The present invention relates to a water cooled engine.
When output is increased with a conventional water cooled engine, the temperature of the exhaust gas may rise and cooling may become insufficient at the exhaust side, inviting an increase in thermal strain of the cylinder head.
An object of the present invention is to provide a water cooled engine including a cylinder head with minimized thermal strain.
The major configuration of the present invention are as follows.
A cylinder head includes a cooling water injection passage provided at a bottom wall of the cylinder head, the cooling water injection passage being positioned (biased) on an exhaust end side, and including a passage entrance provided on the exhaust end side and a passage exit directed toward an inter-exhaust-port-wall water channel.
An exhaust port wall includes a heat dissipation fin extending from a first exhaust entrance port wall toward the exhaust end, a space between the heat dissipation fin and a second exhaust entrance port wall forming a water channel entrance of the inter-exhaust-port-wall water channel.
It is desirable that a water channel exit of the inter-exhaust-port-wall water channel is directed to a fuel injector.
According to the present invention, thermal strain of the cylinder head is minimized.
According to the present invention, high cooling performance is achieved at the first exhaust entrance port wall.
According to the present invention, high cooling performance is achieved at the first exhaust entrance port wall and the second exhaust entrance port wall.
The overview of the engine is as follows.
As shown in
The engine includes a fuel injection apparatus, a vibration damper apparatus, a water-cooling apparatus, a lubricating apparatus, and an oil-cooling apparatus.
The fuel injection apparatus is of the common rail type, and includes, as shown in
As shown in
The water-cooling apparatus includes: a radiator (not shown); a water entrance chamber (16) provided on the air intake side of the cylinder block (5) as shown in
The water-cooling apparatus causes, using the pump pressure of the water pump (17), an engine cooling water having its heat dissipated by the radiator to circulate sequentially through the water entrance chamber (16), the water pump (17), the water relay chamber (18), the block water jacket (19), the head water jacket (20), and the radiator, to cool the engine.
The lubricating apparatus includes: an oil pump (not shown) built inside the rear part of the cylinder block (5); and as shown in
As shown in
The water-cooling apparatus is structured as follows.
As shown in
Accordingly, the water-cooling apparatus is advantageous in its being capable of strongly cooling the cylinder head (6) with the engine cooling water (36).
As shown in
The exhaust port (3) includes: a first exhaust valve opening (3a); and a second exhaust valve opening (3b) provided on the exhaust end (6a) side relative to the first exhaust valve opening (3a). An exhaust port wall includes: a first exhaust entrance port wall (3d) on the first exhaust valve opening (3a) side; and a second exhaust entrance port wall (3e) on the second exhaust valve opening (3b) side.
The head water jacket (20) includes an inter-exhaust-port-wall water channel (29) between the first exhaust entrance port wall (3d) and the second exhaust entrance port wall (3e).
The cylinder head (6) includes a cooling water injection passage (27) provided at a bottom wall (6c) of the cylinder head (6). The cooling water injection passage (27) is positioned (biased) on the exhaust end (6a) side, and includes a passage entrance (27a) provided on the exhaust end (6a) side, and a passage exit (27b) directed toward the inter-exhaust-port-wall water channel (29).
The exhaust port wall includes a heat dissipation fin (28) extending from the first exhaust entrance port wall (3d) toward the exhaust end (6a). The space between the heat dissipation fin (28) and the second exhaust entrance port wall (3e) forms a water channel entrance (29a) of the inter-exhaust-port-wall water channel (29).
Into the passage entrance (27a) of the cooling water injection passage (27), the engine cooling water (36) rising from the exhaust side of the block water jacket (19) is drawn.
Accordingly, in the present embodiment, as shown in
Further, by virtue of heat dissipation of the heat dissipation fin (28), high heat dissipation performance is achieved at the first exhaust entrance port wall (3d).
Still further, as shown in
Note that, by the engine cooling water (36) being injected from the cooling water injection passage (27), the engine cooling water (36) near the water channel entrance (29a) of the inter-exhaust-port-wall water channel (29) is drawn into the water channel entrance (29a). Into the water channel entrance (29a), the engine cooling water (36) rising from an inter-cylinder-bore water channel of the block water jacket (19) via a rising hole (39) is also drawn.
As shown in
Accordingly, in the present embodiment, as shown in
As shown in
The cylinder head (6) includes a second cooling water injection passage (31) provided at the bottom wall (6c) of the head water jacket (20). The second cooling water injection passage (31) includes a second passage entrance (31a) provided on the exhaust end (6a) side, and a second passage exit (31b) directed to a water channel entrance (30a) of the inter-intake/exhaust-port-wall water channel (30).
Accordingly, in the present embodiment, as shown in
Into the second passage entrance (31a) of the second cooling water injection passage (31), the engine cooling water (36) rising from the exhaust side of the block water jacket (19) is drawn.
As shown in
Accordingly, in the present embodiment, as shown in
As shown in
Between the second heat dissipation fin (32) and the bottom wall (6c) of the cylinder head (6), a constricted passage (32a) is provided. The constricted passage (32a) is disposed upstream in a flow direction in the inter-intake/exhaust-port-wall water channel (30).
Accordingly, in the present embodiment, as shown in
As shown in
Accordingly, in the present embodiment, as shown in
As shown in
Accordingly, in the present embodiment, as shown in
As shown in
Accordingly, in the present embodiment, as shown in
As shown in
The bottom wall (6c) of the cylinder head (6) includes a combustion chamber ceiling wall (34) and a pushing wall (35) positioned on the outer circumference side of the combustion chamber ceiling wall (34) and pushing a bead (33a) of the head gasket (33).
In the bottom wall (6c) of the cylinder head (6), the pushing wall (35) is greater in thickness than an outer peripheral part (34a) of the combustion chamber ceiling wall (34) being adjacent to the pushing wall (35).
Accordingly, in the present embodiment, as shown in
Number | Date | Country | Kind |
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JP2017-128302 | Jun 2017 | JP | national |
This application is a Continuation of U.S. patent application Ser. No. 15/987,980 filed May 24, 2018, which claims priority under 35 U.S.C. § 119(b) to Japanese Application No. 2017-128302 filed Jun. 30, 2017, the disclosures of which are incorporated herein by reference in their entirety.
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Number | Date | Country | |
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20200256279 A1 | Aug 2020 | US |
Number | Date | Country | |
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Parent | 15987980 | May 2018 | US |
Child | 16859554 | US |