This is a continuation of PCT/FR93/00626, filed Jun. 23, 1993 and published as WO94/00658 Jan. 6, 1994.
Field of the Invention
The subject of the present invention is earthquake resistant mounts for buildings and constructions, interposed between an infrastructure secured to the ground and a superstructure.
Background of the Invention
These mounts, true earthquake resistant supports, are mainly composed of two detached monoblock elements and are intended to be interposed between the infrastructure and the superstructure of all sorts of buildings and erected constructions, for the purpose of allowing these constructions to avoid being subjected to the effects of the most violent earthquake attacks.
The earthquake resistant devices known to date are of two distinct types: they are either based on a possibility of sliding with friction allowing limited displacement, or designed on the basis of elastomeric blocks, often hooped, the distortion of which is put to use. In the first case displacement of the building is not damped out and substantial lateral displacements may give rise to extremely high impacts which may be the cause of breakage of the earthquake resistant device itself, or even of the building to be protected. The characteristics of natural or synthetic elastomeric blocks, hooped in the second case, change over time, which logically should lead to them being replaced periodically, and what is more these devices do not make it possible to control completely the amplitude of the movements due to the earth tremors.
The devices described in the French Patent Letters 2,625,763, 2,601,716 and in the U.S. Pat. No. 5,131,195 filed by the same inventor partly eliminate these drawbacks.
Indeed, they make it possible, at the same time, to damp out both vertical and lateral movements brought about by an earthquake, and to control the amplitude of these movements, while braking them. Furthermore, they are made up of materials which are extremely stable with time, and which perfectly resist differences in temperature, microorganisms, and chemical attack. These devices are made up of two monoblock elements produced from a hard, rotproof material, which has great resistance to abrasion, these elements being respectively secured to the infrastructure and to the superstructure of the building, the lower element being made up of a horizontal rubbing plate including a cone frustum at its center, the upper element being made up of a circular cap having its concavity pointing towards the bottom and capping the lower element so that the blind end of the concavity rests on the top of the cone frustum and the lower edges rest on the rubbing plate of the lower element, an annular space between the two elements allowing relative lateral displacement, said elements being supplemented by one or two rings made from a material which is also rotproof and has high impact-damping characteristics, these rings being secured to the internal lateral wall of the upper element and/or to the lateral wall of the cone frustum of the lower element and filling all or some of the annular space.
However, the design of these devices means that they are not very effective for earthquakes having an amplitude of less than 0.2 on the Richter scale. This is due to the coefficient of friction of the materials used, which index hitherto has been close to 0.2. Now, current legislation requires a coefficient of less than or equal to 0.05 for this type of device, precisely so that they are capable of acting even for tremors of very low amplitude.
Summary of the Invention
The present application relates to functional improvements made to French Patent Letters 2,625,763, 2,601,716 and in the U.S. Pat. No. 5,131,195 in order to extend their range of action to weak tremors.
These improvements consist, on the one hand, of mould-release silicons mixed with the polymer at the time of molding, mould-release polyurethanes and/or of films or projections or thicknesses of Kevlar or of aramid and derivatives with a very low coefficient of friction covering all or some of the rubbing surfaces of one or both elements and which can be placed inside the manufacturing moulds constituting the earthquake resistant mount and/or, on the other hand, of single or multiple layers of resilient polymer interposed horizontally at any level through the entire thickness of the material of the lower element and/or of the upper element, the deformation of these layers making it possible to absorb low-amplitude tremors without said elements sliding.
Brief Description of the Drawings
In the appended drawings, given by way of non-limiting example of one of the embodiments of the subject of the invention:
FIGS. 1 and 2 show in perspective the upper and lower elements, separated,
FIGS. 3, 4 and 5 represent transverse sections through three versions of the assembled device.
Description of the Preferred Embodiment
The device, FIGS. 1 to 5, is made up of an upper element 1 in the form of a cylindrical cap with a flat blind end 5, the hollow part of which points downwards, secured to the superstructure of the building, of a block or cone frustum 2 secured to the bearing surface, and of one or two damping rings 3, 3', 3" which are independent or secured to one or both elements 1, 2 and are situated in an annular space 4 formed between the lower cone frustum 2 and the upper cap 1.
The lower element 2 at its base includes a horizontal rubbing plate 7 on which the lower edge 10 of the upper element 1 rests. The angles 8, 9 of the lateral wall 16 of the block 2 with its upper horizontal surface 6 and with the plate 7 are rounded in order to prevent breakage initiators and a scraping effect during lateral displacements. For the same reasons, the angles 13, 14, 15, 15' formed by the internal 11 and external 12, 12' lateral walls of the upper element 1 with the blind end 5 or the lower edge 10 of said element are also rounded.
The damping ring 3 is secured to the internal lateral wall 11 of the upper element 1, while the ring 3' is secured to the lateral wall 16 of the lower block 2. These two rings may be replaced by a single ring 3" secured to the lateral walls of the upper 11 and lower 16 elements, or to one of them, or yet again may be totally independent and possibly distant from the parts 13, 11, 14 of the upper element 1 and/or the parts 8, 16, 9 of the lower element 2, the rest filling all of the intermediate annular space 4 as need be. The ring 3" must be able to distort easily, taking the phenomenon of natural flow of polymers into account.
In order to decrease the coefficient of friction, the contacting horizontal surfaces 5, 6 and 10, 7 as well as any other surfaces which may possibly come into contact when the two elements 1 and 2 slip relative to one another may be coated with mould-release silicones which are included at the time of molding and/or with mould-release polyurethanes and/or with films or projections or thicknesses of Kevlar or aramid fibre or derivatives having a very low coefficient of friction. These various coatings may be provided on the surfaces of both elements 1, 2 or on just one and may be applied to the insides of the moulds during manufacture.
The absorption of low-amplitude tremors may be obtained before the elements 1 and 2 slip by virtue of single or multiple layers 17, 18 of resilient polymer interposed horizontally at any level through the entire thickness of material of the lower element 2 and/or upper element 1, it being possible for one or more thicknesses of resilient polymer to be or not be the same thickness over an identical level in the elements 1 and 2, the distortion of one or more layers making it possible for low-amplitude tremors to be absorbed before said elements slip.
The absorption of weak tremors before the elements 1, 2 slip is also obtained through distortion of the damping rings 3, 3', 3" as well as the single or multiple horizontal layers 17, 18.
The lateral walls 12, 12' of the upper element 1 can either be vertical 12, or have some inclination 12' in the same direction as the cone 2, forming a frustoconical peripheral surface and serving to increase the strength of the assembly 1, thus increasing the contact surface of the lower edge 10' of the bottom of the upper element 1, also facilitating the mould-release of the poured components. The outside angle 15' of the base 10' forming a junction with the oblique side 12' remains rounded.
In all cases, the overhang of the larger plate 7 relative to the base 10, 10' is in all directions equal to 1.5 times the maximum amount of slip, calculated over 360.degree. of surface area.
The lower element 2 and upper element 1 may be reversed and inverted, that is to say that the cylindrical or frustoconical cap 1 is integral with the bearing surface and located at the bottom with the hollow part pointing upward, while the block or cone frustum 2 is secured to the superstructure of the building and located at the top, the position of all the mounts having to be the same for all the elements for one and the same construction. The only distinguishing features to differentiate the direction of use of the elements, the nomenclature right way up or upside down, consisting of lettering visible as a projection and cast into the mass upon manufacture of the elements, and specifications noted on all documents representing them.
The earthquake resistant mount described favorably alters the dynamic behavior of structures relative to earthquakes, it is made without hooping with any ferruginous material.
By associating just one type of extremely mechanically strong polymer, alternating with more resilient polymers which resist crushing, a substantial displacement in terms of rocking is allowed, then through controlled slippage over 360.degree. and internally including a system with return force, thereby resuming its initial position after stressing, giving a coefficient of friction whose variations are negligible in space and in time.
The positioning of the various constituent elements gives the subject of the invention maximum useful effect which, hitherto, had not been obtained by similar devices.