The present disclosure generally relates to a shaft fixture structure, and in particular to a fixing apparatus for fixing a shaft to a mounting part and an actuator of a robot.
Shaft locking fixtures are broadly used to fix parts to a shaft and prevent them from being moved by axial forces or moments. Common solutions include the shaft locking nut and the shaft collar. However, shaft locking nuts require a long enough thread for good engagement and a set screw feature for thread slip prevention, thus making them usually bulky and heavy. Shaft collars may be simpler, but can cause uneven force distribution on the shaft.
The present disclosure provides for a fixing apparatus for fixing a shaft to a mounting part and an actuator of a robot.
To solve the above-mentioned problem, the present disclosure adopts a technical scheme to provide a fixing apparatus for fixing a shaft to a mounting part. In some aspects of the present disclosure, the fixing apparatus may include an inner ring and an outer ring. The inner ring has an outer tapered surface and is capable of being sleeved on the shaft. The outer ring has an inner tapered surface that fits the outer tapered surface of the inner ring. The inner ring and the outer ring are both configured to abut the mounting part in an axial direction of the shaft. The outer ring is configured to be detachably fixed to the mounting part, and the inner ring is squeezed by the outer ring to grip the shaft in a radial direction when the outer ring is fixed to the mounting part.
In another aspect, the fixing apparatus may include an inner ring and an outer ring. The inner ring has an outer tapered surface and is capable of being sleeved on the shaft. The outer ring has an inner tapered surface that fits the outer tapered surface of the inner ring. The inner ring has an inner diameter originally smaller than the outer diameter of the shaft. When the outer ring is moved towards the mounting part and both the inner ring and the outer ring abut the mounting part in an axial direction of the shaft, the inner tapered surface of the outer ring squeezes the outer tapered surface of the inner ring to make the inner ring compress and grip the shaft. The outer ring is then detachably fixed to the mounting part.
To solve the above-mentioned problem, another technical scheme adopted by the present disclosure is to provide an actuator of a robot. The actuator includes a shaft, a mounting part and a fixing apparatus. The fixing apparatus is configured to fix the shaft to the mounting part. The fixing apparatus includes an inner ring and an outer ring. The inner ring has an outer tapered surface and is sleeved on the shaft. The outer ring has an inner tapered surface that fits the outer tapered surface of the inner ring. The inner ring and the outer ring both abut the mounting part in an axial direction of the shaft. The outer ring is detachably fixed to the mounting part, and the inner ring is squeezed by the outer ring to grip the shaft in a radial direction.
The present disclosure provides for fixing the shaft to the mounting part with high mounting precision, high clamping forces and easy installation procedures.
In order to clearly explain the technical solutions in the embodiments of the present disclosure, the drawings used in the description of the embodiments will be briefly described below. The drawings in the following description are merely exemplary embodiments of the present disclosure. For those of ordinary skill in the art, other embodiments may also be derived based on these drawings without any creative work.
The disclosure will now be described in detail with reference to the accompanying drawings and examples. The described embodiments are merely exemplary and represent a subset of the embodiments of the present disclosure. One skilled in the art may recognize additional embodiments based on the embodiments of the present disclosure without creative efforts and all such embodiments fall within the scope of the present disclosure.
The inner ring 110 may have an outer tapered surface 111, as shown in
In some examples, when the inner ring 110 and the outer ring 120 are aligned in the axial direction, the inner diameter of the outer ring 120 may be slightly smaller than the outer diameter of the inner ring 110. In such examples, when the outer ring 120 is moved towards the mounting part 300 and both the inner ring 110 and the outer ring 120 abut the mounting part 300 in the axial direction (as shown in
In some aspects of the present disclosure, the outer ring 120 may be detachably fixed to the mounting part 300. For example, the fixing apparatus 100 may further include one or more screws 130 which can fix the outer ring 120 to the mounting part 300 in the axial direction. In other examples, the outer ring 120 may also be detachably fixed to the mounting part 300 in other suitable ways. In such examples as described above, when the outer ring 120 is fixed to the mounting part 300 and the inner ring 110 grips the shaft 200, the shaft 200 may thereby be fixed to the mounting part 300 through the fixing apparatus 100. The fixing apparatus 100 can be released by unmounting the outer ring 120 from the mounting part 300, such as by loosening the one or more screws 130 attaching the outer ring 120 to the mounting part 300.
The present disclosure provides for fixing the shaft 200 to the mounting part 300 with high mounting precision, high clamping forces and easy installation procedures.
In some embodiments, the outer tapered surface 111 of the inner ring 110 and the inner tapered surface 121 of the outer ring 120 may be threaded surfaces that correspond to each other. For example, the corresponding threaded surfaces enable the outer ring 120 to be screwed on the inner ring 110 to lock the shaft 200, or the outer ring 120 to be screwed off the inner ring 110 to unlock the shaft 200.
In some aspects of the present disclosure, the gripping force exerted on the shaft 200 by the fixing apparatus 100 can be adjusted by changing the material and/or geometry of the inner ring 110 and the outer ring 120. For example, the inner ring 110 may be made of plastic material. In such an example, the inner ring 110 may have a lighter clamping force because the plastic is easier to deform around the shaft 200. In other examples, the inner ring 110 may be alternatively made of a metal material, which may provide larger rigidity. In other examples, the inner ring 110 and outer ring 120 may be made of other suitable materials.
In some aspects, providing slots, or grooves, in the inner ring 110 may help to relieve stress caused by deformation of the inner ring 110, and thus improve the contact pressure between the inner ring 110, the outer ring 120 and the shaft 200. For example, exemplary designs of the inner ring 110 are shown in
In some embodiments, as shown in
The present disclosure also provides for an actuator of a robot. The robot may be, for example, an industrial robot. The actuator may be included in the joint of the robot to drive the robot to move. As shown in
In some embodiments, the mounting part 420 may be an end cover of the actuator 400. The actuator 400 may further include an outer enclosure 440. The end cover 420 may be installed inside and fixedly connected to the outer enclosure 440. In this example, the shaft 410 is also fixedly connected to the outer enclosure 440 such that the shaft 410 and the outer enclosure 440 cooperatively constitute a datum for aligning other components of the actuator 400. For example, the other components of the actuator 400 may include a motor assembly, a torque sensor, an output flange etc. These components may be connected to either the shaft 410 or the outer enclosure 440 for alignment.
It should be understood that various changes and modifications to the examples described here will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present subject matter and without diminishing its intended advantages. It is therefore intended that such changes and modifications be covered by the appended claims.
The present application claims the benefit of priority under 35 U.S.C § 119(e) to U.S. Provisional Patent Application Ser. No. 62/721,322, entitled “ROBUST AND RELEASABLE SHAFT FIXTURE WITH HIGH COMPACTNESS” and filed on Aug. 22, 2018, the disclosures of which are herein incorporated by reference in their entirety.
Number | Date | Country | |
---|---|---|---|
62721322 | Aug 2018 | US |