Piston for an internal combustion engine
09869269 ยท 2018-01-16
Assignee
Inventors
Cpc classification
F02F3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piston for an internal combustion engine may include a piston head and a piston skirt. The piston head may include a piston crown, an encircling fire land, an encircling ring belt having a plurality of ring grooves and an encircling cooling duct disposed radially inwards from the ring belt. The cooling duct may be open in an axial direction away from the fire land and may be at least partially closed via a closure element. The cooling duct may have a cooling duct base and a cooling duct ceiling. The closure element may be arranged on the piston head to define the cooling duct base in a position above a lowermost ring groove of the plurality of ring grooves.
Claims
1. A piston for an internal combustion engine, comprising: a piston head and a piston skirt together defining a reciprocating axis; the piston head including a piston crown, an encircling fire land, an encircling ring belt including a plurality of ring grooves, and an encircling cooling duct disposed radially inwards from the encircling ring belt with respect to the reciprocating axis, the encircling cooling duct being open in an axial direction away from the encircling fire land and at least partially closed via a closure element, the encircling cooling duct having a cooling duct base and a cooling duct ceiling, wherein the closure element is arranged in the piston head to define the cooling duct base in a position above a lowermost ring groove of the plurality of ring grooves; wherein an axial height of the encircling fire land with respect to the reciprocating axis is 9% or less than a nominal diameter of the piston head; and wherein an axial extent between the piston crown and the cooling duct base with respect to the reciprocating axis is between 11% and 17% of the nominal diameter of the piston head.
2. The piston as claimed in claim 1, wherein the cooling duct base via the closure element is arranged at a level of an intermediate ring groove of the plurality of ring grooves.
3. The piston as claimed in claim 1, wherein the closure element is configured on the piston head to define an encircling annular gap disposed at the cooling duct base.
4. The piston as claimed in claim 1, wherein the encircling cooling duct defines a height in an axial direction and a width in a radial direction with respect to the reciprocating axis, and wherein the height of the encircling cooling duct is 0.8 times to 1.7 times the width of the cooling duct.
5. The piston as claimed in claim 1, wherein an axial extent between the piston crown and the cooling duct ceiling with respect to the reciprocating axis is between 3% and 7% of the nominal diameter of the piston head.
6. The piston as claimed in claim 1, wherein the piston head further includes a combustion depression, and wherein the piston head defines a wall thickness in a radial direction with respect to the reciprocating axis between the combustion depression and the encircling cooling duct ranging from 2.5% to 4.5% of the nominal diameter of the piston head.
7. The piston as claimed in claim 6, wherein the combustion depression includes an undercut in the radial direction.
8. The piston as claimed in claim 1, wherein the closure element is configured as a separate component from the piston head.
9. The piston as claimed in claim 1, wherein the piston head and the piston skirt are composed of at least two components connected non-releasably to one another.
10. The piston as claimed in claim 9, wherein the at least two components include a piston main body and a piston ring element.
11. The piston as claimed in claim 10, wherein the closure element is configured as one piece with the piston main body.
12. The piston as claimed in claim 10, wherein the closure element is configured as one piece with the piston ring element.
13. The piston as claimed in claim 1, wherein at least one of the piston head and the piston skirt is composed of a steel material.
14. A piston for an internal combustion engine, comprising: a piston head and a piston skirt together defining a reciprocating axis; the piston head including a piston crown, a circumferential fire land, a circumferential ring belt including a plurality of ring grooves, and an annular cooling duct disposed radially inwards from the circumferential ring belt with respect to the reciprocating axis, the annular cooling duct configured open in an axial direction away from the circumferential fire land; a closure element at least partially closing the annular cooling duct and defining a cooling duct base positioned away from the circumferential fire land in relation to a cooling duct ceiling, the closure element disposed on the piston head to position the cooling duct base above a lowermost ring groove of the plurality of ring grooves; wherein the annular cooling duct defines a height in the axial direction of the reciprocating axis and a width in a radial direction of the reciprocating axis, and the height of the annular cooling duct is from 0.8 times to 1.7 times the width of the annular cooling duct; and wherein an axial extent between the piston crown and the cooling duct ceiling with respect to the reciprocating axis is from 3% to 7% of a nominal diameter of the piston head.
15. The piston as claimed in claim 14, wherein the closure element extends in the radial direction of the reciprocating axis away from the circumferential ring belt and provides an annular gap at the cooling duct base.
16. A piston for an internal combustion engine, comprising: a piston body having a center axis and a piston ring element coupled to the piston body, the piston body and the piston ring element together defining a piston head; the piston head including a piston crown, a circumferential fire land, a circumferential ring belt including a plurality of ring grooves, and an annular cooling duct disposed radially inwards from the circumferential ring belt with respect to the center axis, the annular cooling duct configured open in an axial direction away from the circumferential fire land; a closure element at least partially closing the annular cooling duct and defining a cooling duct base positioned away from the circumferential fire land in relation to a cooling duct ceiling, the closure element connected integrally with the piston body and arranged on the piston head to provide an annular gap at the cooling duct base; and wherein the closure element positions the cooling duct base at a level between a first ring groove and a second ring groove of the plurality of ring grooves.
17. The piston as claimed in claim 16, wherein the second ring groove is disposed between the first ring groove and a third ring groove of the plurality of ring grooves, and wherein the first ring groove is disposed proximal to the circumferential fire land in relation to the third ring groove.
18. The piston as claimed in claim 16, wherein the piston head further includes a combustion depression disposed radially inwards of the annular cooling duct with respect to the center axis, and wherein the closure element extends in a radial direction of the center axis from a radially outer wall of the combustion depression towards the circumferential ring belt.
19. The piston as claimed in claim 18, wherein the piston body and the piston ring element are coupled to one another via a weld seam disposed in the outer wall of the combustion depression, the closure element arranged integrally connected to a first part of the outer wall of the combustion depression defined by the piston body, and wherein the piston ring element defines a second part of the outer wall of the combustion depression, the piston crown, the fire land, and the circumferential ring belt.
20. The piston as claimed in claim 16, wherein the piston body includes a piston skirt, and wherein a compression height defined by the piston head together with the piston skirt is from 38% to 45% of a nominal diameter of the piston head.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following text, exemplary embodiments of the present invention will be explained in greater detail on the basis of the appended drawings, in which, in a diagrammatic illustration which is not true to scale:
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DETAILED DESCRIPTION
(12)
(13) The piston 10 has a piston head 11 with a piston crown 12 which has a combustion depression 13, an encircling fire land 14 and an encircling ring belt 15 with ring grooves 16, 17, 18 for receiving piston rings (not shown). An encircling cooling duct 19 is provided at the level of the ring belt 15.
(14) Furthermore, the piston 10 has a piston skirt 21 which is thermally decoupled from the piston head 11 and which has piston bosses 22 and boss bores 23 for receiving a piston pin (not shown). The piston bosses 22 are connected via boss attachments 24 to the underside of the piston head 11. The piston bosses 22 are connected to one another via running faces 25.
(15) The cooling duct 19 is formed so as to be open toward the bottom and is closed by way of a separate closure element 35, a closure plate in the exemplary embodiment. The closure element 35 is fastened to the piston head 11 in a manner known per se below the ring belt 15 and extends in the direction of the combustion depression 13 in such a way that the annular free end of the closure element 35 forms an encircling annular gap 36 together with the outer wall of the combustion depression 13.
(16) It is self-evidently possible for the annular gap 36 to be dispensed with. Instead, in a manner known per se, the cooling duct 19 may be completely closed off by the closure element 35, with inlet and outlet openings for cooling oil being provided in the closure element 35.
(17) The closure element 35 is curved in the direction of the piston crown 12 in such a way that a cooling duct base 26 is formed which lies approximately at the level of the second ring groove 17 in the exemplary embodiment. The cooling duct base 26 may also be arranged between the first ring groove 16 and the second ring groove 17.
(18) Furthermore, the cooling duct 19 has a cooling duct ceiling 27.
(19) In the exemplary embodiment, the compression height KH is between 38% and 45% of the nominal diameter DN of the piston head 11.
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(21) The main difference between the piston according to
(22)
(23) The pistons 210, 310 are constructed in a similar way to the piston 10 according to
(24) The main differences consist firstly in the design of the piston main body 231, 331 and of the piston ring element 132, 332 and secondly in the fact that the pistons 210, 310 have a closure element 235, 335 of different design in comparison with the piston 10 according to
(25) Both exemplary embodiments have in each case one closure element 235, 335 in the form of an encircling flange which is connected in one piece to the piston main body 231, 331. Each closure element 235, 335 extends in the direction of the ring belt 15 in such a way that the free end of each closure element 235, 335 forms an encircling annular gap 236, 336 together with the inner wall of the ring belt 15.
(26) The piston 210 (illustration to the right of the center line M) is composed of a piston main body 231 and a piston ring element 232. In the exemplary embodiment, the piston ring element 232 comprises a part of the depression wall and the depression edge of the of the combustion depression 13 and also the piston crown 12, the fire land 14 and the ring belt 15. The piston ring element 232 may be connected to the piston main body 131 in particular by way of a welding process, for example electron beam welding, laser welding or friction welding, wherein the welded seam 233 is arranged in the in the depression wall of the combustion depression 13.
(27) The piston 310 (illustration to the left of the center line M) (cf. also the enlarged partial illustration in
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(29) The main difference consists in that the closure element 435 is formed in the manner of an encircling flange which is connected in one piece to the piston ring element 432. The closure element 435 extends in the direction of the combustion depression 13 in such a way that the free end of the closure element 435 forms an encircling annular gap 436 together with the outer wall of the combustion depression 13.
(30) The piston 410 is likewise composed of a piston main body 431 and a piston ring element 432. In the exemplary embodiment, the piston ring element 432 comprises a part of the depression wall and the depression edge of the of the combustion depression 13 and also the piston crown 12, the fire land 14 and the ring belt 15. In the exemplary embodiment, the piston ring element 432 is connected to the piston main body 431 by way of friction welding, wherein the welded seam 433 is arranged in the in the depression wall of the combustion depression 13.
(31)
(32) The combustion depression 13 is provided with an undercut 29, in order to define the wall thickness between the combustion depression 13 and the cooling duct 19 (see below in this regard).
(33) It is preferred that the height h of the fire land 14 is at most 9% of the nominal diameter DN of the piston head 11 (see
(34) On the basis of this dimension rule for the fire land 14, it is preferred that the spacing a between the piston crown 12 and the cooling duct base 26 is between 11% and 17% of the nominal diameter DN of the piston head 11 (see
(35) Moreover, it is preferred that the height c of the cooling duct 19 is 0.8 times to 1.7 times its width d. Said dimension rule yields an optimum volume of the cooling duct 19 and an optimum orientation relative to the hot combustion depression 13, in particular relative to the depression edge, and relative to the hot piston crown 12 and relative to the relatively cool ring grooves 16, 17, 18.
(36) Finally, it is preferred that the spacing b between the piston crown 12 and the cooling duct ceiling 27 is between 3% and 7% of the nominal diameter DN of the piston head 11 (cf.
(37) Ultimately, it is preferred that the smallest wall thickness w in the radial direction between the combustion depression 13 and the cooling duct 19 is between 2.5% and 4.5% of the nominal diameter DN of the piston head 11. An improved thermal transfer between the combustion depression 13 and the cooling duct 19 is achieved in this way.
(38)
(39) In
(40) According to the present invention (
(41) In the prior art (
(42) As a consequence, considerably improved cooling of the piston head in relation to the prior art is realized in the case of the piston according to the invention.