Cylinder of an Internal Combustion Engine
20210381597 ยท 2021-12-09
Inventors
Cpc classification
F02F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/203
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16J9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cylinder of an internal combustion engine, having a cylinder liner and a cylinder piston guided in the cylinder liner The cylinder piston has multiple ring grooves delimited by ring webs and are separated by the ring webs. Each ring grooves receives a compression ring or an oil scraping ring. Each ring groove is delimited by an upper groove flank, a lower groove flank and a groove base, and each piston ring has a lower ring flank, an upper ring flank a ring back and a section which rests against a radially inner running surface of the cylinder liner. A depression is introduced into the lower groove flank of the at least one ring groove or each ring groove which receives a compression ring and/or into the lower ring flank of the piston ring designed as a compression ring.
Claims
1.-15. (canceled)
16. A cylinder of an internal combustion engine, comprising: a cylinder liner; a cylinder piston guided in the cylinder liner, comprising: multiple ring grooves, wherein each ring groove is limited by an upper groove flank, a lower groove flank, and a groove base, ring lands that limit the multiple ring grooves and separate the multiple ring grooves from one another; a piston ring formed as compression ring or as oil scraper ring received in each of the multiple ring grooves, wherein each piston ring comprises: a lower ring flank facing the lower groove flank of a respective ring groove; an upper rink flank facing the upper groove flank of the respective ring groove; a ring back facing the groove base of the respective ring groove; and a portion located opposite the ring back lying against a radially inner running surface of the cylinder liner; and a recess is introduced into at least one of: the lower groove flank of at least one ring groove receiving a piston ring formed as compression ring; and the lower ring flank of at least one piston ring formed as compression ring.
17. The cylinder according to claim 16, wherein a recess is introduced exclusively into the lower groove flank of at least one ring groove receiving a respective piston ring formed as compression ring.
18. The cylinder according to claim 16, wherein a recess is introduced exclusively into the lower ring flank of at least one piston ring formed as a compression ring.
19. The cylinder according to claim 16, wherein respective recesses are introduced into: the lower groove flank of the at least one ring groove receiving the piston ring formed as compression ring and the lower ring flank of the at least one piston ring formed as compression ring.
20. The cylinder according to claim 19, wherein the recesses formed in the lower groove flank of the respective ring groove and in the lower ring flank of the respective piston ring overlap one another in a radial direction.
21. The cylinder according to claim 19, wherein the recesses formed in the lower groove flank of the respective ring groove and the recesses formed in the lower ring flank of the respective piston ring do not overlap one another in a radial direction.
22. The cylinder according to claim 16, wherein the respective recess circulates in a circumferential direction.
23. The cylinder according to claim 16, wherein the respective recess has a radial width between 0.05 times and 0.9 times a radial depth of the respective ring groove.
24. The cylinder according to claim 23, wherein the radial width of a respective recess is between at least one of: 0.1 times and 0.5 times the radial depth of the respective ring groove, and 0.25 times and 0.35 times the radial depth of the respective ring groove.
25. The cylinder according to claim 16, wherein a respective recess has an axial depth that is greater than zero and smaller than an axial thickness of a respective piston ring.
26. The cylinder according to claim 25, wherein the axial depth of the respective recess amounts to between at least one of: 0.1 mm and 1.0 mm, and 0.3 mm and 0.7 mm.
27. The cylinder according to claim 16, wherein a distance between a radial center of the recess and the ring back of a respective piston ring is greater than zero and smaller than a radial thickness of the respective piston ring minus 0.5 mm.
28. The cylinder according to claim 27, wherein the distance between the radial center of the recess and the ring back of the respective piston ring is between at least one of: 0.3 times and 0.7 times the radial thickness of the respective piston ring, and 0.45 times and 0.55 times the radial thickness of the respective piston ring.
29. The cylinder according to claim 16, wherein a distance between a radially outer end of the recess and a radially outer end of a respective ring groove is greater than zero.
30. The cylinder according to claim 16, wherein a respective piston ring comprises at least one passage, which connects a respective recess to a chamber between the upper groove flank of the respective ring groove and the upper rink flank of the respective piston ring or to a chamber between the groove base of the respective ring groove and the ring back of the respective piston ring.
31. A cylinder piston configured to be guided in a cylinder liner, comprising: multiple ring grooves, wherein each ring groove is limited by an upper groove flank, a lower groove flank, and a groove base, ring lands that limit the multiple ring grooves and separate the multiple ring grooves from one another; and a recess is introduced into the lower groove flank of at least one ring groove configured to receive a piston ring formed as compression ring.
32. A piston ring formed as compression ring configured to be received in a ring groove of a cylinder piston, comprising: a lower ring flank configured to face a lower groove flank of the ring groove; an upper rink flank configured to face an upper groove flank of the ring groove; a ring back configured to face a groove base of the ring groove; and a portion located opposite the ring back configured to lay against a radially inner running surface of a cylinder liner; and a recess is introduced into the lower ring flank of at least one piston ring formed as compression ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Preferred further developments of the invention are obtained from the subclaims and the following description. Exemplary embodiments of the invention are explained in more detail by way of the drawing without being restricted to this. There it shows:
[0012]
[0013]
[0014]
[0015]
[0016]
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[0018]
[0019]
DETAILED DESCRIPTION OF THE PRESENTLY PREFERRED EMBODIMENTS
[0020] The invention relates to a cylinder of an internal combustion engine.
[0021] The cylinder piston 12 has a radially outer surface 15 which with a radially inner running surface 16 of the cylinder liner limits a running gap 17. This running gap 17 for the cylinder piston 12 has to be sealed gas-tight on the one hand while on the other hand it has to be avoided that oil enters the combustion chamber 14 of the cylinder via this running gap 17.
[0022] The ring grooves 18, which are spaced from one another or separated from one another by ring lands 19, are introduced into the cylinder crown 12. Each ring groove 18 receives a piston ring 20, namely either a piston ring 20 formed as compression ring 21 or a piston ring 20 formed as oil scraper ring 22. In the shown exemplary embodiments, compression rings 21 are received in two upper ring grooves 18 each and an oil scraper ring 22 each in a lower ring groove 16.
[0023] Each ring groove 18 is limited by an upper groove flank 23, a lower groove flank 24, and a groove base 25 radially inside.
[0024] Each piston ring 20 received in a ring groove 18 is limited by an upper ring flank 26, a lower ring flank 27, a ring back 28, and a portion 29 located opposite the ring back 28.
[0025] The upper ring flank 26 of the piston ring 20 is located opposite the upper groove flank 23 of the respective ring groove 18. The lower ring flank 27 of the respective piston ring 20 is located opposite the lower groove flank 24 of the respective ring groove 18. The ring back 28 of the respective piston ring 20 is located opposite the respective groove base 25 of the respective ring groove 18. With the portion 29 of the piston ring 20 located opposite the ring back 28, which projects into the running gap 20, the respective piston ring 20 thus comes to lie against the running surface 16 of the cylinder liner 11.
[0026] As is shown in particular in
[0027] According to one aspect of the invention, recesses 30 and 31 respectively are introduced into the lower groove flank 24 of at least the ring groove 18 receiving the piston ring 20 formed as compression ring 21 and/or in the lower ring flank 27 at least of the piston ring 20 formed as compression ring 21. Accordingly, in the exemplary embodiment of
[0028] Preferentially, the recesses 30, 31 are embodied circulating in the circumferential direction. However it is also possible that the recesses 30, 31 are interrupted in defined circumferential positions.
[0029] The respective recess 30, 31 has a radial width X3 and an axial depth Y3. The axial width X3 of the respective recess 30, 31 amounts to between 0.05 times and 0.9 times the radial depth X1 of the respective ring groove 18. Preferably, the radial width X3 of the respective recess 30, 31 amounts to between 0.1 times and 0.5 times, particularly preferably between 0.25 times and 0.35 times the radial depth X1 of the respective ring groove 18.
[0030] The axial depth Y3 of the respective recess 30, 31 is greater than zero and smaller than the axial thickness Y2 of the respective piston ring 20. Preferably, this axial depth Y3 of the respective recess 30, 31 amounts to between 0.1 mm and 1.0 mm, particularly preferably between 0.3 mm and 0.7 mm. The axial depth Y3 of the respective recess 30, 31 amounts to at least 0.01 mm, preferably at least 0.05 mm.
[0031] The respective recess 30, 31, furthermore, is characterized by a distance X4 of the radial center of the same to the ring back 28 of the respective piston ring 20 and by the distance X5 between the radially outer end of the respective recess 30, 31 and the radially outer end of the respective ring groove 18.
[0032] The distance X4 between the radial center of the respective recess 30, 31 and the ring back 28 of the respective piston ring 20 is greater than zero and smaller than the radial thickness X2 of the respective piston ring minus 0.5 mm. Preferably, this distance X4 between the radial center of the respective recess 30, 31 and the ring back of the respective piston ring 20 amounts to between 0.3 times and 0.7 times, particularly preferably between 0.45 times and 0.55 times the radial thickness X2 of the respective piston ring.
[0033] The distance X5 between the radially outer end of the respective recess 30, 31 and the radially outer end of the respective ring groove is greater than zero, preferably greater than 0.05 mm, particularly preferably greater than 0.1 mm.
[0034] In all exemplary embodiments, a defined pressure compensation between an upper ring flank 26 and a lower ring flank 27 of the respective piston ring 20 can be ensured. A force, which is required during a cycle for lifting the respective piston ring 20 off the respective lower groove flank 24 of the ring groove 18 receiving the respective piston ring 20, can thus be reliably and easily reduced.
[0035] As is usual in the prior art, the piston rings 20 are slit in a circumferential position.
[0036] Further developments of the invention are shown by
[0037] Thus, while there have shown and described and pointed out fundamental novel features of the invention as applied to a preferred embodiment thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention. For example, it is expressly intended that all combinations of those elements and/or method steps which perform substantially the same function in substantially the same way to achieve the same results are within the scope of the invention. Moreover, it should be recognized that structures and/or elements and/or method steps shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.