HIGH PRESSURE PISTON CROWN
20180094602 ยท 2018-04-05
Inventors
Cpc classification
F02F3/0023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Provided is a high pressure piston crown capable of withstanding a higher pressure than the existing piston crown by changing an internal structure of the piston crown reciprocating in a cylinder while being coupled with an upper portion of a piston skirt. The high pressure piston crown includes: a rib part 100 including a plurality of main ribs 110 that are radially disposed, have one side connected to a central portion C of the high pressure piston crown, and have a cross sectional area wider toward an outside of the high pressure piston crown; an oil gallery 200 formed by the rib part 100 and making cooling oil introduced from the piston skirt flow therein; and a lower plate 300 formed under the central portion C and connected to the rib part 100 to have an inside thereof connected to the oil gallery 200.
Claims
1. A high pressure piston crown coupled with an upper portion of a piston skirt, comprising: a rib part including a plurality of main ribs that are radially disposed along an inner circumferential surface of the high pressure piston crown, have one side connected to a central portion of the high pressure piston crown, and have a cross sectional area wider toward an outside of the high pressure piston crown; an oil gallery formed by the rib part and making cooling oil introduced from the piston skirt flow therein; and a lower plate formed under the central portion and connected to the rib part to have an inside thereof connected to the oil gallery.
2. The high pressure piston crown of claim 1, wherein the rib part further includes a plurality of sub ribs that extend toward the central portion, extend to be shorter than the main rib, and have a cross sectional area wider toward the outside of the high pressure piston crown.
3. The high pressure piston crown of claim 2, wherein the rib part further includes: a support part connecting between the adjacent main ribs or the sub ribs and extending downwardly to be connected to the lower plate; and a bolt hole formed on the support part and having a bolt inserted thereinto.
4. A high pressure piston crown coupled with an upper portion of a piston skirt, comprising: an upper plate; a cylindrical side wall extending downwardly from the upper plate; a lower plate disposed under the upper plate and having a smaller diameter than that of the upper plate, and having a central hole perforated at a center thereof; and a plurality of main ribs radially disposed along an inner circumferential surface of the side wall, extending up to the lower plate downwardly from the upper plate, and extending up to a central portion of the upper plate from the inner circumferential surface of the side wall, wherein a width of the main rib is narrow from the side wall toward the central portion, cooling oil from the piston skirt is introduced through a cooling oil inlet that is formed between the side wall and an outer circumferential surface of the lower plate, the cooling oil introduced through the cooling oil inlet flows through a cooling oil channel that is formed among the upper plate, the lower plate, and the adjacent main ribs, and the cooling oil flowing through the cooling oil channel is discharged through the central hole of the lower plate.
5. The high pressure piston crown of claim 4, further comprising: a plurality of sub ribs disposed between the adjacent main ribs, extending up to the lower plate downwardly from the upper plate, and extending up to the central hole of the lower plate from the inner circumferential surface of the side wall.
6. The high pressure piston crown of claim 5, wherein a width of the sub rib is narrow from the side wall toward the central portion.
7. The high pressure piston crown of claim 4, further comprising: a support part connecting between the adjacent main ribs and extending up to the lower plate downwardly from the upper plate; and a bolt hole formed at a center of the support part to be bolt-connected with the piston skirt.
8. The high pressure piston crown of claim 5, further comprising: a support part connecting between the sub rib and the adjacent main ribs and extending up to the lower plate downwardly from the upper plate; and a bolt hole formed at a center of the support part to be bolt-connected with the piston skirt.
9. The high pressure piston crown of claim 4, wherein a thickness of the lower plate is thicker toward the central portion and thus a height of the cooling oil channel is lowered toward the central portion.
10. The high pressure piston crown of claim 4, wherein a height of the main rib located at an upper portion of the central hole of the lower plate is lowered toward the central portion.
11. A piston assembly, comprising: a piston skirt coupled to a lower portion of the high pressure piston crown in accordance with one of claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF MAIN ELEMENTS
[0026] C: Central portion [0027] 100: Rib part [0028] 110: Main rib 110A: One side of main rib [0029] 120: Sub rib 120A: One side of sub rib [0030] 130: Support part [0031] 140: Bolt hole [0032] 200: Oil gallery [0033] 300: Lower plate [0034] 310: Central hole [0035] 400: Upper plate [0036] 500: Side wall [0037] 600: Cooling oil inlet [0038] 700: Cooling oil channel [0039] W1: Width of one side of main rib [0040] W2: Width of the other side of main rib
DETAILED DESCRIPTION OF EMBODIMENTS
[0041] Hereinafter, a high pressure piston crown according to an exemplary embodiment of the present invention will be described in detail with reference to the accompanying drawings.
[0042]
[0043]
[0044] As illustrated in
[0045] As illustrated in
[0046] As illustrated in
[0047] The central portion C convexly protrudes downwardly from the center of the upper plate and changes a flow direction of cooling oil horizontally coming out in a central direction from the oil gallery 200 to a vertical down direction.
[0048] The upper plate located at the lower portion of
[0049] The main rib 110 illustrated in
[0050] The height of the main rib 110 may be changed differently in the center of the high pressure piston. The height of the main rib 110 is suddenly lowered from a location where the central hole 310 perforated at the center of the lower plate 300 starts toward the central portion C and thus the main rib 110 may be formed to make cooling oil easily flow in the central hole 310 of the lower plate 300. By this structure of the main rib 110, a flow resistance may be decreased but the strength of the high pressure piston crown may be decreased. However, the main rib 110 and sub rib 120 according to the exemplary embodiment of the present invention is formed in the shape having the width wider outwardly in order to overcome this problem.
[0051] As illustrated in
[0052] The main rib 110 may be formed in plural as illustrated in
[0053] As illustrated in
[0054] The support part 130 connects between the adjacent main ribs 110 or between the sub rib 120 and the main ribs 110 adjacent thereto. Describing in detail, the support part 130 connects between the adjacent main ribs 110 and may extend up to the lower plate 300 downwardly from the upper plate 400. Further, the support part 130 connects between the sub rib 120 and the adjacent main ribs 110 adjacent thereto and may extend up to the lower plate 300 downwardly from the upper plate 400. In
[0055] The support part 130 connects between the plurality of adjacent main ribs 110 or between the sub ribs 120 or connects between the ribs adjacent to each other, thereby increasing the structural stability. The high pressure piston crown according to the exemplary embodiment of the present invention is applied with the relatively higher pressure. During this process, the high pressure piston crown may be applied with vibration and the vibration direction may be a horizontal direction in addition to a vertical direction in which the high pressure piston crown is applied with a pressure, based on
[0056] As illustrated in
[0057] According to the exemplary embodiment of the present invention illustrated in
[0058] The bolt hole 140 illustrated in
[0059] The oil gallery 200 illustrated in
[0060] When viewed from
[0061] The oil gallery 200 and the flow of the cooling oil will be described below in detail. The cooling oil from the piston skirt is introduced through a cooling oil inlet 600 that is formed between the side wall 500 and the outer circumferential surface of the lower plate 300. The cooling oil introduced through the cooling oil inlet 600 flows through a cooling oil channel 700 that is formed among the upper plate 400, the lower plate 300, and the adjacent main ribs 110. The cooling oil flowing through the cooling oil channel 700 is discharged to the piston skirt through the central hole 310 of the lower plate 300. In particular, the high pressure piston crown according to the exemplary embodiment of the present invention is possible to increase the cooling performance of the surface of the piston head by increasing the area contacted with cooling oil in the piston head.
[0062] The lower plate 300 is formed in lower part of the high pressure piston crown and the upper portion thereof is coupled with the main rib 110 and the sub rib 120 so that the high pressure piston crown has the oil gallery 200 formed at the upper portion thereof. The central hole 310 formed to be connected to the oil gallery 200 penetrates through the central portion of the lower plate 300 and the space through which the cooling oil lowering the high temperature of the high pressure piston crown is discharged is connected to the piston skirt. As illustrated in
[0063] The high pressure piston skirt is formed by casting and thus has higher strength than before. Therefore, as the requirement, ductile cast iron having tensile strength of 80 kgf/mm.sup.2 and elongation of 5% or more is suitable.
[0064] As described above, according to the exemplary embodiments of the present invention, the high pressure piston crown has the sufficient flow channel by which the cooling oil can be contacted with wide area along to the inner surface of the piston head, and the sufficient strength to be able to withstand the high explosion pressure.
[0065] Further, as the ribs included in the rib part 100 have a width wider outwardly, the structural stability of the high pressure piston crown may be increased.
[0066] Further, according to the exemplary embodiments of the present invention, as the support part 140 may connect between the adjacent main ribs or the sub ribs and extending downwardly to be connected to the lower plate 300, the structural stability of the high pressure piston crown may be increased.
[0067] The present invention is not limited to the above-mentioned exemplary embodiments, and may be variously applied, and may be variously modified without departing from the gist of the present invention claimed in the claims.