Centrifugal mass arrangement for the balancing of rotational accelerations of an engine housing
10180177 · 2019-01-15
Assignee
Inventors
Cpc classification
F02B75/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The centrifugal mass arrangement for the balancing of rotational accelerations of an engine housing of a reciprocating-piston engine, such as an internal combustion engine, is equipped with a hollow cylindrical housing provided for fastening to the engine housing and has a circumferential wall with an inner side, and with a centrifugal mass carrier arranged rotatably in the housing and coupled to the drive shaft for co-rotation therewith. The centrifugal mass carrier has at least two diametrically oppositely situated ends. A roller disk with a circumferential surface is arranged on each end of the centrifugal mass carrier. Each roller disk is mounted rotatably on the respective end of the centrifugal mass carrier and is supported by the circumferential surface against the inner side of the circumferential wall of the housing and, during rotation of the centrifugal mass carrier, rolls on the inner side of the circumferential wall of the housing.
Claims
1. A centrifugal mass arrangement for a balancing of rotational accelerations of an engine housing, in particular of the engine housing of a reciprocating-piston engine, which is an internal combustion engine, comprising a hollow cylindrical housing adapted to fasten to the engine housing, the hollow cylindrical housing having a circumferential wall with an inner side, the circumferential wall having an inner raceway, the inner raceway having a smooth inner and outer surface, the smooth outer surface abuts the inner side of the circumferential wall, a centrifugal mass carrier which is arranged rotatably in the hollow cylindrical housing and which is coupled to a drive shaft for co-rotation therewith, the centrifugal mass carrier having at least two diametrically oppositely situated ends, a roller disk with a circumferential surface being arranged on each end of the centrifugal mass carrier, and each roller disk being mounted rotatably on a respective end of the centrifugal mass carrier and being supported by way of the circumferential surface thereof against the inner raceway of the circumferential wall of the hollow cylindrical housing and, during rotation of the centrifugal mass carrier, rolling on the smooth inner surface of the inner raceway of the hollow cylindrical housing.
2. The centrifugal mass arrangement as claimed in claim 1, wherein, to at least one or to each roller disk, there is coupled, for co-rotation with the roller disk, a gearwheel which is arranged coaxially with respect to said roller disk, wherein an internally toothed ring is arranged on the inner side of the circumferential wall of the hollow cylindrical housing, and wherein the gearwheel or the gearwheels mesh(es) with the internally toothed ring.
3. The centrifugal mass arrangement as claimed in claim 2, wherein a diameter of each of the roller disks is equal to a pitch circle diameter of the gearwheel or of the gearwheels.
4. The centrifugal mass arrangement of claim 1, wherein, on each end of the centrifugal mass carrier, there is mounted one pair of coaxially arranged roller disks which are supported by way of their respective circumferential surface on the smooth inner surface of the inner raceway of the hollow cylindrical housing and which, during rotation of the centrifugal mass carrier, roll on the smooth inner surface of the inner raceway of the hollow cylindrical housing.
5. The centrifugal mass arrangement of claim 4, wherein, between the two roller disks of each roller disk pair, there is arranged a gearwheel which is coaxial with respect thereto and which is coupled to the respective roller disks for co-rotation therewith.
6. The centrifugal mass arrangement as claimed in claim 1, wherein, to each roller disk or to each roller disk pair, there is coupled at least one centrifugal mass-increasing centrifugal disk which, during the rolling of the respective roller disk or during the rolling of the roller disks of the respective roller disk pair, rotates freely therewith.
7. The centrifugal mass arrangement as claimed in claim 6, wherein an outer diameter of each centrifugal disk is greater than an outer diameter of the roller disks, and/or wherein a mass distribution of each centrifugal disk increases toward an outer circumference thereof.
8. A centrifugal mass arrangement for a balancing of rotational accelerations of an engine housing, in particular of the engine housing of a reciprocating-piston engine, which is an internal combustion engine, comprising a hollow cylindrical housing adapted to fasten to the engine housing, the hollow cylindrical housing having a circumferential wall with an inner side, a centrifugal mass carrier which is arranged rotatably in the hollow cylindrical housing and which is coupled to a drive shaft for co-rotation therewith, the centrifugal mass carrier having at least two diametrically oppositely situated ends, a roller disk with a circumferential surface being arranged on each end of the centrifugal mass carrier, each roller disk being mounted rotatably on a respective end of the centrifugal mass carrier and being supported by way of the circumferential surface thereof against the inner side of the circumferential wall of the hollow cylindrical housing and, during rotation of the centrifugal mass carrier, rolling inner side of the circumferential wall of the hollow cylindrical housing, and at least one or to each roller disk, there is coupled, for co-rotation with the roller disk, a gearwheel which is arranged coaxially with respect to said roller disk, wherein an internally toothed ring is arranged on the inner side of the circumferential wall of the hollow cylindrical housing, and wherein the gearwheel or the gearwheels mesh(es) with the internally toothed ring.
9. The centrifugal mass arrangement as claimed in claim 8, wherein a diameter of each of the roller disks is equal to a pitch circle diameter of the gearwheel or of the gearwheels.
10. The centrifugal mass arrangement of claim 8, wherein, on each end of the centrifugal mass carrier, there is mounted one pair of coaxially arranged roller disks which are supported by way of their respective circumferential surface on the inner side of the circumferential wall of the hollow cylindrical housing and which, during rotation of the centrifugal mass carrier, roll on the inner side of the circumferential wall of the hollow cylindrical housing.
11. The centrifugal mass arrangement of claim 10, wherein, between the two roller disks of each roller disk pair, there is arranged a gearwheel which is coaxial with respect thereto and which is coupled to the respective roller disks for co-rotation therewith.
12. The centrifugal mass arrangement as claimed in claim 8, wherein, to each roller disk or to each roller disk pair, there is coupled at least one centrifugal mass-increasing centrifugal disk which, during the rolling of the respective roller disk or during the rolling of the roller disks of the respective roller disk pair, rotates freely therewith.
13. The centrifugal mass arrangement as claimed in claim 12, wherein an outer diameter of each centrifugal disk is greater than an outer diameter of the roller disks, and/or wherein a mass distribution of each centrifugal disk increases toward an outer circumference thereof.
14. A centrifugal mass arrangement for a balancing of rotational accelerations of an engine housing, in particular of the engine housing of a reciprocating-piston engine, which is an internal combustion engine, comprising a hollow cylindrical housing adapted to fasten to the engine housing, the hollow cylindrical housing having a circumferential wall with an inner side, a centrifugal mass carrier which is arranged rotatably in the hollow cylindrical housing and which is coupled to a drive shaft for co-rotation therewith, the centrifugal mass carrier having at least two diametrically oppositely situated ends, a roller disk with a circumferential surface being arranged on each end of the centrifugal mass carrier, each roller disk being mounted rotatably on a respective end of the centrifugal mass carrier and being supported by way of the circumferential surface thereof against the inner side of the circumferential wall of the hollow cylindrical housing and, during rotation of the centrifugal mass carrier, rolling inner side of the circumferential wall of the hollow cylindrical housing, at least one or to each roller disk, there is coupled, for co-rotation with the roller disk, a gearwheel which is arranged coaxially with respect to said roller disk, wherein an internally toothed ring is arranged on the inner side of the circumferential wall of the hollow cylindrical housing, and wherein the gearwheel or the gearwheels mesh(es) with the internally toothed ring, and a diameter of each of the roller disks is equal to a pitch circle diameter of the gearwheel or of the gearwheels.
15. The centrifugal mass arrangement of claim 14, wherein, on each end of the centrifugal mass carrier, there is mounted one pair of coaxially arranged roller disks which are supported by way of their respective circumferential surface on the inner side of the circumferential wall of the hollow cylindrical housing and which, during rotation of the centrifugal mass carrier, roll on the inner side of the circumferential wall of the hollow cylindrical housing.
16. The centrifugal mass arrangement of claim 15, wherein, between the two roller disks of each roller disk pair, there is arranged a gearwheel which is coaxial with respect thereto and which is coupled to the respective roller disks for co-rotation therewith.
17. The centrifugal mass arrangement as claimed in claim 14, wherein, to each roller disk or to each roller disk pair, there is coupled at least one centrifugal mass-increasing centrifugal disk which, during the rolling of the respective roller disk or during the rolling of the roller disks of the respective roller disk pair, rotates freely therewith.
18. The centrifugal mass arrangement as claimed in claim 17, wherein an outer diameter of each centrifugal disk is greater than an outer diameter of the roller disks, and/or wherein a mass distribution of each centrifugal disk increases toward an outer circumference thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be discussed in more detail below on the basis of two exemplary embodiments and with reference to the drawing, in which, in detail:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) The exemplary embodiments relate to a centrifugal mass arrangement for coupling to, for example, the crankshaft of a reciprocating-piston engine, which is preferably an internal combustion engine. The centrifugal mass arrangement, which is a multi-component flywheel, which may replace conventional flywheels on reciprocating-piston crankshafts, serves for the balancing of rolling torques which act on the reciprocating-piston engine. The multi-component flywheel has, in this case, a housing in which there is arranged a centrifugal mass carrier with roller disks arranged thereon at each end of the centrifugal mass carrier. The centrifugal mass carrier is fixedly connected to the crankshaft of the reciprocating-piston engine and accordingly rotates in the same rotational direction as the crankshaft. The roller disks roll on the cylindrical inner side of the flywheel housing and, in so doing, rotate in the same direction but oppositely to the direction of rotation of the centrifugal mass carrier.
(6) Here, it is sought to realize balancing of the rolling torque in accordance with the following equation:
0={dot over ()}.sub.crankshaft.Math.J.sub.crankshaft{dot over ()}.sub.centrifugal mass.Math.J.sub.centrifugal mass
(7) It may furthermore be provided that an additional centrifugal mass with a balancing moment of inertia is provided. The moment of inertia J.sub.centrifugal mass preferably comprises the balancing moment of inertia, such that, by way of the additional balancing mass, the moment of inertia J.sub.centrifugal mass is increased by the balancing moment of inertia.
(8) It is also proposed that the centrifugal mass carrier has, on its opposite ends, in each case one shaft which is rotatably mounted at the respective end. Each shaft bears a roller disk pair, wherein the two roller disks are fixedly connected to the shaft. In this way, support of the centrifugal mass carrier on the inner side of the cylindrical housing wall of the multi-component flywheel is realized over a relatively large area. This in turn is advantageous with regard to relatively high rotational accelerations and rotational speeds.
(9) The roller disks expediently roll on an inner raceway of the inner side of the circumferential wall of the flywheel housing. The inner raceway preferably has a different material than the material of the roller disks, such that advantageous material pairings with regard to the least possible generation of noise can be used.
(10) It is also advantageously provided that, between the two roller disks of a roller disk pair, there is arranged a gearwheel which is likewise fixedly connected to the shaft of the two roller disks.
(11) A further refinement of the invention provides that the flywheel housing has, on its inner side, an internal toothing with which the or each gearwheel meshes.
(12) Finally, it is also possible for the centrifugal mass carrier to have bearings for the shafts of the roller disks, wherein said bearings have a greater degree of play in a radial direction than in an axial direction. Here, owing to the fact that the roller disks are supported by way of the circumferential surfaces against the inner side of the flywheel housing, said greater radial play does not have an adverse effect.
(13) As a bearing, use is preferably made of a plain bearing.
(14) One application of the multi-component flywheel according to the invention may be the use thereof in a two-cylinder or three-cylinder internal combustion engine, to the driven shaft of which the multi-component flywheel is attached, wherein the flywheel housing is fixedly connected to the housing of the internal combustion engine. The multi-component flywheel according to the invention is particularly preferably used in drives of range extenders such as are sometimes used in electric vehicles. The drive units of such range extenders can, by way of the concept according to the invention, be easily configured so as to exhibit considerably improved running smoothness.
(15) It is also possible for the rolling torque of the drive to be balanced by way of an opposing rolling torque which is coordinated with the radius of the crankshaft, the radius of a flywheel and the weight of the flywheel.
(16)
(17) On each shaft 32 and 34 there is situated a pair 36 of roller disks, wherein each of said roller disks 38 and 40 respectively has a cylindrical circumferential surface 42 and 44 respectively which rolls on the cylindrical inner side 46 of the circumferential wall 48 of the flywheel housing 16. For this purpose, the circumferential wall 48 has inner raceways 50 which are formed by inner rings inserted into the flywheel housing 16 or directly by the inner side of the circumferential wall 48.
(18) As can be derived in particular from
(19) On the respective shaft 32 and 34, between the two roller disks 38 and 40 respectively of each roller disk pair, there is situated a gearwheel 52, 54 which is fixedly connected to the respective shaft 32, 34 and which accordingly co-rotates with the roller disks 38 and 40. The pitch circle diameter (diameter of the pitch circle circumferencesee the dashed lines in
(20) During rotation of the crankshaft 20, the centrifugal mass carrier 18 rotates in the flywheel housing 16. Here, the roller disks 38, 40 roll on the inner raceways 50 of the flywheel housing 16. At the same time, the gearwheels 52, 54 mesh with the internal toothing 56. Here, the roller disks 38, 40 support the centrifugal mass carrier 18 against the circumferential wall 48. Thus, the roller disks 38, 40 prevent the gearwheels 52, 54 being pushed radially outward, whereby generation of noise during the meshing of the gearwheels 52, 54 with the internal toothing 56 is eliminated or reduced.
(21) The above-described mode of operation of the multi-component flywheel and the rolling movements of the roller disks 38, 40 during the rotation of the crankshaft 20 can likewise be seen from
(22)
where {dot over ()}.sub.centrifugal mass corresponds to the angular speed of the roller disks 38 and 40 and {dot over ()}.sub.crankshaft corresponds to the angular speed of the crankshaft 20. In an advantageous refinement, the respective moments of inertia J.sub.crankshaft and J.sub.centrifugal mass are coordinated with one another so as to yield the following balancing condition:
0={dot over ()}.sub.crankshaft.Math.J.sub.crankshaft{dot over ()}.sub.centrifugal mass.Math.J.sub.centrifugal mass,
where J.sub.centrifugal mass corresponds to the moment of inertia of all rotating roller disk and gearwheel masses and the moment of inertia J.sub.crankshaft corresponds to the moment of inertia of the crankshaft 20 about the crankshaft central axis. The moment of inertia J.sub.centrifugal mass preferably comprises the respective moments of inertia of all rotatable components of the multi-component flywheel (including the carrying arms 20, 22). Said moment of inertia is preferably dimensioned as follows:
(23)
(24) In a further refinement, J.sub.crankshaft may particularly advantageously comprise the mass of all of the rotatable components of the centrifugal mass arrangement 10 as a punctiform mass in the shafts 32, 34 which bear the roller disks 38, 40 and the gearwheels. Furthermore, J.sub.centrifugal mass may comprise only the moments of inertia of the roller disks including the gearwheels.
(25) The adaptation of the respective moments of inertia J.sub.crankshaft and J.sub.centrifugal mass so as to satisfy the above balancing condition leads to balancing of the rolling torque of the overall system composed of drive and centrifugal mass arrangement.
(26)
(27) As can be seen, a difference between the two centrifugal mass arrangements 10 and 10 of