The present invention relates to an annular cooling channel cover for a piston of an internal combustion engine, which annular cooling channel cover is made from an elastic material and has two end faces which lie opposite one another, at least two end regions which lie opposite one another forming a joint gap, at least one feed element for cooling oil, which feed element has an inlet region and an outlet region, being received in an opening which is provided in the cooling channel cover and being held on the cooling channel cover by way of a clipped-in latching connection. Furthermore, the present invention relates to a piston which is provided with a cooling channel cover of this type.
A cooling channel cover of the generic type is known from EP 1 238 191 B1. Said known cooling channel cover has a feed element which is elastic per se, is received in an opening which is provided in the cooling channel cover, and is fastened thereto by means of a latching connection or by way of being clipped in. For mounting purposes, the known feed element is deformed elastically inward, in order for it to be possible to guide it through the opening in the cooling channel cover. This necessitates the known feed element being provided merely with very small solid latching lugs and bearing faces which have only very little contact with the cooling channel cover. Secure operation of a piston which is provided with a cooling channel cover of this type is not ensured reliably on account of the forces which occur on the latching lugs and bearing faces during engine operation and the associated wear in the region of the latching lugs and bearing faces.
Furthermore, the cooling channel cover of the generic type has at least one joint gap. A joint gap or joint gaps is/are necessary firstly, in order for it to be possible to compensate for the dimensional and positioning tolerances which occur here during the mounting of the part covers on the piston. Secondly, the at least one joint gap causes uncontrolled discharge of cooling oil from the cooling channel, as a result of which the cooling action of the cooling oil is reduced.
The object of the present invention therefore consists in developing a cooling channel cover of the generic type in such a way that, in the case of simplified mounting on the piston, secure operation of a piston which is provided with said cooling channel cover is ensured, without the mass of the feed element and therefore the inertia forces which act during engine operation being increased excessively. Furthermore, uncontrolled discharge of cooling oil out of the cooling channel is to be avoided as completely as possible.
The solution consists in that at least one opening for receiving at least one feed element is provided in an end region which is arranged adjacently with respect to a joint gap, in that the at least one feed element has, on the inlet region, two spring clips which extend radially outward in the circumferential direction of the cooling channel cover and, on the outlet region, two latching elements which are elastic radially in the circumferential direction of the cooling channel cover, and in that the two latching elements bear against one end face and the two spring clips bear against the opposite end face of the cooling channel cover, in such a way that one spring clip covers the adjacent joint gap, and a closure element which is arranged on the spring clip engages into the joint gap and closes the latter.
Furthermore, the subject matter of the present invention is a piston for an internal combustion engine having a cooling channel cover of this type.
The spring tongues and latching elements which are provided according to the invention have the advantage that, with a low mass, they make greater surface contact possible between the feed element and the cooling channel cover than is the case in the prior art. Since in each case two spring clips and latching elements which lie radially opposite one another in the circumferential direction of the cooling channel cover are provided, the forces which act during engine operation act symmetrically on the feed element. Therefore, the wear during engine operation is reduced considerably in said region in comparison with the prior art. Furthermore, it is no longer necessary to configure the entire feed element to be elastic per se, which substantially increases the strength of the latching connection according to the invention. The at least one joint gap is closed reliably, with the result that uncontrolled discharge of cooling oil out of the cooling channel is avoided. The cooling channel cover according to the invention can be mounted simply on the piston, by first of all the cooling channel cover per se being inserted into the piston and subsequently the at least one feed element being fastened in the at least one opening which is provided for this purpose.
Advantageous developments arise from the subclaims.
The cooling channel cover can consist of two semicircular part covers in such a way that two joint gaps which lie diametrically opposite one another and two openings which lie diametrically opposite one another for receiving in each case one feed element are provided. A cooling channel cover of this type can be inserted into the piston in a particularly simple way.
One preferred development consists in that the latching elements bear with bearing faces and the spring clips bear with bearing faces against the end faces of the cooling channel cover, and in that the size of the bearing faces of the latching elements is from 30% to 60% of the size of the bearing faces of the spring clips. Said preferred development takes into consideration the fact that the acceleration of the piston according to the invention during engine operation is different at the top dead center and bottom dead center, since the maximum acceleration at the top dead center is approximately twice as great as the maximum acceleration at the bottom dead center. Therefore, the different size of the bearing faces of the latching element and the spring clip optimizes the wear behavior in said region.
The closure element preferably extends over the entire width of the spring clip and completely closes the joint gap which is assigned to it, in order to prevent uncontrolled discharge of cooling oil out of the cooling channel.
The inlet region of the feed element is expediently configured so as to be widened in a funnel-shaped manner, in order to optimize the entry of cooling oil which is injected by means of a cooling oil nozzle. The outlet region is preferably configured as a riser, with the result that the cooling oil which exits into the cooling channel is distributed in an optimum manner.
The feed element can have a passage opening with a round cross section. However, the cross section of the passage opening can also be configured so as to be greater in the circumferential direction of the cooling channel cover than in the radial direction of the cooling channel cover, in order to increase the intake capacity of the feed element for cooling oil.
The feed element can consist of a plastic and/or a metallic material, it being necessary for merely the at least one spring clip or the at least one latching element to be of elastic configuration.
The cooling channel cover can be manufactured, in particular, from a spring plate.
Exemplary embodiments of the present invention will be described in greater detail in the following text using the appended drawings, in which, in a diagrammatic illustration which is not true to scale:
Two spring clips 54, 55 which lie opposite one another are arranged on the inlet region 51 in the vicinity of the outlet region 52, which spring clips 54, 55 are configured so as to be elastic in the direction of the arrows A and extend radially outward and, in the mounted state, in the circumferential direction of the cooling channel cover 30, 130 (see
Two latching elements 56, 57 which lie opposite one another and are elastic radially in the direction of the arrows B are provided at the upper end of the outlet region 52, which latching elements 56, 57 extend in the direction of the inlet region 51, and the free ends of which latching elements 56, 57 assume a defined spacing from the spring clips 54, 55, which spacing is dependent on the thickness of the cooling channel cover 30, 130. It can be seen from
For mounting purposes, the cooling channel cover 30, 130 is first of all connected in a manner known per se to the piston 10, in order to close the cooling channel 16. In the exemplary embodiment, the openings 41 or 141 and 142 are generally arranged very closely on the outer wall of the piston bosses 18. This means that the spring clips 54, 55 protrude beyond the outer wall of the piston bosses 18 in the view from below. For mounting purposes, the feed element 50 is first of all moved axially past the outer wall of the piston bosses 18 in the direction of the piston crown. As soon as the spring clips 54, 55 come to lie on the side and above the outer wall of the piston bosses 18, a relative movement takes place in a plane parallel to the piston crown 12, until the feed element 50 is flush with the opening 41 or 141, 142 of the cooling channel cover 30, 130 and the spring clips 54, 55 are oriented in the circumferential direction of the cooling channel cover 30, 130, and such that in each case one spring clip 54 covers a joint gap 37 or 137, 138. Then, with compression of the latching elements 56, 57, the outlet region 52 of the feed element 50 is guided in the piston axial direction through the opening 41 or 141 and 142, until the spring clips 54, 55 bear against the end faces 34 or 134, 136 of the cooling channel cover 30, 130 and the closure elements 61 engage into the joint gaps 37 or 137 and 138. As soon as the latching elements 56, 57 have passed completely through the openings 41 or 141, 142, they snap back into their original position. The cooling channel cover 30, 130 is then arranged between the bearing faces 58 of the spring clips 54, 55 and the bearing faces 59 of the latching elements 56, 57. The feed element 50 is held fixedly on the cooling channel cover 30, 130 and is supported by way of its bearing faces 58, 59 on the cooling channel cover 30, 130 (see
Number | Date | Country | Kind |
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10 2014 015 947.7 | Oct 2014 | DE | national |
This application claims priority to German Patent Application No. 10 2014 015 947.7, filed on Oct. 30, 2014, and International Patent Application No. PCT/EP2015/074784, filed on Oct. 27, 2015, the contents of which are hereby incorporated by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2015/074784 | 10/27/2015 | WO | 00 |