(1) Field of the Invention
The present invention relates to a cylinder head cooling apparatus of an engine.
(2) Description of Related Art
Conventionally, as a cylinder head cooling apparatus of an engine, there is an apparatus in which engine cooling water passing through a cooling water jacket is caused to flow along a cylindrical auxiliary combustion chamber wall.
In the conventional cylinder head cooling apparatus of an engine, engine cooling water does not easily divert toward both sides of the auxiliary combustion chamber wall smoothly, and cooling efficiency around the auxiliary combustion chamber wall is low.
An object of the present invention is to provide a cylinder head cooling apparatus of an engine capable of enhancing cooling efficiency around the auxiliary combustion chamber wall.
A matter to define the present invention is as follows.
A cylinder head cooling apparatus of an engine includes a cylinder head having therein an intake port, an exhaust port, an auxiliary combustion chamber, and a cooling water jacket, in which
an intake port wall, an exhaust port wall and an auxiliary combustion chamber wall are placed in the cooling water jacket, the cooling water jacket includes a cooling water inlet and a cooling water outlet, engine cooling water flowed from the cooling water inlet into the cooling water jacket flows out from the cooling water outlet through the cooling water jacket, wherein
a cooling water guide wall is provided upstream of the auxiliary combustion chamber wall in a cooling water passing path of the cooling water jacket, and the upstream cooling water guide wall is formed into a shape whose width gradually widens toward a downstream side.
The present invention has the following effects.
The engine cooling water flowing upstream of the auxiliary combustion chamber wall is guided by the upstream cooling water guide wall, and smoothly diverts toward both sides of the auxiliary combustion chamber wall, so that it is possible to enhance the cooling efficiency around the auxiliary combustion chamber wall.
Engine cooling water flowing upstream of the auxiliary combustion chamber wall collides against the upstream cooling water guide wall, and the auxiliary combustion chamber wall does not take a direct hit of the engine cooling water. Thus, excessive cooling of the auxiliary combustion chamber wall is suppressed, and it is possible to enhance the heat efficiency of the engine and the starting performance of the engine during a cold period.
An outline of the cylinder head of the engine is as follows.
As shown in
A configuration of the cooling apparatus of the cylinder head is as follows.
As shown in
As shown in
The cooling water outlet (5b) of the cooling water jacket (5) is open toward a discharge side located on the downstream side (front side) of the cooling water jacket (5).
As shown in
As shown in
As shown in
As shown in
Therefore, engine cooling water (6) flowing downstream of the auxiliary combustion chamber wall (4a) smoothly separates from the downstream cooling water guide wall (8), generation of wake flow on the downstream side of the auxiliary combustion chamber wall (4a) is suppressed, engine cooling water (6) in the cooling water jacket (5) smoothly flows, and the cooling efficiency of the cylinder head (1) can be enhanced.
As shown in
Therefore, engine cooling water (6) flowing on both sides of the auxiliary combustion chamber wall (4a) is guided by the both-side cooling water guide walls (9), (9), and smoothly diverts along the both sides of the auxiliary combustion chamber wall (4a), so that it is possible to enhance the cooling efficiency around the auxiliary combustion chamber wall (4a).
Further, engine cooling water (6) flowing along the both sides of the auxiliary combustion chamber wall (4a) smoothly separates from the cooling water guide walls (9), (9), generation of wake flow on downstream side of the auxiliary combustion chamber wall (4a) is suppressed, the engine cooling water (6) smoothly flows in the cooling water jacket (5), and the cooling efficiency of the cylinder head (1) can be enhanced.
Furthermore, the engine cooling water (6) flowing along the both sides of the auxiliary combustion chamber wall (4a) comes into contact with the both-side cooling water guide walls (9), (9), the auxiliary combustion chamber wall (4a) does not take a direct hit of the engine cooling water (6). Thus, excessive cooling of the auxiliary combustion chamber wall (4a) is suppressed, and it is possible to enhance the heat efficiency of the engine and the starting performance of the engine during a cold period.
As shown in
Therefore, engine cooling water (6) flowing along one side of the auxiliary combustion chamber wall (4a) is guided by the exhaust port wall (3a) at the one side cooling water guide wall (9). Thus, it is possible to enhance the cooling efficiency of the exhaust port wall (3a).
All of the cooling water guide walls (7), (8), (9), (9) are formed around the lower portion (4b) of the auxiliary combustion chamber wall (4a).
As may be seen in
As shown in
Therefore, engine cooling water (6) stored in the cooling water storing recess (10) receives heat of the auxiliary combustion chamber wall (4a), heated and raised, and replaced with engine cooling water (6) existing around the auxiliary combustion chamber wall (4a) by convection. Thus, the auxiliary combustion chamber wall (4a) is slowly cooled to prevent heat damage of the auxiliary combustion chamber wall (4a) caused by abrupt cooling.
Further, the auxiliary combustion chamber wall (4a) is slowly cooled and excessive cooling of the auxiliary combustion chamber wall (4a) is suppressed, so that it is possible to enhance the heat efficiency of the engine and the starting performance of the engine during a cold period.
In
As shown in
Therefore, engine cooling water (6) guided by the upstream cooling water guide wall (7) smoothly flows into the thermostat housing (11) along the housing inlet wall (11a), and flow of the engine cooling water (6) in the cooling water jacket (5) does not back up. Thus, the cooling efficiency of the cylinder head (1) can be enhanced.
The thermostat housing (11) is formed at a discharge side corner portion of the downstream side (front side) of the cooling water jacket (5).
A thermostat (not shown) is accommodated in the thermostat housing (11).
The thermostat housing (11) is integrally molded with the cylinder head (1) by molding.
A cooling water temperature detecting device (16) is placed at a suction side corner portion of the downstream side (front side) of the cooling water jacket (5). The cooling water temperature detecting device (16) is a sensor for detecting temperature of the engine cooling water (6). The cooling water temperature detecting device (16) may be a cooling water temperature switch which energizes an alarm device (not shown) when temperature of the engine cooling water (6) exceeds a predetermined value.
As shown in
Therefore, the lateral wall (1a) of the cylinder head (1) on the auxiliary combustion chamber (4) side is thinned because of the recess shape and the funnel-shape, heat capacity of the cylinder head (1) on the auxiliary combustion chamber (4) side is reduced, temperature of the auxiliary combustion chamber wall (4a) rises early when the engine is started. Thus, it is possible to enhance the starting performance of the engine during a cold period.
Further, intake resistance is reduced, and charging efficiency of intake air can be enhanced.
Furthermore, the capacity of the cylinder head (1) can partially be used as capacity of the surge tank. Correspondingly, it is possible to reduce capacity of the intake manifold (12) and the lateral width of the engine.
Still furthermore, it is possible to avoid inconvenience that the intake port inlet (2b) is whittled at the time of polishing processing of the mounting seat (1b) of the intake manifold (12) and an edge is formed.
As shown in
Number | Date | Country | Kind |
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2014-208598 | Oct 2014 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
3420215 | Seifert | Jan 1969 | A |
3769948 | Feichtinger | Nov 1973 | A |
20010035138 | Fukamachi | Nov 2001 | A1 |
Number | Date | Country |
---|---|---|
680938 | Dec 1992 | CH |
4116943 | Jun 1992 | DE |
S56041138 | Sep 1981 | JP |
S5748 | Jan 1982 | JP |
H06-040336 | May 1994 | JP |
H06221149 | Aug 1994 | JP |
H0932630 | Feb 1997 | JP |
H09324695 | Dec 1997 | JP |
3668650 | Jul 2005 | JP |
Entry |
---|
Extended Search Report dated Feb. 22, 2016 in EP Application No. 15183568.3. |
Office Action dated Sep. 26, 2017 in JP Application No. 2014-208598. |
Number | Date | Country | |
---|---|---|---|
20160102595 A1 | Apr 2016 | US |