The invention concerns a guide roller of a pair of feed rollers of a granulating device for plastic strands. The guide roller has a core and at least one outer hard rubber layer.
From the document EP 0 013 575 A1, a granulator is known for granulating plastic strands that has such a pair of feed rollers, wherein the rollers of the pair of feed rollers have lateral surfaces made of steel. In contrast to this application, granulating devices with such a pair of feed rollers usually have a drive roller and a guide roller. In this design, the drive roller can certainly have lateral surfaces made of steel.
The guide roller, which feeds the plastic strands of the granulating device to the granulator, for example by pressing down the plastic strands, usually has a core, however, and at least one outer hard rubber layer, such as is known from the document DE 197 01 926 C2, although in this document the outer hard rubber layer is profiled and has slots and rubber webs in the longitudinal direction that can yield in order to adjust to different plastic strand thicknesses. Nonetheless, the various guide rollers have in common that in the event of wear of the hard rubber layer, be it with or without longitudinal slots and longitudinal webs, the entire guide roller must be recoated at great effort.
In this process, not only are installation costs incurred in uninstalling the guide roller to be replaced and installing a newly coated guide roller, but also transport costs and storage costs, especially since multiple feed rollers are in circulation for removal of used hard rubber layers and for the construction of new hard rubber layers.
From the document DE 199 50 643 A1 a rubber cylinder sleeve is known for web-fed offset rotary presses that has an inner support sleeve that can be expanded by air, a compressive layer arranged thereon, and lastly an outer cover layer. In this design, these layers have joint locations at which the layers, which are assembled from sheets, are welded or glued together to form a cylindrical coating.
This butt joint of a rubber cylinder sleeve is noncritical in web-fed offset rotary presses, since the joint location can be synchronized in its rotation with an expansion channel of a cylinder that has printing plates on its lateral surface between the axially oriented expansion channel. However, this option for compensating the unevenness of joint locations does not exist for guide rollers of a granulating device having an outer hard rubber layer, for which it is necessary to remove the remaining layer at the end of the service life of the hard rubber layer and typically vulcanize a new hard rubber layer onto a cylindrical metallic core.
The object of the invention is to create a guide roller with which the disadvantages of the prior art are overcome, and transport and storage costs can be saved, in the replacement of guide rollers having an outer hard rubber layer.
One embodiment of the invention has a guide roller of a pair of feed rollers of a granulating device for plastic strands. The guide roller has a core and at least one outer hard rubber layer. The at least one hard rubber layer forms a sleeve that can be pushed onto the core of the guide roller and pulled off of the core.
This sleeve, composed at least of an outer hard rubber layer, has the advantage that the hard rubber no longer needs to be vulcanized onto the core of the guide roller. Moreover, removal from the core is made easier in that the hard rubber sleeve is simply pulled off of the core. Considerable installation time can be saved through this system of replacement of the sleeve. Since only the sleeve made of a hard rubber material must be replaced in the event of damage or wear, the customer can easily and straightforwardly order a new sleeve of hard rubber and draw it onto the remaining core himself. The necessity for complete removal of the guide roller for recoating of the core is eliminated, and shipment of the guide roller for recoating is eliminated. Since no more guide rollers are in circulation for coating removal and coating application, by vulcanization for example, the costs for inventory management as well as the costs incurred for outbound and return transport and shipping with each recoating can be reduced for the customer. Relatively simple replacement of guide rollers with different hard rubber properties for different strand materials to be granulated is also possible in this way.
In another embodiment, provision is made that at least one of the end regions of the core has an external thread. Furthermore, the guide roller has a ring nut that can be threaded onto this external thread of the core in the end region. The ring nut for its part can have a first conical surface that engages a first mating conical surface of the outer hard rubber layer that forms a sleeve. An opposite end region of the core has a second conical surface that engages an opposite second mating conical surface of the outer hard rubber layer that forms a sleeve. In this way, the one sleeve is centered by its two mating conical surfaces between the two conical surfaces of the core and the ring nut.
With this embodiment it is possible to ensure in an advantageous manner that, despite a minimal cylindrical gap between the lateral surface of the core of the guide roller and an inside surface of the sleeve comprising at least one hard rubber layer, no imbalance occurs in operation, since the conical surfaces and mating conical surfaces center the hard rubber layer relative to the axis of rotation of the guide roller. Suitable hardness and stiffness of a self-centering hard rubber sleeve of this type ensures that no change in shape of the outer hard rubber layer occurs during clamping and centering of the same between the conical surfaces of the core and ring nut.
For the case in which the frictional connection between conical surfaces and mating conical surfaces does not suffice to prevent rotation of the hard rubber layer that forms a sleeve relative to the core of the guide roller, provision is made in another embodiment of the invention that a key that is oriented in the axial direction projects from the, e.g., cylindrical core. In this design, the key engages positively with an inner longitudinal groove of the outer hard rubber layer during the pushing on and the pulling off. With this positive engagement it is possible to ensure that the sleeve made of hard rubber maintains its position over the core, also referred to as registration or registration position, during operation.
Alternatively, the sleeve of the hard rubber layer can have an internal cone over the entire guide roller width in the axial direction that can be frictionally connected to an external cone of the core. An elongated internal cone of this nature in combination with the external cone of the core makes it possible to provide a releasable and frictional bond between the core and the hard rubber layer that forms a sleeve. In addition, the axial positioning between the core with the external cone and the sleeve with the internal cone can be secured by a ring nut.
Should the frictional connection between the external cone of the core and internal cone of the sleeve not suffice to prevent rubbing and slipping between the conical core and the conical sleeve, it is likewise possible for a key that is arranged in a longitudinal groove of the sleeve to project from the external cone of the core, thereby ensuring positive engagement between the core and the sleeve.
In the event that the hardness and stiffness of the hard rubber layer are not sufficient to provide a self-supporting, deformation-resistant sleeve of this nature, provision is made in the alternative that the outer hard rubber layer is vulcanized or adhesive bonded or clamped onto a reinforcing cylinder. This has the advantage that outer rubber layers can also be provided that are more flexible and elastic than conventional hard rubber layers, either in that they have the known longitudinal slots or longitudinal webs or in that the material is extraordinarily pliable and can adapt better to different strand thicknesses.
Furthermore, provision is made that the reinforcing cylinder has the mating conical surfaces that are arranged such that they are clamped and centered between the front conical surface of the core and the conical surface of the ring nut. As a result, the reinforcing cylinder takes on the centering and clamping of the rubber layer forming a sleeve, which now does not necessarily have to have a hard rubber, since the sleeve now forms a composite consisting of the rubber layer and reinforcing cylinder. For anti-rotation protection between the reinforcing cylinder and the outer shell of the core, the reinforcing cylinder can have an inner longitudinal groove that engages with the key projecting from the outer shell of the core.
The reinforcing cylinder that reinforces the rubber layer can have a thermosetting plastic, a fiber-reinforced plastic, or a metal alloy. Each of these three materials has different advantages and disadvantages, which may be applicable to the guide roller depending on the cost structure, storage options, and thermal requirements. A thermosetting plastic is characterized by relatively high thermal stability, thermal and electrical insulation, and great deformation resistance. A sleeve carrier made of fiber-reinforced plastic has the advantage of low weight, high thermal and electrical insulation, and economical production. A sleeve carrier made of metal has good thermal conductivity and high electrical conductivity to dissipate electrostatic charging of the hard rubber layer forming a sleeve. Furthermore, the metallic material makes possible very precise machining and polishing of the mating conical surfaces for adjusting the sleeve, so that centering can take place very reproducibly and reliably during clamping between the conical surfaces with the aid of the first, preferably metallic, conical surface of the ring nut and the second, preferably likewise metallic, conical surface in the end region of the core.
In another embodiment of the invention, a sleeve carrier is arranged between the outer hard rubber layer forming a sleeve and the core, on which sleeve carrier the hard rubber layer is arranged with or without a reinforcing cylinder.
In order to center and to clamp the hard rubber layer with or without a reinforcing cylinder, a first end region of the sleeve carrier has an external thread onto which can be threaded the one ring nut that has a first conical surface. The first conical surface of the ring nut engages a first mating conical surface of the outer hard rubber layer that forms a sleeve. Located on an opposite second end region of the sleeve carrier is another conical surface that engages an opposite second mating conical surface of the outer hard rubber layer that forms a sleeve. The sleeve with its mating conical surfaces is centered by the conical surfaces of the sleeve carrier and of the ring nut. In this way, the sleeve carrier takes over the above-described function of a core with a first conical surface of the ring nut applied to one end region and a second conical surface on a second end region of the sleeve carrier.
This has the advantage that the profile and the lateral surface of the core can be designed freely. The core can have a round profile in cross-section, so that a key-and-groove connection between the core and the sleeve carrier may possibly be necessary. However, the core can also have profiles or cross-sections that positively engage with corresponding internal profiles of the sleeve carrier. Thus, instead of being cylindrical, the core can have a triangular, square, hexagonal, or polygonal profile, for example. Moreover, it is possible to provide a ball and groove connection or roller and groove connection in place of a key-and-groove connection. Furthermore, it is possible for the core to have a bead at one position of the roller width that engages a recess in the sleeve carrier. The core can also have a flat surface toward one end that engages a corresponding projection from the inner surface of the sleeve carrier.
In another embodiment of the invention, provision is made that the sleeve carrier is an integral part of the core, wherein the core and sleeve carrier can be integrally joined, for example by an adhesive layer.
Furthermore, provision is made that the core of the guide roller has, arranged at the ends, journals that are rotatably supported in a housing of the granulating device. These journals arranged at the ends can be arranged on any desired shape of central core of the guide roller. If a hollow shaft is provided as the core, then the core has, in its end regions, end plates from which the journals can project. According to the invention it can be especially preferred when the guide roller according to the invention can also be raised from the drive roller, which preferably is rotatably mounted in a fixed position in the housing, for easier access on account of its pivotability.
Alternatively, it is also possible that the core of the guide roller has a hollow shaft that is rotatably supported on a fixed axle. To this end, at least one floating bearing and one fixed bearing are arranged on the fixed axle, ensuring that a hollow cylinder can rotate on the fixed axle as a hollow shaft.
In another embodiment of the invention, provision is made that the core of the guide roller has radial bores that communicate with a central axle bore, wherein the central axle bore of the core has a compressed air connection. Through this compressed air connection, compressed air can be directed from the radial bores onto the inner surface of either a hard rubber layer forming a sleeve, or else onto a reinforcing cylinder of the hard rubber layer.
In order to be able to exert a pressure on the inner surface of a hard rubber layer or of a hard rubber layer with reinforcing cylinder with the compressed air, and thereby facilitate the pulling off or pushing on of the sleeve made of hard rubber that is to be replaced, provision is made that an intermediate layer having a compressible material is arranged between the hollow shaft with radial openings, or the hollow shaft with radial bores, and the hard rubber layer or a reinforcing layer. When compressed air is applied to the radial bores or radial openings, the compressible layer is pressed outward against the inner surface of the hard rubber layer or reinforcing cylinder, forming a compressed air gap that significantly eases the pulling off or pushing on of the hard rubber layer or the reinforcing cylinder with hard rubber layer.
The invention is described in detail below using the embodiments explained by way of example.
To this end,
In
The mating conical surfaces 19 and 21 of the reinforcing cylinder 44 cooperate, as before, with the first conical surface 18 of the ring nut 17 placed on the external thread 16 of the core 11 in the end region 14 and the second conical surface 20 arranged in the end region 13 of the core 11. In this design, the mating conical surfaces 19 and 21 of the reinforcing cylinder 44 are centered between the conical surfaces 18 and 20, and are frictionally clamped after the ring nut 17 has been threaded onto the external thread 16 of the end region 14 of the core 11. This reinforcing cylinder 44 can be necessary if the hard rubber layer 12 has inadequate deformation resistance and stiffness, in order to absorb, by virtue of its deformation resistance and stiffness, the clamping and centering forces without deforming.
Moreover,
In this embodiment, the outer shell of the hollow cylinder 39 now has the conical surface 20, and the ring nut 17 has the conical surface 19, between which is clamped and centered the reinforcing cylinder 44, onto which the hard rubber layer 12 is vulcanized or adhesive bonded or clamped. Moreover,
In this sixth embodiment, the hard rubber layer 12 that forms a sleeve 10 has no reinforcing cylinder, but instead, as in
This sleeve carrier 15 can be connected to the core 11 with positive engagement by the means that firstly, as before, a key that is not visible in the longitudinal cross-section in
For this sixth embodiment as well, it is possible to employ a reinforcing cylinder in the event of inadequate strength and stiffness of the hard rubber layer 12. In addition to a connection with positive engagement between the core 11 and the sleeve carrier 15, which for its part carries the sleeve 10 made of a hard rubber layer 12, it is also possible to integrally join this sleeve carrier 15 to the core 11 or even manufacture a core 11 with an integrated sleeve carrier 15 as one piece.
In order to connect the different options of, for example, a sleeve carrier 15 to the core 11 with positive engagement, it is possible to guarantee a positive engagement through a key and groove connection between the sleeve carrier 15 and the core 11, as shown in
In
In
In
In addition to the structures for positive engagement shown by way of example in
Even though embodiments that are at least exemplary have been presented in the preceding description, various changes and modifications may be undertaken. The specified embodiments are merely examples and are not intended to restrict in any way the scope of validity, the applicability, or the configuration of the guide roller of a pair of feed rollers of a granulating device. Instead, the preceding description provides the person skilled in the art with a plan for implementing at least one exemplary embodiment of the guide roller, wherein numerous changes can be made in the function and construction of the guide roller from details of the guide roller shown in exemplary embodiments without departing from the scope of protection of the appended claims and their legal equivalents.
Number | Date | Country | Kind |
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20 2014 003 409.5 | Apr 2014 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2015/000817 | 4/17/2015 | WO | 00 |