Torsion-loaded rod-shaped component with different fibre reinforcements for tensile and compressive loading
US-11078979-B2 · Aug 3, 2021 · US
US9429205B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9429205-B2 |
| Application number | US-201414488053-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 16, 2014 |
| Priority date | Sep 17, 2013 |
| Publication date | Aug 30, 2016 |
| Grant date | Aug 30, 2016 |
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Unbonded fiber reinforced elastomeric isolators (FREIs) have desirable characteristics for seismic isolation, but the unbonded application also introduces several design limitations in comparison to bonded elastomeric isolators. Unbonded FREIs are not capable of resisting tensile forces, making this type of isolator inappropriate for situation where overturning is of concern or regions where large vertical accelerations are anticipated. Furthermore, since unbonded FREIs rely on friction to transfer horizontal forces, permanent slip could occur. Concerns over both transfer of tensile forces and permanent displacement can be obviated by partially bonding the FREI to the supports. In this way, partially bonded FREIs (PB-FREIs) retain the beneficial characteristics of an unbonded FREI, but also demonstrate characteristics of a bonded isolator, notably tensile forces can be transferred and potential permanent displacement is inhibited.
Opening claim text (preview).
What is claimed is: 1. A reinforced elastomeric isolator, comprising: an isolator body, the isolator body having a laminate structure comprising: a plurality of layers of elastomeric material, two of which form external layers of the laminate structure and define opposed contact surfaces of the isolator body; a plurality of flexible layers of fiber reinforcement; each layer of fiber reinforcement being disposed between a pair of adjacent layers of elastomeric material; each pair of adjacent layers of elastomeric material being bonded together across the layer of fiber reinforcement disposed therebetween; and individual edges of the adjacent layers of elastomeric material that combine to form at least one generally planar free edge of the isolator body as a whole, the at least one free edge extending between the contact surfaces about a periphery of the isolator body; and a pair of opposed rigid supports; the opposed contact surfaces of the isolator body being bonded to respective ones of the opposed rigid supports by respective bonds so that the isolator body is between the opposed rigid supports; characterized in that: the bonds are disposed inwardly of at least one of the at least one free edge of the isolator body so as to permit stable rollover deformation of the isolator. 2. The reinforced elastomeric isolator of claim 1 , wherein the isolator body has an aspect ratio (width over height) of at least about 3.3 where height is measured along the at least one free edge of the isolator body and width is measured along a displacement axis of the isolator body. 3. The reinforced elastomeric isolator of claim 2 , wherein the bonds are disposed inwardly of rollover sections of the opposed contact surfaces. 4. The reinforced elastomeric isolator of claim 1 , wherein, for at least one contact surface, at least one outermost bond is located a distance of at least about 5/3 h from the free edge of the isolator body, where h is a height of the isolator body as measured along the at least one free edge of the isolator body. 5. The reinforced elastomeric isolator of claim 4 , wherein: a width of the isolator body, measured along a displacement axis of the isolator body, is at least about (10/3 h+B) where B is a total bond extent; and each outermost bond is located a distance of at least about 5/3 h from each free edge of the isolator body. 6. The reinforced elastomeric isolator of claim 1 , wherein the at least one free edge of the isolator body is a single free edge forming a circle and which is generally planar when notionally unrolled. 7. The reinforced elastomeric isolator of claim 1 , wherein the at least one free edge of the isolator body is four free edges forming a rectangle. 8. The reinforced elastomeric isolator of claim 1 , wherein the bonds are formed by hot vulcanization. 9. The reinforced elastomeric isolator of claim 1 , wherein the bonds are formed by cold vulcanization.
Buildings or parts thereof · CPC title
against transmission of vibrations or movements in the foundation soil {(E02D27/34 takes precedence; foundations for machines, engines or ordnance E02D27/44; for road foundations E01C3/06)} · CPC title
and comprising laminated structures of alternating elastomeric and rigid layers · CPC title
Carbon fibres, e.g. graphite fibres · CPC title
next to a fibrous or filamentary layer · CPC title
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