Flow guide structure capable of preventing water and soil loss

Through the combined design of the external frame structure and the internal installation blocks, the problem of soil erosion in the upper section of the dam is solved, the diversion and protection effects are achieved, and at the same time, it has the function of greening and beauty.

CN223458755UActive Publication Date: 2025-10-21日照市水利学会
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Patent Information

Application Number
CN202422836405.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-10-21
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

The grass in the upper section of the existing embankment that is submerged in water for a long time after the flood season will die on a large scale, resulting in insufficient alternative measures to prevent soil erosion.

Method used

An outer frame structure is used to form a water channel, an inner installation block is used as a support and planting position, an auxiliary connecting rod connects the outer frame and the inner installation block, and a circular steel wire rope is buried in the inner installation block to strengthen the structure and form a flexible connection.

Benefits of technology

It can divert water during rainfall and prevent soil erosion. It is easy to assemble and has a stable structure. It can adapt to uneven or inclined ground and has the function of greening and beauty.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223458755U_ABST
Patent Text Reader

Abstract

A flow guide structure capable of preventing water and soil loss comprises an outer frame structure, a plurality of inner clamping grooves are formed in the outer frame structure, and inner mounting blocks are arranged in the inner clamping grooves in a clamped mode; the outer frame structure comprises a first vertical plate located on one side and a second vertical plate located on the other side, a middle partition plate is arranged between the first vertical plate and the second vertical plate, and a circulation groove body is formed in the upper portion of the middle partition plate and between the first vertical plate and the second vertical plate. The outer frame structure is adopted to form a water guiding channel, and the inner mounting block bodies form supporting and planting positions, so that the purposes of ground water and soil protection and water guiding are achieved, and the effect of preventing water and soil loss can be achieved.
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Description

TECHNICAL FIELD

[0001] The application relates to a water and soil loss prevention flow guide structure. BACKGROUND

[0002] No matter whether it is a river dam or a reservoir dam, in order to improve the safety of the dam and the convenience during the patrol, the dam is generally provided with two stages, a lower dam section directly contacted with water flow, a gentle section provided behind the lower dam section, and an upper dam section. The upper dam section is contacted with water flow only in special conditions such as flood season. Therefore, for the upper dam section, mainly for preventing water and soil loss caused by rain, the way of planting grass is mostly used to prevent water and soil loss. However, after the flood season, the grass submerged by water for a long time will die in a large area. Therefore, an alternative way capable of resisting water submergence for preventing water and soil loss is needed. CONTENT OF THE UTILITY MODEL

[0003] In order to solve the above problems, the application provides a water and soil loss prevention flow guide structure, which comprises an outer frame structure, a plurality of inner clamping grooves are arranged in the outer frame structure, and inner mounting blocks are clamped in the inner clamping grooves. The outer frame structure comprises a first vertical plate located on one side and a second vertical plate located on the other side. An intermediate partition plate is arranged between the first vertical plate and the second vertical plate. A flow-through groove body is formed between the upper part of the intermediate partition plate, the first vertical plate and the second vertical plate. The outer frame structure of the application forms a water guide channel, and the inner mounting blocks form a position for supporting and planting, thereby playing a role in protecting the ground water and soil and guiding the water, and preventing water and soil loss.

[0004] Preferably, an auxiliary connecting rod is arranged at the intersection of the outer frame structure. One end of the auxiliary connecting rod is connected with the outer frame structure, and the other end of the auxiliary connecting rod extends out of the outer frame structure and is connected with the inner mounting block.

[0005] Preferably, a bottom fixing block is arranged at the bottom of the intermediate partition plate of the outer frame structure. A clamping fixing groove is arranged on the bottom fixing block. The auxiliary connecting rod is fixedly installed in the clamping fixing groove through the corresponding first vertical plate or second vertical plate. A top connecting screw rod is arranged on one side of the auxiliary connecting rod corresponding to the inner mounting block. A positioning enlargement block is arranged below the top connecting screw rod. A connecting through hole is arranged on the inner mounting block and matched with the top connecting screw rod. A sleeve ring is arranged in the connecting through hole. A positioning nut is arranged on the top of the top connecting screw rod and matched with the sleeve ring. The auxiliary connecting rod plays a role in connecting the outer frame structure and the inner mounting block, and the assembly is simple and the overall structure is stable.

[0006] Preferably, the clamping fixing groove is a conical frustum groove. A clamping channel matched with the auxiliary connecting rod is arranged on the side of the clamping fixing groove facing outward.

[0007] Preferably, the inner mounting block is provided with a plurality of planting through holes, and the top of the positioning nut is provided with an upper sealing cover plate matched with the connecting through hole.

[0008] Preferably, the inner mounting block is embedded with a plurality of annular steel wire ropes, and one end of the annular steel wire rope extends out of the connecting through hole to form a sleeving ring. The annular steel wire rope embedded in the inner mounting block of the application can strengthen the structure of the inner mounting block, and the sleeving ring formed by the extension can play a flexible connection role. Even if there is a certain inclination or uneven ground, the assembly and installation can be conveniently carried out.

[0009] Preferably, a bottom clamping protrusion is arranged at the position corresponding to the bottom fixed block of the middle partition plate, and a bottom clamping groove is arranged at the position corresponding to the bottom clamping protrusion of the bottom fixed block.

[0010] Preferably, the inner mounting block is a regular hexagon, and the upper edge of the inner mounting block is provided with a top abutting edge corresponding to the top abutting of the first vertical plate or the second vertical plate.

[0011] The application can bring the following beneficial effects:

[0012] 1. The outer frame structure is adopted to form a water guide channel, and the inner mounting block forms a supporting and planting position, thereby playing a role of water and soil protection and water diversion, and preventing water and soil loss.

[0013] 2. The auxiliary connecting rod plays a role of connecting the outer frame structure and the inner mounting block, and the assembly is simple and the overall structure is stable.

[0014] 3. The annular steel wire rope embedded in the inner mounting block can strengthen the structure of the inner mounting block, and the sleeving ring formed by the extension can play a flexible connection role. Even if there is a certain inclination or uneven ground, the assembly and installation can be conveniently carried out. BRIEF DESCRIPTION OF DRAWINGS

[0015] The drawings described herein are used to provide further understanding of the application, and form a part of the application. The schematic embodiments of the application and the description thereof are used to explain the application, and do not constitute an improper limitation on the application. In the drawings:

[0016] Fig. 1 It is a structural schematic view of the application.

[0017] Fig. 2 It is a structural schematic view of the back of the application.

[0018] Fig. 3This is a schematic diagram of the assembly structure of the outer frame structure.

[0019] Fig. 4 It is a schematic diagram of the assembly structure of the bottom fixed block part.

[0020] Fig. 5 This is a schematic diagram of the explosion structure of this application.

[0021] Fig. 6 Schematic diagram of the structure of the connecting through-hole part. DETAILED DESCRIPTION

[0022] In order to clearly illustrate the technical features of this solution, this application is described in detail below through specific implementation methods and in conjunction with its accompanying drawings.

[0023] In the first embodiment, if Figs. 1-2 As shown, a diversion structure for preventing soil erosion includes an outer frame structure 1, a plurality of inner snap-in grooves 2 are provided in the outer frame structure 1, and inner mounting blocks 3 are snap-fitted in the inner snap-in grooves 2; the outer frame structure 1 includes a first vertical plate 4 located on one side and a second vertical plate 5 located on the other side, an intermediate partition plate 6 is provided between the first vertical plate 4 and the second vertical plate 5, and a flow channel body 7 is formed between the upper part of the intermediate partition plate 6, the first vertical plate 4 and the second vertical plate 5.

[0024] During assembly, the outer frame structure is first laid on the foundation, and then the inner mounting block 3 is assembled using the inner snap-fit ​​groove 2 surrounded by the first vertical plate 4 and the second vertical plate 5. During use, some planting areas can be set on the inner mounting block 3, and in the event of rainfall, the flow groove 7 plays a role in diversion to prevent soil erosion.

[0025] In the second embodiment, if Figs. 1-6 As shown, a diversion structure for preventing soil erosion includes an outer frame structure 1, a plurality of inner snap-in grooves 2 are provided in the outer frame structure 1, and inner mounting blocks 3 are snap-fitted into the inner snap-in grooves; the outer frame structure 1 includes a first vertical plate 4 located on one side and a second vertical plate 5 located on the other side, an intermediate partition plate 6 is provided between the first vertical plate 4 and the second vertical plate 5, and a flow channel body 7 is formed between the upper part of the intermediate partition plate 6, the first vertical plate 4 and the second vertical plate 5.

[0026] The auxiliary connecting rod 8 is arranged at the intersection of the outer frame structure 1, one end of the auxiliary connecting rod 8 is connected with the outer frame structure 1, the other end of the auxiliary connecting rod 8 extends out of the outer frame structure 1 and is connected with the inner mounting block 3. The bottom fixing block 9 is arranged at the bottom of the outer frame structure 1 located at the middle partition plate 6, a clamping fixing groove 10 is arranged on the bottom fixing block 9, the auxiliary connecting rod 8 is fixedly arranged in the clamping fixing groove 10 through the corresponding first vertical plate 4 or the second vertical plate 5; a top connecting screw 11 is arranged on one side of the auxiliary connecting rod 8 corresponding to the inner mounting block 3, a positioning enlarged block 12 is arranged below the top connecting screw 11, a connecting through hole 13 matched with the top connecting screw 11 is arranged on the inner mounting block 3, a sleeve ring 14 is arranged in the connecting through hole 13, and a positioning nut 15 is arranged on the top of the top connecting screw 11 and abuts against the sleeve ring 14. The clamping fixing groove 10 is a conical groove, and a clamping channel 16 matched with the auxiliary connecting rod 8 is arranged on the side of the clamping fixing groove 10 facing outward.

[0027] A plurality of planting through holes 17 are arranged on the inner mounting block 3, and an upper sealing cover plate 18 matched with the connecting through hole 13 is arranged on the top of the positioning nut 15. A plurality of annular steel wire ropes 19 are embedded in the inner mounting block 3, one end of the annular steel wire rope 19 extends out of the connecting through hole 13 to form the sleeve ring 14. A bottom clamping protrusion 20 is arranged on the middle partition plate 6 corresponding to the position of the bottom fixing block 9, and a bottom clamping groove 21 is arranged on the bottom fixing block 9 corresponding to the position of the bottom clamping protrusion 20.

[0028] The inner mounting block 3 is a regular hexagon, and a top abutting edge 22 matched with the top of the first vertical plate 4 or the second vertical plate 5 is arranged on the upper edge of the inner mounting block 3.

[0029] During assembly, the outer frame structure is first laid on the foundation, then the inner mounting block 3 is assembled by using the inner clamping groove 2 surrounded by the first vertical plate 4 and the second vertical plate 5, and the top abutting edge 22 is hung on the first vertical plate 4 or the second vertical plate 5. One end of the auxiliary connecting rod 8 is clamped in the clamping fixing groove, and the other end is hung on the sleeve ring and locked by the positioning nut, and the top is covered by the upper sealing cover plate. During use, plants can be planted in the planting through holes, mainly playing a role of greening and beauty, and the flow-through groove 7 plays a role of guiding flow in the case of rainfall to avoid water and soil loss.

[0030] The above is only an embodiment of the present application and is not used to limit the present application. The present application can have various changes and modifications for those skilled in the art. Any modification, equivalent replacement, improvement, etc. within the spirit and principle of the present application shall be included in the scope of claims of the present application.

Claims

1. A water and soil erosion control diversion structure, characterised in that: The utility model provides an external frame structure is provided with a plurality of inner clamping grooves in, and the inner mounting block is clamped in the inner clamping groove, the external frame structure includes the first vertical plate in one side and the second vertical plate in the other side, and the intermediate partition is arranged between the first vertical plate and the second vertical plate, and the flow circulation groove is formed between the upper portion of intermediate partition, the first vertical plate and the second vertical plate.

2. A water and soil erosion control structure according to claim 1, wherein: The auxiliary connecting rod is arranged at the intersection of the external frame structure, one end of the auxiliary connecting rod is connected with the external frame structure, and the other end of the auxiliary connecting rod extends out of the external frame structure and is connected with the inner mounting block.

3. A water erosion control structure according to claim 2, wherein: The bottom fixing block is arranged at the bottom of the external frame structure, a clamping fixing groove is arranged on the bottom fixing block, the auxiliary connecting rod is fixedly installed in the clamping fixing groove through the corresponding first vertical plate or second vertical plate, a top connecting screw rod is arranged on one side of the auxiliary connecting rod corresponding to the inner mounting block, a positioning magnifying block is arranged below the top connecting screw rod, a connecting through hole is arranged on the inner mounting block and matched with the top connecting screw rod, a sleeve ring is arranged in the connecting through hole, and a positioning nut is arranged on the top of the top connecting screw rod and matched with the sleeve ring.

4. A water erosion control structure according to claim 3, wherein: The clamping fixing groove is a frustum type groove, and a clamping channel matched with the auxiliary connecting rod is arranged on the side of the clamping fixing groove.

5. A water erosion control structure according to claim 3, wherein: A plurality of planting through holes are arranged on the inner mounting block, and an upper sealing cover plate matched with the connecting through hole is arranged on the top of the positioning nut.

6. A water erosion control structure according to claim 3, wherein: A plurality of annular steel wire ropes are embedded in the inner mounting block, one end of the annular steel wire rope extends out of the connecting through hole and forms the sleeve ring.

7. A water erosion control structure according to claim 3, wherein: A bottom clamping protrusion is arranged at the position corresponding to the bottom fixing block of the intermediate partition, and a bottom clamping groove is arranged at the position corresponding to the bottom clamping protrusion of the bottom fixing block.

8. A water erosion control structure according to claim 1, wherein: The inner mounting block is a regular hexagon, and a top abutting edge matched with the top of the first vertical plate or the second vertical plate is arranged on the upper edge of the inner mounting block.