VALVE FOR INTERNAL COMBUSTION ENGINES HAVING A GUIDE VANE FOR COOLANT
20180274401 ยท 2018-09-27
Inventors
Cpc classification
F01L3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K49/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2303/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2301/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2303/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An internally cooled inlet or outlet valve for internal combustion engines, has a valve disc, a valve stem and a cavity inside the valve stem and the valve disc. A coolant is arranged in the cavity, wherein the cavity is provided with at least one guide vane for the coolant.
Claims
1. An internally cooled valve (4) for internal combustion engines, comprising a valve disc (6), a valve stem (8), and a cavity (10) inside the valve stem (8) and the valve disc (6), and a coolant (12), which is arranged in the cavity (10), characterized in that the cavity (10) is provided with at least one guide vane (14, 16) for the coolant (12).
2. The internally cooled valve (4) for internal combustion engines according to claim 1, wherein the coolant (12) is sodium.
3. The internally cooled valve (4) for internal combustion engines according to claim 1 or 2, wherein the valve is in at least two parts and has an opening (18) on the valve-disc surface (22), which is closed with a lid (20).
4. The internally cooled valve (4) for internal combustion engines according to claim 3, characterized in that the lid (20) is provided with the at least one guide vane (14, 16) for the coolant (12).
5. The internally cooled valve (4) for internal combustion engines according to claim 4, characterized in that the lid (20) comprises at least two guide vanes (14, 16), which extend symmetrically and spirally outwards from a centre of the lid (20).
6. The internally cooled valve (4) for internal combustion engines according to one of the preceding claims 3 to 5, characterized in that the lid (20) comprises a conical structure (26) in the centre, in order to conduct the coolant (12) onto the guide vanes (14, 16).
7. The internally cooled valve (4) for internal combustion engines according to one of the preceding claims, characterized in that the at least one guide vane (14, 16) has a triangular cross section.
8. The internally cooled valve (4) for internal combustion engines according to one of the preceding claims, characterized in that the at least one guide vane (14, 16) has a height in each case which is smaller than half of the height of the cavity (10) for the coolant (12).
9. The internally cooled valve (4) for internal combustion engines according to claim 7 or 8, characterized in that one side of the at least one guide vane (14, 16) runs perpendicularly to the disc surface.
10. The internally cooled valve (4) for internal combustion engines according to one of the preceding claims, characterized in that the at least one guide vane (16) runs helically in the stem.
11. The internally cooled valve (4) for internal combustion engines according to claim 10, characterized in that the at least one helical guide vane (16) has a triangular cross section.
12. The internally cooled valve (4) for internal combustion engines according to claim 11, characterized in that a side face of the at least one helical guide vane (16) has an area at least 6-times larger than another side of the at least one helical guide vane (16).
13. The internally cooled vale (4) for internal combustion engines according to one of the preceding claims, characterized in that the valve stem (8) is realized in multiple parts, wherein at least one part (28) of the valve stem (8) has a through opening (30).
14. The internally cooled valve (4) for internal combustion engines according to one of the preceding claims 3 to 13, characterized in that the lid (20) is additionally provided with at least one relief groove (34), which relieves a joint (32) between the opening (18) of the valve disc surface (22) and the lid (20).
Description
[0024] In the following, the present invention is explained in more detail on the basis of illustrations of exemplary embodiments. The figures only constitute schematic illustrations.
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[0036] Both in the description and in the figures, the same or similar reference numbers are used in order to refer to the same or similar components and elements. In order to avoid excessive length of the description, elements which have already been described in one figure are not mentioned separately in further figures.
[0037]
[0038] Internally, the valve is provided with a cavity 10, which is filled with a coolant 12. Sodium is usually used as coolant, which is present in a liquid state at operating temperatures of the internal combustion engine. Usually, not all of the cavity, but only to of the cavity of the valve is filled with sodium. During operation, the sodium in moves up and down in the valve stem 8 or in the cavity 10 of the valve stem 8 and in the process transports heat from the valve disc 6 in the direction of the cooled valve stem 8 (shaker cooling). In this case, the sodium moves during each opening or closing procedure inside the valve 2. The cavity 10 was created in the valve 2 in that the valve disc 6 was provided with an opening 18 on the valve disc surface 22. The cavity 10 was introduced into the valve disc 6 and the valve stem 8 through the opening 18. It is likewise possible at least to some extent to drill the cavity from the valve stem end and to close this cavity by means of a valve stem end connected by means of friction welding, for example. After the welding of the lid, the sodium can be poured in through a bore, for example on the valve stem. The bore can also be closed by means of a valve stem end which is placed and welded on. However, it is likewise possible, after pouring in the sodium coolant 12, to close the opening 18 by means of a lid 20. The lid was joined to the valve disc by means of laser welding, electron-beam welding or resistance welding. The valve-disc rear side 24 and the upper end of the valve stem do not have joints in this design and the valve disc can be produced in one piece with the valve stem. In addition, it is possible to connect the valve stem and the valve disc or the valve head to one another by means of a weld seam, for example by means of friction welding. However, it is likewise possible to fill the cavity of the valve through the stem or through a bore in the valve stem and then to close the bore. It is likewise possible to fasten the lid on the valve disc by means of friction welding.
[0039]
[0040] Guide vanes 14 are arranged at the edge of the conical structure 26, which conduct an outwardly flowing coolant into a rotational flow about a valve axis (which runs through the centre of the valve stem 8). A better heat transfer between the coolant 12 and the valve disc 6 should be achieved as a result. As soon as the valve is closed again, the coolant 12 flows back into the valve stem 8, where it is cooled in the region of the valve guide by means of the cylinder head. Ideally, the rotational flow is maintained even in the case of a movement of the coolant in the direction of the stem end, as a result of which even the cooling process can be improved in the upper stem region.
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[0042] It is likewise possible to design the helical guide vanes such that a coolant flowing in the direction of the shaft end is moved in a rotational flow. In this case, a guide vane geometry should be chosen, which influences a downwardly flowing coolant as little as possible.
[0043] In the illustrated embodiment, dashed lines are indicated. The helical guide vane can likewise be combined with a lid, which comprises a conical structure 26 and/or further guide vanes 14. In this design, the rotational flow of the coolant can be generated or maintained both during an upwards and during a downwards movement.
[0044] The valve depicted in
[0045] It is likewise possible however to create the guide vanes by drawing, wherein a so-called drawing knife is drawn through the valve stem, wherein wither the clamped stem or a drawing rod are rotated with the knife in order to achieve the helical turns. In this case, a plurality of work steps are necessary until the guide vane(s) are introduced by means of the machining of the valve stem. In this case, the guide vanes can be smoothed by lapping.
[0046] It is likewise possible to create the helical guide vanes by button drawing. During button drawing, a metal piece, the so-called button, which has the inverse profile of the cavity or the guide vane on the outside, is drawn through the valve stem. A plurality of drawing steps may be necessary. It may likewise be necessary to straighten the valve stem after these work steps.
[0047] It is likewise possible to beat the valve stem, wherein the valve stem blank is provided with a larger through hole, the surface of which is additionally honed. Subsequently, a high-strength dome is introduced into the valve stem, the outside of which has the negative profile of the guide vane(s). Externally arranged forging hammers compress the material until the guide vane(s) have been impressed in the interior of the stem. In this case, an exact, smooth and resistant surface is created in the interior, so that no further post-processing is required.
[0048] After the introduction of the helical guide vanes, the valve stem can be closed at the top with a part, which forms the stem end, and at the bottom with a lid according to
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[0059] In
[0060] It should be clear that here both internally and internally in each case, a plurality of relief grooves can be used, in order to increase the elasticity at the edge of the lid 20. It is likewise provided to combine all individual features of the figures for further embodiments. Thus, for example, the guide vanes of the lid can be combined with corresponding helical guide vanes in the valve stem. It is likewise possible to combine the helical guide vanes in the valve stem with a lid, which is provided with relief grooves 34. It is in addition provided to arrange a guide vane in the valve stem, which moves a coolant moving upwards in the direction of the valve stem end in a rotational flow about a valve axis. It may likewise be provided to allow the helical guide vanes to terminate upstream of an upper end of the valve stem, in order to disturb a rotational flow close to the stem end as little as possible.
REFERENCE LIST
[0061] 2 Internally cooled valve according to the prior art [0062] 4 Internally cooled valve according to the invention [0063] 6 Valve disc [0064] 8 Valve stem [0065] 10 Cavity [0066] 12 Coolant [0067] 14 Guide vanes for the coolant [0068] 16 Helical guide vanes for the coolant [0069] 18 Opening [0070] 20 Lid [0071] 22 Valve disc surface [0072] 24 Valve disc rear side [0073] 26 Conical structure [0074] 28 Part of the valve with through opening [0075] 30 Through opening [0076] 32 Joint [0077] 34 Relief groove [0078] 36 Stem end