HEAT ENGINE COMPRISING A SYSTEM FOR VARYING THE COMPRESSION RATIO
20180306107 ยท 2018-10-25
Inventors
- Matthieu Pogam (Chatou, FR)
- Julien Berger (Paris, FR)
- Lambertus Hendrik De Gooijer (Bussum, NL)
- Willem-Constant Wagenvoort (Huizen, NL)
- Sander Wagenaar (Huizen, NL)
Cpc classification
F02D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H21/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B75/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B75/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat engine includes a system for varying the compression ratio of the engine. The compression ratio varying system comprises: at least one eccentric part rotatably mounted on a crank pin. The eccentric part has an eccentric outer face that co-operates with one end of a rod, as well as at least one ring gear. A device for controlling the angular position of the eccentric part, includes an actuating pinion mounted on an actuating shaft. The control device also comprises at least one stepped intermediate pinion having at least first and second steps each formed by a pinion, the pinion of the first step meshing with the actuating pinion and the pinion of the second step meshing with the gear of the eccentric part.
Claims
1. A heat engine, includes a system configured to vary a compression ratio of said engine, said system comprising: at least an eccentric part which is rotatably mounted on a crankshaft crankpin, wherein said eccentric part comprises an external face including an eccentric shape which is intended to cooperate with an end of a connecting rod as well as at least a gear, a control device configured to control a rotational position of said eccentric part which comprises an actuating pinion which is mounted on an actuating shaft, wherein said control device further comprises at least a stepped intermediate pinion which comprises at least a first and a second stage that are each formed by a pinion wherein the pinion of said first stage meshes with said actuating pinion and the pinion (38) of said second stage meshes with said gear of the eccentric part.
2. The heat engine according to claim 1 and further comprising a crankshaft, and wherein said control device passes through the crank arm.
3. The heat engine according to claim 1 and further comprising and further comprising a crankshaft and wherein the first and second stages that are each formed by a pinion are located at the same side of the crank arm.
4. The heat engine according to claim 1 and wherein the pinion of said first stage has a diameter which is smaller than a diameter of the pinion of said second stage.
5. The heat engine according to claim 1 wherein the pinion of said first stage comprises less teeth than the pinion of said second stage.
6. The heat engine according to claim 1 wherein said pinions of said first and second stages have substantially the same axial thickness with respect to each other.
7. The heat engine according to claim 1 wherein said pinions of said first and second stages are assembled together by shrinking and/or screwing and/or welding and/or gluing and/or snapping and/or put in cooperation with splines of said pinions.
8. The heat engine according to claim 1 wherein said pinions of said first and second stages are located at either side of a support plate.
9. The heat engine according to claim 8 wherein said support plate comprises a fastener configured to attach the support plate on a crankshaft flange.
10. The heat engine according to claim 8, wherein said pinions of said first and second stages are rotationally guided with respect to said support plate via a bearing.
11. The heat engine according to claim 8 wherein said actuating pinion is rotationally mounted on a pin projecting from said support plate.
12. The heat engine according to claim 8 wherein a gear ratio between said actuating gear and said gear of the eccentric part is substantially equal to 0.5.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Aspects of the invention will be better understood on reading the following description and on examining the accompanying figures. These figures are only given for illustrative reasons, but they are not limiting the invention.
[0024]
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DETAILED DESCRIPTION
[0032]
[0033] In
[0034]
[0035] More specifically, the engine crankshaft 12 with axis X is intended to be rotatably mounted on a crankcase by means of bearings. The crankshaft 12 comprises a plurality of crankpins 13, and journals 14, separated by flanges 17 extending substantially perpendicular to the axis X. The crankshaft 12 further has a front end intended to be attached in rotational direction with a pulley 18. A flywheel (not shown) is attached in rotatable direction to the rear end of the crankshaft 12.
[0036] Eccentric parts 21 are rotatably mounted on the crankpins 13 via a through-hole 22 made in each eccentric part 21. As can be seen more clearly in
[0037] A control device 31 which is clearly visible in
[0038] In order to allow a reduction in the diameter of the actuating pinion 33 and thus a reduction in the size of the assembly, the pinion 37 of the first stage has a smaller diameter than the diameter of the pinion 38 of the second stage. In addition, the pinion 37 of the first stage has less teeth than the pinion 38 of the second stage.
[0039] The pinions 37, 38 of the first and second stages have substantially the same axial thickness with respect to each other. This thickness corresponds substantially to half the thickness of an intermediate pinion of the prior art.
[0040] As can be seen in
[0041] The two sprockets 37, 38 may be assembled by shrinking and/or screwing between the external axial cylindrical face 42 of the sleeve 41 and the internal axial cylindrical face 43 of the annular toothed portion of the pinion 38. The faces 42, 43 may also be welded or glued together by a welding zone and/or gluing zone extending continuously along the entire periphery or via a few points of equidistant welds. It is also possible to provide grooves (fretted or not) of complementary shape arranged in the faces 42, 43 of the pinions 37, 38. A snap-fit assembly of the pinions 37, 38 is also conceivable. Alternatively, the assembly is reversed, that is to say that the pinion 38 comprises the sleeve 41 that penetrates inside the central opening of the pinion 37.
[0042] In the embodiment of
[0043] The pinions 37 and 38 are rotationally guided with respect to the support plate 46 via a bearing 52, such as a needle-type bearing which is visible in
[0044] As shown in
[0045] In operation and when the actuating shaft 32 is rotationally fixed with respect to the crankcase, the system has a configuration of fixed compression ratio. Upon changing compression ratio, the angular position of the eccentric part 21 located on the side of the pulley 18 is controlled by the angular position of the actuating shaft 32 so as to change to a new compression ratio. For this purpose, the actuating shaft 32 may be actuated for example by means of a wheel and worm gear 57 (see
[0046] A gear ratio between the actuating pinion 33 and the gear 28 of the eccentric part is substantially equal to 0.5. This ensures a rotation of the eccentric part 21 at half speed with respect to the rotational speed of the crankshaft.
[0047] In addition, as illustrated in
[0048] In a variant, as illustrated by
[0049]
[0050] Due to the stepping of the intermediate pinion in two new intermediate pinions 36, 37, it is possible to reduce the number of teeth of the actuating pinion 33. For example: the intermediate pinion 36 meshes with the eccentric by 28 teeth and the intermediate pinion 37 meshes with the actuating pinion by 20 teeth: only 15 teeth are required for the actuating pinion 33 in order to make the kinematics of ratio 0.5 between actuation and eccentric. The number of teeth of the intermediate pinion does not have any impact on the kinematics, the actuating pinion is thus reduced in size (diameter), the pocket on the crankshaft is also reduced, which limits the impact on the strength of this crank arm.
[0051] In the case of the comparative example without stepping (