Centrifugal pendulum
10203020 ยท 2019-02-12
Assignee
Inventors
Cpc classification
F16F15/1397
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/2128
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D1/076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/139
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A centrifugal pendulum, including a rotation element and a pendulum flange. The pendulum flange is connected to the rotation element by means of a fastening means to transmit torque between the rotation element and the pendulum flange. The fastening means is designed in such a way that for the torque greater than a certain amount, some slip, or relative rotation, occurs between the pendulum flange and the rotation element.
Claims
1. A centrifugal pendulum, comprising: a rotation element including: a protrusion; and, a circumferential groove axially spaced apart from the protrusion along an axis of rotation about which the rotation element is rotatable, the circumferential groove having a first incline side surface; and, a pendulum flange including a first end face and a second end face, the pendulum flange connected to the rotation element only with a fastener arranged to at least partially engage the circumferential groove, wherein the fastener includes a first fastening section disposed on the rotation element and contacting the first end face of the pendulum flange and a second fastening section disposed on the rotation element and spaced apart axially opposite from the first fastening section along an axis of rotation of the rotation element, wherein the second fastening section contacts the second end face of the pendulum flange, wherein the second end face is disposed axially opposite the first end face.
2. The centrifugal pendulum as recited in claim 1, wherein the fastener comprises a tensioner axially arranged between the first incline side surface and the second end face, the tensioner operatively arranged to force the pendulum flange toward the protrusion in a first axial direction.
3. The centrifugal pendulum as recited in claim 2, wherein: the protrusion has a first contact surface facing the first end face, the first end face abuts against the first contact surface; and, the tensioner is operatively arranged to clamp the pendulum flange against the first contact surface.
4. The centrifugal pendulum as recited in claim 3, wherein the tensioner is a securing ring.
5. The centrifugal pendulum as recited in claim 4, wherein the securing ring comprises a second incline side surface arranged to engage the first incline side surface.
6. The centrifugal pendulum as recited in claim 1, wherein the rotation element comprises an intermediate section disposed between the protrusion and the circumferential groove, and a radial space exists between a radially inward facing surface of the pendulum flange and the intermediate section.
7. A centrifugal pendulum, comprising: a rotation element; and a pendulum flange connected to the rotation element utilizing a fastener configured to transmit torque between the rotation element and the pendulum flange and that allows transmission of torque between the pendulum flange and the rotation element to at least partly be achieved by a connection configured to allow slip to occur between the pendulum flange and rotation element when torque exceeds a threshold, wherein the fastener includes a first fastening section disposed on the rotation element and contacting a first end face of the pendulum flange and a second fastening section disposed on the rotation element and spaced apart axially opposite from the first fastening section along an axis of rotation of the rotation element, wherein the second fastening section contacts a second end face of the pendulum flange, wherein the second end face is disposed axially opposite the first end face.
8. The centrifugal pendulum of claim 7, wherein the centrifugal pendulum further includes a securing ring disposed between the second fastening section, and wherein the securing ring is configured to press the pendulum flange in a direction towards a protrusion of the first fastening section.
9. The centrifugal pendulum of claim 8, wherein the securing ring includes an inclined surface that is oriented at an angle relative to an axis of rotation of the centrifugal pendulum.
10. The centrifugal pendulum of claim 9, wherein the first fastening section includes a protrusion, and the second fastening section includes a groove.
11. The centrifugal pendulum of claim 10, wherein the securing ring includes a securing ring diameter that is smaller than an interior diameter of the groove.
12. The centrifugal pendulum of claim 7, wherein the connection is a force-locking connection.
13. The centrifugal pendulum of claim 7, wherein the pendulum flange circumferentially surrounds the rotation element.
14. The centrifugal pendulum of claim 7, wherein the fastener further includes an intermediate section with a length corresponding to an axial extension of the pendulum flange, wherein the intermediate section is surrounded by the pendulum flange in a circumferential direction.
15. The centrifugal pendulum of claim 14, wherein the first fastening section includes a protrusion having a protrusion diameter greater than a diameter of a shaft in the intermediate section.
16. The centrifugal pendulum of claim 7, wherein the rotation element includes an interior toothing for connecting a shaft to components of a drive train.
17. A centrifugal pendulum, comprising: a shaft configured to rotate; a pendulum flange circumferentially surrounding the shaft and connected to the shaft utilizing a fastener configured to transmit torque between the shaft and the pendulum flange, wherein the fastener includes a first fastening section disposed on the shaft and contacting a first end face of the pendulum flange and a second fastening section disposed on the shaft and spaced apart axially opposite from the first fastening section along an axis of rotation of the shaft, wherein the second fastening section contacts a second end face of the pendulum flange, wherein the second end face is disposed axially opposite the first end face; and a tensioner located in the second fastening section that includes a securing ring configured to engage in a groove of the second fastening section and press the pendulum flange against the first fastening section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The nature and mode of operation of the present invention will now be more fully described in the following detailed description of the invention taken with the accompanying drawing figures, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION
(10)
(11) Fastening means 50 includes fastening section 55 arranged to the left of pendulum flange 25 on shaft 20. Fastening means 50 includes fastening section 60 disposed essentially to the right of pendulum flange 25 on shaft 20. Intermediate section 61, whose length essentially corresponds to the axial extension of pendulum flange 25, and which is completely surrounded by the latter in a circumferential direction, is provided between fastening sections 55, 60. Tensioning means 65, designed to provide tensioning force F.sub.S parallel to axis of rotation 15, is provided in fastening section 60.
(12) Fastening section 55 includes protrusion 70 whose diameter is greater than the diameter of shaft 20 in intermediate section 61. Protrusion 70 includes contact surface 75 facing left-hand side end face 80 of pendulum flange 25.
(13) Fastening section 60 is embodied as groove 85 with rectangular trapezoidal shape in shaft 20, with the rectangle of the trapezoidal shape formed on side surface 86 of groove 85, the side surface 86 facing pendulum flange 25. Tensioning means 65 comprises securing ring 90 engaging in groove 85. Securing ring 90 includes contact surface 95 facing pendulum flange 25 and resting against end face 100 of pendulum flange 25, end face 100 disposed on the right-hand side.
(14) Intermediate section 61 has an axial extension d between contact surface 75 of protrusion 70 and side surface 86 of groove 85. Axial extension d is smaller than axial extension b of pendulum flange 25, so that circumferentially, groove 85 is partly covered by pendulum flange 25.
(15) On an end face facing away from end face 100, securing ring 90 has incline 105. Incline 105 is oriented at an angle relative to axis of rotation 15 of centrifugal pendulum 10 and at an angle relative to end face 100 of pendulum flange 25. Contact surface 75, end faces 80, 100, and contact surface 90 are aligned at right angles relative to axis of rotation 15, or, in other words, axis of rotation 15 forms a normal vector of contact surface 75 of protrusion 70, for both end faces 80, 100 of pendulum flange 25, and for contact surface 95 of securing ring 90. Groove 85 further comprises incline 110 on side surface 111 disposed opposite side surface 86. Incline 110 is oriented to correspond to inclination 105 of securing ring 90, so that in an assembled state of securing ring 90, essentially the entire area of inclines 105, 110 are located in groove 85. Due to inclines 105, 110, groove 85 and securing ring 90, respectively, are axially smaller on the inside than on the outside as viewed in a radial direction.
(16) In a relaxed state, the diameter of securing ring 90 is advantageously smaller than interior diameter d.sub.2 of groove 85, which means that securing ring 90 is always tensioned in groove 85 to ensure that securing ring 90 is securely fitted in groove 85. Before securing ring 90 is mounted, pendulum flange 25 is slid onto shaft 20 until end face 80 rests against contact surface 75 of protrusion 70. Afterwards, securing ring 90 is mounted. To insert securing ring 90 into groove 85, securing ring 90 is widened by means of non-illustrated lugs and a non-illustrated tool and slid onto shaft 20 in a tensioned state axially on the right-hand side. When securing ring 90 is in the region of groove 85, the tool is removed from the lugs to allow securing ring 90 to relax, i.e. to contract and reduce its diameter in such a way that incline 105 comes to rest against incline 110. Furthermore, contact surface 95 is pressed against end face 100 of pendulum flange 25, axially displacing pendulum flange 25 in the direction of protrusion 70 up until end face 80 of pendulum flange 25 rests against contact surface 75 of protrusion 70. As pendulum flange 25 is being moved, securing ring 90 is received further in groove 85. Once contact surfaces 75, 95 rest against end faces 80, 100, radial force F.sub.R is partly transformed into tensioning force F.sub.S by inclines 105, 110. Securing ring 90 introduces tensioning force F.sub.S into pendulum flange 25 via contact surface 95 and end face 100. Furthermore, end face 80 of pendulum flange 25 is pressed against contact surface 75 of protrusion 70 and protrusion 70 provides a counterforce so that pendulum flange 25 is tensioned thereon due to tensioning force F.sub.S.
(17) When a fluctuating torque is introduced into shaft 20 via interior toothing 20, for instance from a combustion engine, this torque is transmitted to pendulum flange 25 via contact surface 75 and end face 80, respectively, on protrusion 70 as well as via inclines 105, 110 that rest against each other, and via contact surface 95 and end face 100. Pendulum masses 30 act to reduce the fluctuating torque and dampen the vibration, respectively, in a known way.
(18) Depending on the static friction coefficient between contact surfaces 75, 96 and end faces 80, 100 as well as between contact surfaces 105, 110, the maximum torque transmittable between shaft 20 and pendulum flange 25 is determined by tensioning force F.sub.S. If the maximum transmittable torque is exceeded for instance due to peak torques that may occur during shifting operations and during the start-up of a combustion engine, shaft 20 will temporarily slip relative to pendulum flange 25, transitioning to dynamic friction. As a result, the maximum torque transmittable based on the dynamic friction continues to be transmitted to pendulum flange 25 and the function of pendulum masses 30 is maintained. Torque peaks that exceed the maximum transmittable torque, however, are not transmitted to pendulum flange 30, avoiding any temporary excess acceleration of pendulum masses 30 and preventing pendulum masses 30 and spacer bolts 40, respectively, from hitting recess 35. As a result, noise caused by the impact of spacer bolt 40 on sections 35 of centrifugal pendulum 10 may be reliably avoided, resulting in a much more silent operation of centrifugal pendulum 10 compared to a conventional centrifugal pendulums.
(19) A further advantage of the embodiment shown in
(20)
(21) As explained with reference to
(22) Securing ring 230 engages in groove 210. Securing ring 230 has a rectangular cross-section. Securing ring 235 engages in groove 215. The axial length b.sub.S of securing rings 230, 235 is smaller than width b.sub.N of groove 210, 215, which means that securing ring 230 is axially movable in groove 210. Securing ring 235 is designed like securing ring shown in
(23) Securing ring 230 and securing ring 235 are designed to be preloaded for assembling purposes and to provide radial force F.sub.R. Radial force F.sub.R causes securing ring 230 to be reliably retained in groove 230.
(24) Due to radial force F.sub.R, incline 240 of securing ring 235 rests on groove edge 245 on groove surface 265 of groove 215. As explained with reference to
(25) Tensioning force F.sub.S causes pendulum flange 25 and securing ring 230 to be displaced axially to the left until contact surface 256 provided on securing ring 230 opposite contact surface 250 rests against groove surface 260. During the axial displacement, securing ring 235 continues to contract and engages farther into groove 215. When contact surface 260 rests against groove surface 256, contact surface 250 rests against end face 80 and end face 100 rests against contact surface 255, securing ring 235 locks pendulum flange 25 on securing ring 230 so that torque coming from shaft 20 may non-positively be transmitted to pendulum flange 25 via fastening means 205, securing rings 230, 235 and grooves 210, 215. This causes torque to be transmitted between shaft 20 into contact surface 256 via groove surface 260 of groove 210 and to be introduced from securing ring 230 into end face 80 into pendulum flange 25 via contact surface 245. The torque is furthermore transmitted to end face 100 of pendulum flange 25 via securing ring 235, groove edge 245 engaged with incline 240 and further via securing ring 235 and contact surface 255. The same path may be used in an opposite order to transmit torque back from pendulum flange 25 into shaft 20 to dampen vibration caused by torque fluctuations.
(26) An advantage of the embodiment shown in
(27)
(28) Shaft 20 as the rotation element is fixed to pendulum flange 25 by fastening means 305 in a non-positive way to allow the transmission of torque between shaft 20 and pendulum flange 25. Fastening means 305 is essentially identical with the fastening means shown in
(29)
(30) Pendulum flange 25 is connected to shaft 20 so as to be fixed against relative rotation by means of fastening means 405. Fastening section 55 is identical with the embodiment of the fastening means shown in
(31)
(32) Pendulum flange 25 is fixed to shaft 20 so as to be fixed against relative rotation in a non-positive way by fastening means 505. Fastening means 505 corresponds to the fastening means shown in
(33)
(34) Pendulum flange 25 is connected to shaft 20 by fastening means 605. In fastening section 55, shaft 20 includes protrusion 610, which is radially wider than the protrusion shown in
(35)
(36) Pendulum flange 25 is connected to shaft 20 in a non-positive way so as to be fixed against relative rotation by means of fastening means 705. Fastening section 55 is embodied to be identical with the fastening means shown in
(37) Pawl element 720 is disc-shaped and includes pawl bulge 730 that engages in recess 715. In terms of their arrangement, design, and number, pawl bulges 730 advantageously correspond to recesses 715. It is to be understood that the number of pawl bulges 730 may be different from the number of recesses 715. Radially to the inside, pawl element 720 comprises an interior toothing 735 meshing with outer toothing 725 of shaft 20 to allow pawl element 720 to be disposed on shaft 20 so as to be movable on the shaft in an axial direction relative to the shaft and to provide a positive transmission of torque between shaft 20 and pawl element 720. In the illustrated embodiment, pawl element 720 is aligned relative to the pendulum flange in such a way that a respective pawl bulge 730 engages in a respective recess 715 on the pendulum flange. Torque introduced into pawl element 720 is transmitted via pawl bulge 730 into recess 715 in pendulum flange 25. Torque may likewise be transmitted from pendulum flange 25 in an opposite direction of the path described above. As a result, pendulum flange 25 is positively connected to shaft 20 as the rotation element. An advantage of the positive or form-fitting connection described above is that it is easy to release by an axial displacement of pawl element 720 relative to pendulum flange 25.
(38) A pawl element back side 740 facing away from pendulum flange 25 is in contact with spring element 420, which presses pawl element 720 onto end face 100 of pendulum flange 25. Pawl element contact surface 745 facing end face 100 of pendulum flange 25 is in contact with end face 100. Due to the contacting pressure, an axial displacement of pawl element 720 relative to pendulum flange 25 is avoided, ensuring that pawl bulges 730 reliably engage in recesses 715. As described with reference to
(39) If peak torques that are higher than the maximum torque transmittable via fastening means 705 are introduced into shaft 20, the peak torques are absorbed by a slipping or rotation of shaft 20 relative to pendulum flange 25 and are not introduced into centrifugal pendulum 700. To allow shaft 20 to slip relative to the pendulum flange, recess 715 is contoured in such a way that the torque transmitted via recess 715 and the pawl bulge results in release force F.sub.L that counteracts tensioning force F.sub.S, pushing pawl element 720 in the direction of securing ring 415. If release force F.sub.L is greater than tensioning force F.sub.S, pawl bulges 730 are pushed out of recesses 715 and pawl element 720 is displaced in the direction of securing ring 415. Shaft 20 rotates pawl element 720 relative to pendulum flange 25 until the torque introduced into shaft 20 is lower than the transmittable torque. As long as release force F.sub.L is greater than tensioning force F.sub.S, shaft 20 continues to be rotated relative to pendulum flange 25 even if further recess 715 is located opposite pawl bulge 730. In this case, pawl bulge 730 will engage in the further recess 715 but will also be immediately released from the latter in the way described above. If the torque in shaft 20 drops below the maximum transmittable torque, shaft 20 is rotated relative to pendulum flange 25 until pawl bulge 730 is located opposite recess 715 and pawl element 720 is again pressed against pendulum flange 25 and pawl bulge 730 is pressed into recess 715 due to tensioning force F.sub.S
(40) An advantage of this embodiment over the embodiments shown in
(41) It is to be understood that the embodiments shown in
LIST OF REFERENCE SYMBOLS
(42) 10 centrifugal pendulum (embodiment) 15 axis of rotation 20 shaft (rotation element) 25 pendulum mass 30 pendulum mass 35 section 40 spacer bolt 45 rivet head 50 fastening means 55 fastening section 60 fastening section 61 intermediate section 65 tensioning means 70 protrusion 75 contact surface 80 end face 85 groove 86 side surface 90 securing ring 85 contact surface 100 end face 105 incline 110 incline 111 side surface 200 centrifugal pendulum (second embodiment) 205 fastening means 210 groove 215 groove 220 groove surface 225 groove surface 230 securing ring 235 securing ring 240 incline 245 groove edge 250 contact surface 255 contact surface 256 contact surface 260 groove surface 265 groove surface 300 centrifugal pendulum (third embodiment) 305 fastening means 310 incline 400 centrifugal pendulum (fourth embodiment) 405 fastening means 410 groove 415 securing ring 420 spring element 500 centrifugal pendulum (fifth embodiment) 505 fastening means 510 spring element 600 centrifugal pendulum (sixth embodiment) 605 fastening means 700 centrifugal pendulum (seventh embodiment) 705 fastening means 710 pawl device 715 recess 720 pawl element 725 exterior toothing 730 pawl bulge 735 interior toothing 740 back side 745 contact surface d axial extension of intermediate section b axial extension of the pendulum flange d.sub.2 interior diameter of the groove b.sub.N width of the groove b.sub.S width of the securing ring