between an inner circumferential surface of the coolant jacket cover and the outer circumferential surface of the intake duct.
6. The intake system of claim 3, wherein the coolant inlet receives a coolant from a cooling element of an engine.
7. The intake system of claim 6, wherein the cooling element is one of a heater and a radiator.
8. The intake system of claim 3, wherein the coolant inlet receives the coolant from a cylinder head or a cylinder block of the engine.
9. The intake system of claim 3, wherein the coolant jacket cover is unitarily formed with the intake duct.
10. The intake system of claim 1, wherein a partition is formed to extend from the first side to the second side on an inner surface of the intake duct, and the partition is integrally formed with the intake duct.
11. The intake system of claim 10, wherein the partition extends from the inner surface of the intake duct corresponding to a portion where the coolant jacket is formed, to an inner surface opposite thereto.
12. The intake system of claim 1, further comprising an intercooler disposed at a lower stream side of the intake duct to cool the gas.
13. An intake system of an engine having an intake duct, the intake system comprising: an intake line disposed to transmit a gas; a turbocharger disposed to compress the gas to have preset pressure; an intake duct formed in a preset section of the intake line at a lower stream side of the turbocharger and configured to transmit the gas to a combustion chamber, wherein the intake duct is formed of a metal; a coolant jacket formed in a preset region of an outer surface of the intake duct and having a coolant inlet, to which a coolant is received, formed at a first side thereof, and a coolant outlet, from which a coolant is discharged, formed at a second side thereof; and an intercooler disposed at a lower stream side of the intake duct to cool the gas.
14. The intake system of claim 13, wherein the intake duct is fixed to an intake manifold, a cylinder block, or a cylinder head through a mounting bracket.
Description
DRAWINGS
[0027] In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
[0034] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0035]
[0036] Referring to
[0037] Ambient air is supplied to a combustion chamber of the engine 100 through the intake line 110, the compressor 144 of the turbocharger 140, the intake duct 112, the intercooler 130, and the intake manifold 115, and an exhaust gas burned in the combustion chamber passes through the exhaust manifold 125, the turbine 142, the exhaust line 120, and the catalyst unit 122.
[0038] The turbine 142 of the turbocharger 140 is operated by a discharge gas to rotate the compressor 144 at a high speed, and the compressor 144 compresses the gas at a high temperature and high pressure and supplies the compressed gas to the combustion chamber of the engine 100.
[0039] A section set between the compressor 144 and the intercooler 130 in the intake line 110 is configured as an intake duct 112, and a coolant jacket cover 160 is formed on a portion of an outer surface of the intake duct 112.
[0040] A coolant jacket 310 (
[0041] A coolant flowing in the coolant jacket 310 of the intake duct 112 primarily cools a gas having a high temperature and high pressure and flowing in the intake duct 112, and the intercooler 130 secondarily cools a gas having a high temperature and high pressure and flowing in the intake line 110.
[0042] In one form of the present disclosure, the intake duct 112 has a structure fixed to the engine 100 (a cylinder block or a cylinder head) or the intake manifold 115 through the mounting bracket 114. The structure of the intake duct 112 will be described in detail with reference to
[0043]
[0044] Referring to
[0045] Here, the flexible connector 260 may be formed of an elastic material to reduce vibration and noise, and the intake duct 112 may be formed of a metal such as aluminum to improve durability and cooling efficiency.
[0046] The coolant jacket cover 160 is disposed in the section set in a length direction on an outer surface of the intake duct 112. The coolant inlet 210 is disposed at one end portion of the coolant jacket cover 160, and the coolant outlet 220 is formed at the other end portion of the coolant jacket cover 160.
[0047] The coolant inlet 210 may be connected to a heater 230 of a vehicle to receive a coolant from the heater, and the coolant outlet 220 may be connected to an intake side of a coolant pump 250
[0048] In addition, the coolant inlet may receive a coolant from the engine, that is, the cylinder head or the cylinder block, and may receive a coolant from a coolant control valve (or a thermostat).
[0049] In one form of the present disclosure, an entrance side of the intake duct 112 may be connected to the compressor 144 of the turbocharger 140, and an exit side of the intake duct 112 may be connected to the intercooler 130. The intake duct 112 primarily cools a compressed gas having a high temperature and high pressure using a coolant flowing inside of the coolant jacket cover 160 and the intercooler 130 may secondarily cools the compressed gas having a high temperature and high pressure, thus enhancing overall cooling efficiency.
[0050] A coolant line is formed to extend from the heater 230 to the coolant pump 250.
[0051] However, in one form of the present disclosure, since the coolant line is coupled to the intake duct 112, a layout may be simplified, and since the coolant line cools compressed gas having a high temperature passing through the intake duct 112, overall intake efficiency may be improved.
[0052]
[0053] Referring to
[0054] As illustrated, the coolant jacket cover 160 is integrally formed with the intake duct 112, and the coolant jacket 310 may be formed only in a preset region on the outer surface of the intake duct 112. A partition 300 separating a flow path of compressed gas inside the intake duct 112, and the compressed gas 320 flows at both sides of the partition 300.
[0055] One end of the partition 300 is connected to one side of an inner circumferential surface of the intake duct 112 corresponding to the coolant jacket 310, and the other end of the partition 300 is connected to the other side of the inner circumferential surface of the intake duct 112. The partition 300 may be integrally formed with the intake duct 112 and may be formed to extend by a preset distance inside the intake duct 112 in a direction in which the compressed gas flows. The partition 300 may be unitarily formed with the intake duct 112 as a monolithic structure.
[0056] The partition 300 may allow a coolant flowing in the coolant jacket 310 to easily absorb heat from compressed air flowing in the intake duct 112, and reinforce rigidity of the intake duct 112.
[0057]
[0058] Referring to
[0059] As illustrated, the coolant jacket 310 is formed along the outer circumferential surface of the intake duct 112, having a structure of surrounding the intake duct 112, and a coolant inlet 210 to which a coolant is supplied is formed at one side of the coolant jacket cover 160 and a coolant outlet 220 from which a coolant is discharged is formed at the other side of the coolant jacket cover 160.
[0060]
[0061] Referring to
[0062] dT_Gas indicates a change in temperature between the entrance and the exit of the intake duct 112, and illustrates a gas is cooled by about 12.9 C. at the RPM 2000 and is cooled by about 8.8 C. at the RPM of 4000.
[0063] dT_Cool indicates a change in temperature between the coolant inlet 210 and the coolant outlet 220. As illustrated about 0.8 C. is increased at the RPM of 2000, and about 0.5 C. is increased at the RPM of 4000.
[0064] The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.
TABLE-US-00001 <Description of symbols> 100: engine 110: intake line 112: intake duct 114: mounting bracket 115: intake manifold 120: exhaust line 122: catalyst unit 125: exhaust manifold 130: intercooler 140: turbo charger 142: turbine 144: compressor 160: coolant jacket cover 210: supply hole 220: outlet 230: heater 250: coolant pump 260: flexible connector 300: partition 310: coolant jacket 320: compressed gas