SCREW DRIVE WITH AT LEAST ONE BEARING AS PLANET
20180313437 ยท 2018-11-01
Inventors
Cpc classification
F16H25/2247
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/228
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present disclosure relates to a screw drive with an element having a thread, at least one planet and a holder, wherein the at least one planet is held by the holder and rolls along the threads of the thread of the element and the holder moves linearly along the thread of the element relative to the element. The at least one planet of the screw drive is formed by a bearing which engages with its outer ring or with its inner ring in the thread of the element via an angular section.
Claims
1. A screw drive having an element having a thread, at least one planet and a holder, wherein the at least one planet is held by the holder and rolls off along a threaded portion of the thread of the element, and the holder; 30) is moving linearly along the thread of the element relative to the element, wherein the at least one planet is formed by a bearing which engages with its outer ring or with its inner ring in the thread of the element via an angular section.
2. The screw drive according to claim 1, wherein the element is designed as a threaded spindle or as a hollow cylinder having an internal thread.
3. The screw drive according to claim 1, wherein the outer ring or the inner ring engaging in the thread of the element engages in the thread via a groove and/or web in the outer ring or the inner ring of the element.
4. The screw drive according to claim 1, wherein the axis of the at least one planet is fixed in the holder tilted to the longitudinal axis of the element.
5. The screw drive according to claim 1, wherein the at least one planet has at least one further bearing and a group of bearings is formed thereby, the bearings of the group being connected by a bearing holder to their inner rings and engaging the thread of the element with their outer rings.
6. The screw drive according to claim 5, wherein the axes of the bearings of the group are fixed, tilted against each other, in the bearing holder.
7. The screw drive according to claim 5, wherein the bearing holders have a groove and/or a web with which they engage in the thread of the element.
8. The screw drive according to claim 1, wherein in the case of screw drives which comprise a plurality of planets, the planets are arranged at approximately equal angular spacings around or in the element and engage in the thread.
9. The screw drive according claim 1, wherein the bearings are formed by rolling bearings and/or by plain bearings.
10. The screw drive according to claim 4, wherein the axis of the at least one planet is fixed in the holder tilted substantially about the pitch of the thread to the longitudinal axis of the element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020]
[0021]
[0022]
[0023] The two axes 23 of the ball bearing 2 of a group 13 are fixed in the bearing holder 14, tilted against each other, which results in a better guidance of the webs 10 in the thread 6 of the threaded spindle 7. In addition, there is a better introduction of the bearing capacity of the holder into the threaded spindle 7.
[0024] One bearing holder 14 now has a bridge 16 and the other bearing holder 14 has a groove 22, with which they engage in thread 6 of the threaded spindle 7. This results in better guidance of the holder during linear movement of the holder or threaded spindle 7 along a transport direction of 9.
[0025] As can be seen from the two design examples of screw drives 1 and 12 with webs 10 in the outer rings 3 of
[0026]
[0027] Since the bends of thread 6 of threaded spindle 7 and webs 19 of inner ring 20 are equally oriented, the inner ring 20 engages in thread 6 via a relatively large angular section 21 shown in
[0028] The axes of the ball bearings 18 are tilted to the longitudinal axis 15 of the threaded spindle 7, which is shown in
[0029] For all three of the above-mentioned design examples of screw drives 1, 12 and 17, it is possible that either the mounting bracket, which is marked with position number 4 in the design example of screw drive 1 and is not shown in the design examples of screw drive 12 and 17, is fixed in a non-rotating manner and that the screw spindle 7 is rotatable, or that the screw spindle 7 is fixed in a non-rotating manner and the mounting bracket is rotatable. In both cases, regardless of whether the threaded spindle 7 is fixed in a non-rotating manner or the holder is fixed in a non-rotating manner, either the threaded spindle 7 can be axially fixed and the holder can be moved along the transport direction 9 or the holder can be axially fixed and the threaded spindle 7 can be moved along the transport direction 9.
[0030]
[0031] Since the curvatures of the inner thread 28 of the hollow cylinder 29 and the webs 26 of the outer ring 27 are oriented in the same direction, the outer ring 27 engages with the inner thread 28 via a relatively large angular section 31 shown in
[0032] The ball bearings 27 are fixed around the pitch of the internal thread 28 of the hollow cylinder 29 tilted at the holder 30. This results in a particularly smooth running of the webs 26 in the internal thread 28.
[0033] As can be seen from the design example of screw drive 24 with webs 26 in the outer rings 27 of
[0034] As with the aforementioned examples, this design example of screw drive 24 also offers the possibility that either the holder 30 is fixed in such a way that it cannot rotate and the hollow cylinder 29 can be rotated, or that the hollow cylinder 29 is fixed in such a way that it cannot rotate and the holder 30 can be rotated. In both cases, regardless of whether the hollow cylinder 29 is fixed in a non-rotating manner or whether the holder 30 is fixed in a non-rotating manner, either the hollow cylinder 29 can be axially fixed and the holder 30 can be moved along a transport direction 34 or the holder 30 can be axially fixed and the hollow cylinder 29 can be moved along the transport direction 34.
[0035] It can be mentioned that different types of bearings can be used for screw drives according to the invention, such as different types and forms of rolling and/or plain bearings. Rolling bearings of the following types are particularly advantageous: ball bearings; tapered bearings; roller bearings.
[0036] It can be mentioned that screw drives according to the invention can have two, three, four or more bearings in a common holder. A larger number of bearings allows a higher load capacity of the screw drive. Furthermore, it would be possible to connect a bracket held by at least two bearings to another bracket held by at least two bearings on the same threaded spindle in order to achieve a wider support and increase the buckling stability.
[0037] It should be noted that grooves may be provided in both the outer rings and inner rings of the bearings which engage in the bar of the threaded spindle thread.
[0038] It can be mentioned that as a hollow cylinder with an internal thread, it is also possible to see any element that has a bore with an internal thread, and that therefore a hollow cylinder is not restricted to tubes.