Piston for engine
10018147 ยท 2018-07-10
Assignee
Inventors
- Hiroki Oso (Sakai, JP)
- Hideyuki Koyama (Sakai, JP)
- Manabu Miyazaki (Sakai, JP)
- Hideyuki Goto (Sakai, JP)
- Takahito Hamasaki (Sakai, JP)
- Takahiro Yamazaki (Sakai, JP)
Cpc classification
F16J1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/0084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05C2253/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piston for an engine includes a skirt part, and a resin coating film and a recess formed on a surface of the skirt part. A plurality of the resin coating films are discretely arranged in spots on the surface of the skirt part, and a mesh-like groove is formed by the recess provided between the resin coating films. The recess formed on the skirt part between the resin coating films adjacent to each other in a piston circumference direction is set to be adjacent to another resin coating film in a piston moving direction. An end part of the resin coating film in the piston moving direction is formed in a concave shape when seen in a piston radius direction.
Claims
1. A piston for an engine comprising: a skirt part; and a plurality of resin coating films formed on a surface of the skirt part, wherein the resin coating films are arranged in a plurality of discrete spots on the surface of the skirt part, and a mesh-like groove is formed by a recess defined by the resin coating films adjacent to each other and the surface of the skirt part between the resin coating films, the plurality of resin coating films are arranged at a predetermined interval in a piston circumference direction of the skirt part forming a plurality of resin coating film rows, such that each of the resin coating film rows adjacent to each other in a piston moving direction is arranged by shifting the resin coating film rows with respect to each other in the piston circumference direction, the recess formed on the skirt part between the resin coating films adjacent to each other in the piston circumference direction has end openings each of which is set to be adjacent to another resin coating film in the piston moving direction, and both end parts of each of the resin coating films in the piston moving direction are formed in a concave shape lying in a plane defined by the surface of the skirt part when seen in a piston radius direction, wherein the concave shape extends inwardly to each resin coating film.
2. The piston for the engine according to claim 1, wherein the concave shape of the end parts of the resin coating films in the piston moving direction is set to a V-shape.
3. The piston for the engine according to claim 2, wherein a V-shape angle of the V-shape is set to a range of 120 degrees20 degrees.
4. The piston for the engine according to claim 1, wherein the concave shape of the end parts of the resin coating films in the piston moving direction is set to a curved shape.
5. The piston for the engine according to claim 1, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
6. The piston for the engine according to claim 2, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
7. The piston for the engine according to claim 3, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
8. The piston for the engine according to claim 4, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
9. The piston for the engine according to claim 1, wherein the plurality of resin coating film rows are arranged in a zigzag manner in the piston moving direction, such that each of the resin coating film rows is shifted by a half pitch in the piston circumference direction with respect to the adjacent resin coating film row.
10. The piston for the engine according to claim 9, wherein the concave shape of the end parts of the resin coating films in the piston moving direction is set to a V-shape.
11. The piston for the engine according to claim 10, wherein a V-shape angle of the V-shape is set to a range of 120 degrees20 degrees.
12. The piston for the engine according to claim 9, wherein the concave shape of the end parts of the resin coating films in the piston moving direction is set to a curved shape.
13. The piston for the engine according to claim 9, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
14. The piston for the engine according to claim 10, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
15. The piston for the engine according to claim 11, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
16. The piston for the engine according to claim 12, wherein a length of the resin coating films in the piston moving direction is set to be longer than a length of the resin coating films in the piston circumference direction.
17. A piston for an engine comprising: a skirt part; and a plurality of resin coating film rows formed on a surface of the skirt part, the resin coating film rows shifted with respect to each other in a piston circumferential direction, both end parts of each of the resin coating film rows in a piston moving direction having a concave shape when seen in a piston radius direction, wherein the concave shape extends inwardly at both end parts, a recess formed on the skirt part between the resin coating film rows adjacent to each other in the piston circumference direction, the recess having end openings each of which is set to be adjacent to another resin coating film row in the piston moving direction; a mesh-like groove formed by the plurality of recesses, wherein as the piston reciprocates in the piston moving direction, a lubricant in the recess or the mesh-like groove impacts the end part of the adjacent resin coating film row and is bounced back or flows back into the recess of the mesh-like groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(7) Hereinafter, embodiments of a piston according to the present invention will be described with reference to the drawings by using a piston for a vertical type diesel engine.
First Embodiment
(8) As shown in
(9) An intake valve 18, an exhaust valve 19, and a fuel injector 20 are mounted to the cylinder head 15.
(10) As shown in
(11) The resin coating film 2 and the recess 3 are formed at a thrust side 12a and an anti-thrust side 12b of the piston 12. The thrust side 12a refers to a side where the piston 12 is pressed against the cylinder 14 by a combustion pressure when the piston 12 is moved downward in a combustion process, and the anti-thrust side 12b refers to a side opposite to the thrust side 12a. A body of the piston 12 is made of a metal material such as cast iron or aluminum alloy. The resin coating film 2 is made of a resin material such as polyamide resin, epoxy resin, phenol resin, silicon resin, or polyimide resin. An inorganic solid lubricant such as transition metal oxide or graphite is contained in the resin coating film 2.
(12) The resin coating film 2 is formed in a substantially rectangular shape in which a length of the resin coating film 2 in a piston moving direction 6 is longer than a length of the resin coating film 2 in a piston circumference direction 8. When seen in a piston radius direction, both end parts 2A, 2A of the resin coating film 2 in its longitudinal direction are formed in a concave shape, in particular, in a V-shape having edge surfaces 2a, 2a. Further, the resin coating film 2 and the recess 3 are provided adjacent to each other in the piston moving direction 6.
(13) That is, the recess 3 formed between the resin coating films 2, 2 adjacent to each other in the piston circumference direction 8 of the skirt part 1 is set to be adjacent to the resin coating film 2 in the piston moving direction 6, and end parts 2A of the resin coating film 2 in the piston moving direction 6 are formed in a concave shape when seen in the piston radius direction.
(14) As shown in
(15) In
(16) Further, as shown in
(17) Further, as shown in
(18) As shown in
(19) That is, a recess, which is formed by the end parts 2A of the resin coating films 2 adjacent to each other and which extends in the piston circumference direction 8 in a zigzag manner, forms an oil storing groove 9 having an excellent lubricant holding property.
(20) Since the bounced-back lubricant collides with the end part 2A of the resin coating film 2 forming the groove portion 7 and is further bounced back, or flows back to the original groove portion 7, the lubricant holding property is improved. Further, the bounced-back lubricant tends to move onto the resin coating film 2 adjacent to the groove portion 7, and therefore a positive pressure is generated between the cylinder 14 and the piston 12. The positive pressure separates a sliding surface of the piston 12 from a cylinder wall and reduces a friction, and therefore fuel efficiency can be improved.
(21) A vertical direction (piston moving direction 6) passage of the lubricant can be formed by separately applying a texturing process to each area on a surface of the skirt part 1, and the lubricant can be effectively supplied to each part of the piston 12. Since the resin coating film rows 5, 5 adjacent to each other in the piston moving direction 6 are arranged in a zigzag manner by shifting the resin coating film rows 5 with respect to each other in the piston circumference direction 8, the lubricant can be efficiently supplied to the recess 3 by using a reciprocating movement of the piston 12.
(22) In a piston for an engine according to a first embodiment, a concave shape of an end part 2A of a resin coating film 2 in a piston moving direction is set to a V-shape and the V-shape angle is set to a range of 120 degrees20 degrees. Further, a length of the resin coating film 2 in the piston moving direction is set to be longer than a length of the resin coating film 2 in a piston circumference direction. It is preferable to set the V-shape angle to the range of 120 degrees20 degrees because a lubricant holding property is further improved.
Second Embodiment
(23) As shown in
Third Embodiment
(24) As shown in
Fourth Embodiment
(25) As shown in
Fifth Embodiment
(26) As shown in
Sixth Embodiment
(27) As shown in