Plane multidirectional bridge damping and energy consumption device with self-resetting function
By adopting the design of upper movable block, lower connecting plate, connecting rod and annular SMA cable in the bridge shock absorber, the problem of excessive size of the device under large displacement is solved, bidirectional self-reset and multi-directional energy consumption are achieved, and the use efficiency of the SMA cable and the transportability of the device are improved.
Patent Information
- Application Number
- CN202422582867.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-10-25
AI Technical Summary
The existing bridge shock absorbing devices are too large in size under large displacement, making it difficult to achieve multi-directional energy consumption and self-resetting, and the SMA cable length is too long, making the device difficult to transport and install.
A plane multi-directional bridge shock-absorbing and energy-consuming device with self-reset function is designed, and the upper movable block, lower connecting plate, connecting rod and annular SMA cable system is used to achieve bidirectional self-reset through limit stops and sliding bearings. The connecting rod system limits displacement and the annular arrangement of SMA cables reduces the size of the device.
The device is miniaturized and has bidirectional self-reset capability, avoiding the lifting of the support and falling beams caused by excessive displacement, improving the usage rate of SMA cables, saving costs, and easy replacement of SMA cables.
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Figure CN223292932U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of bridge earthquake resistance, in particular to a plane multi-directional bridge shock absorption and energy dissipation device with a self-resetting function. Background Art
[0002] Earthquake action is an important working condition in bridge structural design. Especially in near-fault areas, bridges are subject to large seismic displacement requirements under velocity pulse earthquakes. The main beams and piers are prone to large relative displacements, and the relative displacements are not limited to a specific direction. Therefore, shock-absorbing and energy-dissipating devices must not only have good energy dissipation capabilities, but also multi-directional large displacement capabilities. Shape memory alloys (SMAs) have excellent energy dissipation and deformation capabilities due to their superelastic properties. Generally, the ultimate strain of SMA cables can reach 5% to 10%. Despite this, to achieve large displacement capabilities, longer SMA cables are still required. For example, if a relative displacement capacity of 30 cm is to be achieved, when the ultimate strain of the SMA cable is 6%, the length of the SMA cable needs to be 30 cm / 6% = 5 m, which will result in the size of the shock-absorbing and energy-dissipating device being too large. Utility Model Content
[0003] In view of this, the purpose of the present invention is to provide a planar multi-directional bridge shock-absorbing and energy-dissipating device with a self-resetting function, which has a smaller structural size and has bidirectional self-resetting and limiting functions.
[0004] In order to achieve the above-mentioned purpose, the utility model adopts the following technical solutions: a plane multi-directional bridge shock absorption and energy dissipation device with a self-resetting function, comprising an upper movable block (1), a lower connecting plate system, a connecting rod system and an SMA cable system; the upper movable block (1) is connected to the main beam at the top and has a rectangular cross-sectional shape; the lower connecting plate system comprises a lower connecting plate (2), a sliding bearing (21), a limit stopper (22), a fixed pulley (23), a double-layer fixed pulley (24) and an anchor plate (25); the lower connecting plate (2) has a rectangular cross-sectional shape and is connected to the main beam at the bottom. The bridge pier; the sliding bearing (21) and the limit block (22) are fixedly arranged on the front, rear, left and right directions above the lower connecting plate (2), wherein the limit block (22) is arranged on the inner side of the sliding bearing (21); the fixed pulley (23) and the double-layer fixed pulley (24) are fixedly arranged on the upper side of the lower connecting plate (2) near the four corner points, wherein the fixed pulley (23) is arranged at three corner points and the double-layer fixed pulley (24) is arranged at one corner point; the anchor plate (25) is fixedly arranged on the outer side of the double-layer fixed pulley (24) arrangement position on the lower connecting plate (2). side; the connecting rod system includes a push plate (31), a first connecting rod (32), a sleeve bolt block (33), a second connecting rod (34), a connecting piece (35) and a movable pulley (36); the first connecting rod (32) and the push plate (31) are fixed to each other, the first connecting rod (32) and the second connecting rod (34) are connected by a sleeve bolt block (33), the second connecting rod (34) and the connecting piece (35) are fixed to each other, the movable pulley (36) has a central roller, and the connecting piece (35) and the central roller are fixed to each other; the SMA cable system The invention comprises an SMA cable (4), a nut (41) and a bolt (42); the SMA cable (4) is arranged in a ring shape, and the SMA cable (4) is wrapped around the outside of the movable pulley (36), and around the inside of the fixed pulley (23) and the double-layer fixed pulley (24); the two ends of the SMA cable (4) are respectively wrapped around the two pulley grooves of the double-layer fixed pulley (24); the two ends of the SMA cable (4) are fixedly connected with bolts (42); the bolts (42) pass through the reserved bolt holes of the anchor plate (25), and the SMA cable (4) is tightened by the nut (41).
[0005] In a preferred embodiment, the upper movable block (1) is located in the center above the lower connecting plate (2) and the sides are parallel, the limit block (22) is fixedly installed in the middle position of the front, back, left and right sides of the four sides of the lower connecting plate (2), the limit block (22) is divided into two pieces, and a certain space is reserved in the middle to allow the first connecting rod (32) to pass through; the sliding bearing (21) is fixedly installed on the outside of the middle position of the two limit blocks (22), so that the first connecting rod (32) can pass through the sliding bearing (21); the fixed pulley (23) and the double-layer fixed pulley (24) are fixedly installed at the four corner positions of the lower connecting plate (2) through the central roller, the double-layer fixed pulley (24) provides a guiding function for the two ends of the SMA cable (4), and the anchor plate (25) is fixedly installed on the outer side of the double-layer fixed pulley (24) for anchoring the SMA cable (4).
[0006] In a preferred embodiment, the inner side of the first connecting rod (32) is connected to the push plate (31). During assembly, the outer side passes through the sliding bearing (21) and the first connecting rod (32) and the second connecting rod (34) are connected by a sleeve bolt block (33). When the connecting rod system is assembled, the push plate (31) is close to the upper movable block (1), and the distance between the push plate (31) and the limit block (22) is the maximum design displacement d in the direction of movement. max The range of motion of the upper movable block (1) in each direction is the maximum design displacement. There are push plates (31) on the front, back, left and right sides of the upper movable block (1). The push plates (31) can limit the range of motion of the upper movable block (1); after assembly, the sleeve bolt stopper (33) is in close contact with the sliding bearing (21), so that the movable pulley (36) will not move inward under the tension of the SMA cable (4).
[0007] In a preferred embodiment, the upper movable block (1) is located at the center of the lower connecting plate (2), and the push plate (31) of the first connecting rod (32) of the connecting rod system is equivalent to contacting the four sides of the upper movable block (1). The upper movable block (1) is not placed on the lower connecting plate (2). When the main beam and the pier are relatively displaced, the upper movable block (1) and the lower connecting plate (2) will move relative to each other.
[0008] In a preferred embodiment, the SMA cable system is assembled after the upper movable block, the connecting rod system and the lower connecting plate system are assembled, and the SMA cable (4) is arranged in a ring shape, and the SMA cable (4) is wrapped around the outer side of the movable pulley (36) on the connecting rod system.
[0009] In a preferred embodiment, the SMA cable (4) is wrapped around the inner side of the fixed pulley (23) and the double-layer fixed pulley (24) fixedly mounted on the lower connecting plate (2).
[0010] In a preferred embodiment, the SMA cable (4) is wrapped around the outer sides of the fixed pulley (23) and the double-layer fixed pulley (24) fixedly mounted on the lower connecting plate (2).
[0011] In a preferred embodiment, the movable pulley (36), the fixed pulley (23), and the double-layer fixed pulley (24) are all provided with pulley grooves, and the double-layer fixed pulley (24) is provided with two upper and lower pulley grooves, and the pulley grooves facilitate the installation of the SMA cable (4); the two ends of the SMA cable (4) are respectively surrounded by the two pulley grooves of the double-layer fixed pulley (24), and the two ends of the SMA cable (4) are fixed with bolts (42), and the bolts (42) pass through the reserved bolt holes of the anchor plate (25), and the SMA cable (4) is tightened by the nut (41).
[0012] Compared with the prior art, the present invention has the following beneficial effects:
[0013] 1) Bidirectional self-reset. Compared with traditional cables, the self-reset capability is enhanced.
[0014] 2) It has multi-directional limiting capabilities to avoid excessive displacement that may cause support loss and beam drop.
[0015] 3) The annular cable is used to reduce the size of the device, avoiding the problems of long SMA cable length, large size of shock-absorbing and energy-dissipating device, and difficulty in transportation and installation caused by the need to achieve large deformation. It can effectively reduce the size of the device and adapt to the needs of large structural deformation.
[0016] 4) Realize the multi-directional shock absorption effect on the plane, improve the utilization rate of SMA cables and save costs.
[0017] 5) The SMA cable is easy to replace. After experiencing multiple vibrations, the SMA cable can be replaced to restore the shock absorber to its optimal working condition. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 Schematic diagram of calculation of the planar multi-directional shock absorbing device in the embodiment of the present utility model, wherein (a) is the reference state, and (b) is the displacement d of the movable pulley moving to the right;
[0019] Figure 2 The SMA cable used in the embodiment of the present invention is used in a single direction for multi-directional comparison with the traditional unidirectional shock absorbing device;
[0020] Figure 3 This is a schematic diagram of the structure of the device in the embodiment of the present utility model;
[0021] Figure 4 This is a structural diagram of the upper movable block in an embodiment of the present utility model;
[0022] Figure 5This is a structural diagram of the lower connecting plate system in an embodiment of the present utility model;
[0023] Figure 6 This is a schematic structural diagram of the connecting rod system in an embodiment of the present utility model;
[0024] Figure 7 This is a schematic structural diagram of the SMA cable system in an embodiment of the present utility model;
[0025] Figure 8 This is a schematic diagram of the device in the initial state in the embodiment of the present utility model;
[0026] Figure 9 This is a working state diagram of the embodiment of the utility model in which the upper movable block moves 10 cm to the right relative to the lower connecting plate;
[0027] Figure 10 This is a working state diagram of the embodiment of the utility model in which the upper movable block moves 30 cm to the right relative to the lower connecting plate;
[0028] Figure 11 This is a working state diagram of the embodiment of the utility model in which the upper movable block moves 10 cm to the right and upward relative to the lower connecting plate;
[0029] Figure 12 This is a working state diagram of the embodiment of the utility model in which the upper movable block moves 20 cm to the right and upward relative to the lower connecting plate;
[0030] In the figure: 1. Upper movable block; 2. Lower connecting plate; 21. Sliding bearing; 22. Limit stop; 23. Fixed pulley; 24. Double-layer fixed pulley; 25. Anchor plate; 31. Baffle; 32. First connecting rod; 33. Sleeve bolt stop; 34. Second connecting rod; 35. Connecting piece; 36. Movable pulley; 4. SMA cable; 41. Nut; 42. Bolt. DETAILED DESCRIPTION
[0031] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0032] It should be noted that the following detailed descriptions are illustrative and intended to provide further explanation of the present application. Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which the present application belongs.
[0033] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application; as used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form, and it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or their combinations.
[0034] like Figure 1-12 As shown, this embodiment provides a planar multi-directional bridge shock absorption and energy dissipation device with a self-resetting function, including an upper movable block 1, a lower connecting plate system, a connecting rod system and an SMA cable system; the upper movable block 1 is connected to the main beam, and the cross-sectional shape is rectangular; the lower connecting plate system includes a lower connecting plate 2, a sliding bearing 21, a limit stop 22, a fixed pulley 23, a double-layer fixed pulley 24 and an anchor plate 25; the lower connecting plate 2 has a rectangular cross-sectional shape and is connected to the bridge pier at the bottom; the sliding bearing 21 and the limit stop 22 are fixedly arranged in the front, rear, left and right directions above the lower connecting plate 2, wherein the limit stop 22 is arranged on the inner side of the sliding bearing 21; the fixed pulley 23 and the double-layer fixed pulley 24 are fixedly arranged near the four corner points above the lower connecting plate 2, wherein the fixed pulleys 23 are arranged at three corner points and the double-layer fixed pulley 24 is arranged at one corner point; the anchor plate 25 is fixedly arranged on the lower connecting plate 2, and the double-layer fixed pulley 24 is arranged at the position where the double-layer fixed pulley 24 is arranged The outer side of the arrangement; the connecting rod system includes a push plate 31, a first connecting rod 32, a sleeve bolt stopper 33, a second connecting rod 34, a connecting member 35 and a movable pulley 36; the first connecting rod 32 and the push plate 31 are fixed, the first connecting rod 32 and the second connecting rod 34 are connected by the sleeve bolt stopper 33, the second connecting rod 34 and the connecting member 35 are fixed, the movable pulley 36 has a central roller, and the connecting member 35 is fixed to the central roller; the SMA cable system includes an SMA cable 4, a nut 41 and a bolt 42; the SMA cable 4 is arranged in a ring, and the SMA cable 4 is wrapped around the outer side of the movable pulley 36, around the fixed pulley 23 and the inner side of the double-layer fixed pulley 24, and the two ends of the SMA cable 4 are respectively wrapped around the two pulley grooves of the double-layer fixed pulley 24, and the two ends of the SMA cable 4 are fixed with connecting bolts 42, the bolts 42 pass through the reserved bolt holes of the anchor plate 25, and the SMA cable 4 is tightened by the nut 41.
[0035] like Figure 5As shown, in this embodiment, the upper movable block 1 in the device is located in the center above the lower connecting plate 2 and the sides are parallel. The limit block 22 in the system is fixedly installed in the middle position of the front, back, left and right sides of the four sides of the lower connecting plate 2. The limit block 22 is divided into two pieces, and a certain space is reserved in the middle for the first connecting rod 32 to pass through; the sliding bearing 21 in the system is fixedly installed on the outside of the middle position of the two limit blocks 22, so that the first connecting rod 32 can pass through the sliding bearing 21; the fixed pulley 23 and the double-layer fixed pulley 24 in the system are fixedly installed at the four corner positions of the lower connecting plate 2 through the central roller, and the double-layer fixed pulley 24 provides a guiding effect for the two ends of the SMA cable 4, and the anchor plate 25 is fixedly installed on the outer side of the double-layer fixed pulley 24 for anchoring the SMA cable 4.
[0036] like Figure 6 As shown, in this embodiment, the inner side of the first connecting rod 32 in this device is connected to the push plate 31. During assembly, the outer side passes through the sliding bearing 21, and the first connecting rod 32 and the second connecting rod 34 are connected by the sleeve bolt block 33. When the connecting rod system is assembled, the push plate 31 is close to the upper movable block 1, and the distance between the push plate 31 and the limit block 22 is the maximum design displacement d in the direction of movement. max The movable range of the upper movable block 1 in each direction is the maximum design displacement. There are push plates 31 on the front, back, left and right sides of the upper movable block 1. The push plates 31 can limit the movable range of the upper movable block 1. Therefore, the side length of the upper movable block 1 and the length of the push plate 31 are designed to be equal, and the design length is slightly larger than the maximum design displacement in the direction parallel to the side length; for example, when the upper movable block 1 pushes the push plate 31 to move to the left and the displacement reaches the maximum design displacement in that direction, the upper movable block 1 should also be able to continue to push the front or rear push plate 31 to move, and should not be out of contact with the front and rear push plates 31, so as to realize two-way energy consumption and self-resetting ability; in addition, the length of the upper movable block 1 on the front and rear sides and the length on the left and right sides can be designed to be unequal, so as to realize different horizontal two-way displacement capabilities; after assembly, the sleeve bolt stopper 33 is close to the sliding bearing 21, so that the movable pulley 36 will not move inward under the tension of the SMA cable 4.
[0037] like Figure 4 As shown, in this embodiment, the upper movable block 1 in this device is connected to the main beam above, and its cross-sectional shape is rectangular; the upper movable block 1 is located at the center of the lower connecting plate 2, and the push plate 31 of the first connecting rod 32 of the connecting rod system is equivalent to contacting the four sides of the upper movable block 1, and the upper movable block 1 is not placed on the lower connecting plate 2, and there is a certain distance between the two. When the main beam and the pier undergo relative displacement, the upper movable block and the lower connecting plate will undergo relative movement.
[0038] like Figure 7As shown, in this embodiment, the SMA cable system in this device is assembled after the upper movable block, the connecting rod system and the lower connecting plate system are assembled. The SMA cable 4 in the cable system is arranged in a ring shape, and the SMA cable 4 is wrapped around the outer side of the movable pulley 36 on the connecting rod system. A preferred solution is that the SMA cable 4 is wrapped around the inner side of the fixed pulley 23 and the double-layer fixed pulley 24 fixedly installed on the lower connecting plate 2. An optional solution is that the SMA cable 4 is wrapped around the outer side of the fixed pulley 23 and the double-layer fixed pulley 24 fixedly installed on the lower connecting plate 2; and the movable pulley 36 and the fixed pulley 23 and the double-layer fixed pulley 24 are all provided with pulley grooves, and the double-layer fixed pulley 24 is provided with pulley grooves. There are two upper and lower pulley grooves, which facilitate the installation of the SMA cable 4 and prevent the SMA cable 4 from falling off; finally, the two ends of the SMA cable 4 are respectively wrapped around the two pulley grooves of the double-layer fixed pulley 24 to prevent the SMA cable 4 from crossing and overlapping, thereby realizing the normal telescopic function of the SMA. The two ends of the SMA cable 4 are fixed with bolts 42, and the bolts 42 pass through the reserved bolt holes of the anchor plate 25 and tighten the SMA cable 4 through the nuts 41. This can prevent the SMA cable 4 from loosening and falling off, and the SMA cable is easy to install. When the performance of the SMA cable deteriorates after multiple vibrations, the SMA cable can be replaced to restore the shock absorber to its optimal use state.
[0039] The calculation method of the shock absorption energy dissipation device and the restoring force is as follows:
[0040] In case of unidirectional displacement, the restoring force calculation diagram is as follows: Figure 1 As shown in Figure 2, the key lies in calculating the relationship between the elongation of the SMA cable and the displacement of the shock absorber. Figure 1 (a) is the reference state for calculation. Point A is the leftmost point of the fixed pulley and point B is the rightmost point of the movable pulley. At this time, AB is in a vertical state. If the vertical distance between the two fixed pulleys is L, then the length of the SMA cable between AB is L AB (0) = L / 2, the vertical height of AB is H AB =L / 2.
[0041] When the movable pulley moves to the right by a displacement of d, Figure 1 As shown in (b), the horizontal width W of AB AB =d, C is the tangent point between the SMA cable and the fixed pulley, and D is the tangent point between the SMA cable and the movable pulley. Assuming the inclination angle of BC is α, then the arc length of arc AC is α, and the arc length L is AC =αR1, vertical height H AC =R1sinα, horizontal length W AC =R1-R1cosα; Similarly, the arc DB has an angle of α and an arc length of L DB =αR1, vertical height H DB =R2sinα, horizontal length W DB =R2-R2cosα. The vertical height of CD HCD =H AB -H AC -H DB , length L CD =H CD / cosα, horizontal width W CD =H CD × tanα, the horizontal length W of AB AB =W AC +W CD +W DB , and because W AB =d, the following equation holds:
[0042] R1-R1cosα+(L / 2-R1sinα-R2sinα)tanα+R2-R2cosα=d (1)
[0043] Formula (1) can be used to solve α. Formula (1) is highly nonlinear, and it is difficult to solve α by algebraic methods. Numerical solutions can be used to obtain high-precision calculation results.
[0044] The length of the SMA cable between AB is L AB (d) = L AC +L CD +L DB According to the symmetry between the two sides, the cable extension ΔL(d) when the movable pulley moves to the right by a distance d is 2[L AB (d)-L AB (0)], that is:
[0045] ΔL(d)=2[αR1+(L / 2-R1sinα-R2sinα) / cosα+αR2-L / 2] (2)
[0046] During assembly, a certain initial displacement d0 is preset for the movable pulley, so that the SMA cable has a certain inclination angle α, which can provide a large restoring force even at a small displacement. a The length of the SMA cable used for anchoring at both ends is twice the length of the SMA cable from the anchor position to the position tangent to the double-layer fixed pulley, plus half the circumference of the double-layer fixed pulley. For a circular SMA cable, if the initial displacement in the four directions of front, back, left, and right is set to d0, its initial circumference is:
[0047] P=4L-2πR1+4ΔL(d0) (3)
[0048] If the upper movable block moves to the right by displacement d s , when the initial gap between the upper movable block and the connecting rod is not considered, the displacement d of the movable pulley relative to the reference state s +d0, that is, the movable pulley will move d after the preset displacement d0s . SMA cable elongation δ(d s )=ΔL(d s +d0)-ΔL(d0), SMA cable strain:
[0049] ε=δ(d s ) / P (4)
[0050] If the relationship between the SMA cable tension T and the strain ε is T(ε), then the restoring force of the shock absorber is:
[0051] F=2T(ε)sinα (5)
[0052] Equation (4) establishes the relationship between the SMA cable strain ε and the relative displacement d s The relationship between the strain ε of the SMA cable and the restoring force F is established by formula (5). Combining formulas (4) and (5), the relationship between the restoring force F and the relative displacement d of the structure can be obtained. s relationship.
[0053] The SMA cable strain ε is converted into the relative displacement d of the structure through the test data. s It can be preliminarily inferred that the restoring force F of the shock absorber and the displacement d s Taking L = 0.7m, R1 = R2 = 0.05m, d0 = 0.4m as an example, the relationship between the restoring force and displacement of the device in one direction is as follows: Figure 2 As shown. Figure 2 In the figure, the solid blue line represents the restoring force relationship of the planar multi-directional shock absorber designed in the present invention, while the dashed orange line represents the restoring force relationship of a conventional unidirectional shock absorber using the same SMA material dosage. While the mechanical relationships of the two systems are similar, the shock absorber designed in the present invention possesses multi-directional, self-resetting shock absorption capabilities, improving the efficiency of SMA material utilization. Furthermore, although the SMA cable possesses superelasticity, its strain capacity is not infinite. Using a 10% strain as the design strain for the SMA cable, achieving a displacement capacity of 30 cm requires an SMA cable length of 30 cm / 10% = 3.0 m. Conventional SMA shock absorbers require a device size of at least 3.0 m. However, the present invention's circular arrangement of the SMA cables allows for miniaturization.
[0054] In case of bidirectional displacement, the calculation method of the shock absorbing device is the same as that of unidirectional displacement, and the elongation of the cable in both directions is taken into account.
[0055] Situation 1: The upper movable block 1 moves forward relative to the lower connecting plate 2.
[0056] When an earthquake occurs, the upper movable block 1 moves to the right relative to the lower connecting plate 2. For example, if the upper movable block 1 moves 10 cm to the right, Figure 9 As shown, the upper movable block 1 pushes the right push plate 31 to drive the connecting rod to move 10 cm to the right, while the connecting rods in other directions will not move due to the blocking effect of the sleeve bolt block 33. The SMA cable 4 is stretched, generating a leftward reset capability for the lower connecting plate 2. When the earthquake action ends, it returns to the initial position, realizing the self-reset function.
[0057] Take the above limit displacement of movable block 1 to the right by 30cm as an example. Figure 10 As shown, the upper movable block 1 pushes the right push plate 31 to drive the connecting rod to move 30 cm to the right, while the connecting rods in other directions will not move due to the blocking effect of the sleeve bolt block 33, but the push plate 31 will collide with the limit block 22 fixed to the lower connecting plate 2, preventing its displacement from further expanding, playing a limiting effect, preventing excessive displacement from causing the support to become empty and the beam to fall, thereby realizing the limiting function.
[0058] Scenario 2: The upper movable block 1 moves rightward and upward relative to the lower connecting plate 2.
[0059] When an earthquake occurs, the upper movable block 1 moves rightward and upward relative to the lower connecting plate 2. For example, if the upper movable block 1 moves rightward and upward by 10 cm, Figure 11 As shown, the upper movable block 1 simultaneously pushes the right and upper push plates 31 to drive the connecting rod to move 10 cm to the right and upward, while the connecting rods in other directions will not move due to the blocking effect of the sleeve bolt block 33. The SMA cable 4 is stretched, generating a reset ability for the lower connecting plate 2 to the left and downward. When the earthquake action ends, it returns to the initial position, realizing a two-way self-reset function.
[0060] Take the above movable block 1 displacement of 20cm to the right and upward as an example. Figure 12 As shown, the upper movable block 1 pushes the right and upper push plates 31 to drive the connecting rod to move 20 cm to the right and upward, while the connecting rods in other directions will not move due to the blocking effect of the sleeve bolt block 33. The SMA cable 4 is stretched, generating a reset ability for the lower connecting plate 2 to the left and downward. When the earthquake action ends, it returns to the initial position, realizing a two-way self-reset function.
[0061] This article uses specific examples to illustrate the principles and implementation methods of this application. The description of the above embodiments is only used to help understand the method and core ideas of this application. The above is only the preferred implementation method of this application. It should be pointed out that due to the limitations of textual expression, there are objectively infinite specific structures. For ordinary technicians in this technical field, without departing from the principles of this application, they can make several improvements, modifications or changes, and can also combine the above technical features in an appropriate manner; these improvements, modifications, changes or combinations, or the direct application of the concept and technical solution of the utility model to other occasions without improvement, should be regarded as the scope of protection of this application.
Claims
1. A planar multi-directional bridge shock absorption and energy dissipation device with a self-resetting function, characterized in that: The invention comprises an upper movable block (1), a lower connecting plate system, a connecting rod system and an SMA cable system; the upper portion of the upper movable block (1) is connected to the main beam and has a rectangular cross-section; the lower connecting plate system comprises a lower connecting plate (2), a sliding bearing (21), a limit stopper (22), a fixed pulley (23), a double-layer fixed pulley (24) and an anchor plate (25); the lower connecting plate (2) has a rectangular cross-section and is connected to a bridge pier at its lower portion; the sliding bearing (21) and the limit stopper (22) are fixedly arranged on the lower connecting plate (2). The upper part is provided with a plurality of fixed pulleys (23) and a plurality of double-layer fixed pulleys (24). The fixed pulleys (23) and the double-layer fixed pulleys (24) are fixedly arranged on the upper part of the lower connecting plate (2) near four corner points, wherein the fixed pulleys (23) are arranged at three corner points and the double-layer fixed pulleys (24) are arranged at one corner point; the anchor plate (25) is fixedly arranged on the outer side of the double-layer fixed pulley (24) arrangement position on the lower connecting plate (2); the connecting rod system includes a push plate (31), a first connecting rod (32), a sleeve bolt block (33), a second connecting rod (34), a connecting piece (35) and a movable pulley (36); the first connecting rod (32) and the push plate (31) are fixed to each other, the first connecting rod (32) and the second connecting rod (34) are connected by the sleeve bolt block (33), the second connecting rod (34) and the connecting piece (35) are fixed to each other, the movable pulley (36) has a central roller, and the connecting piece (35) and the central roller are fixed to each other; the SMA cable system includes an SMA cable (4), Nut (41) and bolt (42); the SMA cable (4) is arranged in a ring shape, the SMA cable (4) is wrapped around the outside of the movable pulley (36), and around the inside of the fixed pulley (23) and the double-layer fixed pulley (24), and the two ends of the SMA cable (4) are respectively wrapped around the two pulley grooves of the double-layer fixed pulley (24), and the two ends of the SMA cable (4) are fixedly connected with bolts (42), and the bolts (42) pass through the reserved bolt holes of the anchor plate (25), and the SMA cable (4) is tightened by the nut (41).
2. A planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 1, characterized in that: The upper movable block (1) is located in the center above the lower connecting plate (2) and its sides are parallel. The limit block (22) is fixedly installed at the middle position of the front, back, left and right sides of the four sides of the lower connecting plate (2). The limit block (22) is divided into two pieces, and a certain space is reserved in the middle to allow the first connecting rod (32) to pass through; the sliding bearing (21) is fixedly installed on the outside of the middle position of the two limit blocks (22), so that the first connecting rod (32) can pass through the sliding bearing (21); the fixed pulley (23) and the double-layer fixed pulley (24) are fixedly installed at the four corner positions of the lower connecting plate (2) through the central roller. The double-layer fixed pulley (24) provides a guiding function for the two ends of the SMA cable (4). The anchor plate (25) is fixedly installed on the outer side of the double-layer fixed pulley (24) for anchoring the SMA cable (4).
3. The planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 1 is characterized in that: The inner side of the first connecting rod (32) is connected to the push plate (31). When assembled, the outer side passes through the sliding bearing (21) and the first connecting rod (32) and the second connecting rod (34) are connected by a sleeve bolt block (33). When the connecting rod system is assembled, the push plate (31) is close to the upper movable block (1), and the distance between the push plate (31) and the limit block (22) is the maximum design displacement d in the direction of movement. max The range of motion of the upper movable block (1) in each direction is the maximum design displacement. There are push plates (31) on the front, back, left and right sides of the upper movable block (1). The push plates (31) can limit the range of motion of the upper movable block (1); after assembly, the sleeve bolt stopper (33) is in close contact with the sliding bearing (21), so that the movable pulley (36) will not move inward under the tension of the SMA cable (4).
4. The planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 1 is characterized in that: The upper movable block (1) is located at the center of the lower connecting plate (2), and the push plate (31) of the first connecting rod (32) of the connecting rod system is equivalent to contacting the four sides of the upper movable block (1). The upper movable block (1) is not placed on the lower connecting plate (2). When the main beam and the pier are relatively displaced, the upper movable block (1) and the lower connecting plate (2) will move relative to each other.
5. The planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 1 is characterized in that: The SMA cable system is assembled after the upper movable block, the connecting rod system and the lower connecting plate system are assembled. The SMA cable (4) is arranged in a ring shape and surrounds the outer side of the movable pulley (36) on the connecting rod system.
6. The planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 5 is characterized in that: The SMA cable (4) is wrapped around the inner sides of the fixed pulley (23) and the double-layer fixed pulley (24) fixedly mounted on the lower connecting plate (2).
7. The planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 5 is characterized in that: The SMA cable (4) is wrapped around the outer sides of the fixed pulley (23) and the double-layer fixed pulley (24) fixedly mounted on the lower connecting plate (2).
8. A planar multi-directional bridge shock absorption and energy dissipation device with self-resetting function according to claim 6 or 7, characterized in that: The movable pulley (36), the fixed pulley (23) and the double-layer fixed pulley (24) are all provided with pulley grooves. The double-layer fixed pulley (24) is provided with two upper and lower pulley grooves. The pulley grooves facilitate the installation of the SMA cable (4). The two ends of the SMA cable (4) are respectively surrounded by the two pulley grooves of the double-layer fixed pulley (24). The two ends of the SMA cable (4) are fixed with connecting bolts (42). The bolts (42) pass through the reserved bolt holes of the anchor plate (25) and tighten the SMA cable (4) through the nuts (41).