Belt means and system for constructing a belt means
10619705 ยท 2020-04-14
Assignee
Inventors
Cpc classification
F16G13/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H9/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16G13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16G13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16G5/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16G13/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16G13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A plate link chain for a continuously variable transmission of a motor vehicle is provided. The plate link chain includes a plurality of link plates arranged parallel to a running direction of the plate link chain and each link plate includes an aperture formed therein. A plurality of pressure pieces are oriented perpendicular to the running direction and arranged in pairs to be received in the apertures of the link plates to form two joints in each link plate. The two joints in each link plate are supported by arcuate outer sections of the pressure pieces.
Claims
1. A plate link chain for a continuously variable transmission of a motor vehicle, comprising: a running direction; a link plate arranged parallel to the running direction and including an opening with a first edge section and a second edge section; a first pressure piece, oriented transversely with respect to the running direction to form a portion of a first articulated connection together with the link plate, the first pressure piece comprising: a first arcuate outer section, supported on the first edge section, and including a first center; a second arcuate outer section, supported on the first edge section, and including a second center; a first side, perpendicular to the running direction, for forming a first joint; and a height (h) measured perpendicular to the running direction; a second pressure piece, oriented transversely with respect to the running direction to form a portion of a second articulate connection together with the link plate, the second pressure piece comprising: a third arcuate outer section supported on the second edge section; a fourth arcuate outer section supported on the second edge section; and, a second side, perpendicular to the running direction, for forming a second joint behind the first joint in the running direction; a distance (I) between the first side and the second side; a spacing (a) between the first center and the second center measured perpendicular to the running direction; wherein: a first ratio (V1)=I/a2.4; and a second ratio (V2)=h/a1.7.
2. The plate link chain of claim 1, wherein respective contours of the first pressure piece and the second pressure piece include only convex radii.
3. The plate link chain of claim 1, wherein an introduction of force from the first pressure piece into the link plate takes place in a region of the first edge section lying outside of the first center or the second center.
4. The plate link chain of claim 1, wherein convex radii of the arcuate outer sections are of identical magnitude.
5. The plate link chain of claim 1, wherein the opening is of a slot configuration and includes a longitudinal axis parallel to the running direction.
6. The plate link chain of claim 1, wherein the link plate is comprised of two link plate longitudinal brackets that extend on both sides of the opening parallel to a longitudinal axis of the link plate.
7. The plate link chain of claim 6 further comprising two link plate lateral brackets that extend on both sides of the opening perpendicular to the longitudinal axis of the link plate, wherein each link plate longitudinal bracket comprises first and second distal ends extending beyond a respective link plate lateral bracket.
8. The plate link chain of claim 6 wherein each link plate longitudinal bracket comprises a center axis aligned with a neutral fiber of the link plate longitudinal bracket.
9. The plate link of claim 1, wherein a profile of the first pressure pi piece and a contour of the first edge section does not include a convex and concave transition.
10. The plate link chain of claim 1, wherein a contour of the first pressure piece includes only convex radii.
11. The plate link chain of claim 1, wherein a profile of the first pressure piece and a contour of the first edge section does not include an S-bend.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will be described by way of example with reference to the drawings. In the drawings:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) The link plates 14 have aperture-like openings 16, into which the pressure pieces 12 engage. Whereas the link plates 14, or the respective longitudinal axes 18 of the link plates 14, are oriented along a running direction of the belt means, the pressure pieces 12 are oriented transversely, in particular perpendicularly, with respect to the running direction or longitudinal axis 18. The openings 16 are of slot-like configuration and have longitudinal axes which run substantially coaxially or at least parallel to the longitudinal axis 18 of the respective link plate 14. This results in two link plate longitudinal brackets 20, 22 per link plate 14, wherein the link plate longitudinal brackets 20, 22 extend on both sides of the corresponding opening 16 parallel to the longitudinal axis 18.
(7) The pressure pieces 12 are configured as cradle pressure pieces and engage in pairs into the openings 16 of the link plates 12, in order to form joints 24, 26, it being possible for the sequence of the link plates 12 to be repeated in a targeted manner transversely with respect to the running direction of the belt means, such that a corresponding link plate pattern results. The joints 24, 26 which are formed from in each case two (cradle) pressure pieces 12 are often also called cradle-type joints. As has already been mentioned above, the link plate arrangement of the link plates 14 can be selected, for example, in a two-link plate combination or in a three-link plate combination.
(8) The (cradle) pressure pieces 12 of each of the joints 24, 26 which are arranged in pairs have sides which point toward one another and on which they roll on one another or on which they can move slidingly on one another, with the result that the link plates 14 are connected to one another in an articulated manner by means of the pressure pieces 12 which are configured in this way. Here, the pressure pieces 12 engage for the articulated connection of the link plates 14 into the openings 16 of the link plates 14 in such a way that in each case two joints 24, 26 which are arranged behind one another in the longitudinal direction 18 of the link plate 14 (which corresponds to the running direction of the belt means at the location) with in each case two pressure pieces 12 result per link plate 14. In each case only the outer pressure piece 12 is shown of each of the two joints 24, 26 which are shown in
(9) The distance between the two joints 24, 26 which are arranged behind one another along the longitudinal axis 18 is usually called the pitch I, and is a known parameter for characterizing the link plate/pressure piece arrangement 10. In
(10) Furthermore, per pressure piece 12,
(11) The ratio V.sub.1 of the distance (known as the pitch I) between the two joints 24, 26 which are arranged behind one another to the spacing a (determined perpendicularly with respect to the longitudinal axis) of the center points 40 of the circles which are adapted to the arcuate outer sections is V.sub.1=I/a2.4, and the ratio V.sub.2 of the pressure piece height h (determined perpendicularly with respect to the running direction) of the (outer) pressure pieces 12 to the spacing a (determined perpendicularly with respect to the running direction) of the center points 40 is V.sub.2=h/a1.7.
(12)
(13) Component calculations in accordance with the finite element method (FEM) have shown that the flexural loading of the pressure pieces 12 which are configured in this way is reduced on account of an increased section modulus. Here, the pressure piece height h and the spacing a of the center point coordinates of the contact radii of both arcuate outer sections 28, 30, in each case in relation to the pitch I as a reference, are increased in comparison with known values of the parameters in such a way that the conditions result for the ratios V.sub.1 and V.sub.2. The increase brings about a small lever arm in the link plate 14, and a simultaneous reduction in the bending moment in the link plate longitudinal bracket 20, 22, as shown in
(14)
(15) As a result of the omission of the S-bend for the anti-rotational resistance, it is possible to construct the pressure pieces 12 only with convex radii. The following advantages are produced as a result: fewer notch radii as a result of exclusively convex radii, improved stress distribution in the link plate; simple production; simple machining; improved stress distribution in the link plate 14 as a result of a greater contact radius on the pressure piece 12 and on the link plate 14; and higher section moduli of the pressure piece 12.
(16) Furthermore, the following further properties of the resulting belt means arise:
(17) On longitudinal sides of the belt means which lie opposite one another in the longitudinal direction of the pressure pieces 12, the pressure pieces 12 protrude in each case with end sections out of the arrangement of the link plates 14. On the end sections, the belt means has securing devices (not shown) for captively securing the link plates 14 and/or pressure pieces 12.
(18) The resulting belt means is configured to transmit forces and torques in a cone pulley belt drive transmission (not shown), a cone pulley belt drive transmission of this type being arranged, for example, in the drive train of a motor vehicle between a drive machine and the driven axle. The continuously variable transmission adapts the transmission ratio to the respective driving conditions and operating conditions of the drive machine and/or to the requirements made by the driver of the drive machine, for example on the basis of an accelerator pedal actuation.
(19) Within the cone pulley belt drive transmission, the belt means connects two cone pulley pairs or cone pulley sets in the power flow or torque flow, it being possible for a transmission ratio change to be realized and controlled in a targeted manner by way of a variation in the running radius of the belt means in relation to the axis of the respective cone pulley pairs. This can be controlled in a targeted manner by means of a control unit. The one cone pulley pair of the transmission is connected or can be connected at least to a transmission input shaft, and the other cone pulley pair is connected or can be connected to an output shaft of the transmission.
LIST OF REFERENCE NUMBERS
(20) 10 Link plate/pressure piece arrangement 12 Pressure piece 14 Link plate 16 Opening 18 Longitudinal axis (link plate) 20 Link plate longitudinal bracket 22 Link plate longitudinal bracket 24 Joint 26 Joint 28 Outer section, arcuate 30 Outer section, arcuate 32 Edge section 34 Edge section 36 Circle 38 Circle 40 Center point 42 Arrow 44 Center axis (link plate longitudinal bracket) I Pitch a Spacing h Pressure piece height x1 Distance x2 Distance