CYLINDER HEAD STRUCTURE
20250314192 ยท 2025-10-09
Inventors
- Tamon TANAKA (Sakai-shi, Osaka, JP)
- Junya IKAI (Sakai-shi, Osaka, JP)
- Kyota INOUE (Sakai-shi, Osaka, JP)
- Atsushi TANAKA (Sakai-shi, Osaka, JP)
- Kazuyuki CHUMA (Sakai-shi, Osaka, JP)
Cpc classification
F02F1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F2007/0063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01P3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cylinder head structure that can increase the rigidity of an area corresponding to an area between cylinder bores and improve a sealing force of an inter-bore corresponding portion positioned above between adjacent cylinders when enhancing the sealing force between a cylinder block and the cylinder head to improve engine output. The cylinder head structure includes: insertion walls through which right and left fastening bolts arranged between adjacent cylinders pass; a head upper wall connecting upper end portions of a pair of the insertion walls; and a cylinder head bottom wall, and a head cooling water channel is surrounded by those four walls (insertion walls, head upper wall, cylinder head bottom wall), and a vertical wall in a state of extending left and right spanning the head upper wall and the cylinder head bottom wall to block the head cooling water channel is formed between the pair of insertion walls.
Claims
1. A cylinder head structure, wherein a cylinder head assembled on a cylinder block by a plurality of fastening bolts is provided with an insertion wall through which the fastening bolts arranged on both sides between adjacent cylinders in the cylinder block pass, a head upper wall coupling upper end portions of a pair of insertion walls, and a cylinder head bottom wall, a head cooling water channel surrounded by the pair of insertion walls, the head upper wall, and the cylinder head bottom wall is formed, and a vertical wall in a state of spanning the head upper wall and the cylinder head bottom wall and extending in a direction coupling the pair of insertion walls to block the head cooling water channel is formed between the pair of insertion walls.
2. The cylinder head structure according to claim 1, wherein the vertical wall is formed in a state of being present in a center region between the pair of insertion walls.
3. The cylinder head structure according to claim 1, wherein the vertical wall is connected to and integrated with any one of the pair of insertion walls.
4. The cylinder head structure according to claim 3, wherein an end of the vertical wall on a side not connected to the insertion wall is formed in a state of being present in a center region between the pair of insertion walls.
5. The cylinder head structure according to claim 1, wherein a cooling water channel having an oblique hole shape spanning a head cooling water channel on one side partitioned by the vertical wall and a bottom surface of the cylinder head bottom wall immediately below the vertical wall or on an other side is provided in a lower portion of the vertical wall.
6. (canceled)
7. The cylinder head structure according to claim 5, wherein the vertical wall is formed in a state of being present in a center region between the pair of insertion walls.
8. The cylinder head structure according to claim 5, wherein the vertical wall is connected to and integrated with any one of the pair of insertion walls.
9. The cylinder head structure according to claim 8, wherein an end of the vertical wall on a side not connected to the insertion wall is formed in a state of being present in a center region between the pair of insertion walls.
10. The cylinder head structure according to claim 1, wherein a reinforcing wall portion having an upward protrusion rib shape extending in a direction coupling the pair of insertion walls, and a cooling water channel having a hole shape penetrating the reinforcing wall portion up and down are formed on the cylinder head bottom wall.
11. The cylinder head structure according to claim 10, wherein the vertical wall is formed in a state of being present in a center region between the pair of insertion walls.
12. The cylinder head structure according to claim 10, wherein the vertical wall is connected to and integrated with any one of the pair of insertion walls.
13. The cylinder head structure according to claim 12, wherein an end of the vertical wall on a side not connected to the insertion wall is formed in a state of being present in a center region between the pair of insertion walls.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
EMBODIMENTS OF THE INVENTION
[0022] Embodiments of a cylinder head structure according to the present invention will be described below with reference to the drawings regarding a case of an industrial diesel engine. Note that in an industrial diesel engine (hereinafter, abbreviated as engine) E, the side provided with a cooling fan 10 is the front, the side provided with a flywheel 7 is the rear, the side provided with an intake port 30 [side provided with an intake manifold (not shown)] is the right, and an exhaust port 28 [side provided with an exhaust manifold (not shown)] is the left. In
[0023] As shown in
[0024] Cooling water w in a cooling device of this engine E generally flows in the following order. That is, as shown in
[0025] The cooling water w entering the cylinder portion 1A from the front flows also upward for each cylinder 1a while flowing rearward basically. Therefore, the cooling water w flows in upward from a cylinder cooling water channel 1W, which is a water jacket of the cylinder portion 1A, into a head cooling water channel 2W, which is a water jacket of the cylinder head 2, and flows from the rear to the front (to the water pump 9 of the front).
[0026] As shown in
[0027] As shown in
[0028] A bottom surface 26a of the cylinder head bottom wall 26 is a surface placed on an upper surface 1b of the cylinder portion 1A via a gasket G, and the head upper wall 25 is an upper wall of a cylinder head on which the head cover 3 is placed. Note that 28 in
[0029] That is, as shown in
[0030] As shown in
[0031] Where the left-right width of the vertical wall 27 is a length d between the center of the right insertion wall 24 and the left end 27a, the length d of the vertical wall 27 is set to an interval between the pair of insertion walls 24 and 24, that is, a length (0.4D d0.6D) about half of the center-to-center distance D. As shown in
[0032] A left end portion of the reinforcing wall 29 is continuous to the left insertion wall 24 while rising obliquely upward, and a vertical hole water channel (cooling water channel in a hole shape) 21A is formed in an oblique reinforcing wall portion 29a [see
[0033] As shown in
[Regarding Actions and Effects]
[0034] Conventionally, although illustration is omitted, the inter-bore corresponding portion 2b of the cylinder head has a structure without the vertical wall 27 in order to widely ensure the head cooling water channel 2W (see
[0035] Therefore, in the present invention, the vertical wall 27 in a state of spanning the head upper wall 25 and the cylinder head bottom wall 26 and extending in a direction coupling the pair of insertion walls 24 and 24 to block the head cooling water channel 2W is formed between the pair of insertion walls 24 and 24. Since the vertical wall 27, which is newly provided, greatly shortens the length between the insertion walls 24 and 24 [the length (span) of the beam when the head upper wall 25 is analogized as a double cantilever beam extending left and right is greatly reduced], the strength and rigidity of the inter-bore corresponding portion 2b can be greatly improved.
[0036] That is, since the axial force of the fastening bolts 23 and 23 passed through the pair of insertion walls 24 and 24 is guided through the vertical wall 27 in contact with a bolt seat surface, the axial force is transmitted to the cylinder head 2 as evenly as possible as compared with the conventional structure without the vertical wall 27. Therefore, the axial force guided between the pair of fastening bolts 23 and 23 is substantively increased, and the sealing properties between the cylinder portion 1A and the cylinder head 2 can be greatly improved.
[0037] In a configuration in which the left end 27a of the vertical wall 27 integrated with the right insertion wall 24 is set in a state of being present in the center region C between the pair of insertion walls 24 and 24 (see
[0038] Since the oblique hole water channel 22A inclined forward or rearward is formed in the lower portion of the vertical wall 27, the lower side (bottom surface 26a) of the vertical wall 27 and the head cooling water channel 2W on the front or rear side of the vertical wall 27 can be easily communicated with each other even though the vertical wall 27 is provided, and a smooth flow of the cooling water w can be obtained. On the side without the vertical wall 27 in the inter-bore corresponding portion 2b, the vertical hole water channel 21A causing the lower side (bottom surface 26a) of the vertical wall 27 and the head cooling water channel 2W to communicate with each other is formed in the reinforcing wall portion 29a, and therefore it is elaborated not to cause a decrease in strength and rigidity due to the provision of the vertical hole water channel 21A.
[0039] Since the vertical wall 27 is provided to be biased to the right side of the engine E, that is, the intake port side (intake manifold arrangement side), the exhaust port side where the temperature tends to be high is not provided with the vertical wall 27, and the cooling water w easily moves through the head cooling water channel 2W in the front-rear direction (cylinder arrangement direction), and thus there is an advantage that heat can be efficiently absorbed from the exhaust side.
[Other Embodiments]
[0040] (1) The vertical wall 27 may be provided close to the left side so as to be integrated with the left side (exhaust port side) insertion wall 24. (2) The vertical wall 27 may be provided independently at the left and right center portion between the pair of insertion walls 24 and 24, and in this case, a hole-shaped cooling water channel can be provided vertically (up and down) between the vertical wall 27 and each of the left and right insertion walls 24 and 24.
[0041] (3) The oblique hole water channel 22A may be formed as an oblique hole causing the head cooling water channel 2W on the rear side of the vertical wall 27 and the bottom surface 26a on the front side of the vertical wall 27 to communicate with each other. (4) The reinforcing wall 29 having a rib shape is not depicted in
DESCRIPTION OF REFERENCE SIGNS
[0042] 1: Cylinder block [0043] 1a: Cylinder [0044] 2: Cylinder head [0045] 2W: Head cooling water channel [0046] 21A: Cooling water channel having hole shape [0047] 22A: Cooling water channel having oblique hole shape [0048] 23: Fastening bolt [0049] 24: Insertion wall [0050] 25: Head upper wall [0051] 26: Cylinder head bottom wall [0052] 26a: Bottom surface [0053] 27: Vertical wall [0054] 27a: End [0055] 29a: Reinforcing wall portion