SMART FRICTION PENDULUM SYSTEM
20250043528 ยท 2025-02-06
Assignee
Inventors
Cpc classification
E02D31/08
FIXED CONSTRUCTIONS
International classification
Abstract
A smart friction pendulum system including an upper spherical plate and a lower spherical plate each having a sliding surface, a slider positioned between the upper spherical plate and the lower spherical plate, and a plurality of shape memory alloy (SMA) wires each having a first end attached to the upper spherical plate and a second end of attached to the lower spherical plate. The smart friction pendulum system is configured to be attached between the foundation and base mass of a building to preserve the superstructures under the lateral loads. While the lateral loads move the plates side to side, the system dissipates energy by providing friction between sliding material and sliding surface. The SMA wires also absorb the energy when in inelastic reversible phase. The embedded diagonal SMA wires make the whole system recover the initial position fully.
Claims
1. A smart friction pendulum system comprising: an upper spherical plate and a lower spherical plate each having a sliding surface; a slider positioned between the upper spherical plate and the lower spherical plate; and a plurality of shape memory alloy (SMA) wires each having a first end and a second end; wherein the first end of each of the plurality of SMA wires is attached to the upper spherical plate and the second end of each of the plurality of SMA wires is attached to the lower spherical plate.
2. The smart friction pendulum system of claim 1 wherein the sliding surface on the upper spherical plate is curved.
3. The smart friction pendulum system of claim 1 wherein the sliding surface on the lower spherical plate is curved.
4. The smart friction pendulum system of claim 1 further comprising a sliding material positioned on an upper surface of the slider.
5. The smart friction pendulum system of claim 1 further comprising a sliding material positioned on a lower surface of the slider.
6. The smart friction pendulum system of claim 1 wherein an upper surface of the slider is curved.
7. The smart friction pendulum system of claim 1 wherein a lower surface of the slider is curved.
8. The smart friction pendulum system of claim 1 wherein the smart friction pendulum system is configured to be installed between a foundation and a base mass of a civil infrastructure.
9. The smart friction pendulum system of claim 1 wherein the smart friction pendulum system is configured to preserve a civil infrastructure under lateral loads.
10. The smart friction pendulum system of claim 1 wherein the smart friction pendulum system is configured to dissipate energy by providing friction between the sliding surfaces and the slider.
11. The smart friction pendulum system of claim 1 wherein the plurality of SMA wires is at least eight SMA wires.
12. The smart friction pendulum system of claim 1 wherein two SMA wires of the plurality of SMA wires are positioned on each of a first side, a second side, a third side, and a fourth side of the upper spherical plate and lower spherical plate or arranged in an X-shape.
13. (canceled)
14. The smart friction pendulum system of claim 1 wherein each of the plurality of SMA wires is positioned diagonally between the upper spherical plate and the lower spherical plate.
15. The smart friction pendulum system of claim 1 wherein each of the plurality of SMA wires are configured to deform and subsequently recover their initial shape.
16. (canceled)
17. The smart friction pendulum system of claim 1 wherein each of the plurality of SMA wire is pre-stressed.
18. The smart friction pendulum system of claim 1 wherein the first end of each of the plurality of SMA wires is attached to the upper spherical plate by a pre-stressing nut.
19. The smart friction pendulum system of claim 1 wherein the second end of each of the plurality of SMA wires is attached to the lower spherical plate by a pre-stressing nut.
20. The smart friction pendulum system of claim 1 wherein at least one of the plurality of SMA wires is pre-stressed.
21. The smart friction pendulum system of claim 1 further comprising a mechanical connection to a pre-stressed material, such as concrete, that contains SMA bars.
22. The smart friction pendulum system of claim 1 further comprising at least one spacer intermediate between the upper spherical plate and the lower spherical plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The subject matter that is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other objects, features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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DESCRIPTION OF THE INVENTION
[0030] The present invention has utility as a structural control system for civil infrastructures that filters ground movement from the superstructure of the infrastructure and dissipates the energy transmitted to the main structure in order to preserve such structures when exposed to seismic loads and restore the original position fully after such events. According to embodiments, the present invention provides a Friction Pendulum System (FPS) incorporated with a Shape Memory Alloy (SMA) in order to add the recovery capability and more energy dissipation capacity as compared with a conventional FPS. It should be appreciated that the usage of SMA wires in the present invention and based on the configuration of the wires, affords dissipation of horizontal load forces, vertical load forces, or a combination thereof. According to certain inventive embodiments, an FPS is integrated with a smart metallic alloy to push the system back into the original position after experiencing a seismic load. According to embodiments, the alloy is capable of recovering the original state even after experiencing substantial elongation relative to the initial length. Accordingly, the present invention provides significantly enhanced structural behavior and preserves civil infrastructure in their lifespan. As a result, the present invention affords increased energy dissipation of external loads while also providing enhanced recovery phenomena in structures after removing the loads, compared to a conventional FPS.
[0031] The present invention will now be described with reference to the following embodiments. As is apparent by these descriptions, this invention can be embodied in different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. For example, features illustrated with respect to one embodiment can be incorporated into other embodiments, and features illustrated with respect to a particular embodiment may be deleted from the embodiment. In addition, numerous variations and additions to the embodiments suggested herein will be apparent to those skilled in the art in light of the instant disclosure, which do not depart from the instant invention. Hence, the following specification is intended to illustrate some particular embodiments of the invention, and not to exhaustively specify all permutations, combinations, and variations thereof.
[0032] It is to be understood that in instances where a range of values are provided that the range is intended to encompass not only the end point values of the range but also intermediate values of the range as explicitly being included within the range and varying by the last significant figure of the range. By way of example, a recited range of from 1 to 4 is intended to include 1-2, 1-3, 2-4, 3-4, and 1-4.
[0033] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. The terminology used in the description of the invention herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.
[0034] Unless indicated otherwise, explicitly or by context, the following terms are used herein as set forth below.
[0035] As used in the description of the invention and the appended claims, the singular forms a, an and the are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0036] Also as used herein, and/or refers to and encompasses any and all possible combinations of one or more of the associated listed items, as well as the lack of combinations when interpreted in the alternative (or).
[0037] According to embodiments, such as shown in
[0038] The working mechanism of the inventive smart FPS 20 is shown in
[0039] Shape Memory alloy refers to a class of metallic alloys, that can recover their initial shape after experiencing large deformation from the original length. Exemplary of these materials are those detailed in Table 1 and 2. The shape memory effect (SME) and superelasticity (SE) are the main reasons SMAs exhibit this exceptional characteristic, as shown in
[0040] Like other metallic alloys, the functionality of SMAs can differ from ideal assumptions because of degradation under dynamic loads. The schematic diagram of the behavior is presented in
[0041] According to embodiments, the SMA wires 40 are formed of any of the shape memory alloys listed in Tables 1 and 2.
TABLE-US-00001 TABLE 1 Alloys having shape memory effect. Transformation Transformationtemperature range hysteresis Alloy Composition .sup.C. F. C. F. AgCd 44/49 at. % Cd 190 to 50 310 to 60 15
25 AuCd 46.5/50 at. % Cd 30 to 100 85 to 212
15
25 CuAlNi 14/14.5 wt % Al 140 to 100 220 to 212
35
65 3/4.5 wt % Ni CuSn
15 at. % Sn 120 to 30 185 to 85 CuZn 38.5/41.5 wt % Zn 180 to 10 290 to 15
10
20 CuZnX (X = Si, Sn, Al) a few wt % of X 180 to 200 290 to 390
10
20 InTi 18/23 at. % Ti 60 to 100 140 to 212
4
7 NiAl 36/38 at. % Al 180 to 100 290 to 212
10
20 NiTi 49/51 at. % Ni 50 to 110 60 to 230
30
55 FePt
25 at. % Pt
130
200
4
7 MnCu 5/35 at. % Cu 250 to 180 420 to 355
25
45 FeMnSi 32 wt % Mn, 6 wt % Si 200 to 150 330 to 300
100
180
TABLE-US-00002 TABLE 2 Mechanical properties of SMAs* Alloy .sub.max (%) .sub.s (%) E.sub.A(MP) (A.sub.f C.) NiTi.sub.49.1 5 3.6 40.4 44.6 NiTi.sub.49.5 5.7 4.6 45.3 53.0 NiTi.sub.50 3.1 2.2 117.8 77.8 NITi 8.2 6.8 30.0 42.9 NiTi.sub.45 6.8 6.0 62.5 10.0 NiTi.sub.44.1 6.5 5.5 39.7 0 NiTi.sub.40Cu.sub.10 4.1 3.4 72.0 66.6 NiTi.sub.41Cu.sub.10 4.1 3.1 91.5 50.0 NiTi.sub.41.5Cu.sub.10 3.4 2.8 87.0 60.0 NiTi.sub.25Cu.sub.25 10.0 2.5 14.3 73 CuAlBe 3.0 2.4 32.0 65 FeMnAlNi 6.1 5.5 98.4 <50 FeNiCoAlTaB 15.0 13.5 46.9 62.0 *as detailed in Shahin Zareie et al, Structures 27 (2020) 1535-1550.
[0042] According to embodiments, the SMA is pre-stressed using a novel system using a customized nut 50, as provided in
[0043] According to embodiments, the smart FPS 20 is configured to be integrated with different types of steel, concrete, and timber buildings, particularly high-rise ones, to provide their stability and serviceability under ground movements having different intensities, frequency contents, and magnitudes. The systems are easily installed in the foundations of already constructed buildings without changing the structural elements to retrofit them as well as in new construction buildings. By using the inventive smart system, the life expectancy of new and existing buildings can be extended due to meeting new requirements and safety codes determined by updated regulations and buildings codes. An additional benefit of the inventive smart FPS is its optimization of construction materials.
[0044] Patent documents and publications mentioned in the specification are indicative of the levels of those skilled in the art to which the invention pertains. These documents and publications are incorporated herein by reference to the same extent as if each individual document or publication was specifically and individually incorporated herein by reference.
[0045] The foregoing description is illustrative of particular embodiments of the invention but is not meant to be a limitation upon the practice thereof. The following claims, including all equivalents thereof, are intended to define the scope of the invention.