Cylinder head for an internal combustion engine
11542887 · 2023-01-03
Assignee
Inventors
Cpc classification
F02F1/242
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A cylinder head for an internal combustion engine with at least one cylinder has a cooling duct system which has a coolant inlet side and a coolant outlet side, a combustion chamber section, two coolant-inlet-side gas ducts, two coolant-outlet-side gas ducts and two adjacent component openings, such as a spark plug opening and an injection nozzle opening. The cylinder head has an annular wall section provided between the component openings, on the one hand, and the gas ducts, on the other hand. The cooling duct system has a web cooling duct which runs into the annular wall section, extends between the coolant-inlet-side gas ducts and has an upper wall. The upper wall has a guiding surface which is directed obliquely downwards in the region of the annular wall section in order to deflect coolant in the direction of the combustion chamber section.
Claims
1. A cylinder head for an internal combustion engine having at least one cylinder, comprising: a cooling duct system which has a coolant-inlet side and a coolant-outlet side, a combustion chamber section, two coolant-inlet-side gas ducts, two coolant-outlet-side gas ducts, and two adjacent component openings, wherein the coolant-inlet-side gas ducts, the coolant-outlet-side gas ducts and the component openings all lead into the combustion chamber section, the cylinder head has an annular wall section which is provided between the component openings, on the one hand, and the gas ducts, on the other hand, the cooling duct system has a web cooling duct which runs into the annular wall section, extends between the coolant-inlet-side gas ducts and has an upper wall, the upper wall has a guiding surface at a highest point of the upper wall, the guiding surface being directed obliquely downward in a region of the annular wall section, in order to deflect coolant in the direction of the combustion chamber section, the cooling duct system has at least one outer cooling duct which runs to above one of the two coolant-inlet-side gas ducts and forms an upper cooling duct, in the half of the annular wall section which faces coolant-outlet-side ducts, the web cooling duct leads into the upper cooling duct, and the upper wall rises again before the web cooling duct leads into the upper cooling duct.
2. The cylinder head as claimed in claim 1, wherein the web cooling duct rises between the coolant-inlet-side gas ducts.
3. The cylinder head as claimed in claim 1, wherein the upper wall rises between the coolant-inlet-side gas ducts, reaches its highest point on the coolant-inlet side before a center axis of the annular wall section, and drops down toward the coolant-outlet side.
4. The cylinder head as claimed in claim 1, wherein the upper wall is partially wave-shaped with at least one wave crest.
5. The cylinder head as claimed in claim 1, wherein the web cooling duct has an extension which projects toward the combustion chamber section and is provided in the region of the annular wall section.
6. The cylinder head as claimed in claim 5, wherein the extension is provided in the region of the guiding surface or adjoining the region of the guiding surface on the coolant-outlet side.
7. The cylinder head as claimed in claim 5, wherein the upper wall of the web cooling duct has a wave trough in the region of the extension.
8. The cylinder head as claimed in claim 5, wherein the extension reaches up to 9 mm or less to the combustion chamber section.
9. The cylinder head as claimed in claim 1, wherein the web cooling duct is separated from the at least one outer cooling duct and the upper cooling duct on the coolant-inlet side of the annular wall section.
10. The cylinder head as claimed in claim 1, wherein on the coolant-inlet side of the two component openings, the web cooling duct branches into two branches which extend on different sides of the component openings.
11. The cylinder head as claimed in claim 10, wherein another guiding surface and/or an extension are provided in each of the two branches.
12. The cylinder head as claimed in claim 10, wherein two outer cooling ducts are provided which flow together above the coolant-inlet-side gas ducts and form the upper cooling duct.
13. The cylinder head as claimed in claim 12, wherein the upper cooling duct runs between the coolant-outlet-side gas ducts.
14. The cylinder head as claimed in claim 1, wherein the two adjacent component openings comprise a spark plug opening and an injection nozzle opening.
15. The cylinder head as claimed in claim 1, wherein the web cooling duct leads into the upper cooling duct in a region of the coolant-outlet side of the two component openings.
16. The cylinder head as claimed in claim 1, wherein the entire web cooling duct rises again before the web cooling duct leads into the upper cooling duct.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE DRAWINGS
(6)
(7) A combustion chamber 16 is provided in the internal combustion engine 10, wherein the cylinder head 14 forms a section of said combustion chamber 16, i.e. has a combustion chamber section 18.
(8) The combustion chamber section 18 closes the upper end of the combustion chamber 16, i.e. that end of the combustion chamber 16 which serves as a compression chamber.
(9) A plurality of directions with respect to the cylinder block 12 are specified here in the cylinder head 14, wherein “down” means in the direction of the cylinder block 12.
(10) A cooling duct system 20, which is indicated in highly simplified form partially by the dashed lines in
(11) The cooling duct system 20 is fed by inflows and outflows in the cylinder block 12, with only one inflow 22 being illustrated in
(12) As can be seen in
(13) The cylinder block 12 has two component openings 28, for example an injection nozzle opening 30 and a spark plug opening 32 which lead into the combustion chamber section 18 and through which components, such as an injection nozzle or a spark plug, can be guided.
(14) The component openings 28 are adjacent in the direction of flow, and therefore one of the component openings 28 is provided closer to the coolant-inlet side than the other.
(15) In the embodiment shown, the coolant-inlet-side component opening 28 is the spark plug opening 32 and the injection nozzle opening 30 is the coolant-outlet side.
(16) In addition, two coolant-inlet-side gas ducts 34 and two coolant-outlet-side gas ducts 36 lead into the combustion chamber section 18. The four gas ducts 34, 36 serve to supply air to the combustion chamber 16 or to remove combustion exhaust gases from the combustion chamber 16. For clarity reasons, the illustration of the gas ducts 34, 36 has been omitted in
(17) Of course, a different number of gas ducts 34, 36 can also be provided.
(18) In the embodiment shown, the coolant-inlet-side gas ducts 34 are the air outlets and the coolant-outlet-side gas ducts 36 are the air inlets to the combustion chamber 16.
(19) That region of the cylinder head 14 which is adjacent to the combustion chamber 16 between the gas ducts 34, 36 is referred to as web 38. The component openings 28 also extend through the web 38.
(20) In the region of the web 38, an annular wall section 40 is provided in the cylinder head 14 between the component openings 28, on the one hand, and the gas ducts 34, 36, on the other hand.
(21) The annular wall section 40 has a center axis M which extends approximately between the two component openings 28 and which divides the annular wall section 40 into a coolant-inlet-side half and a coolant-outlet-side half.
(22) The cooling duct system 20 extends through the entire cylinder head 14 and, in the embodiment shown, has a web cooling duct 42, two outer cooling ducts 44 and an upper cooling duct 45.
(23) As illustrated in
(24) The outer cooling ducts 44 converge above the coolant-inlet-side gas ducts 34 and form the upper cooling duct 45 which drops continuously down toward the coolant-outlet side (see
(25) The web cooling duct 42 extends from the middle of the three inlets 24 into the annular wall section 40. It can run here between the coolant-inlet-side gas ducts 34.
(26) The web cooling duct 42 is fluidically separated here from the outer cooling ducts 44 and the upper cooling duct 45 in the region on the coolant-inlet side of the annular wall section 40.
(27) Inside the annular wall section 40, but on the coolant-inlet side of the component openings 28, the web cooling duct branches into two branches 42.1 and 42.2 which encircle the component openings 28 on different sides.
(28) The course of just one branch 42.1, 42.2 of the web cooling duct 42 will be described below since the two branches 42.1, 42.2 are mirror-symmetrical.
(29) As can be seen in
(30) The upper wall 46 reaches its highest point P before the center axis M of the annular wall section 40 and then drops down toward the coolant-outlet side.
(31) The upper wall 46 describes a wave shape with a wave crest in the region of its highest point P.
(32) The dropping part of the upper wall 46, which part adjoins the highest point P on the coolant-outlet side, is designed as a guiding surface 48 which is directed obliquely downward, i.e. to the combustion chamber section 18. The guiding surface 48 is located within the annular wall section 40.
(33) Adjoining the region of the guiding surface 48 to the coolant-outlet side, the web cooling duct 42 has an extension 50 which projects toward the combustion chamber section 18.
(34) The extension 50 is also provided in the annular wall section 40 and can reach up to 9 mm or less to the combustion chamber section 18, and therefore there is a distance of 9 mm between the lower wall of the web cooling duct 42 in the region of the extension 50 toward the combustion chamber section 18.
(35) It is also contemplated for the extension 50 to be arranged in the region of the guiding surface 48 itself.
(36) Adjoining the region of the extension 50 or, as in the embodiment shown, in the region of the extension 50, the web cooling duct 42 leads into the upper cooling duct 45.
(37) The mouth is located here in the coolant-outlet-side half of the annular wall section 40.
(38) The upper wall 46 of the web cooling duct 42 and also the entire web cooling duct 42 rise again here toward the mouth of the web cooling duct 42.
(39) The upper wall 46 therefore also has a wave trough which lies in the region of the extension 50.
(40) On the coolant-outlet side of the mouth of the web cooling duct 42, the upper cooling duct 45 at least partially runs between the coolant-outlet-side gas ducts 36 and leads into the two outlets 26.
(41) Coolant which flows through the middle of the inlets 24 into the web cooling duct 42 flows through the web cooling duct 42 as far as the highest point P and is deflected there by the guiding surface 48 in the direction toward the combustion chamber section 18.
(42) A particularly effective flow toward the web 38 is thereby achieved here, in particular by means of the flow through the extension 50. The temperature of the web 38 during the operation of the internal combustion engine 10 can thereby be significantly reduced.
(43) In the description of the cooling duct system 20, only the two outer cooling ducts 44, the web cooling duct 42 and the upper cooling duct 45 of a cylinder have been discussed. Of course, in an internal combustion engine 10 having a plurality of cylinders, a plurality of said assemblies consisting of outer cooling ducts 44, web cooling duct 42 and upper cooling duct 45 are provided, with it being possible for the upper cooling ducts 45 of adjacent cylinders to be fluidically connected to one another.
(44) Of course, the cooling duct system 20 can have yet further cooling ducts which, for clarity reasons, have not been shown in the figures and explained. In particular, it is contemplated for further inlets and outlets of the cooling duct system 20 to be provided in the cylinder head 14.
(45) The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.