Piston of an internal-combustion engine
11111878 · 2021-09-07
Assignee
Inventors
Cpc classification
F02F3/0069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F7/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F2003/0061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02F3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A piston of an internal-combustion engine may include a piston head and a piston skirt, a cooling duct circulating in the piston head, a boss for receiving a piston pin, and a feed hopper for supplying cooling oil into the cooling duct. The feed hopper may be fastened to another component of the piston via a retaining lug by at least one of a material closure, a force closure, and a positive closure.
Claims
1. A piston of an internal-combustion engine, comprising: a piston head and a piston skirt; a cooling duct circulating in the piston head; a boss for receiving a piston pin; and a feed hopper for supplying cooling oil into the cooling duct; wherein the feed hopper is fastened to another component of the piston via a retaining lug by at least one of a material closure, a force closure, and a positive closure; wherein the retaining lug is L-shaped with an L-shank extending in a peripheral direction of the piston.
2. The piston according to claim 1, wherein the feed hopper is fastened via the retaining lug to an inside of the piston skirt or to the boss.
3. The piston according to claim 1, further comprising a slipper-skirt wall, wherein the feed hopper is fastened via the retaining lug to the slipper-skirt wall.
4. The piston according to claim 1, wherein the retaining lug is integrally formed with the feed hopper.
5. The piston according to claim 1, wherein the cooling duct has a feed aperture through which the feed hopper protrudes.
6. The piston according to claim 1, further comprising a cooling-duct cover that includes a feed aperture through which the feed hopper protrudes.
7. The piston according to claim 6, wherein the feed hopper is not in contact with the cooling-duct cover.
8. The piston according to claim 5, further comprising a sealing element which at least partially closes a gap between the feed hopper and an edge of the feed aperture.
9. The piston according to claim 1, wherein the feed hopper has a diverting device via which cooling oil injected into the feed hopper is diverted in a peripheral direction of the cooling duct.
10. The piston according to claim 1, wherein the feed hopper is a slotted sheet-metal shaped part.
11. An internal-combustion engine comprising at least one piston including: a piston head and a piston skirt; a cooling duct circulating in the piston head; a boss for receiving a piston pin; and a feed hopper for supplying cooling oil into the cooling duct; wherein the feed hopper is fastened to an inside of the piston skirt or to the boss via a retaining lug by at least one of a material closure, a force closure, and a positive closure.
12. The internal-combustion engine according to claim 11, wherein the at least one piston further includes a slipper-skirt wall, and wherein the feed hopper is fastened via the retaining lug to the slipper-skirt wall.
13. The internal-combustion engine according to claim 11, wherein at least one of: the retaining lug is L-shaped with an L-shank extending in a peripheral direction of the piston; and the retaining lug is integrally formed with the feed hopper.
14. The internal-combustion engine according to claim 11, wherein the cooling duct has a feed aperture through which the feed hopper protrudes.
15. The internal-combustion engine according to claim 11, wherein the at least one piston further includes a cooling-duct cover that includes a feed aperture through which the feed hopper protrudes.
16. The internal-combustion engine according to claim 15, wherein the feed hopper is not in contact with the cooling-duct cover.
17. The internal-combustion engine according to claim 14, wherein the at least one piston further includes a sealing element which at least partially closes a gap between the feed hopper and an edge of the feed aperture.
18. The internal-combustion engine according to claim 11, wherein the feed hopper has a diverting device via which cooling oil injected into the feed hopper is diverted in a peripheral direction of the cooling duct.
19. A piston of an internal-combustion engine, comprising: a piston head and a piston skirt; a cooling duct circulating in the piston head; a boss for receiving a piston pin; and a feed hopper for supplying cooling oil into the cooling duct; wherein the feed hopper is fastened to another component of the piston via a retaining lug by at least one of a material closure, a force closure, and a positive closure; wherein the retaining lug is L-shaped with an L-shank extending in a peripheral direction of the piston; and wherein the cooling duct has a feed aperture through which the feed hopper protrudes.
20. A piston of an internal-combustion engine, comprising: a piston head and a piston skirt; a cooling duct circulating in the piston head; a boss for receiving a piston pin; and a feed hopper for supplying cooling oil into the cooling duct; wherein the feed hopper is fastened to another component of the piston via a retaining lug by at least one of a material closure, a force closure, and a positive closure; wherein the retaining lug is formed integrally with the feed hopper; and wherein the feed hopper is a slotted sheet-metal shaped part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Shown in the drawings, in each instance schematically, are:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Corresponding to
(8) The retaining lug 10 in this case preferentially exhibits a shape designed to be complementary to the region of the piston 1 against which the retaining lug 10 bears when the feed hopper 9 has been mounted, so that a planar abutment of the feed hopper 9, via its retaining lug 10, against the piston 1 is made possible. A connection of the retaining lug 10 to the piston 1 can be effected, for instance, with the aid of gluing, welding, soldering, or screwing or riveting.
(9) If the retaining lug 10 is considered more closely, it can be discerned that it exhibits an L-shaped form, wherein a lower L-shank extends in the peripheral direction of the piston 1, whereas the vertical L-shank extends almost parallel to the piston axis. By this means, a particularly stiff and good fastening of the feed hopper 9 to the piston 1 can be obtained.
(10) If
(11) In the present case, in all the practical forms shown the cooling duct 7 takes the form of an open cooling duct and possesses a feed aperture 12 through which the feed hopper 9 protrudes. The cooling duct 7 has been closed in the direction of the piston skirt 4 by means of a cooling-duct cover 13 in which the feed aperture 12 has been arranged. The feed hopper 9 in this case is preferentially not in contact with an edge of the feed aperture 12 but passes through the feed aperture 12 into the cooling duct 7 in contactless manner.
(12) In another advantageous practical form of the solution according to the invention, the feed hopper 9 exhibits a diverting device 16 via which cooling oil injected into the feed hopper 9 is diverted in the peripheral direction of the cooling duct 7 and thereby can be uniformly distributed in said cooling duct, as a result of which a uniform and efficient cooling of the piston 1 can be obtained. In addition, the feed hopper 9 may take the form of a slotted sheet-metal shaped part, as a result of which said feed hopper can be produced not only inexpensively but also in fully automated manner and hence in high quality. The slotted practical form in this case is to be discerned from the slot 14 of the feed hopper 9.
(13) If
(14) Purely theoretically, the feed hopper 9 also does not have to exhibit an actual hopper shape at all but may also take the form of a deflector plate, so it does not have to possess a conical shape but may also take the form of a simple, obliquely inclined or bent pipe or metal sheet. Via the retaining lug 10 according to the invention, the fastening of such geometrical shapes is also possible comparatively easily. By virtue of the piston 1 according to the invention, in addition it is also possible to provide larger and heavier feed hoppers 9, since they have no longer been fastened to the cooling-duct cover 13 as hitherto, they no longer even touch the latter, so the latter can be designed to be thinner and hence lighter, since it no longer has to take up any mass-induced inertial forces of the feed hopper 9.
(15) If
(16) Generally, with the piston 1 according to the invention and with the feed hopper 9 according to the invention it is also possible to fit said feed hopper independently of, for instance, a joint of two cooling-duct-cover metal sheets constituting the cooling-duct cover 13.