Supporting and connecting mechanism for reservoir danger removal and reinforcement
By designing easy-to-disassemble components and combining them with piezometers and geomembranes, the problem of cumbersome disassembly and assembly of reservoir support connection mechanisms has been solved, realizing rapid disassembly and assembly, seepage observation and seepage prevention functions, and improving the efficiency and safety of reservoir reinforcement projects.
Patent Information
- Application Number
- CN202520566529.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-28
AI Technical Summary
The existing reservoir support connection mechanism has a complicated disassembly and assembly process, resulting in low work efficiency.
A support connection mechanism with easily detachable components was designed, which utilizes a semi-circular slider and tie rod structure to achieve rapid assembly and disassembly; seepage observation is carried out by combining a piezometer and probe; and a geomembrane is used to prevent leakage.
It enables convenient disassembly and assembly of the support connection mechanism, seepage observation and seepage prevention functions, and improves the efficiency and safety of reservoir reinforcement projects.
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Figure CN223951712U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water conservancy engineering technical field, concretely is a supporting connection mechanism for reservoir danger elimination and reinforcement. BACKGROUND
[0002] Water conservancy engineering technology relates to the planning, development, utilization, management and protection of water resources, wherein the reservoir danger elimination and reinforcement engineering is an important component of water conservancy engineering, aims at improving the safety and stability of reservoir, guaranteeing its normal operation and the safety of downstream area, and the current supporting connection dismounting process is more cumbersome, and the work difficulty is bigger, resulting in low efficiency.
[0003] Now, a new kind of supporting connection mechanism for reservoir danger elimination and reinforcement is provided to solve the above problems. UTILITY MODEL CONTENT
[0004] The utility model discloses a kind of supporting connection mechanisms for reservoir danger elimination and reinforcement, to solve the problem of cumbersome dismounting process proposed in above background technology.
[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of supporting connection mechanism for reservoir danger elimination and reinforcement, including right guard plate, the left side of the right guard plate is provided with left guard plate, the front end of the right guard plate is equipped with two groups of convenient dismounting component.
[0006] The convenient dismounting component includes two groups of long holes, the long hole is opened in the front end of right guard plate, the inside of left guard plate is fixedly connected with first base, the inside of right guard plate is fixedly connected with second base, the top of first base is equipped with first circular arc groove, the inside of first semicircle slider is fixedly connected with counterweight in the top of first circular arc groove, the front end of second base is movably connected with long rod, the front end of long rod is fixedly connected with pull rod, the bottom end of long rod is movably connected with spring, the bottom end of second base is equipped with second circular arc groove, the bottom of second circular arc groove is movably connected with second semicircle slider.
[0007] As a further technical scheme of the utility model, the size of the long hole is consistent with the size of the periphery of the pull rod, the pull rod can move up and down along the inside of the long hole, the shape size of the top of the first circular arc groove is consistent with the shape size of the bottom of the first semicircle slider, and the first semicircle slider can slide along the inside of the first circular arc groove.
[0008] As a further technical scheme of the utility model, the shape size of the bottom of the second circular arc groove is consistent with the shape size of the top of the second semicircle slider, and the second semicircle slider can slide along the second circular arc groove.
[0009] As a further technical scheme of the utility model, the long rod slides through the second circular arc groove and is fixedly connected with the second semicircular sliding block, the spring has elasticity, and the shape and size of the first semicircular sliding block are consistent with those of the second semicircular sliding block.
[0010] As a further technical scheme of the utility model, the long slot is internally provided with a osmometer, the bottom end of the osmometer is fixedly connected with a probe, the top end of the osmometer is fixedly connected with an electric wire, and the front end of the left guard plate is provided with a circular hole.
[0011] As a further technical scheme of the utility model, the shape and size of the inside of the long slot are consistent with those of the outside of the osmometer, the shape and size of the outside of the electric wire are consistent with those of the inside of the circular hole, and the horizontal plane where the long slot and the rear end of the osmometer are located is consistent with the horizontal plane where the rear end of the left guard plate is located.
[0012] As a further technical scheme of the utility model, the rear end of the right guard plate is provided with a geomembrane, the rear end of the geomembrane is fixedly connected with four groups of fixing nails, the rear end of the left guard plate is fixedly connected with four groups of long nails, and the rear end of the geomembrane is provided with a hole.
[0013] As a further technical scheme of the utility model, the shape and size of the inside of the hole are consistent with those of the outside of the osmometer, and the shape and size of the geomembrane are consistent with those of the rear ends of the right guard plate and the left guard plate.
[0014] Compared with the prior art, the supporting connection mechanism for reservoir reinforcement has the advantages that the supporting connection mechanism for reservoir reinforcement not only has the convenient dismounting function, but also has the pressure measuring function and the anti-seepage function.
[0015] (1) by setting first semicircular sliding block, pull rod and second semicircular sliding block, when using, the right guard plate is pushed to the left to the left guard plate, the second base moves to the first base during pushing, after the left side of the second base touches the first semicircular sliding block, the first semicircular sliding block is driven to slide from left to right in the first circular arc groove, at the same time, after the second semicircular sliding block is blocked by the top end of the first base, the second semicircular sliding block is pushed to slide from right to left in the second circular arc groove, while the second semicircular sliding block slides, the long rod and the spring are lifted up, the pull rod moves upwards along the long hole, after the front end of the second base passes the first semicircular sliding block after the second base continuously moves to the left, the second base and the first semicircular sliding block are tightly attached, the spring is contracted to drive the second semicircular sliding block and the first semicircular sliding block to rotate, the pull rod returns to the bottom of the long hole, at this time, the first base and the second base are locked, when dismounting, the pull rod is pulled upwards, the right guard plate is moved to the right, and the right guard plate and the left guard plate are separated, without using screws and the like for dismounting, the process is simple and easy to operate, and the convenient dismounting function is realized.
[0016] (2) by setting with osmometer and probe, in use, in the reinforcement project, after adding support, also need to observe the seepage, to ensure the engineering effect and safety, can be in the dam body before installing the right guard plate and the left guard plate pre-holes, then pull out the osmometer from the long slot, insert into the hole, the wire from the round hole, can be used regularly connected wire, read the data detected by the probe, record the change of seepage pressure, realize the pressure measurement function;
[0017] (3) by setting with geomembrane and fixing nail, in use, to further prevent leakage, can be taken out from the fixing nail, then the geomembrane is unfolded to the rear end of the left guard plate, and then the geomembrane is sleeved on the long nail, the osmometer is pulled out from the hole, at this time the geomembrane is completely unfolded, can cover the rear end of the right guard plate and the left guard plate, avoid water from the gap of the support, realize the anti-seepage function. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is a front view sectional structure schematic view of the utility model;
[0019] Figure 2 It is a front view enlarged structure schematic view of the first base and the second base separation state of the utility model;
[0020] Figure 3 It is a rear view structure schematic view of the utility model;
[0021] Figure 4 It is a rear view enlarged structure schematic view of the geomembrane unfolding state of the utility model.
[0022] In the drawing: 1, right guard plate; 2, left guard plate; 3, long hole; 4, first base; 5, second base; 6, first circular arc slot; 7, first half circular slider; 8, counterweight; 9, long rod; 10, pull rod; 11, spring; 12, second circular arc slot; 13, second half circular slider; 14, long slot; 15, osmometer; 16, probe; 17, wire; 18, round hole; 19, geomembrane; 20, fixing nail; 21, long nail; 22, hole. DETAILED DESCRIPTION
[0023] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.
[0024] Please refer to Figures 1-4The utility model provides a kind of supporting connection mechanism for reservoir danger removal and reinforcement, including right guard plate 1, left guard plate 2 is provided in the left side of right guard plate 1, and two groups of convenient dismounting components are opened in the front end of right guard plate 1;
[0025] Please refer to Figures 1-4 The supporting connection mechanism for reservoir danger removal and reinforcement further includes convenient dismounting components, and the convenient dismounting components include two groups of long holes 3, the long holes 3 are opened in the front end of the right guard plate 1, the first base 4 is fixedly connected to the inside of the left guard plate 2, the second base 5 is fixedly connected to the inside of the right guard plate 1, the first circular arc groove 6 is opened in the top end of the first base 4, the first semicircular sliding block 7 is movably connected to the top end of the first circular arc groove 6, the counterweight 8 is fixedly connected to the inside of the first semicircular sliding block 7, the long rod 9 is movably connected to the front end of the second base 5, the pull rod 10 is fixedly connected to the front end of the long rod 9, the spring 11 is movably connected to the bottom end of the long rod 9, the second circular arc groove 12 is opened in the bottom end of the second base 5, the second semicircular sliding block 13 is movably connected to the bottom end of the second circular arc groove 12, the size of the long hole 3 is consistent with the size of the periphery of the pull rod 10, the pull rod 10 can move up and down along the inside of the long hole 3, the shape size of the top end of the first circular arc groove 6 is consistent with the shape size of the bottom of the first semicircular sliding block 7, the first semicircular sliding block 7 can slide along the inside of the first circular arc groove 6, the shape size of the bottom of the second circular arc groove 12 is consistent with the shape size of the top of the second semicircular sliding block 13, the second semicircular sliding block 13 can slide along the second circular arc groove 12, the long rod 9 is movably connected with the second semicircular sliding block 13 through the second circular arc groove 12, the spring 11 has elasticity, the shape size of the first semicircular sliding block 7 is consistent with the shape size of the second semicircular sliding block 13, which is convenient for installation and disassembly.
[0026] Specifically, as Figure 1 and Figure 2As shown, in use, the right guard plate 1 is pushed to the left guard plate 2 to the left, and the second base 5 moves to the first base 4 during the pushing process. When the left side of the second base 5 touches the first semicircular slider 7, the first semicircular slider 7 is driven to slide from left to right in the first circular arc groove 6. At the same time, after the second semicircular slider 13 is blocked by the top end of the first base 4, the second semicircular slider 13 is pushed to slide from right to left in the second circular arc groove 12. While the second semicircular slider 13 slides, the long rod 9 and the spring 11 are raised upward, causing the pull rod 10 to move upward along the long hole 3. With the continuous left movement of the second base 5, the second semicircular slider 13 and the first semicircular slider 7 are tightly attached. After the front end of the second base 5 passes the first semicircular slider 7, the spring 11 is retracted to drive the second semicircular slider 13 to rotate with the first semicircular slider 7. The pull rod 10 returns to the bottom of the long hole 3. At this time, the first base 4 and the second base 5 are locked. When disassembling, only need to hold the pull rod 10, lift the pull rod 10 upward, then move the right guard plate 1 to the right, the right guard plate 1 and the left guard plate 2 can be separated, without using screws and other tools for disassembly, the process is simple and easy to operate, and the installation and disassembly process is simple.
[0027] The rear end of the left guard plate 2 is provided with a long slot 14, the inside of the long slot 14 is provided with a osmometer 15, the bottom end of the osmometer 15 is fixedly connected with a probe 16, the top end of the osmometer 15 is fixedly connected with an electric wire 17, the front end of the left guard plate 2 is provided with a circular hole 18, the shape and size of the inside of the long slot 14 are consistent with the shape and size of the outside of the osmometer 15, the shape and size of the outside of the electric wire 17 are consistent with the shape and size of the inside of the circular hole 18, the horizontal plane where the long slot 14 and the rear end of the osmometer 15 are located is consistent with the horizontal plane where the rear end of the left guard plate 2 is located, facilitating subsequent observation;
[0028] Specifically, as shown in Figure 1 and Figure 3 In use, after adding support in the risk control and reinforcement project, the water seepage needs to be observed to ensure the engineering effect and safety. The right guard plate 1 and the left guard plate 2 can be installed before the hole is opened on the dam body. Then the osmometer 15 is pulled out from the long slot 14 and inserted into the hole. The electric wire 17 is pulled out from the circular hole 18. The data detected by the probe 16 can be read by connecting the electric wire 17 with the equipment regularly, and the change of the water seepage pressure can be recorded, facilitating the observation of the internal pressure.
[0029] The rear end of the right guard plate 1 is provided with a geomembrane 19, the rear end of the geomembrane 19 is fixedly connected with four groups of fixing nails 20, the rear end of the left guard plate 2 is fixedly connected with four groups of long nails 21, the rear end of the geomembrane 19 is provided with a hole 22, the shape and size of the inside of the hole 22 are consistent with the shape and size of the outside of the osmometer 15, the shape and size of the geomembrane 19 are consistent with the shape and size of the rear ends of the right guard plate 1 and the left guard plate 2, preventing seepage at the gap;
[0030] Specifically, as shown inFigure 1 and Figure 4 As shown, in use, to further prevent leakage, the geomembrane 19 can be taken out from the fixing nail 20, then the geomembrane 19 is unfolded to the rear end of the left guard plate 2, the geomembrane 19 is sleeved on the long nail 21, and the osmometer 15 is pulled out from the hole 22, at this time, the geomembrane 19 is completely unfolded and can cover the rear end of the right guard plate 1 and the left guard plate 2, so that water is prevented from seeping out from the gap of the support.
[0031] Principle: in use, first, the right guard plate 1 is pushed to the left guard plate 2, the second base 5 moves to the first base 4 in the process of pushing, after the left side of the second base 5 touches the first semicircular block 7, the first semicircular block 7 is driven to slide from left to right in the first circular groove 6, at the same time, after the second semicircular block 13 is blocked by the top end of the first base 4, the second semicircular block 13 is pushed to slide from right to left in the second circular groove 12, at the same time, the second semicircular block 13 drives the long rod 9 and the spring 11 to be raised upward, the pull rod 10 moves upward along the long hole 3, after the second base 5 continuously moves to the left and the second semicircular block 13 and the first semicircular block 7 are tightly attached, the front end of the second base 5 passes the first semicircular block 7, the spring 11 is contracted to drive the second semicircular block 13 and the first semicircular block 7 to rotate, and the pull rod 10 returns to the bottom of the long hole 3, at this time, the first base 4 and the second base 5 are locked, when disassembling, the right guard plate 1 is moved to the right after the pull rod 10 is lifted upward, the right guard plate 1 and the left guard plate 2 can be separated, without using screws and the like for disassembly, the process is simple and easy to operate, in use, after adding support in the reinforcement project, the water seepage needs to be observed to ensure the engineering effect and safety, the hole can be opened on the dam body before the right guard plate 1 and the left guard plate 2 are installed, then the osmometer 15 is pulled out from the long groove 14 and inserted into the hole, and the wire 17 is pulled out from the circular hole 18, the wire 17 can be connected regularly by using the equipment, the data detected by the probe 16 is read, the change of water seepage pressure is recorded, in use, to further prevent leakage, the geomembrane 19 can be taken out from the fixing nail 20, then the geomembrane 19 is unfolded to the rear end of the left guard plate 2, the geomembrane 19 is sleeved on the long nail 21, and the osmometer 15 is pulled out from the hole 22, at this time, the geomembrane 19 is completely unfolded and can cover the rear end of the right guard plate 1 and the left guard plate 2, so that water is prevented from seeping out from the gap of the support.
[0032] It is apparent for a person skilled in the art that the present application is not restricted to the details of the above exemplary embodiments, but that it can be implemented in other concrete forms without departing from the spirit or the essential characteristics of the present application. Therefore, the embodiments should be considered as exemplary only, and not limiting, the scope of the present application being defined by the appended claims rather than the above description, and all changes coming within the meaning and range of equivalency of the claims are therefore intended to be embraced therein. Any reference signs in the claims should not be construed as limiting the claims concerned.
Claims
1. A support connecting mechanism for reservoir reinforcement, comprising a right guard plate (1), characterized in that: The left side of the right guard plate (1) is provided with a left guard plate (2), and the front end of the right guard plate (1) is provided with two groups of convenient disassembly and assembly components; The convenient disassembly and assembly components comprise two groups of long holes (3), the long holes (3) are provided in the front end of the right guard plate (1), the inside of the left guard plate (2) is fixedly connected with a first base (4), the inside of the right guard plate (1) is fixedly connected with a second base (5), the top end of the first base (4) is provided with a first circular arc groove (6), the top end of the first circular arc groove (6) is movably connected with a first semicircular sliding block (7), the inside of the first semicircular sliding block (7) is fixedly connected with a counterweight (8), the front end of the second base (5) is movably connected with a long rod (9), the front end of the long rod (9) is fixedly connected with a pull rod (10), the bottom end of the long rod (9) is movably connected with a spring (11), the bottom end of the second base (5) is provided with a second circular arc groove (12), and the bottom end of the second circular arc groove (12) is movably connected with a second semicircular sliding block (13).
2. The support connecting mechanism for reservoir reinforcement according to claim 1, characterized in that: The size of the long hole (3) is consistent with the size of the periphery of the pull rod (10), the pull rod (10) can move up and down in the inside of the long hole (3), the shape size of the top end of the first circular arc groove (6) is consistent with the shape size of the bottom of the first semicircular sliding block (7), and the first semicircular sliding block (7) can slide in the inside of the first circular arc groove (6).
3. The support connecting mechanism for reservoir reinforcement according to claim 1, characterized in that: The shape size of the bottom of the second circular arc groove (12) is consistent with the shape size of the top of the second semicircular sliding block (13), and the second semicircular sliding block (13) can slide in the second circular arc groove (12).
4. The support connecting mechanism for reservoir reinforcement according to claim 1, characterized in that: The long rod (9) penetrates through the second circular arc groove (12) and is fixedly connected with the second semicircular sliding block (13), the spring (11) has elasticity, and the shape size of the first semicircular sliding block (7) is consistent with that of the second semicircular sliding block (13).
5. The support connecting mechanism for reservoir reinforcement according to claim 1, characterized in that: The rear end of the left guard plate (2) is provided with a long groove (14), the inside of the long groove (14) is provided with an osmometer (15), the bottom end of the osmometer (15) is fixedly connected with a probe (16), the top end of the osmometer (15) is fixedly connected with an electric wire (17), and the front end of the left guard plate (2) is provided with a circular hole (18).
6. The support connecting mechanism for reservoir reinforcement according to claim 5, characterized in that: The shape size of the inside of the long groove (14) is consistent with the shape size of the periphery of the osmometer (15), the shape size of the outside of the electric wire (17) is consistent with the shape size of the inside of the circular hole (18), and the horizontal plane where the rear end of the long groove (14) and the osmometer (15) is located is consistent with the horizontal plane where the rear end of the left guard plate (2) is located.
7. The support connecting mechanism for reservoir reinforcement according to claim 1, characterized in that: The rear end of the right guard plate (1) is provided with a geomembrane (19), the rear end of the geomembrane (19) is fixedly connected with four groups of fixing nails (20), the rear end of the left guard plate (2) is fixedly connected with four groups of long nails (21), and the rear end of the geomembrane (19) is provided with a hole (22).
8. The support connecting mechanism for reservoir reinforcement according to claim 7, characterized in that: The shape size of the inside of the hole (22) is consistent with the shape size of the outside of the osmometer (15), and the shape size of the geomembrane (19) is consistent with the shape size of the rear end of the right guard plate (1) and the left guard plate (2).