The present disclosure relates to a plate link chain/CVT chain for a continuously variable transmission of a motor vehicle, having plates which are, for example, arranged parallel to a running direction of the plate link chain, which have openings into which at least one (cradle) pressure piece, for example oriented transversely to the running direction, is inserted such that the at least one pressure piece hingedly connects at least two plates to each other. The pressure piece has at least one end portion which protrudes from the plates on one (longitudinal) side of the plate link chain and which has a securing element for securing the position of the pressure piece relative to the plates, which securing element is integrally bonded, in particular welded, on the end portion of the pressure piece. The present disclosure furthermore relates to a method for securing the position of a pressure piece relative to at least two plates of such a plate link chain/CVT chain.
Plate link chains with securing elements welded onto the pressure pieces are already known from the prior art. For example, DE 10 2015 202 763 B4 discloses a belt means for a continuously variable transmission of a motor vehicle, which is arranged in the torque flow between a first pair of conical disks and a second pair of conical disks of the transmission, with an assembly of pressure pieces aligned transversely to the running direction of the belt means and plates arranged parallel to the running direction. The pressure pieces engage in openings of the plates, the plates are articulated by means of the pressure pieces, and the pressure pieces protrude from the assembly with their end sections on opposite longitudinal sides of the belt. At least one securing element for securing the plates and/or pressure pieces is connected to at least one of the end sections, and the at least one securing element is formed by an adhesive element.
However, the prior art has the disadvantage that, in a plate link chain for a continuously variable transmission (CVT), which can also be referred to as a CVT chain, securing elements are welded to the (cradle) pressure pieces to secure the position of the plate packs. However, these securing elements can fall off during transport or during operation, which among other things can lead to the plate link chain falling apart, for example during transport.
A plate link chain and a method for securing the position of a pressure piece relative to at least two plates of such a plate link chain are disclosed, in which the strength of a weld between the securing element and the pressure piece is increased in order to reduce the probability of a falling safety element. For example, the strength of the welded connection should be increased without intervention or a change in the welding parameters. In addition, dispersion should be reduced.
In a device of the generic type, this is achieved, according to the present disclosure, in that at least one of the surfaces of the securing element and of the pressure piece that are to be fastened to one another has a surface structure that is purposefully introduced. In other words, one of the surfaces of the securing element which are to be fastened to one another and which serves, for example, to prevent the plates and/or the pressure piece from being lost, has a structure.
This has the advantage that the purposeful introduction of the surface structure into the surface of the securing element or the pressure piece to be fastened, e.g., in the surface of the pressure piece to be fastened, results in a larger adhesive surface, which has a positive effect on the strength of the welded connection. Due to the greater roughness, according to the present disclosure, there is thus a larger connecting surface for distributing the force. In addition, that area having the surface structure can be heated uniformly and/or over a wide area, so that the connection area is additionally enlarged.
In an example embodiment, the surface structure can be introduced by means of material removal, material application and/or material deformation. As a result, the surface structure can be provided in a simple and thus inexpensive manner.
The surface structure may be introduced into a convex, i.e., spherical, surface, e.g., of the pressure piece. In the case of spherical surfaces, it is often difficult to form a welded connection with a consistently high strength, so that the surface structure improves the strength of surfaces that are difficult to attach to one another in a beneficial manner.
In addition, the surface structure may at least partially have a defined or regular pattern. In this way, the heat during the welding process can be distributed evenly and in a controlled manner to the surface structure.
According to an example embodiment, the surface structure can be at least partially formed in a formless or irregular manner. As a result, the surface structure can be designed in a simple manner, since no high demands on the surface structure have to be met. It is important that the surface structure changes the roughness of the surface to be fastened, in contrast to when the surface structure is not introduced purposefully. For example, there is an optimum roughness at which the surface can be fastened particularly well, e.g., welded. This means that the surface structure can also have less roughness than the surface without a surface structure.
In an example embodiment, the surface structure can be introduced mechanically and/or chemically. The surface structure may be introduced by grinding, by lasering and/or by embossing, for example. Alternatively, it is also possible if the surface structure is introduced by etching. However, the present disclosure is not restricted to this, and the surface structure can also be produced in another way.
According to an example embodiment, the surface structure can be designed as a hole pattern. A hole pattern can be made in a surface with simple means and with few work steps. A hole pattern is also suitable for curved, e.g., spherical, surfaces.
According to another example embodiment, the surface structure can be designed as a groove pattern. A groove pattern has also proven to be beneficial in terms of manufacturing complexity and in terms of heat distribution.
Furthermore, the surface structure of one of the surfaces to be fastened to one another may be pressed into the other of the surfaces to be fastened to one another in such a way that a receiving structure for the surface structure that is the opposite of the surface structure results. Because one surface is pressed into the other surface, the connection between the two surfaces is resistant to shear forces, so that a firm connection is provided.
The component having the surface structure, i.e., the securing element or the end section of the pressure piece, may have a modified roughness in a region of the surface structure, e.g., optimized for welding, than in a region apart from the region of the surface structure, for example adjacent to the region of the surface structure. This ensures that the roughness is increased by the surface structure.
The present disclosure also includes a method for securing the position of a pressure piece relative to at least two plates of a plate link chain. The pressure piece is inserted into an opening of each of the at least two plates and a securing element is welded onto an end section of the pressure piece. Prior to welding, a surface structure, is purposefully introduced, e.g., mechanically or chemically, for example by grinding, by laser, by embossing or by etching, into at least one of the surfaces to be welded of the pressure piece and the securing element.
In other words, the present disclosure relates to a CVT chain with a securing element welded onto the at least one pressure piece, and the welded connection is arranged on a structured surface. For this purpose, one of the surfaces to be welded to one another is provided with a structure that can be created, for example, by applying, removing or deforming material. This structuring can either be formless or random or defined, for example as a pattern. The structuring can be produced mechanically, chemically or in some other way.
The present disclosure is explained below with the aid of drawings. In the figures:
The figures are only schematic in nature and serve exclusively for understanding the disclosure. The same elements are provided with the same reference symbols. The features of the exemplary embodiments can be interchanged.
In
The surface 2 has the surface structure 3. In the first embodiment, the surface structure 3 is designed as a groove pattern 4. The groove pattern 4 has multiple grooves which are evenly spaced apart. The grooves protrude from the surface 2. The surface structure 3 has a rectangular outer contour.
Alternatively, a surface of the securing element 6 on which the securing element is welded to the pressure piece 1 can also have a surface structure, even if this is not explicitly shown in the figures.
The surface structure 3 can also be designed in a formless or random manner, i.e., without a regular pattern, even though this is not explicitly shown in the figures.
A small traction means radius in the first (drive) pair of conical disks 12 corresponds to a small gear of a conventional transmission; a large radius corresponds to a large gear. When the conical disks 16, 17 of the pairs of conical disks 11 are far apart, the plate link chain 8 describes a small radius on the conical surface. When the conical disks 16, 17 of the pairs of conical disks 11 are close to one another, the plate link chain 8 describes a large radius on the conical surface. Thus, the gear ratio becomes larger when the conical disks 16, 17 are compressed, and smaller when the conical disks 16, 17 are removed from one another.
Number | Date | Country | Kind |
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10 2019 110 227.8 | Apr 2019 | DE | national |
This application is the United States National Phase of PCT Appln. No. PCT/DE2020/100225 filed Mar. 20, 2020, which claims priority to German Application No. DE102019110227.8 filed Apr. 18, 2019, the entire disclosures of which are incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/DE2020/100225 | 3/20/2020 | WO | 00 |