The invention relates to an encoder fastening according to the preamble of claim 1. The invention further relates to a method according to the preamble of claim 17.
In electric motors, the encoder shaft is usually connected to the drive shaft in a fixed manner. The encoder shaft of rotary encoders for electric motors, in particular servomotors, is usually connected to the drive shafts using clamped joints or tapered seats. Screws are normally employed for this purpose.
The connection of the two axially aligned shafts is effected by means of an interference fit, this being produced by a cylindrical and hollow-cylindrical fit of both shafts and by a central fastening screw which connects both shafts together in an axial direction.
The securing of both shafts is achieved by tightening the fastening screw, whose shank passes through a central hole of the encoder shaft and whose screw thread is screwed into an internal thread of the drive shaft. The screw head in this case is situated at the end face of the encoder shaft or at the bottom of a hole in the end face of the encoder shaft. A thread of the fastening screw engages in an internal thread of a blind hole in the drive shaft, said blind hole being aligned with the central axial hole of the encoder shaft.
If a tapered seat is used, provision is made for e.g. a central screw. However, this is no longer possible if signal acquisition is required, because essential parts of the signal acquisition must be arranged centrally here.
Furthermore, the fastening by means of a screw also requires additional machining in the drive shaft, specifically the thread, and in the encoder shaft, specifically the drilled hole, and not least a screw.
The object of the present invention is therefore to specify an encoder fastening and a method for improved fastening of the drive shaft to the encoder shaft, thereby solving the problems cited above.
With regard to the encoder fastening, the object is achieved by the specification of an encoder fastening comprising a drive shaft and an encoder system having an encoder shaft, wherein for connection purposes the encoder shaft can be partially inserted into the drive shaft, into a slot provided therefor, wherein for fastening purposes a radially elastic element is arranged in the slot such that the connection is under radial tension, and the encoder fastening is embodied by the provision of a spring washer which is installed in the slot and on which the radially elastic element is arranged.
In this case, the radially elastic element takes the form of radially projecting leaf-like locking elements, wherein the spring washer has an inner circumferential side with an inner diameter and the encoder locking elements are arranged on the inner circumferential side, wherein the spring washer has an outer diameter on the outer circumferential side and the drive locking elements are arranged on the outer circumferential side, and wherein the encoder locking elements and the drive locking elements are so aligned as to oppose each other radially. The drive locking elements effectively point radially outwards in this case, while the encoder locking elements point radially inwards. The inner encoder locking elements serve to securely hold the encoder shaft, while the outer drive locking elements ensure the secure placement in the drive shaft.
With regard to the method, the object is achieved by the specification of a method for fastening an encoder, comprising a drive shaft and an encoder system having an encoder shaft, wherein for connection purposes the encoder shaft is partially inserted into the drive shaft, into a slot provided therefor, wherein the connection is under radial tension because a radially elastic element is arranged in the slot for fastening purposes, and the method is embodied by the installation of spring washer, on which the radially elastic element is arranged, in the slot.
The radially elastic element serves both to securely hold the encoder shaft and to ensure the secure placement in the drive shaft. By virtue of the elasticity, it is ensured that the connection is under radial tension in each case and therefore continues to function correctly.
By virtue of the invention, space is now provided for central positioning of the signal acquisition.
The method can be performed on the encoder fastening according to the invention.
Further advantageous measures are specified in the subclaims, and can be combined as desired in order to achieve further advantages.
The radially elastic element preferably takes the form of radially projecting leaf-like locking elements. In particular, the locking elements are bent and spaced from each other, effectively having a saw-tooth arrangement.
In a preferred embodiment, the locking elements take the form of encoder locking elements and drive locking elements. In this case, the encoder locking elements and the drive locking elements are so aligned as to oppose each other radially. In other words, the encoder locking elements and the drive locking elements point in respectively opposite directions.
The encoder locking elements are preferably bent in an axially opposite direction to the drive locking elements. This bent arrangement ensures ease of assembly while locking in an opposite direction. By virtue of this sprung characteristic, the shaft-hub connection that is formed by the drive shaft and the encoder shaft is under radial tension and therefore continues to function correctly in each case. This gives greater reliability in operation.
In an exemplary embodiment, at least the encoder shaft has an encoder circumferential outer side. The drive locking elements are arranged on this encoder circumferential outer side, pointing radially outwards, in order to securely hold the encoder shaft in the drive shaft. In this case, a plurality of rings of drive locking elements may be attached to the encoder circumferential outer side, providing greater reliability in operation. Furthermore, the drive shaft can have a drive circumferential inner side. The encoder locking elements in this type of configuration are so arranged on said drive circumferential inner side as to point radially outwards.
The drive locking elements can be connected to the drive shaft and the encoder locking elements to the encoder shaft in a detachable or non-detachable manner in this case.
Provision is preferably made for at least one of the drive locking elements to be connected to the corresponding encoder locking element by a bridge. This allows ease of fastening to the spring washer.
In a preferred embodiment, the drive locking elements are bent in an axially opposite direction to the encoder locking elements. This bent arrangement ensures ease of assembly while locking in an opposite direction.
The drive locking elements can be connected to the encoder shaft and the encoder locking elements to the drive shaft in a detachable or non-detachable manner in this case.
The radially elastic element preferably has a sprung characteristic. This sprung characteristic ensures that the shaft-hub connection is under radial tension in each case and therefore continues to function correctly in each case.
Further features, properties and advantages of the present invention are provided in the following description with reference to the appended schematic figures, in which:
Although the invention is illustrated and described in detail with reference to the preferred exemplary embodiment, the invention is not restricted by the examples disclosed herein. Variations can be derived by a person skilled in the art without thereby departing from the scope of patent as defined in the following claims.
Since essential parts of the signal acquisition must be arranged centrally, a structure featuring a fastening screw 9 is however not suitable for signal acquisition. Furthermore, the fastening by means of a fastening screw 9 requires additional machining in the drive shaft 4 (thread.) and in the encoder shaft 10 (drilled hole), and not least a screw 9. The object of the invention is to be able to dispense with all these things, thereby making space available for central positioning of the signal acquisition.
According to the invention, the encoder fastening is now effected using a radially elastic element. In this case, the radially elastic element can have encoder locking elements 20a and drive locking elements 20b (
In this case, the encoder fastening can be embodied as a spring washer 25 as shown in a first example (
In this case, the drive locking elements 20b and the encoder locking elements 20a are bent in axially opposite directions. The inner encoder locking elements 20a serve to securely hold the encoder shaft 10, while the outer drive locking elements 20b ensure the secure placement in the drive shaft 4. The bent arrangement of the drive locking elements 20b/encoder locking elements 20a ensures ease of assembly while locking in an opposite direction. The sprung characteristic ensures that the shaft-hub connection, formed by the drive shaft 4 and the inserted encoder shaft 10, is under radial tension in each case and therefore continues to function correctly.
Provision can obviously also be made for encoder locking elements 20a which are arranged directly on the drive shaft 4 or on the drive circumferential inner side of the drive shaft 4 and which point radially outwards (not shown).
Number | Date | Country | Kind |
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15187245.4 | Sep 2015 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/069469 | 8/17/2016 | WO | 00 |