This application claims priority under 35 U.S.C. § 119(b) to Japanese Application No. 2017-253634, filed Dec. 28, 2017, the disclosure of which is incorporated by reference herein in its entirety.
The present invention relates to an engine with an EGR device.
In an engine with an EGR device, a part of the exhaust gas is returned as an EGR (Exhaust Gas Recirculation) gas to an intake path such as an intake manifold and then sucked again.
A conventional engine with an EGR device adopts a structure that arranges an EGR pipe through which the EGR gas flows, at an intake side so as to bypass an outer side of a cylinder head in an engine case. For example, an EGR pipe that communicates an exhaust manifold and an intake manifold is arranged to bypass an outer side of a cylinder head.
In the conventional engine with the EGR device, since the EGR pipe is arranged to pass through an outer side of an engine, a whole size of the engine is disadvantageously made large. Since the EGR pipe becomes high in temperature, a gap for heat dissipation should be secured around the EGR pipe, and therefore the whole size needs to be increased. Further, in an engine layout, the EGR pipe is arranged to pass through the outer side of the engine at a side of a flywheel, and thereby an air cooling effect by cooling air is hardly obtained.
An object of the present invention is to provide an engine with an EGR device in which an EGR pipe is cooled easily and a length of the engine is suppressed to be increased by totally improving a structure of an engine case or an arrangement of the EGR pipe.
An engine with an EGR device according to the present invention includes an engine case, and an EGR pipe that introduces an EGR gas into an intake path, the EGR pipe being arranged to pass through an inside of the engine case. A part of the EGR pipe in the engine case is arranged to face a cooling water path in the engine case.
According to the present invention, since the EGR pipe is arranged to pass through the inside of the engine case, a length of the engine can be made short compared to a configuration in which the EGR pipe is arranged at an outside. Further, since the EGR pipe is arranged to face the cooling water path in the engine case, the EGR pipe can be cooled by the cooling water. Consequently, the EGR pipe that becomes high in temperature can be cooled efficiently by using an existing component.
As a result, the engine with the EGR device in which an EGR pipe is cooled easily and a length of the engine is suppressed to be increased by totally improving a structure of an engine case or an arrangement of the EGR pipe can be provided.
Hereinafter, embodiments of an engine with an EGR device according to the present invention formed as an industrial engine will be described with reference to drawings. Here, an engine case k includes a cylinder head 2, a cylinder portion 1A, and the like. Further, a side of an exhaust manifold 4 of the engine case k is defined as a left side, and a side of an intake manifold 5 of the engine case k is defined as a right side.
As shown in
An EGR device A, which returns a part of an exhaust gas as an EGR gas into an intake path, is installed in the industrial engine E. As shown in
The EGR pipe 6 is arranged to pass through an inside of the cylinder head 2 served as one example of the engine case k. An expanded case portion 7 (one example of an expanded portion), which is expanded toward an outer side, is formed so as to house the EGR pipe 6, on an case end portion 2A formed as an end portion in a front-rear direction of the cylinder head 2. Here, in
As shown in
The main pipe 6A includes a base pipe portion 8, a small diameter portion 9 having a diameter formed to be slightly small, the small diameter portion 9 being formed at a proximal side of the base pipe portion 8, and a tapered pipe portion 10 formed between the base pipe portion 8 and the small diameter portion 9. The base pipe portion 8 includes a deformed pipe portion 8A having a complicated cross section. The deformed pipe portion 8A is formed at a most part of the base pipe portion 8 in a longitudinal direction of the base pipe portion 8 excluding both end portions of the base pipe portion 8.
As shown in
The deep groove portion 11 includes a groove bottom surface 11a, and a pair of left and right groove side surfaces 11b, 11b. The deep groove portion 11 is recessed with a groove width d having a constant width, to the groove bottom surface 11a having a depth of a half of the radius of the base pipe portion 8.
As shown in
As shown in
The EGR pipe 6 is, for example, inserted into an attachment hole 19 formed in the side wall 2B (right side wall) at a side of the intake manifold 5 of the cylinder head 2 so that the small diameter portion 9 is pressed into or fitted into a gas intake port 15 formed as a circular hole formed in the side wall 2C (left side wall) at a side of the exhaust manifold 4 of the cylinder head 2, and the mount flange 6B is mounted to a side surface 2a of the cylinder head 2 at a side of the intake manifold 4 by two bolts (not shown). In this case, a diameter of the attachment hole 19 is slightly larger than a diameter of the gas intake port 15.
As shown in
A case end portion 2A formed by an end portion of the engine case k is partially expanded to an outer side, and the EGR pipe 6 is arranged in an expanded portion 7 of the case end portion 2A expanded toward the outer side. The cooling water path w is formed to surround the EGR pipe 6.
The engine case k includes a guide portion 16 that guides cooling water in a portion of the EGR pipe 6 at an outer side in a radial direction, in the cooling water path w. The EGR pipe 6 is formed of an aluminum alloy, the engine case k is defined by a cylinder head 2.
As shown in
Since the EGR pipe 6 is housed in the expanded case portion 7, an expanded amount of the cylinder head 2 to the outer side can be reduced (suppressed) compared to a conventional EGR device in which the EGR pipe is arranged as other component at an outer side of the cylinder head. In addition, as shown in
Accordingly, with the EGR device A and the EGR cooling mechanism r adopting the improved structure in which the EGR pipe is housed in a portion of the cylinder head 2 slightly expanded, the engine E with the EGR device capable of cooling the EGR gas g by using the existing cooling water 20 effectively and capable of reducing the size in a lateral direction of the engine can be obtained. Since the EGR gas g can be effectively cooled in the EGR pipe 6, an external EGR cooler (not shown) can be advantageously omitted.
As shown in
The cooling water 20 flowing the cooling water path w is promoted to flow into the outer peripheral water path w4 by arranging the guide portion 16. Consequently, a water cooling effect of the EGR pipe 6 (EGR gas g) by using the cooling water can be advantageously enhanced with an economical measure (guide portion 16) hardly increasing a cost.
The engine with the EGR device may have each of the following configurations (1) to (5).
(1) The EGR pipe 6 may be formed by a general pipe having a simple circular section or a simple rectangular section without the deep groove portion 11. In this case, the gas intake port 15 and the attachment hole 19 of the cylinder head 2 may be formed in the same diameter.
(2) The outer peripheral surface of the EGR pipe 6 with which the cooling water path w is contacted may be formed to face the cooling water path w not at the whole outer peripheral surface (360 degrees) but at a partial surface of ¾ (270 degrees) or a half (180 degrees) of the outer peripheral surface.
(3) The EGR device A may be formed such that the EGR pipe 6 is housed in an upper end portion of the cylinder portion 1A. In this case, the EGR pipe 6 receives the water cooling effect from the cooling water path of the cylinder portion 1A.
(4) The intake path 5 may be variously formed such as an intake side of an air cleaner or a supercharger other than the intake manifold 5.
Number | Date | Country | Kind |
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JP2017-253634 | Dec 2017 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
6513506 | Ito | Feb 2003 | B1 |
20120085300 | Asano | Apr 2012 | A1 |
20160186704 | Murotani | Jun 2016 | A1 |
20190072056 | Yoon | Mar 2019 | A1 |
20190203669 | Takemoto | Jul 2019 | A1 |
Number | Date | Country |
---|---|---|
102005041732 | Mar 2007 | DE |
102005049462 | May 2007 | DE |
2573378 | Mar 2013 | EP |
2010-236397 | Oct 2010 | JP |
2014-190171 | Oct 2014 | JP |
Entry |
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Extended European Search Report dated Jun. 3, 2019 in EP Application No. 18200322.8. |
Number | Date | Country | |
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20190203669 A1 | Jul 2019 | US |