A simulation platform mounting device and method carrying high-frequency ADCP

By designing an installation device that includes a support, a simulation platform body, a bidirectional limiting mechanism, and a bottom support component, the inconvenience in the installation process of the high-frequency ADCP simulation platform is solved, and the platform can be moved stably and fixed quickly, thus improving installation efficiency and stability.

CN116877846BActive Publication Date: 2026-05-05HARBIN ENG UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
HARBIN ENG UNIV
Filing Date
2023-04-07
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

The installation process of existing simulation platforms equipped with high-frequency ADCP is cumbersome and inconvenient due to the large size of the platform.

Method used

A simulation platform installation device equipped with a high-frequency ADCP is adopted, including a support, a simulation platform body, a bidirectional limiting mechanism, a pull seat, a rectangular clamping block, a bottom support assembly, a hydraulic cylinder, and other components. Through the cooperation of the hydraulic cylinder and the lead screw, the simulation platform can be stably clamped and moved, and the stability of the platform can be improved by the bottom support plate and the clamping auxiliary assembly.

Benefits of technology

This enables convenient installation and stable relocation of the simulation platform, improves the installation efficiency of staff, and ensures the stability of the platform during relocation and fixation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses an installation device and method for a simulation platform equipped with a high-frequency ADCP, relating to the technical field of simulation platform equipment. The device includes a support, with a simulation platform body disposed on the inner side of the support. A high-frequency ADCP is installed on the top of the simulation platform body, along with a bidirectional limiting mechanism, a bottom support assembly, and protective auxiliary components. By setting up the bidirectional limiting mechanism and the bottom support assembly, a rotating rocker disk drives a bidirectional lead screw to rotate, driving a rectangular clamping block to clamp onto the outer wall of the simulation platform body. When the output end of a first hydraulic cylinder drives a pulling seat to move the simulation platform body upwards a certain distance via the rectangular clamping block, the output end of a drive motor drives a rocker block to rotate the bottom support disk 180 degrees to fit against the bottom of the simulation platform body, thus supporting the simulation platform body. This allows workers to easily move the simulation platform body to a designated position for fixation, improving installation efficiency and facilitating operation.
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Description

Technical Field

[0001] This invention relates to the field of simulation platforms, specifically to a simulation platform installation device and method equipped with a high-frequency ADCP. Background Technology

[0002] Simulation is the process of reproducing the essential processes that occur in a real system using a model, and studying existing or designed systems through experiments on the system model. It is also known as simulation. Models include physical and mathematical models, static and dynamic models, and continuous and discrete models. Specialized simulation platforms are required in the process of simulating or testing high-frequency ADCP.

[0003] Existing simulation platforms equipped with high-frequency ADCPs are generally quite large, requiring constant adjustments by staff during installation. The large size of these platforms makes installation cumbersome. Therefore, we provide an installation device and method for simulation platforms equipped with high-frequency ADCPs to address these issues. Summary of the Invention

[0004] The purpose of this invention is to solve the problem of complicated installation process of simulation platform equipped with high-frequency ADCP, and to provide a simulation platform installation device and method equipped with high-frequency ADCP.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a simulation platform installation device equipped with a high-frequency ADCP, comprising a support, a simulation platform body disposed on the inner side of the support, a high-frequency ADCP mounted on the top of the simulation platform body, a bidirectional limiting mechanism disposed between the inner side of the support and the simulation platform body, a pull seat disposed on the inner side of the support, a rectangular clamping block disposed at the front end of the pull seat, a bottom support component disposed at the bottom end of the rectangular clamping block, a second hydraulic cylinder fixedly connected to the top end of the support, a protective auxiliary component fixedly connected to the output end of the second hydraulic cylinder, and a plurality of second universal wheels fixedly connected to the bottom end of the support;

[0006] The bidirectional limiting mechanism includes a first hydraulic cylinder fixedly connected to the top of the support. The output end of the first hydraulic cylinder passes through the inner side of the support and is fixedly connected to the pull seat. A bidirectional lead screw is rotatably connected to the inner side of the pull seat. One end of the bidirectional lead screw passes through the outer side of the pull seat and is fixedly connected to a rocker plate. One end of the rectangular clamping block is fixedly connected to a first rectangular slider, and the first rectangular slider is sleeved on the outer wall of the bidirectional lead screw. A clamping auxiliary component is provided at the top of the rectangular clamping block and the pull seat.

[0007] As a further embodiment of the present invention: two rectangular clamping blocks are provided, the outer wall of the bidirectional lead screw is provided with positive and negative threads, and the two rectangular clamping blocks are respectively sleeved on the outer wall of the positive and negative threads of the bidirectional lead screw through a first rectangular slider fixedly connected to one end. The inner side of the pull seat has two guide grooves that match the first rectangular slider.

[0008] As a further embodiment of the present invention: the bottom support assembly includes a swing block rotatably connected to the bottom end of the rectangular clamping block, a drive motor is installed at the bottom end of the rectangular clamping block, the output end of the drive motor is fixedly connected to the swing block, a bottom support plate is fixedly connected to one end of the swing block, and a first universal wheel is installed at the top end of the bottom support plate.

[0009] As a further embodiment of the present invention: the clamping auxiliary component includes a second rectangular column fixedly connected to the top of the pull seat, a power block slidably connected to the top of the second rectangular column, a first clamping spring fixedly connected to the bottom of the power block on the outer wall of the second rectangular column, the bottom of the first clamping spring being fixedly connected to the pull seat, a rectangular clamping block having an inwardly recessed rectangular pressure groove at the top of the rectangular clamping block, a rectangular pressure block fixedly connected to the top of the power block above the rectangular pressure groove, and a pulling unit provided on one side of the outer wall of the power block and the outer wall of the swing block.

[0010] As a further embodiment of the present invention: the pulling unit includes a winding rod fixedly connected to the outer wall of one side of the swing block, one end of the winding rod passing through the outside of the rectangular clamping block and rotatably connected to the rectangular clamping block, a pulling rope being wound around the outer wall of the winding rod, an inclined block being fixedly connected to the outer wall of the rectangular clamping block, a fixed guide wheel being rotatably connected to the inner side of the inclined block, the pulling rope being attached to the outer wall of the fixed guide wheel, a T-shaped block being fixedly connected to one side of the outer wall of the power block, a rectangular slide rod being slidably connected to the outer wall of the T-shaped block, a rectangular groove being formed on the inner side of the rectangular slide rod, and a first rectangular column being fixedly connected to the top of the rectangular clamping block, the first rectangular column passing through the inside of the rectangular groove and matching the rectangular groove.

[0011] As a further embodiment of the present invention: the protective auxiliary component includes an L-shaped clamping seat fixedly connected to the output end of the second hydraulic cylinder, an L-shaped pressure block fixedly connected to the bottom end of the L-shaped clamping seat, a third rectangular slider fixedly connected to the inner side of the L-shaped clamping seat, the third rectangular slider being slidably connected to the support, a second rectangular sliding groove being provided on both outer walls of the support, the third rectangular slider being disposed inside the second rectangular sliding groove, auxiliary double-pressure components extending into the interior of the L-shaped pressure block being provided on both outer walls of the L-shaped pressure block, and a clamping and anti-loosening unit being provided at one end of the pulling seat and the top end of the L-shaped pressure block.

[0012] As a further embodiment of the present invention: the auxiliary dual-pressure assembly includes a rotating pressure block rotatably connected to the inner side of the L-shaped pressure block. A rotating shaft is fixedly connected to one outer wall of the rotating pressure block. One end of the rotating shaft passes through the interior of the L-shaped pressure block and is fixedly connected to a second spur gear. A T-shaped slide rod is slidably connected to the inner side of the L-shaped pressure block. The bottom end of the T-shaped slide rod passes through the bottom end of the L-shaped pressure block. A second compression spring is fixedly connected to the outer wall of the T-shaped slide rod. One end of the second compression spring is fixedly connected to the L-shaped pressure block. A third spur rack is fixedly connected to both outer walls of the T-shaped slide rod. The third spur rack meshes with the second spur gear. Threaded holes are provided on the inner sides of both the L-shaped pressure block and the rotating pressure block.

[0013] As a further embodiment of the present invention: the clamping and anti-loosening unit includes an L-shaped upright fixedly connected to the top of the L-shaped pressure block, one end of the L-shaped upright is fixedly connected to a first semi-circular clamping block above the rocking disk, a first spur rack is fixedly connected to one side of the outer wall of the L-shaped upright, one end of the pulling seat is rotatably connected to a rotating shaft, a first spur gear is fixedly connected to the outer wall of the rotating shaft, and the first spur gear meshes with the first spur rack, a second semi-circular clamping block is provided below the rocking disk, a second spur rack is fixedly connected to the bottom end of the second semi-circular clamping block, and the second spur rack meshes with the first spur gear.

[0014] As a further embodiment of the present invention: a first rectangular groove is provided at one end of the pull seat, and a second rectangular slider is fixedly connected to the inner side of the second straight rack. The second rectangular slider is slidably connected to the pull seat, and the second rectangular slider is disposed inside the first rectangular groove and matches the first rectangular groove.

[0015] This invention also discloses a method for installing a simulation platform equipped with a high-frequency ADCP, which uses the aforementioned installation device for a simulation platform equipped with a high-frequency ADCP and includes the following steps:

[0016] S1. When it is necessary to install the simulation platform body to a designated position, first move the support to the designated position, and then the staff manually rotates the swing disk to drive the bidirectional lead screw to rotate, thereby driving the two first rectangular sliders to drive one of the rectangular clamping blocks to move closer to the simulation platform body. When the two rectangular clamping blocks are clamped on the outer wall of the simulation platform body, they are fixed to the pull seat.

[0017] S2. After the two rectangular clamping blocks fix the simulation platform body and the pull seat, the second hydraulic cylinder is then activated. The output end of the second hydraulic cylinder drives the L-shaped pressing seat to move downward, so that the two L-shaped pressing blocks press on the ground and support the entire support.

[0018] S3. When the L-shaped pressure block moves downward, the T-shaped slide rod encounters resistance when it contacts the ground, and moves upward relative to the L-shaped pressure block. This causes the second spur gear to rotate via the third spur rack, which in turn drives the rotating shaft to rotate the rotating pressure block. When the L-shaped pressure block contacts the ground, the two rotating pressure blocks rotate 90 degrees and fit against the ground, thereby increasing the contact area between the L-shaped pressure block and the ground, and thus improving the stability of the L-shaped pressure block support.

[0019] S4. When the L-shaped pressure block moves downward, the first semi-ring clamping block and the first straight rack move downward through the L-shaped upright. When the first straight rack moves downward, it drives the first spur gear to rotate, thereby driving the second straight rack to move upward along the first rectangular slide groove through the second rectangular slider, thereby driving the second semi-ring clamping block to move upward. When the bottom end of the L-shaped pressure block is in contact with the ground, the inner sides of the first semi-ring clamping block and the second semi-ring clamping block are in contact with the outer wall of the swing disk, thus clamping and fixing the swing disk.

[0020] S5. When the L-shaped pressure block is supported on the ground, the first hydraulic cylinder is then activated. The output end of the first hydraulic cylinder drives the pulling seat to move the simulation platform body upward through the rectangular clamping block. When the simulation platform body moves upward a certain distance, the drive motor is activated. The output end of the drive motor drives the swing block to rotate the base plate 180 degrees, so that the base plate is attached to the bottom end of the simulation platform body. Then the first hydraulic cylinder is activated again. The output end of the first hydraulic cylinder drives the pulling seat to move the simulation platform body downward through the rectangular clamping block. When the first universal wheel is attached to the ground, the first hydraulic cylinder stops running, thereby supporting the simulation platform body.

[0021] S6. When the swing block drives the base plate to rotate, the pull rope is wound up by the winding rod, thereby pulling the rectangular slide bar to drive the power block to move downward through the T-shaped block, so that the rectangular pressure block is inserted into the rectangular pressure groove and the rectangular clamping block is pressed.

[0022] S7. When it is necessary to transfer the simulation platform body to a designated location for fixing, the second hydraulic cylinder is activated. The output end of the second hydraulic cylinder drives the L-shaped clamping seat to move the L-shaped pressure block to reset. When the simulation platform body needs to be installed and fixed after being transferred to the designated location, the second hydraulic cylinder is activated. The output end of the second hydraulic cylinder drives the L-shaped clamping seat to move the L-shaped pressure block to press on the ground. Then, the L-shaped pressure block and the rotating pressure block are fixed to the ground with bolts, thereby quickly fixing the simulation platform body to the designated location.

[0023] Compared with the prior art, the beneficial effects of the present invention are:

[0024] 1. By setting up a bidirectional limiting mechanism and a bottom support component, the rotating rocker disk drives the bidirectional lead screw to rotate, driving the rectangular clamping block to clamp onto the outer wall of the simulation platform body. When the output end of the first hydraulic cylinder drives the pulling seat to move the simulation platform body upward a certain distance through the rectangular clamping block, the output end of the drive motor drives the rocker block to rotate the bottom support disk 180 degrees and fit against the bottom of the simulation platform body, thereby supporting the simulation platform body. This allows the staff to easily move the simulation platform body to the designated position for fixing, thereby improving the efficiency of the staff during installation and making it easier for the staff to operate.

[0025] 2. By setting up a clamping auxiliary component, when the swing block drives the base plate to rotate, the pull rope is wound up by the winding rod, thereby pulling the rectangular slide bar to drive the power block to move downward through the T-shaped block, so that the rectangular pressure block is inserted into the rectangular pressure groove and clamps the rectangular clamping block, thereby preventing the simulation platform body from loosening during the movement. At the same time, after the simulation platform body is fixed, it can also improve the stability of the simulation platform body after it is fixed.

[0026] 3. By setting protective auxiliary components, after the two rectangular clamping blocks fix the simulation platform body to the pull seat, the second hydraulic cylinder is then activated. The output end of the second hydraulic cylinder drives the L-shaped clamping seat to move downward, so that the two L-shaped clamping blocks press on the ground and support the entire support, so as to avoid shaking during the process of lifting the simulation platform body, thereby improving the overall stability of the device. At the same time, it is convenient for the staff to fix the simulation platform body to the ground after moving it to the designated position.

[0027] 4. By setting up an auxiliary double-pressure component, when the L-shaped pressure block moves downward, the T-shaped slide bar encounters resistance when it contacts the ground, and moves upward relative to the L-shaped pressure block. This drives the second spur gear to rotate through the third spur rack, which in turn drives the rotating shaft to rotate the rotating pressure block. When the L-shaped pressure block contacts the ground, the two rotating pressure blocks rotate 90 degrees and fit against the ground, thereby increasing the contact area between the L-shaped pressure block and the ground, and thus improving the stability of the L-shaped pressure block support.

[0028] 5. By setting up a clamping and anti-loosening unit, when the L-shaped pressure block moves downward, the first half-ring clamping block and the first straight rack move downward through the L-shaped upright. When the first straight rack moves downward, it drives the first straight gear to rotate, thereby driving the second straight rack to move upward along the first rectangular slide groove through the second rectangular slider, thereby driving the second half-ring clamping block to move upward. When the bottom end of the L-shaped pressure block is in contact with the ground, the inner sides of the first half-ring clamping block and the second half-ring clamping block are in contact with the outer wall of the swing disk, clamping and fixing the swing disk, thereby improving the stability of the rectangular clamping block holding the simulation platform body, thus preventing the rectangular clamping block from loosening after clamping. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the structure of the present invention;

[0030] Figure 2 This is a schematic diagram of the inner structure of the pull seat of the present invention;

[0031] Figure 3 This is a schematic diagram of the bidirectional limiting mechanism of the present invention;

[0032] Figure 4 This is a partial structural diagram of the clamping auxiliary component of the present invention;

[0033] Figure 5 This is a schematic diagram of the bottom structure of the rectangular clamping block of the present invention;

[0034] Figure 6 This is a schematic diagram of the clamping and anti-loosening unit structure of the present invention;

[0035] Figure 7 This is a schematic diagram of the protective auxiliary component structure of the present invention;

[0036] Figure 8 This is a schematic diagram of the auxiliary dual-pressure assembly structure of the present invention;

[0037] Figure 9 This is a side view of the support of the present invention.

[0038] In the diagram: 1. Support; 2. Pulling seat; 3. First hydraulic cylinder; 4. Second hydraulic cylinder; 5. L-shaped clamping seat; 6. L-shaped pressure block; 7. Rotating pressure block; 8. Rectangular clamping block; 9. Simulation platform body; 10. High-frequency ADCP; 11. Bidirectional lead screw; 12. Base plate; 13. First universal wheel; 14. First rectangular slider; 15. Pulling rope; 16. First rectangular column; 17. Rectangular slide bar; 18. Second rectangular column; 19. Power block; 20. First clamping spring; 21. T-block; 22. Rectangular groove; 23. Rectangular pressure block; 24. Rectangular pressure groove; 25. Swing. 26. Moving block; 27. Drive motor; 28. Rewinding rod; 29. ​​Inclined block; 30. Fixed guide wheel; 31. Swing disk; 32. L-shaped upright; 33. First semi-circular clamping block; 34. First spur rack; 35. Rotating shaft; 36. First spur gear; 37. Second semi-circular clamping block; 38. Second rectangular slider; 39. First rectangular slide groove; 40. Third rectangular slider; 41. Second rectangular slide groove; 42. Threaded hole; 43. T-shaped slide rod; 44. Second compression spring; 45. Rotating shaft; 46. Second spur gear; 47. Third spur rack; 48. Second omnidirectional wheel. Detailed Implementation

[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0040] In the description of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. In the description of this invention, it should be noted that unless otherwise explicitly specified and limited, the terms "installed," "connected," "linked," and "set up" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances. The following describes embodiments of the invention based on its overall structure.

[0041] Please see Figures 1-9 In this embodiment of the invention, a simulation platform installation device equipped with a high-frequency ADCP includes a support 1, a simulation platform body 9 is provided on the inner side of the support 1, a high-frequency ADCP 10 is installed on the top of the simulation platform body 9, a bidirectional limiting mechanism is provided between the inner side of the support 1 and the simulation platform body 9, a pull seat 2 is provided on the inner side of the support 1, a rectangular clamping block 8 is provided at the front end of the pull seat 2, a bottom support component is provided at the bottom end of the rectangular clamping block 8, a second hydraulic cylinder 4 is fixedly connected to the top end of the support 1, a protective auxiliary component is fixedly connected to the output end of the second hydraulic cylinder 4, and a plurality of second universal wheels 48 are fixedly connected to the bottom end of the support 1.

[0042] The bidirectional limiting mechanism includes a first hydraulic cylinder 3 fixedly connected to the top of the support 1. The output end of the first hydraulic cylinder 3 passes through the inner side of the support 1 and is fixedly connected to the pull seat 2. A bidirectional lead screw 11 is rotatably connected to the inner side of the pull seat 2. One end of the bidirectional lead screw 11 passes through the outer side of the pull seat 2 and is fixedly connected to a rocker plate 30. One end of the rectangular clamping block 8 is fixedly connected to a first rectangular slider 14, and the first rectangular slider 14 is sleeved on the outer wall of the bidirectional lead screw 11. A clamping auxiliary component is provided at the top of the rectangular clamping block 8 and the pull seat 2. There are two rectangular clamping blocks 8. The outer wall of the bidirectional lead screw 11 is provided with positive and negative threads. The two rectangular clamping blocks 8 are respectively sleeved on the positive and negative threads of the bidirectional lead screw 11 through the first rectangular slider 14 fixedly connected at one end. Two matching guide grooves for the first rectangular slider 14 are opened on the inner side of the pull seat 2.

[0043] In this embodiment: when the simulation platform body 9 needs to be installed in a designated position, the support 1 is first moved to the designated position. Then, the operator manually rotates the rocker disk 30 to drive the bidirectional lead screw 11 to rotate, thereby driving the two first rectangular sliders 14 to drive a rectangular clamping block 8 to move closer to the simulation platform body 9. When the two rectangular clamping blocks 8 clamp the outer wall of the simulation platform body 9 and fix it to the pull seat 2, the support 1 is then supported by the protective auxiliary component to improve the stability of the simulation platform body 9 moving upward. Then, the first hydraulic cylinder 3 is activated. The output end of the first hydraulic cylinder 3 drives the pull seat 2 to move the simulation platform body 9 upward through the rectangular clamping block 8. When the simulation platform body 9 moves upward a certain distance, the bottom of the simulation platform body 9 is supported by the bottom support component, so that the operator can move the simulation platform body 9 stably to the designated position.

[0044] Please refer to this carefully. Figure 1 and Figure 5The bottom support assembly includes a swing block 25 rotatably connected to the bottom of a rectangular clamping block 8. A drive motor 26 is installed at the bottom of the rectangular clamping block 8. The output end of the drive motor 26 is fixedly connected to the swing block 25. A bottom support plate 12 is fixedly connected to one end of the swing block 25. A first universal wheel 13 is installed at the top of the bottom support plate 12.

[0045] In this embodiment: the first hydraulic cylinder 3 is activated, and the output end of the first hydraulic cylinder 3 drives the pulling seat 2 to move the simulation platform body 9 upward through the rectangular clamping block 8. When the simulation platform body 9 moves upward a certain distance, the drive motor 26 is activated, and the output end of the drive motor 26 drives the swing block 25 to rotate the base plate 12 180 degrees, so that the base plate 12 is attached to the bottom end of the simulation platform body 9. Then the first hydraulic cylinder 3 is activated again, and the output end of the first hydraulic cylinder 3 drives the pulling seat 2 to move the simulation platform body 9 downward through the rectangular clamping block 8. When the first universal wheel 13 is attached to the ground, the first hydraulic cylinder 3 stops running, thereby supporting the simulation platform body 9 and preventing the simulation platform body 9 from falling off due to gravity during the movement. This improves the stability of the simulation platform body 9 during the movement process, making it easier for workers to quickly move the simulation platform body 9 to the designated position for installation.

[0046] Please refer to this carefully. Figures 2-5 The clamping auxiliary component includes a second rectangular column 18 fixedly connected to the top of the pull seat 2. A power block 19 is slidably connected to the top of the second rectangular column 18. A first clamping spring 20 is fixedly connected to the bottom of the power block 19 on the outer wall of the second rectangular column 18. The bottom of the first clamping spring 20 is fixedly connected to the pull seat 2. A rectangular clamping block 8 has an inwardly recessed rectangular pressure groove 24 at its top. A rectangular pressure block 23 is fixedly connected to the top of the power block 19 above the rectangular pressure groove 24. A pulling unit is provided on one side of the outer wall of the power block 19 and the outer wall of the swing block 25. The pulling unit includes a winding rod 27 fixedly connected to one side of the outer wall of the swing block 25. One end of the winding rod 27 extends through the outside of the rectangular clamping block 8 and is rotatably connected to the rectangular clamping block 8. A pull rope 15 is wound around the outer wall of the winding rod 27. An inclined block 28 is fixedly connected to the outer wall of the rectangular clamping block 8. A fixed guide wheel 29 is rotatably connected to the inner side of the inclined block 28. The pull rope 15 is attached to the outer wall of the fixed guide wheel 29. A T-shaped block 21 is fixedly connected to one side of the outer wall of the power block 19. A rectangular slide rod 17 is slidably connected to the outer wall of the T-shaped block 21. A rectangular groove 22 is opened on the inner side of the rectangular slide rod 17. A first rectangular column 16 is fixedly connected to the top of the rectangular clamping block 8. The first rectangular column 16 passes through the inside of the rectangular groove 22 and matches the rectangular groove 22.

[0047] In this embodiment: when the swing block 25 drives the base plate 12 to rotate, the pull rope 15 is wound up by the winding rod 27, thereby pulling the rectangular slide bar 17 to drive the power block 19 to move downward through the T-shaped block 21, so that the rectangular pressure block 23 is inserted into the rectangular pressure groove 24 and the rectangular clamping block 8 is pressed, thereby preventing the simulation platform body 9 from loosening during the movement. At the same time, after the simulation platform body 9 is fixed, the stability of the simulation platform body 9 after fixing can also be improved.

[0048] Please refer to this carefully. Figures 1-2 The protective auxiliary components include an L-shaped clamping seat 5 fixedly connected to the output end of the second hydraulic cylinder 4, an L-shaped pressure block 6 fixedly connected to the bottom end of the L-shaped clamping seat 5, a third rectangular slider 40 fixedly connected to the inner side of the L-shaped clamping seat 5, the third rectangular slider 40 being slidably connected to the support 1, a second rectangular groove 41 being provided on the outer walls of both sides of the support 1, the third rectangular slider 40 being disposed inside the second rectangular groove 41, auxiliary double pressure components extending into the interior of the L-shaped pressure block 6 being provided on the outer walls of both sides of the L-shaped pressure block 6, and a clamping and anti-loosening unit being provided at one end of the pull seat 2 and the top end of the L-shaped pressure block 6.

[0049] In this embodiment: after the two rectangular clamping blocks 8 fix the simulation platform body 9 to the pull seat 2, the second hydraulic cylinder 4 is then activated. The output end of the second hydraulic cylinder 4 drives the L-shaped pressing seat 5 to move downward, so that the two L-shaped pressing blocks 6 press on the ground and support the support 1 as a whole, so as to avoid shaking during the process of lifting the simulation platform body 9, thereby improving the overall stability of the device. At the same time, it is convenient for the staff to fix the simulation platform body 9 to the ground after moving it to the designated position.

[0050] Please refer to this carefully. Figures 7-8 The auxiliary dual-pressure assembly includes a rotating pressure block 7 rotatably connected to the inner side of the L-shaped pressure block 6. A rotating shaft 45 is fixedly connected to one outer wall of the rotating pressure block 7. One end of the rotating shaft 45 passes through the interior of the L-shaped pressure block 6 and is fixedly connected to a second spur gear 46. A T-shaped slide rod 43 is slidably connected to the inner side of the L-shaped pressure block 6. The bottom end of the T-shaped slide rod 43 passes through the bottom end of the L-shaped pressure block 6. A second compression spring 44 is fixedly connected to the outer wall of the T-shaped slide rod 43. One end of the second compression spring 44 is fixedly connected to the L-shaped pressure block 6. A third spur rack 47 is fixedly connected to both outer walls of the T-shaped slide rod 43. The third spur rack 47 meshes with the second spur gear 46. Threaded holes 42 are provided on the inner sides of both the L-shaped pressure block 6 and the rotating pressure block 7.

[0051] In this embodiment: when the L-shaped pressure block 6 moves downward, the T-shaped slide bar 43 moves upward relative to the L-shaped pressure block 6 when it comes into contact with the ground and encounters resistance. This causes the second spur gear 46 to rotate via the third spur rack 47, which in turn drives the rotating shaft 45 to rotate the rotating pressure block 7. When the L-shaped pressure block 6 comes into contact with the ground, the two rotating pressure blocks 7 rotate 90 degrees and fit against the ground, thereby increasing the contact area between the L-shaped pressure block 6 and the ground, and thus improving the stability of the L-shaped pressure block 6 support.

[0052] Please refer to this carefully. Figure 6 The clamping and anti-loosening unit includes an L-shaped upright 31 fixedly connected to the top of the L-shaped pressure block 6. One end of the L-shaped upright 31 is located above the swing disk 30 and is fixedly connected to a first semi-ring clamping block 32. A first straight rack 33 is fixedly connected to one side of the outer wall of the L-shaped upright 31. One end of the pull seat 2 is rotatably connected to a rotating shaft 34. A first straight gear 35 is fixedly connected to the outer wall of the rotating shaft 34, and the first straight gear 35 meshes with the first straight rack 33. A second semi-ring clamping block 36 is provided below the swing disk 30. A second straight rack 37 is fixedly connected to the bottom end of the second semi-ring clamping block 36 and meshes with the first straight gear 35. A first rectangular slide groove 39 is provided at one end of the pull seat 2. A second rectangular slider 38 is fixedly connected to the inner side of the second straight rack 37. The second rectangular slider 38 is slidably connected to the pull seat 2 and is located inside the first rectangular slide groove 39 and matches the first rectangular slide groove 39.

[0053] In this embodiment: when the L-shaped pressure block 6 moves downward, the L-shaped upright 31 drives the first semi-ring clamping block 32 and the first straight rack 33 to move downward. When the first straight rack 33 moves downward, it drives the first straight gear 35 to rotate, thereby driving the second straight rack 37 to move upward along the first rectangular slide groove 39 through the second rectangular slider 38, thereby driving the second semi-ring clamping block 36 to move upward. When the bottom end of the L-shaped pressure block 6 is in contact with the ground, the inner sides of the first semi-ring clamping block 32 and the second semi-ring clamping block 36 are in contact with the outer wall of the swing disk 30, clamping and fixing the swing disk 30, thereby improving the stability of the rectangular clamping block 8 clamping the simulation platform body 9, thereby preventing the rectangular clamping block 8 from loosening after clamping.

[0054] The following describes a method for installing a simulation platform equipped with a high-frequency ADCP, based on the aforementioned installation device. The method includes the following steps:

[0055] S1. When it is necessary to install the simulation platform body 9 to a designated position, first move the support 1 to the designated position, and then the staff manually rotates the swing disk 30 to drive the bidirectional lead screw 11 to rotate, thereby driving the two first rectangular sliders 14 to drive a rectangular clamping block 8 to approach the simulation platform body 9. When the two rectangular clamping blocks 8 are clamped on the outer wall of the simulation platform body 9, they are fixed to the pull seat 2.

[0056] S2. After the two rectangular clamping blocks 8 fix the simulation platform body 9 and the pull seat 2, the second hydraulic cylinder 4 is then activated. The output end of the second hydraulic cylinder 4 drives the L-shaped pressing seat 5 to move downward, so that the two L-shaped pressing blocks 6 press on the ground and support the support 1 as a whole.

[0057] S3. When the L-shaped pressure block 6 moves downward, the T-shaped slide bar 43 moves upward relative to the L-shaped pressure block 6 when it comes into contact with the ground and encounters resistance. This causes the second spur gear 46 to rotate through the third spur rack 47, which in turn drives the rotating shaft 45 to rotate the rotating pressure block 7. When the L-shaped pressure block 6 comes into contact with the ground, the two rotating pressure blocks 7 rotate 90 degrees and fit against the ground, thereby increasing the contact area between the L-shaped pressure block 6 and the ground, and thus improving the stability of the L-shaped pressure block 6 support.

[0058] S4. When the L-shaped pressure block 6 moves downward, the L-shaped upright rod 31 drives the first semi-ring clamping block 32 and the first straight rack 33 to move downward. When the first straight rack 33 moves downward, it drives the first straight gear 35 to rotate, thereby driving the second straight rack 37 to move upward along the first rectangular slide groove 39 through the second rectangular slider 38, thereby driving the second semi-ring clamping block 36 to move upward. When the bottom end of the L-shaped pressure block 6 is in contact with the ground, the inner sides of the first semi-ring clamping block 32 and the second semi-ring clamping block 36 are in contact with the outer wall of the swing disk 30, thus clamping and fixing the swing disk 30.

[0059] S5. When the L-shaped pressure block 6 is supported on the ground, the first hydraulic cylinder 3 is then activated. The output end of the first hydraulic cylinder 3 drives the pulling seat 2 to move the simulation platform body 9 upward through the rectangular clamping block 8. When the simulation platform body 9 moves upward a certain distance, the drive motor 26 is activated. The output end of the drive motor 26 drives the swing block 25 to rotate the base plate 12 180 degrees, so that the base plate 12 is in contact with the bottom end of the simulation platform body 9. Then the first hydraulic cylinder 3 is activated again. The output end of the first hydraulic cylinder 3 drives the pulling seat 2 to move the simulation platform body 9 downward through the rectangular clamping block 8. When the first universal wheel 13 is in contact with the ground, the first hydraulic cylinder 3 stops running, thereby supporting the simulation platform body 9.

[0060] S6. When the swing block 25 drives the base plate 12 to rotate, the pull rope 15 is wound up by the winding rod 27, thereby pulling the rectangular slide bar 17 to drive the power block 19 to move downward through the T-shaped block 21, so that the rectangular pressure block 23 is inserted into the rectangular pressure groove 24 and the rectangular clamping block 8 is pressed.

[0061] S7. When it is necessary to transfer the simulation platform body 9 to a designated position for fixing, start the second hydraulic cylinder 4. The output end of the second hydraulic cylinder 4 drives the L-shaped clamping seat 5 to move the L-shaped pressure block 6 to reset. When the simulation platform body 9 needs to be installed and fixed after being transferred to the designated position, start the second hydraulic cylinder 4. The output end of the second hydraulic cylinder 4 drives the L-shaped clamping seat 5 to move the L-shaped pressure block 6 to press on the ground. Then, fix the L-shaped pressure block 6 and the rotating pressure block 7 to the ground with bolts, thereby quickly fixing the simulation platform body 9 in the designated position.

[0062] The above description is merely a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A simulation platform mounting device equipped with a high-frequency ADCP, comprising a support (1), characterized in that, The inner side of the support (1) is provided with a simulation platform body (9), and a high-frequency ADCP (10) is installed on the top of the simulation platform body (9). A bidirectional limiting mechanism is provided between the inner side of the support (1) and the simulation platform body (9). A pull seat (2) is provided on the inner side of the support (1). A rectangular clamping block (8) is provided at the front end of the pull seat (2). A bottom support component is provided at the bottom end of the rectangular clamping block (8). A second hydraulic cylinder (4) is fixedly connected to the top of the support (1). A protective auxiliary component is fixedly connected to the output end of the second hydraulic cylinder (4). A plurality of second universal wheels (48) are fixedly connected to the bottom end of the support (1). The bidirectional limiting mechanism includes a first hydraulic cylinder (3) fixedly connected to the top of the support (1). The output end of the first hydraulic cylinder (3) passes through the inner side of the support (1) and is fixedly connected to the pull seat (2). A bidirectional lead screw (11) is rotatably connected to the inner side of the pull seat (2). One end of the bidirectional lead screw (11) passes through the outer side of the pull seat (2) and is fixedly connected to a rocker plate (30). One end of the rectangular clamping block (8) is fixedly connected to a first rectangular slider (14), and the first rectangular slider (14) is sleeved on the outer wall of the bidirectional lead screw (11). The rectangular clamping block (8) and the top of the pull seat (2) are provided with a clamping auxiliary component.

2. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 1, characterized in that, Two rectangular clamping blocks (8) are provided. The outer wall of the bidirectional screw (11) is provided with positive and negative threads. The two rectangular clamping blocks (8) are respectively sleeved on the outer wall of the positive and negative threads of the bidirectional screw (11) by a first rectangular slider (14) fixedly connected at one end. The inner side of the pull seat (2) has two guide grooves that match the first rectangular slider (14).

3. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 1, characterized in that, The bottom support assembly includes a swing block (25) rotatably connected to the bottom end of the rectangular clamping block (8). A drive motor (26) is installed at the bottom end of the rectangular clamping block (8). The output end of the drive motor (26) is fixedly connected to the swing block (25). A bottom support plate (12) is fixedly connected to one end of the swing block (25). A first universal wheel (13) is installed at the top end of the bottom support plate (12).

4. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 3, characterized in that, The clamping auxiliary component includes a second rectangular column (18) fixedly connected to the top of the pull seat (2). A power block (19) is slidably connected to the top of the second rectangular column (18). A first clamping spring (20) is fixedly connected to the bottom of the power block (19) on the outer wall of the second rectangular column (18). The bottom of the first clamping spring (20) is fixedly connected to the pull seat (2). A rectangular pressure groove (24) is provided at the top of the rectangular clamping block (8). A rectangular pressure block (23) is fixedly connected above the rectangular pressure groove (24) at the top of the power block (19). A pulling unit is provided on one side of the outer wall of the power block (19) and the outer wall of the swing block (25).

5. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 4, characterized in that, The pulling unit includes a winding rod (27) fixedly connected to the outer wall of one side of the swing block (25). One end of the winding rod (27) extends through the outside of the rectangular clamping block (8) and is rotatably connected to the rectangular clamping block (8). A pulling rope (15) is wound around the outer wall of the winding rod (27). An inclined block (28) is fixedly connected to the outer wall of the rectangular clamping block (8). A fixed guide wheel (29) is rotatably connected to the inner side of the inclined block (28). The pulling rope (15) is attached to... The outer wall of the fixed guide wheel (29) is fitted together. A T-shaped block (21) is fixedly connected to one side of the outer wall of the power block (19). A rectangular slide rod (17) is slidably connected to the outer wall of the T-shaped block (21). A rectangular groove (22) is opened on the inner side of the rectangular slide rod (17). A first rectangular column (16) is fixedly connected to the top of the rectangular clamping block (8). The first rectangular column (16) passes through the inside of the rectangular groove (22) and matches the rectangular groove (22).

6. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 1, characterized in that, The protective auxiliary component includes an L-shaped clamping seat (5) fixedly connected to the output end of the second hydraulic cylinder (4). An L-shaped pressure block (6) is fixedly connected to the bottom end of the L-shaped clamping seat (5). A third rectangular slider (40) is fixedly connected to the inner side of the L-shaped clamping seat (5). The third rectangular slider (40) is slidably connected to the support (1). A second rectangular groove (41) is provided on both outer walls of the support (1). The third rectangular slider (40) is located inside the second rectangular groove (41). An auxiliary double pressure component extending into the interior of the L-shaped pressure block (6) is provided on both outer walls of the L-shaped pressure block (6). A clamping and anti-loosening unit is provided at one end of the pull seat (2) and the top end of the L-shaped pressure block (6).

7. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 6, characterized in that, The auxiliary dual-pressure assembly includes a rotating pressure block (7) rotatably connected to the inner side of the L-shaped pressure block (6). A rotating shaft (45) is fixedly connected to one outer wall of the rotating pressure block (7). One end of the rotating shaft (45) passes through the inside of the L-shaped pressure block (6) and is fixedly connected to a second spur gear (46). A T-shaped slide rod (43) is slidably connected to the inner side of the L-shaped pressure block (6). The bottom end of the T-shaped slide rod (43) passes through the bottom end of the L-shaped pressure block (6). A second compression spring (44) is fixedly connected to the outer wall of the T-shaped slide rod (43). One end of the second compression spring (44) is fixedly connected to the L-shaped pressure block (6). A third spur rack (47) is fixedly connected to the outer walls on both sides of the T-shaped slide rod (43). The third spur rack (47) meshes with the second spur gear (46). Threaded holes (42) are opened on the inner sides of both the L-shaped pressure block (6) and the rotating pressure block (7).

8. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 6, characterized in that, The clamping and anti-loosening unit includes an L-shaped upright (31) fixedly connected to the top of the L-shaped pressure block (6). One end of the L-shaped upright (31) is fixedly connected to a first semi-circular clamping block (32) above the rocker plate (30). A first spur rack (33) is fixedly connected to one side of the outer wall of the L-shaped upright (31). A rotating shaft (34) is rotatably connected to one end of the pull seat (2). A first spur gear (35) is fixedly connected to the outer wall of the rotating shaft (34), and the first spur gear (35) meshes with the first spur rack (33). A second semi-circular clamping block (36) is provided below the rocker plate (30). A second spur rack (37) is fixedly connected to the bottom end of the second semi-circular clamping block (36), and the second spur rack (37) meshes with the first spur gear (35).

9. The simulation platform mounting device equipped with a high-frequency ADCP according to claim 8, characterized in that, One end of the pull seat (2) is provided with a first rectangular groove (39), and a second rectangular slider (38) is fixedly connected to the inner side of the second straight rack (37). The second rectangular slider (38) is slidably connected to the pull seat (2), and the second rectangular slider (38) is set inside the first rectangular groove (39) and matches the first rectangular groove (39).

10. A method for installing a simulation platform equipped with a high-frequency ADCP, characterized in that, The simulation platform mounting device equipped with a high-frequency ADCP as described in any one of claims 1-9 includes the following steps: S1. When it is necessary to install the simulation platform body (9) to a designated position, first move the support (1) to the designated position, and then the staff manually rotates the swing disk (30) to drive the bidirectional lead screw (11) to rotate, thereby driving the two first rectangular sliders (14) to drive one of the rectangular clamping blocks (8) to move closer to the simulation platform body (9). When the two rectangular clamping blocks (8) are clamped on the outer wall of the simulation platform body (9), they are fixed to the pull seat (2). S2, and then the protective auxiliary parts are attached to the ground to support the support (1); S3. Then start the first hydraulic cylinder (3). The output end of the first hydraulic cylinder (3) drives the pulling seat (2) to move the simulation platform body (9) upward through the rectangular clamping block (8). When the simulation platform body (9) moves upward a certain distance, it is supported by the bottom support component on the ground.

Citation Information

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