Weight compensation device of a lifting door with at least one compression spring
10329815 ยท 2019-06-25
Inventors
Cpc classification
E05Y2900/00
FIXED CONSTRUCTIONS
International classification
Abstract
The invention relates to a weight compensation device for a drive of a lifting door, for the position-dependent compensation of the weight force of a door leaf of the lifting door, with a force transmission unit which can be coupled to the drive in order to carry out an opening movement which raises the door leaf and a closing movement which lowers the door leaf, wherein at least one compression spring is provided which is arranged in such a way that it supports the opening movement. The invention also relates to a lifting door, in particular an industrial lifting door, which has a door leaf, with a drive, such as a motor, and with a weight compensation device according to the invention.
Claims
1. A weight compensation device for a drive of a lifting door for position-dependent compensation of a weight force of a door leaf of the lifting door comprising a drive shaft, which is configured to be coupled to the drive in order to carry out an opening movement which raises the door leaf and a closing movement which lowers the door leaf, wherein the drive is a straight bevel gear drive with a sprocket belt, wherein at least one compression spring is provided and arranged such that the compression spring supports the opening movement, and the compression spring is arranged in a stationary hollow-cylindrical guide element, characterized in that the stationary hollow-cylindrical guide element is non-rotatably attached to a mount for supporting a rotary motion of the drive shaft, and wherein the compression spring is supported at a base part and at an adjusting element, in a force transmitting manner, wherein the base part is fixed with respect to the hollow-cylindrical guide element and the adjusting element is translationally movable relative to the hollow-cylindrical guide element.
2. The weight compensation device according to claim 1, characterized in that the compression spring is coupled to a motion conversion device which employs a force of the compression spring acting in a longitudinal direction to the compression spring for supporting the rotary motion of the drive shaft raising or lowering the door leaf.
3. The weight compensation device according to claim 1, characterized in that the compression spring is arranged horizontally to a raising or lowering direction of the door leaf.
4. The weight compensation device according to claim 1, wherein the compression spring is located in a hollow space when the door leaf is raised.
5. The weight compensation device according to claim 1, characterized in that the drive shaft is engaged with the adjusting element which is movable by the compression spring in a longitudinal direction of the drive shaft.
6. The weight compensation device according to claim 1, characterized in that the adjusting element is coupled to the drive shaft so as to transmit torque, such that a movement of the adjusting element along a longitudinal direction imparts torque transmission from the adjusting element to the drive shaft.
7. The weight compensation device according to claim 1, characterized in that the adjusting element is guided within the hollow-cylindrical guide element to be shifted in a longitudinal direction, in a groove on an inner side of the hollow-cylindrical guide element which extends substantially in the longitudinal direction.
8. The weight compensation device according to claim 1, characterized in that the adjusting element is a spindle nut.
9. The weight compensation device according to claim 8, characterized in that the spindle nut is coupled to the drive shaft by threaded engagement.
10. The weight compensation device according to claim 1, characterized in that in the drive shaft includes at least one flexible clutch, wherein the at least one clutch splits up the drive shaft.
11. The weight compensation device according to claim 1, characterized in that the compression spring is arranged remote from frames of the mount.
12. A lifting door comprising a door leaf with a drive and the weight compensation device according to claim 1.
13. The weight compensation device according to claim 1, characterized in that the door leaf wound-up in a raised state surrounds a space in which the compression spring and the motion conversion device are arranged.
14. The weight compensation device according to claim 2, characterized in that the door leaf wound-up in a raised state surrounds a space in which the motion conversion device is arranged.
15. The weight compensation device according to claim 1, characterized in that the compression spring is arranged transversely to a raising or lowering direction of the door leaf.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be illustrated more in detail with reference to the drawing in which different embodiments are represented in different views. In the drawings:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
DETAILED DESCRIPTION
(20) The figures are only schematic drawings and only serve the understanding of the invention. Identical elements are provided with identical reference numerals.
(21)
(22) The weight compensation device comprises a force transmission unit 6. The force transmission unit is designed for activating a raising motion, i.e. an opening motion, and a lowering motion, i.e. a closing motion, of the door leaf 4. The force transmission unit 6 is thus directly or indirectly connected to the door leaf 4, i.e. at least one segment 5 of the door leaf 4.
(23) In the variant for embodying a spiral door represented in
(24) The force transmission unit 6 is embodied as drive shaft 8. The drive shaft 8 is mounted via four bearings 9, in particular bearings 9 configured as rolling bearings.
(25) By means of the drive 2 of the force transmission units 6, i.e. the drive shaft 8, the door leaf 4 is held so that it may be raised and lowered.
(26) A spindle nut 10 is provided on the drive shaft 8 so as to grip around the latter, the spindle nut comprising an end plate 11. The end plate 11 is located in a stationary hollow shaft 12. At least one projection 13 of the end plate 11 is positively locked with a groove 14 on the inner side 15 of the hollow shaft 12. The groove 14 is a longitudinal groove, i.e. a groove extending in parallel to the longitudinal axis 16 of the drive shaft 8.
(27) A preferably metallic compression spring 17 is provided concentrically to the longitudinal axis 16. The compression spring 17 is configured as flat spiral spring extending along the longitudinal axis of the hollow shaft 12. The compression spring 17 is a component which is in a solid aggregation state under normal pressure and temperature conditions that normally prevail in the surrounding area. It is a metallic component which acts in an elastically restituting manner. Being relieved, it returns to its original shape. Here, it is embodied as a wound spring.
(28) The compression spring 17 is prestressed by the value .sub.v between the end plate 11 and a base part 18. The base part 18 is in this embodiment connected to the hollow shaft 12 in a torque-proof and axially fixed manner. For the compression of the compression spring 17, it is relevant that it is disposed between the base part 18 and the adjusting element 37, such that it may be translationally compressed.
(29) It is also possible for the base part 18 to be replaced by an embodiment similar to an adjusting element such that this component similar to an adjusting element is present on the same spindle as the spindle nut 10. The two parts are then arranged on threads running in opposite directions.
(30) Projecting from the end plate 11 in the direction of the base part 18, a bushing 19 is embodied which may be integrally formed with the end plate 11 or may be connected to it with a form-fit, a frictional connection and/or by a material bond. On the inner side of the bushing 19, a thread is formed which is in threaded engagement with a threaded section 20 of the drive shaft 8.
(31) The drive shaft 8 is split into three parts, where in the transitional region between the individual parts of the drive shaft 8, one flexible clutch 21, in particular of a flexible claw clutch type, is provided each.
(32) In operation of the spiral door, the hollow shaft 12 is standing still, whereas the drive shaft 8 is rotatable. Depending on the compression state of the spring 17, more or less torque is applied to the drive shaft 8 by means of the spindle nut 10 by the longitudinal displacement of the end plate 11 via the threaded engagement of the bushing 19.
(33) In
(34)
(35) A control window 22, i.e. an opening in the wall of the hollow shaft 12, is formed which permits a view to the end plate 11. In the central region of the control window 22, a widening 23 is present which represents a mark for an optimal assembly position.
(36)
(37) A frame width is only determined by a door leaf guide 39 and possibly also by the continuous traction member 7. In the variant shown in
(38) In
(39) Different to prior art, the spring configured as compression spring is not arranged in the vertical direction but in the horizontal direction within the hollow shaft 12 so as to surround the drive shaft 8.
(40) The compression spring 17 is located in a hollow space 33. The hollow space 33 is defined by the wound-up door leaf 4. The door leaf 4 is guided in the spiral guide 40 and surrounds the hollow space 33 in its wound-up state.
(41) A motion conversion device 32 is coupled to the compression spring 17 and comprises at least the base part 18, the pressure element 34 which is configured as hollow cylinder 36 and has in particular assumed the shape of the hollow shaft 12 and comprises the groove 14 extending in the longitudinal direction on its inner side, and an adjusting element 37 which is configured as spindle nut 10 with a bushing 19 and an end plate 11.
(42) The motion conversion device 32 converts the rotary drive energy into a translational kinetic energy.
(43) The compression spring 17 is arranged horizontally between two vertical frames 50 of a mount 35.
(44)
(45) The end plate 11 comprises projections 13 which are guided in a groove 14 formed on the inner side 15 of the hollow shaft 12 in the longitudinal direction. One projection 13 each is guided in one groove 14 each. The base part 18 also comprises such projections 13 which are also guided in one groove 14 each. However, it is also possible for the compression spring 17 configured as base part 18 to be connected to the hollow shaft 12 in a torque-proof and/or translationally fixed manner by a form-fit, a frictional connection, and/or a material bond.
(46) In the illustrated second embodiment, the drive shaft 8 is connected to the hollow shaft 12 in a torque-proof manner. In this embodiment, as illustrated in
(47) As can also be seen in
(48) In all embodiments, the compression spring may optionally support itself radially in the hollow-cylindrical guide element 34, preventing a buckling of the spring.
(49) The base part of
(50) As was already stated with respect to the embodiment according to
(51) In
(52) Views corresponding to the views shown in
(53) In
(54)
(55) In the embodiment visualized in
(56) Embodiments which are designed corresponding to the following computations proved to be particularly advantageous:
(57) 1. Door leaf-related torque:
(58) Door leaf weight: G.sub.t=115 kg
(59) Crown gear diameter: d.sub.o=75 mm
(60) g: Gravitational acceleration 9.81 m/s.sup.2
(61)
(62) 2. Spring-related torque:
(63) Spring force F.sub.f=9000 N
(64) Spindle diameter 40 mm, pitch P.sub.h=40 mm
(65) Efficiency with linear rotation .sub.2=0.98
(66)
(67) 3. Required motor/driving torque
T.sub.m=T.sub.f=T.sub.t=56.242.3=13.9 Nm