Vibration isolating device for an elastic coupling of two components
10113609 ยท 2018-10-30
Assignee
Inventors
Cpc classification
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2224/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C2027/002
PERFORMING OPERATIONS; TRANSPORTING
F16F15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2224/0241
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/116
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16M1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/116
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C27/00
PERFORMING OPERATIONS; TRANSPORTING
F16F15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vibration isolating device that is adapted for an elastic coupling of a first component to a second component and for vibration isolation in predetermined frequency ranges between the first and second components, the vibration isolating device comprising at least a first and a second elastically deformable plate that are attached to each other in at least two separate connecting points, the first elastically deformable plate comprising a first curvature and the second elastically deformable plate comprising a second curvature, wherein the first and second curvatures are respectively located in a region between the at least two separate connecting points and arranged such that a gap is defined between the first and second elastically deformable plates.
Claims
1. A vibration isolating device that is adapted for an elastic coupling of a first component to a second component and for vibration isolation in predetermined frequency ranges between the first and second components, the vibration isolating device comprising at least a first and a second elastically deformable plate that are attached to each other in at least two separate connecting points, the first elastically deformable plate comprising a first curvature located in a region between the at least two separate connecting points and the second elastically deformable plate comprising a second curvature located in a region between the at least two separate connecting points, wherein the first and second curvatures are arranged such that a gap is defined between the first and second elastically deformable plates in the regions between the at least two separate connecting points, and wherein the first and second curvatures are adapted to be reduced in operation if a tension force that moves the at least two separate connecting points away from each other is applied to the vibration isolating device, and wherein the first and second curvatures are adapted to be increased in operation if a compression force that moves the at least two separate connecting points towards each other is applied to the vibration isolating device; wherein at least one of the first and second elastically deformable plates comprises an associated vibration isolation mass and in that the at least one of the first and second elastically deformable plates comprises an associated lever that is mounted to the at least one of the first and second elastically deformable plates, in the region of at least one of the first and second curvatures, of the at least one of the first and second elastically deformable plates, at least one associated lever being provided with a vibration isolation mass.
2. The vibration isolating device according to claim 1, wherein at least one of the first and second elastically deformable plates comprises at least one of composite material and metal.
3. The vibration isolating device according to claim 2, wherein the composite material comprises a carbon fiber-reinforced polymer.
4. The vibration isolating device according to claim 1, wherein the associated vibration isolation mass is arranged in the region of at least one of the first and second curvatures, of the at least one of the first and second elastically deformable plates.
5. The vibration isolating device according to claim 1, wherein the associated vibration isolation mass is arranged in a region of the at least one of the first and second elastically deformable plates that exhibits a maximum ratio between a bulging distance and a length decrease of the vibration isolating device that occurs in operation in response to an increase of the first and second curvatures during application of a compression force.
6. The vibration isolating device according to claim 1, wherein the associated vibration isolation mass is arranged on the associated lever in a region that exhibits a maximum ratio between a lever opening distance and a length decrease of the vibration isolating device that occurs in operation in response to an increase of the first and second curvatures during application of a compression force.
7. The vibration isolating device according to claim 6, wherein the first elastically deformable plate comprises at least one first associated lever and the second elastically deformable plate comprises at least one second associated lever.
8. The vibration isolating device according to claim 7, wherein the first and second associated levers are interconnected by means of at least one spring element.
9. The vibration isolating device according to claim 8, wherein the spring element is one of a helical spring, an elastically deformable connecting plate, a diagonally arranged flat spring, a Belleville spring, a disk spring and a coned-disk spring with a connecting rod.
10. The vibration isolating device according to claim 8, wherein the at least one spring element is arranged in a region of the first and second associated levers that exhibits a maximum ratio between a lever opening distance and a length decrease of the vibration isolating device that occurs in operation in response to an increase of the first and second curvatures during application of a compression force.
11. The vibration isolating device according to claim 1, wherein the first and second elastically deformable plates are interconnected by means of at least one spring element.
12. The vibration isolating device according to claim 11, wherein the spring element is one of a helical spring, an elastically deformable connecting plate, a diagonally arranged flat spring, a Belleville spring, a disk spring and a coned-disk spring with a connecting rod.
13. The vibration isolating device according to claim 11, wherein the at least one spring element is arranged in a region of the at least one of the first and second elastically deformable plates that exhibits a maximum ratio between a bulging distance and a length decrease of the vibration isolating device that occurs in operation in response to an increase of the first and second curvatures during application of a compression force.
14. The vibration isolating device according to claim 1, wherein the first component is a main gearbox of a helicopter and the second component is a fuselage of the helicopter.
15. The vibration isolating device according to claim 1, wherein at least one elastically deformable plate comprises a weight adjusting arrangement having an adjustable vibration isolation mass and a drive unit that is mounted on the elastically deformable plate for achieving a weight adjustment by a translational movement a center of gravity of the adjustable vibration isolation mass; the translational movement being imposed on the adjustable vibration isolation mass by means of the corresponding drive unit in the form of a linear drive.
16. The vibration isolating device according to claim 1, wherein at least one elastically deformable plate comprises a weight adjusting arrangement having an adjustable vibration isolation mass and a drive unit that is mounted on the elastically deformable plate for achieving a weight adjustment by a rotational movement a center of gravity of the adjustable vibration isolation mass; the rotational movement being imposed on the adjustable vibration isolation mass by means of the corresponding drive unit in the form of a rotational drive.
17. A helicopter with a first component that is elastically coupled to a second component by the vibration isolating device according to claim 1.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) Preferred embodiments of the invention are outlined by way of example in the following description with reference to the attached drawings. In these attached drawings, identical or identically functioning components and elements are labeled with identical reference numbers and characters and are, consequently, only described once in the following description.
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DETAILED DESCRIPTION OF THE INVENTION
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(24) According to one aspect of the present invention, the vibration isolating device 1 comprises at least a first and a second elastically deformable plate that are attached to each other in at least two separate connecting points. Each one of these elastically deformable plates preferentially comprises a bar- or lath-shaped form with an overall length that is greater than its width. By way of example and for purposes of simplicity and clarity of the drawings, only two elastically deformable plates 1a, 1b and only two separate connecting points 2a, 2b are shown.
(25) In other words, the present invention is described by way of example with respect to a simplified illustrative configuration that comprises only two elastically deformable plates 1a, 1b and only two separate connecting points 2a, 2b. However, it should be noted that this is not intended for restricting the present invention to such a simplified illustrative configuration.
(26) Preferably, at least one of the two elastically deformable plates 1a, 1b comprises composite material and/or metal. The composite material may comprise a carbon fiber-reinforced polymer.
(27) According to one aspect of the present invention, the two elastically deformable plates 1a, 1b are attached to each other in the two separate connecting points 2a, 2b for respectively defining associated bearing parts 3a, 3b. The latter are preferentially adapted for mounting to the two components 4, 5, respectively.
(28) Preferably, each one of the elastically deformable plates comprises an associated curvature in its axial direction, i.e. its longitudinal extension, which is located between the separate connecting points. Illustratively, the elastically deformable plate 1a comprises a first curvature 2c and the elastically deformable plate 1b comprises a second curvature 2d, both curvatures 2c, 2d being located in a region between the two separate connecting points 2a, 2b.
(29) The two curvatures 2c, 2d are preferably arranged such that a gap 2e is defined between the two elastically deformable plates 1a, 1b in the region between the two separate connecting points 2a, 2b. This gap 2e is defined such that the vibration isolating device 1 comprises in the unloaded state an underlying length 1k between the two components 4, 5 that is smaller than the overall length of each one of the elastically deformable plates 1a, 1b. Consequently, the vibration isolating device 1 comprises in the unloaded state an underlying width 1l that is greater than it would be if the two elastically deformable plates 1a, 1b would touch each other over their entire lengths.
(30) According to one aspect of the present invention, the two curvatures 2c, 2d are adapted to be increased in operation if a compression force 6 that moves the two separate connecting points 2a, 2b towards each other is applied to the vibration isolating device 1. They are preferably further adapted to be reduced in operation if a tension force 7 that moves the two separate connecting points 2a, 2b away from each other is applied to the vibration isolating device 1.
(31) More specifically, if the compression force 6 is applied to the vibration isolating device 1 such that the two curvatures 2c, 2d are increased, the vibration isolating device 1 is bulged out. In other words, the two elastically deformable plates 1a, 1b are forced into a bulged state as illustrated with dashed lines 9a, 9b. Consequently, the underlying length 1k of the vibration isolating device 1 is decreased by a length change a1, as illustrated with an arrow 6a, and its underlying width 1l is increased by a lateral displacement b1, as illustrated with an arrow 6b. If in contrast thereto the tension force 7 is applied to the vibration isolating device 1 such that the two curvatures 2c, 2d are decreased, the vibration isolating device 1 is flattened. In other words, the two elastically deformable plates 1a, 1b are forced into a stretched state as illustrated with dotted lines 8a, 8b. Consequently, the underlying length 1k of the vibration isolating device 1 is increased by a length change a1, as illustrated with an arrow 7a, and its underlying width 1l is decreased by a lateral displacement b1, as illustrated with an arrow 7b. As mentioned above, a ratio x1 between the lateral displacement b1 and the length change a1 can be obtained that lies in a range from 2<x1<20.
(32) According to one aspect of the present invention, at least one of the two elastically deformable plates 1a, 1b is provided with an associated vibration isolation mass. Illustratively, each elastically deformable plate 1a, 1b comprises an associated vibration isolation mass 1c, 1d, respectively. Each associated vibration isolation mass 1c, 1d is preferably arranged in the region of the corresponding curvature 2c, 2d of the respective elastically deformable plate 1a, 1b. By way of example, the vibration isolation mass 1c is arranged in the region of the curvature 2c and the vibration isolation mass 1d is arranged in the region of the curvature 2d.
(33) More preferably, each associated vibration isolation mass 1c, 1d is arranged in a region of the respective elastically deformable plate 1a, 1b that exhibits the maximum ratio x1 of the vibration isolating device 1 and that preferentially occurs in operation in response to an increase of the two curvatures 2c, 2d during application of the compression force 6. This maximum ratio x1 can be determined between the lateral displacement b1 in direction of the arrow 6b, which is also referred to hereinafter as the bulging distance, and the length change a1 in direction of the arrow 6a, which is also referred to hereinafter as the length decrease. Accordingly, in the illustrated example the vibration isolation masses 1c, 1d are arranged approximately in the middle of the vibration isolating device 1, seen in direction of its underlying length 1k, where the maximum ratio x1 occurs in operation.
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(35) According to one aspect of the present invention, the two spring elements 10a, 10b are arranged in the region of the respective elastically deformable plate 1a, 1b that exhibits the maximum ratio x1 of the vibration isolating device 1 and that preferentially occurs in operation as explained above with reference to
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(37) According to one aspect of the present invention, the two elastically deformable plates 1a, 1b are rigidly attached to associated mounting flanges 12a, 12b, respectively, which preferably essentially define the vibration isolation masses 1c, 1d of
(38) As the associated mounting flanges 12a, 12b preferably essentially define the vibration isolation masses 1c, 1d of
(39) According to one aspect of the present invention, the diagonally arranged flat springs exhibit a progressive stiffness, which preferentially increases during extension. Furthermore, the diagonally arranged flat springs preferably function as limits stops whenever the vibration isolating device 1 is subject to comparatively large compression forces in operation, i.e. when the compression force 6 of
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(42) It should be noted that the curvatures 2c, 2d are slightly modified with respect to
(43) In operation of the vibration isolating device 1, if the compression force 6 of
(44) As mentioned above with reference to
(45) According to one aspect of the present invention, at least one and, preferentially, each one of the levers 17a, 17b is provided with an associated vibration isolation mass. By way of example, the lever 17a is provided with the vibration isolation mass 1c of
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(47) According to one aspect of the present invention, the spring element 10d is arranged in the region of the respective lever 17a, 17b that exhibits the maximum ratio x5l of the vibration isolating device 1 and that preferentially occurs in operation as explained above with reference to
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(50) However, it should be noted that this configuration is dependent on space that is available in an associated operating environment for an installation of this vibration isolating device 1. In other words, the kinks may be directed in other directions or just be implemented smoother than illustrated.
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(53) According to one aspect of the present invention, the two levers 17a, 17b are separate components that are rigidly attached to the two elastically deformable plates 1a, 1b at associated connection sections 20a, 20b, respectively, which are arranged in the regions of the curvatures 2c, 2d. The rigid attachment is exemplarily performed by means of the suitable fixation means 13 of
(54) Preferably, the two levers 17a, 17b are connected with the vibration isolation masses 1c, 1d, respectively, which are preferentially rigidly attached to the two levers 17a, 17b. This rigid attachment is exemplarily also performed by means of the suitable fixation means 13, such as screws or bolts.
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(56) The four levers 17a, 17b, 17c, 17d are illustratively arranged laterally with respect to the two elastically deformable plates 1a, 1b and formed as integral parts thereof. Thus, the lever 17b is hidden in
(57) According to one aspect of the present invention, the levers 17a, 17c and the levers 17b, 17d are respectively rigidly attached to each other at their free ends via the mounting flanges 12a, 12b of
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(59) According to one aspect of the present invention, the two elastically deformable plates 1a, 1b and the elastically deformable connecting plate 21a are manufactured in one piece, i.e. as an integral component. Alternatively, the elastically deformable connecting plate 21a can be a separate component that is rigidly attached to the elastically deformable plates 1a, 1b.
(60) Preferably, the elastically deformable connecting plate 21a is provided with the vibration isolation mass 1c of
(61) According to one aspect of the present invention, while the elastically deformable plates 1a, 1b perform lateral displacements b1 as described above with reference to
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(63) According to one aspect of the present invention, the two levers 17a, 17b and the elastically deformable connecting plate 21b are manufactured in one piece, i.e. as an integral component. Alternatively, the elastically deformable connecting plate 21b can be a separate component that is rigidly attached to the free ends of the two levers 17a, 17b.
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(66) Furthermore, the vibration isolating device 1 can be provided with spring elements that are also not necessarily arranged symmetrically on the vibration isolating device 1 and that may arbitrarily connect selected components. For instance, the spring element 10a of
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(71) By way of example, each vibration isolating device 1 is rigidly attached to a component joint 4a provided at the main gear box 27a via its bearing part 3a, e.g. by means of screws or bolts. Furthermore, each vibration isolating device 1 is rigidly attached to a component joint 5a provided at the fuselage 27b via its bearing part 3b, e.g. by means of screws or bolts. Thus, vibration isolation can be achieved between the main gear box 27a and the fuselage 27b.
(72) It should be noted that the above described, preferred embodiments are merely described to illustrate possible embodiments of the present invention, but not in order to restrict the present invention thereto. Instead, multiple modifications and variations of the invention are possible and should, therefore, also be considered as being part of the invention. For instance, while in