Anti-vibration mounting system
10386166 ยท 2019-08-20
Assignee
Inventors
Cpc classification
F42B30/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F42B30/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A mounting system for mounting an electronic component (2) in a housing (8) comprises a visco-elastic damping element (14, 20) for damping the transmission of vibration from the housing (8) to the component (2) in use, and a support (24, 52) for supporting the component (2) in the housing (8) independently of the damping element (14, 20) whereby the weight of the component (2) is substantially or completely removed from the damping element (14, 20). The support (24, 52) is configured to be selectively releasable from the component (2) such that the component (2) is then supported only by the damping element (14, 20).
Claims
1. A mounting system for mounting an electronic component (2) in a housing (8), the mounting system comprising: a damping element (14, 20) for damping the transmission of vibration from the housing (8) to the component (2) in use, and a support (24, 52) for supporting the component (2) in the housing (8) independently of the damping element (14, 20) such that the weight of the component is substantially or completely removed from the damping element (14, 20), the support (24, 52) being configured to be releasable from the component (2) such that the component (2) is supported only by the damping element (14, 20) after the support has been released from the component, wherein the support (24, 52) is collapsible or permanently deformable upon a predetermined movement of the component (2) relative to the housing (8) so as to release the component (2).
2. A mounting system as claimed in claim 1, wherein the support (24, 52) is configured to be collapsible or permanently deformable in an axial and/or radial direction.
3. A mounting system as claimed in claim 1, wherein the support comprises a first support element (24) which is deformable or collapsible in response to movement of the component (2) in a first direction (D1) relative to the housing (8) and a second support element (52) which is deformable or collapsible in response to movement of the component (2) in a second, opposite direction (D2) relative to the housing (8).
4. A mounting system as claimed in claim 3, wherein first and second support elements (24, 52) are spaced apart axially along the component (2), the first support element (24) being collapsible in response to movement of the component (2) in the first direction (D1) and the second support element (52) being collapsible in response to movement of the component (2) in the second direction (D2), the respective support elements (24, 52) optionally being arranged at respective axial ends of the component (2).
5. A mounting system as claimed in claim 1, wherein the damping element (14, 20) is disposed between opposed axially facing surfaces (16, 18, 20, 22) of the housing (8) and the component (2).
6. A mounting system as claimed in claim 5, comprising first and second damping elements (14, 20) provided at axially spaced locations along the component (2).
7. A mounting system as claimed in claim 1, wherein the damping element (14, 20) comprises a plurality of damping bodies (48, 80), optionally mounted to a common support (46, 78).
8. A mounting system as claimed in claim 1, wherein the damping element is a visco-elastic damping element.
9. A mounting system for mounting an electronic component (2) in a housing (8), the mounting system comprising: a damping element (14, 20) for damping the transmission of vibration from the housing (8) to the component (2) in use, and a support (24, 52) for supporting the component (2) in the housing (8) independently of the damping element (14, 20) such that the weight of the component is substantially or completely removed from the damping element (14, 20), the support (24, 52) being configured to be releasable from the component (2) such that the component (2) is supported only by the damping element (14, 20) after the support has been released from the component, wherein the support (24, 52) comprises a plurality of fingers (28, 60) which engage and support the component (2), but which are plastically deformed upon the movement of the component (2) by the predetermined amount.
10. A mounting system as claimed in claim 9, wherein the fingers (28, 60) are configured to be deformed either radially inwardly or outwardly.
11. A mounting system as claimed in claim 10, wherein the fingers (28) of one support element (24) deforming radially outwardly and the fingers (60) of a second support element (52) deforming radially inwardly.
12. A mounting system as claimed in claim 9, wherein the fingers (28, 60) are mounted to a common base element (26, 58) which is mounted either to the housing (8) or to the component (2).
13. A mounting system as claimed in claim 12, wherein the fingers (28, 60) are arranged in a circumferential array around the base element (26, 58), the array optionally being axi-symmetrical.
14. A mounting system as claimed in claim 9, wherein the fingers (28, 60) have a bent shape with a first, generally axially extending portion (36, 68) for engaging a radially facing surface (38, 72) of the component (2) or the housing (8), and an inclined portion (40, 70) engaging an axially facing surface or edge (16, 74), of the component (2) or housing (8).
15. A projectile (6) comprising: a mounting system for mounting an electronic component (2) in a housing (8), the mounting system comprising: a damping element (14, 20) for damping the transmission of vibration from the housing (8) to the component (2) in use, and a support (24, 52) for supporting the component (2) in the housing (8) independently of the damping element (14, 20) such that the weight of the component is substantially or completely removed from the damping element (14, 20), the support (24, 52) being configured to be releasable from the component (2) such that the component (2) is supported only by the damping element (14, 20) after the support has been released from the component; wherein the support (24, 52) is collapsible or permanently deformable upon a predetermined movement of the component (2) relative to the housing (8) so as to release the component (2), and wherein the launching of the projectile (6) cause the release of acting to release the support (24, 52) from the component (2).
16. A projectile as claimed claim 15, wherein the mounting system is fitted in a tip portion of the projectile (6).
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) With reference to
(6) In this embodiment, the electronic component may be an inertial measurement unit which may be used for navigational purposes. However, the disclosure is not limited to such and extends to other electronic components as well.
(7) The component 2 is mounted within a housing 8 of the assembly 4. The housing 8 has an annular shoulder 10 and a base 12 axially spaced from the annular shoulder 10. The component 2 is mounted between the annular shoulder 10 and the base 12. In use, the component 2 must be isolated from any vibration experienced by the housing 8 and to this end is provided with a first damping element 14 arranged between opposed axially facing surfaces 16, 18 of the base 12 and component 2 and a second damping element 20 arranged between the annular shoulder 10 and an axially forward facing surface 22 of the component 2. This will, in use, isolate the component 2 from vibrations in the projectile and housing 8.
(8) In this embodiment, the first and second damping elements 14, 20 are visco-elastic damping elements, for example silicone or polyurethane dampers. However, the damping elements need not be visco-elastic and can be of any other construction or material which will provide an anti-vibrational damping effect.
(9) The dampers 14, 20 may creep under the weight of the component 2 when the projectile or assembly 4 is being stored etc., particularly if they are of a relatively soft material, for example a silicone or polyurethane elastomer. Accordingly, the assembly 4 is provided with an additional support for the component 2 which will relieve the dampers 14, 20 of the weight of the component 2. This may be regarded as caging the component during storage, etc. Details of the support and its relationship to the dampers 14,20 will now be described in greater detail with reference to
(10) With reference to
(11) As will be seen from
(12) As can be seen from
(13) As will be seen from
(14) As can be seen from
(15) The support further comprises a second support element 52 mounted on the axially facing surface 22 of the component 2 (shown in
(16) Similarly to the fingers 28 of the first support element 24, the fingers 60 of the second support element 52 comprise a first, generally axially extending portion 68 and a second, inclined portion 70 joining the first portion 68 to the annular base portion 58. As can be seen particularly in
(17) The second damping element 20 is secured to the upper surface of the annular base portion 58 of the second supporting element 52 for example by bonding. As can be seen in
(18) Again the second damping element 20 is arranged such that the damping elements 48 do not to interfere with the deformation of the fingers 60.
(19) The first and second support elements 24,52 are made from a deformable material, for example, a deformable metal. In this particular example, the support elements 24,52 are made from beryllium copper and have a thickness of approximately 0.3 mm. However, these are not limiting and the support elements may be made from any suitable material and have any suitable thickness which will allow the fingers 28,60 to deform as will be discussed further below. The support elements 24, 52 may be suitably constructed from a sheet material which is stamped and bent to the appropriate shape.
(20) The first and second damping elements 14,20 may conveniently be moulded from an appropriate material, for example a silicone elastomer. It is not essential that the damping elements 14, 20 be formed as annular elements and a plurality of individual, un-connected elements could be provided. However by making the elements in one piece, their assembly and location in the construction is facilitated.
(21) It will be understood from the above that when at rest, the support elements 24,52 support the component 2 in such a manner that no or minimal component weight, is transferred to the first and second dampers 14,20. The axially extending portions 36,68 of the fingers 28,60 support the component 2 in a radial direction, while the inclined portions 40,70 support the component 2 in an axial direction. In this situation, there is effectively no damping between the housing 8 and the component 2. However, that is not important since the component 2 is inoperative in these conditions and does not require damping.
(22) In use, however, the component 2 must be vibrationally damped with respect to the housing 8. Therefore, the support provided by the first and second support elements 24,52 must be released to permit this damping. This is effected during launch or firing of the projectile 6.
(23) With reference to
(24) During the launch, a rebound effect occurs in combination with the release of elastic compression of the projectile after launch which means that the component 2 will then move axially forward in a direction D2. This movement of the component 2 moves the second support element 52 (which is mounted to the component 2) towards the housing shoulder 10, with the effect that the inclined portion 70 of the second fingers 60 engage the axially facing surface 74 of the housing shoulder 10 and deform inwardly to the position shown in
(25) In the steady state flight condition, therefore, the only support between the component 2 and the housing 8 is by means of the first and second dampers 14,20. The first and second supports 24,52 do not interfere with the damping effect of the dampers 14,20 at this time. The act of launching the projectile automatically releases the supports 24,52, requiring no external action by an operator.
(26) It will be understood that the above is a description of a non-limiting example and that various modifications to the particular embodiment described may be made without departing from the scope of the disclosure.
(27) For example, in certain embodiments, it may be possible to provide a deformable support at only one location on the component. However, generally two support elements 24, 52 will be provided at axially spaced locations on the component 2.
(28) In addition, the support elements 24,52 may be mounted to either the housing 8 or the component 2 depending on the particular installation. What is important is that the interaction between the housing 8, component 2 and the support elements 24,52 during launch acts to release the support elements 24,52.
(29) Also, the numbers of fingers 28, 60, and their grouping may be varied depending on any structural features which may have to be avoided and which might otherwise prevent them from deforming as intended. It may, however, be desirable to have an axi-symmetric arrangement so as to achieve uniform deformation.
(30) While described in the context of supporting an inertial measurement unit, the disclosure is applicable to the support of other components as well.