CN218766364U - Dykes and dams intensity detection device for hydraulic engineering detects - Google Patents

Dykes and dams intensity detection device for hydraulic engineering detects Download PDF

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Publication number
CN218766364U
CN218766364U CN202222996919.3U CN202222996919U CN218766364U CN 218766364 U CN218766364 U CN 218766364U CN 202222996919 U CN202222996919 U CN 202222996919U CN 218766364 U CN218766364 U CN 218766364U
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detection device
box body
plate
hydraulic engineering
detection
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CN202222996919.3U
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包天鹅
张荃
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Jilin Zhishui Engineering Consulting Co ltd
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Jilin Zhishui Engineering Consulting Co ltd
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Abstract

The utility model discloses a dam strength detection device for hydraulic engineering detection, which comprises a box body, a first detection device, a base and a second detection device, wherein a supporting plate is installed at one end of the top surface of the box body, a movable plate which is rotatably connected with the supporting plate is installed on the supporting plate, the bottom surface of the movable plate is inwards sunken to form a guide chute, and the guide chute is arranged along the length direction of the movable plate; the first detection device is arranged on one side of the support plate, and the detection end of the first detection device can move along the length direction of the guide sliding chute; the base is arranged below the box body; the second detection device is arranged below the box body, and the detection end of the second detection device can penetrate through the base. The utility model discloses not only can carry out steady support to the device under the uneven, service environment that has mud of pot hole to but also can make dykes and dams concrete strength detection device satisfy the user demand of horizontal direction or vertical orientation.

Description

Dykes and dams intensity detection device for hydraulic engineering detects
Technical Field
The utility model relates to a hydraulic engineering technical field especially relates to hydraulic engineering detects with dykes and dams intensity detection device.
Background
Hydraulic engineering is an engineering built for controlling and allocating surface water and underground water in the nature to achieve the purposes of removing harmful substances and benefiting benefits, and is also called water engineering. Water is a valuable resource essential for human production and life, but its naturally occurring state does not completely meet the needs of human beings. Only when hydraulic engineering is built, water flow can be controlled, flood disasters are prevented, and water quantity is adjusted and distributed to meet the requirements of people on water resources in life and production. Hydraulic engineering needs to build various types of hydraulic buildings such as dams, dikes, spillways, water gates, water inlets, channels, transition troughs, rafts, fishways and the like so as to achieve the aims. In hydraulic engineering construction, need use ground detection device to detect the ground, and current ground detection device needs artifical manual to insert detection device inboard, and the manual work needs very big strength, wastes time and energy, still influences the data that detect.
The existing dam concrete strength detection device for hydraulic engineering generally needs to be assisted by an auxiliary device for the convenience of use. A current dyke concrete intensity detection auxiliary device for hydraulic engineering, though can satisfy people's basic user demand, nevertheless have following defect: firstly, the using environment has the defects of uneven depressions and more mud, so that the device is difficult to stably support by the support legs and is easy to be polluted; secondly, only can make dykes and dams concrete strength testing arrangement towards horizontal direction or vertical direction, be difficult to satisfy the demand of horizontal direction, vertical direction simultaneously, still have and be difficult to conveniently adjust dykes and dams concrete strength testing arrangement's vertical height, horizontal position the defect.
Therefore, those skilled in the art provide a dam strength detection device for hydraulic engineering detection to solve the problems set forth in the background art.
SUMMERY OF THE UTILITY MODEL
The utility model provides a not only can carry out steady support to the device under uneven, the service environment that has mud of pot hole to but also can make dykes and dams concrete strength detection device satisfy the user demand's of horizontal direction or vertical orientation dykes and dams intensity detection device for hydraulic engineering detects.
In order to achieve the above object, the present invention provides the following technical solutions:
the utility model discloses a hydraulic engineering detects uses dykes and dams intensity detection device, include:
the box body is characterized in that one end of the top surface of the box body is provided with a supporting plate, the supporting plate is provided with a movable plate which is rotatably connected with the supporting plate, the bottom surface of the movable plate is inwards sunken to form a guide sliding groove, and the guide sliding groove is arranged along the length direction of the movable plate;
the first detection device is arranged on one side of the support plate, and the detection end of the first detection device can move along the length direction of the guide chute;
the base is arranged below the box body;
the second detection device is arranged below the box body, and the detection end of the second detection device can penetrate through the base;
the first detection device comprises a first telescopic rod installed on the supporting plate, the first telescopic rod is connected with a first driving motor, a guide block is arranged at the top end of the first driving motor, the top end of the guide block is arranged in the guide sliding groove, the guide block can be arranged along the length direction of the guide sliding groove, and a first measuring rod is installed at the output end of the first driving motor.
Furthermore, U-shaped connecting frames are symmetrically arranged at the end parts, far away from the supporting plate, of the bottom surface of the movable plate, a fixed block is arranged in the middle of the bottom end of each U-shaped connecting frame, the fixed blocks are rotatably connected with the top ends of the second telescopic rods, the bottom ends of the second telescopic rods are arranged on fixed seats, the fixed seats are arranged on the top surface of the box body, and the first measuring rod is located between the two second telescopic rods.
Furthermore, the second detection device comprises a second measuring rod, the top end of the second measuring rod is installed on the bottom surface of the top seat, two ends of the top seat are respectively connected with corresponding sliding sleeves through supporting rods, the sliding sleeves are in threaded connection with corresponding threaded shafts, and the threaded shafts are rotatably installed between the box body and the positioning plate.
Furthermore, the top end of the threaded shaft extends into the box body and is rotatably connected with the top wall of the box body, a driven wheel is installed at the position, located inside the box body, of the threaded shaft, the driven wheel is connected with a driving wheel, the driving wheel is installed at the output end of a second driving motor, and the second driving motor is installed in the box body.
Further, the base comprises a bottom plate and a top plate, the bottom plate and the top plate are connected through a plurality of connecting rods, and universal wheels are mounted at the bottom ends of the connecting rods; the middle part of the top surface of the bottom plate is inwards sunken to form a round hole.
Furthermore, a circular disc coaxial with the circular hole is arranged in the circular hole, the diameter of the circular disc is smaller than that of the circular hole, a plurality of third telescopic rods are arranged on the top surface of the circular disc, each third telescopic rod is connected with a corresponding motor, and the motors are all arranged on the top surface of the top plate.
Furthermore, a plurality of positioning seats are installed on the bottom surface of the disc, a pointed end is arranged at the bottom end of each positioning column, and a shifting block is arranged on each positioning column.
Furthermore, the middle part of the top surface of the disc is inwards sunken to form a through hole, and the second measuring rod can penetrate through the through hole.
Further, the top plate is connected with the box body through a plurality of stand columns, and the positioning plate is connected with the stand columns.
In the technical scheme, the utility model provides a hydraulic engineering detects uses dykes and dams intensity detection device has following beneficial effect:
1. the device can enable the guide block to drive the first driving motor to move left and right according to the position synchronization of the vertical detection points, and enable the measuring head of the first telescopic rod to stretch out and draw back for a certain length, so that the first measuring rod is matched with the vertical detection points, and the strength of the concrete of the vertical dam is detected; the device can pass the base through the second detection device and the position phase adaptation of horizontal check point, and then detect the intensity of the dam concrete of horizontal direction.
2. When the dykes and dams are the inclined plane, through the work of the motor drive second telescopic link in the fixing base, and then drive the fly leaf through the link and rotate, can adjust the measuring direction of first measuring stick to the measurement of adaptation monitoring point on the inclined plane.
3. Before detecting, the accessible reference column is fixed this application device to this application does not take place to remove in making the testing process, and can carry out steady support to the device under the service environment that the pothole is uneven, has mud.
Drawings
In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings needed to be used in the embodiments will be briefly described below, and it is obvious that the drawings in the following description are only some embodiments described in the present invention, and other drawings can be obtained by those skilled in the art according to these drawings.
Fig. 1 is a front view of a dam strength detection device for hydraulic engineering detection provided in an embodiment of the present invention;
fig. 2 is a sectional view of fig. 1.
Description of reference numerals:
10. a box body; 11. a support plate; 12. a movable plate; 13. a guide chute; 14. a column;
20. a base; 21. a base plate; 22. a top plate; 23. a connecting rod; 24. a universal wheel; 25. a circular hole; 26. a disc; 27. a telescopic rod; 28. a motor; 29. a through hole;
30. a first telescopic rod; 31. a first drive motor; 32. a guide block; 33. a first measuring rod;
40. a U-shaped connecting frame; 41. a fixed block; 42. a second telescopic rod; 43. a fixed seat;
50. a second measuring rod; 51. a top seat; 52. a strut; 53. a sliding sleeve; 54. a threaded shaft; 55. a driven wheel; 56. a driving wheel; 57. a second drive motor; 58. positioning a plate;
60. a positioning column; 61. a tip; 62. and (5) shifting blocks.
Detailed Description
In order to make the technical solution of the present invention better understood by those skilled in the art, the present invention will be further described in detail with reference to the accompanying drawings.
As shown in FIGS. 1-2;
the embodiment of the utility model provides a hydraulic engineering detect with dykes and dams intensity detection device, include:
the box body 10, a supporting plate 11 is installed at one end of the top surface of the box body 10, a movable plate 12 rotatably connected with the supporting plate 11 is installed on the supporting plate 11, the bottom surface of the movable plate 12 is recessed inwards to form a guide chute 13, the guide chute 13 is arranged along the length direction of the movable plate 12, one end of the guide chute 13 is close to the end portion, far away from the supporting plate 11, of the movable plate 12, the guide chute 13 does not extend to the end portion of the movable plate 12, the sliding out of the guide chute 13 can be avoided, and the other end of the guide chute 13 is close to the middle portion of the movable plate 12;
a first detecting device which is installed at one side of the supporting plate 11 and whose detecting end can move along the length direction of the guide chute 13;
a base 20, wherein the base 20 is arranged below the box body 10;
the second detection device is arranged below the box body 10, and the detection end of the second detection device can penetrate through the base 20;
first detection device is including installing first telescopic link 30 in backup pad 11, first telescopic link 30 is connected with first driving motor 31, and first telescopic link 30 can be by motor drive work, and the motor can set up in the outside of backup pad 11, the top of first driving motor 31 is provided with guide block 32, the guide block 32 top sets up in direction spout 13, and guide block 32 can set up along the length direction of direction spout 13, first measuring stick 33 is installed to first driving motor 31's output. The cross section of the guide block 32 is of an i-shaped structure, the horizontal part at the top end of the i-shaped structure extends into the guide sliding groove 13, and the first telescopic rod 30 can drive the guide block 32 to reciprocate along the guide sliding groove 13.
The device can enable the guide block 32 to drive the first driving motor 30 to move left and right according to the position synchronization of the vertical detection points, and enable the measuring head of the first telescopic rod 30 to stretch by a certain length, so that the first measuring rod 33 is matched with the vertical detection points, and the strength of the vertical dam concrete is detected; the device can pass through the base 20 through the second detection device and adapt the position of the transverse detection point, and then detect the strength of dam concrete in the horizontal direction.
The bottom surface of the movable plate 12 is symmetrically provided with U-shaped connecting frames 40 at the end far away from the supporting plate 11, each of the U-shaped connecting frames 40 is provided with a fixed block 41 at the middle of the bottom end, the fixed block 41 is rotatably connected with the top end of a second telescopic rod 42, the bottom end of the second telescopic rod 42 is installed on a fixed seat 43, the fixed seat 43 is installed on the top surface of the box body 10, and the first measuring rod 33 is located between the two second telescopic rods 42. When the dam is an inclined plane, the motor in the fixing base 43 drives the second telescopic rod 42 to work, and then the connecting frame 40 drives the movable plate 12 to rotate, so that the measuring direction of the first measuring rod 33 can be adjusted to adapt to the measurement of the monitoring point on the inclined plane.
The second detection device comprises a second measuring rod 50, the top end of the second measuring rod 50 is installed on the bottom surface of a top seat 51, two ends of the top seat 51 are respectively connected with corresponding sliding sleeves 53 through supporting rods 52, the sliding sleeves 53 are threaded with corresponding threaded shafts 54, and the threaded shafts 51 are rotatably installed between the box body 10 and the positioning plate 58. The rotation of the two threaded shafts 51 drives the sliding sleeve 52 in threaded connection with the threaded shafts to reciprocate, and then the second measuring rod 50 is driven by the top seat 51 to extend out of the base 20 or retract into the base 20; the second measuring stick 50 can detect a detection point in the horizontal direction after extending out of the base 20.
The top end of the threaded shaft 54 extends into the box body 10 and is rotatably connected with the top wall of the box body 10, a driven wheel 55 is mounted at the position, located inside the box body 10, of the threaded shaft 54, the driven wheel 55 is connected with a driving wheel 56, the driving wheel 56 is mounted at the output end of a second driving motor 57, and the second driving motor 57 is mounted in the box body 10. The rotation of the second driving motor 57 drives the driving wheel 56 to rotate, and then drives the two driven wheels 55 connected with the driving wheel to rotate, and the driven wheels 55 drive the corresponding threaded shafts 54 to rotate, thereby realizing the extending and retracting actions of the second measuring rod 50.
The base 20 comprises a bottom plate 21 and a top plate 22, the bottom plate 21 and the top plate 22 are connected through a plurality of connecting rods 23, and the bottom end of each connecting rod 23 is provided with a universal wheel 24; the middle part of the top surface of the bottom plate 21 is recessed inwards to form a circular hole 25. The universal wheel 24 is a universal wheel with a self-locking mechanism to facilitate the movement of the device of the present application.
A circular disc 26 coaxial with the circular hole 25 is arranged in the circular hole 25, the diameter of the circular disc 26 is smaller than that of the circular hole 25, a plurality of third telescopic rods 27 are arranged on the top surface of the circular disc 26, each third telescopic rod 27 is connected with a corresponding motor 28, and the motors 28 are all arranged on the top surface of the top plate 22. A plurality of positioning columns 60 are installed on the bottom surface of the circular disc 26, the positioning columns 60 are in threaded connection with the circular disc 26, the top ends of the positioning columns 60 can penetrate through the original product 26, the bottom end of each positioning column 60 is provided with a pointed end 61, and each positioning column 60 is provided with a shifting block 62. The disc 26 is driven by the third telescopic rod 27 and stretches out the round hole 25, and the reference column 26 on the bottom surface of the disc 26 contacts with the pre-fixed position, and then drives the reference column 26 to rotate through the shifting block 62, and the pointed end stretches into the preset position, so that the device works more stably.
The center of the top surface of the disc 26 is depressed inward to form a through hole 29, and the second measuring rod 50 can pass through the through hole 29.
The top plate 22 and the box body 10 are connected through a plurality of upright posts 14, and the positioning plate 58 is connected with the upright posts 14.
The detection ends of the first measuring rod 33 and the second measuring rod 50 are provided with detection heads. The strength of the detection points is detected through the detection head, detected data are transmitted to the processor, and meanwhile the data can be displayed through the display screen. The detection head drills a hole in the dam, the torque force generated when the drill bit rotates is transmitted to the signal transmitter by the torque force sensor, the signal transmitter transmits the torque force to the remote terminal, and the strength of the dam is calculated through a series of formulas.
While certain exemplary embodiments of the present invention have been described above by way of illustration only, it will be apparent to those of ordinary skill in the art that the described embodiments may be modified in various different ways without departing from the spirit and scope of the present invention. Accordingly, the drawings and description are illustrative in nature and should not be construed as limiting the scope of the invention.

Claims (9)

1. Dykes and dams intensity detection device for hydraulic engineering detects, its characterized in that includes:
the box body (10), a supporting plate (11) is installed at one end of the top surface of the box body (10), a movable plate (12) which is rotatably connected with the supporting plate (11) is installed on the supporting plate (11), the bottom surface of the movable plate (12) is inwards recessed to form a guide sliding groove (13), and the guide sliding groove (13) is arranged along the length direction of the movable plate (12);
the first detection device is arranged on one side of the support plate (11), and the detection end of the first detection device can move along the length direction of the guide chute (13);
the base (20), the said base (20) is set up below the container body (10);
the second detection device is arranged below the box body (10), and the detection end of the second detection device can penetrate through the base (20);
first detection device is including installing first telescopic link (30) on backup pad (11), first telescopic link (30) are connected with first driving motor (31), the top of first driving motor (31) is provided with guide block (32), guide block (32) top sets up in direction spout (13) and guide block (32) can set up along the length direction of direction spout (13), first measuring stick (33) are installed to the output of first driving motor (31).
2. A dam strength detection device for hydraulic engineering detection as defined in claim 1, wherein: u type link (40) are installed to the tip symmetry that backup pad (11) was kept away from to the bottom surface of fly leaf (12), every the bottom middle part of U type link (40) all is provided with fixed block (41), the top of fixed block (41) and second telescopic link (42) is rotated and is connected, install on fixing base (43) the bottom of second telescopic link (42), install on the top surface of box (10) fixing base (43), first measuring stick (33) are located between two second telescopic links (42).
3. A dam strength detection device for hydraulic engineering detection as defined in claim 1, wherein: the second detection device comprises a second measuring rod (50), the top end of the second measuring rod (50) is installed on the bottom surface of the top seat (51), the two ends of the top seat (51) are connected with corresponding sliding sleeves (53) through supporting rods (52) respectively, the sliding sleeves (53) are threaded with corresponding threaded shafts (54), and the threaded shafts (54) are rotatably installed between the box body (10) and the positioning plate (58).
4. A dam strength detection device for hydraulic engineering detection as defined in claim 3, wherein: the top end of the threaded shaft (54) extends into the box body (10) and is rotatably connected with the top wall of the box body (10), a driven wheel (55) is mounted at the position, located inside the box body (10), of the threaded shaft (54), the driven wheel (55) is connected with a driving wheel (56), the driving wheel (56) is mounted at the output end of a second driving motor (57), and the second driving motor (57) is mounted in the box body (10).
5. A dam strength detection device for hydraulic engineering detection as defined in claim 4, wherein: the base (20) comprises a bottom plate (21) and a top plate (22), the bottom plate (21) and the top plate (22) are connected through a plurality of connecting rods (23), and the bottom end of each connecting rod (23) is provided with a universal wheel (24); the middle part of the top surface of the bottom plate (21) is inwards sunken to form a round hole (25).
6. The dam strength detection device for hydraulic engineering detection as recited in claim 5, characterized in that: the novel telescopic ceiling structure is characterized in that a disc (26) coaxial with the round hole (25) is arranged in the round hole (25), the diameter of the disc (26) is smaller than that of the round hole (25), a plurality of third telescopic rods (27) are installed on the top surface of the disc (26), each third telescopic rod (27) is connected with a corresponding motor (28), and the motors (28) are installed on the top surface of the top plate (22).
7. The dam strength detection device for hydraulic engineering detection as recited in claim 6, characterized in that: a plurality of positioning columns (60) are installed on the bottom surface of the disc (26), the bottom end of each positioning column (60) is provided with a pointed end (61), and each positioning column (60) is provided with a shifting block (62).
8. The dam strength detection device for hydraulic engineering detection as recited in claim 7, characterized in that: the middle part of the top surface of the disc (26) is inwards sunken to form a through hole (29), and the second measuring rod (50) can penetrate through the through hole (29).
9. A dam strength detection device for hydraulic engineering detection as defined in claim 8, wherein: the top plate (22) is connected with the box body (10) through a plurality of upright posts (14), and the positioning plate (58) is connected with the upright posts (14).
CN202222996919.3U 2022-11-10 2022-11-10 Dykes and dams intensity detection device for hydraulic engineering detects Active CN218766364U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202222996919.3U CN218766364U (en) 2022-11-10 2022-11-10 Dykes and dams intensity detection device for hydraulic engineering detects

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Application Number Priority Date Filing Date Title
CN202222996919.3U CN218766364U (en) 2022-11-10 2022-11-10 Dykes and dams intensity detection device for hydraulic engineering detects

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116858703A (en) * 2023-07-19 2023-10-10 山东黄河工程集团有限公司 Hydraulic engineering dykes and dams intensity detection device
CN118167205A (en) * 2024-04-17 2024-06-11 哈尔滨工业大学(深圳)(哈尔滨工业大学深圳科技创新研究院) Drilling tool and construction method for horizontal drainage hole of embankment landslide

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116858703A (en) * 2023-07-19 2023-10-10 山东黄河工程集团有限公司 Hydraulic engineering dykes and dams intensity detection device
CN116858703B (en) * 2023-07-19 2024-01-09 山东黄河工程集团有限公司 Hydraulic engineering dykes and dams intensity detection device
CN118167205A (en) * 2024-04-17 2024-06-11 哈尔滨工业大学(深圳)(哈尔滨工业大学深圳科技创新研究院) Drilling tool and construction method for horizontal drainage hole of embankment landslide

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