Efficient rainwater collection and storage integrated device for desertification control

By designing an assemblable and detachable storage tank and a threaded connection structure, the problems of high transportation and installation costs and difficulty in terrain expansion of existing rainwater harvesting devices are solved, achieving efficient collection and storage of rainwater with flexibility and convenience.

CN224119627UActive Publication Date: 2026-04-14BEIJING SENYADA LANDSCAPING
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-16
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing rainwater harvesting devices are costly to transport and install, and are difficult to expand flexibly according to terrain conditions.

Method used

Design an assemblable and detachable storage tank structure. The storage tank can be linearly expanded through threaded connection. A baffle is installed in the collector to intercept foreign objects, and rainwater automatically flows into the end storage tank.

Benefits of technology

It achieves efficient collection and storage of rainwater, reduces transportation and installation costs, and can be flexibly expanded according to terrain, facilitating the relocation and retrieval of storage locations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of water resource utilization, provides an efficient rainwater collection and storage integrated device for desertification control, and aims to solve the technical problems that traditional rainwater storage equipment is high in transportation and installation cost and difficult to adapt to terrain expansion. The device is composed of a plurality of linearly arranged storage tanks and matched collectors, storage cavities are formed in the storage tanks, connecting outer pipes and connecting holes are arranged on the two sides of each storage tank respectively, and connecting inner pipes are fixedly arranged in the storage tanks and communicated with the connecting outer pipes; the bottom of the collector is communicated with the storage tank through a connecting pipe. The multiple storage tanks are inserted into the connecting holes of the adjacent storage tanks through the connecting outer pipes and connected with the connecting inner pipes in a sleeved mode to achieve communication, and rainwater sequentially flows through the storage cavities and is stored in the tail end tank body. The top splicing face of the storage tank is provided with a combined threaded half groove which is locked and connected through a threaded cover, and a tail end tank body connecting hole is provided with a tail end threaded cover for sealing. Flexible expansion and rapid disassembly and assembly of the storage units are achieved through the modular connection structure, and the applicability of equipment is effectively improved.
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Description

Technical Field

[0001] This utility model relates to the field of water resource utilization technology, and in particular to an integrated device for efficient collection and storage of rainwater in desertification control. Background Technology

[0002] Desertified areas generally suffer from problems such as low rainfall, high evaporation, and severe loss of surface runoff. A common and effective solution is to use collection devices, mainly for collecting rainwater, in order to make use of water resources.

[0003] However, most of the existing storage containers are freestanding structures with large volumes, which allows for a large storage capacity. However, in actual use, their transportation and installation costs are high, and they are difficult to expand flexibly according to terrain conditions. At the same time, it is also quite troublesome when they need to be removed, requiring the laying of pipelines or the entire container to be transported away. Utility Model Content

[0004] The purpose of this invention is to address the shortcomings of existing technologies, such as high transportation and installation costs and difficulty in flexibly expanding them according to terrain conditions, by proposing an integrated device for efficient rainwater collection and storage in desertification control.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] An integrated device for efficient rainwater collection and storage in desertification control includes a storage tank with a storage cavity inside, an external connecting pipe on one side and a connecting hole on the other side, and an internal connecting pipe fixedly installed inside the storage tank, which communicates with the external connecting pipe.

[0007] A collector, the bottom of which is fixedly connected to a connecting pipe, the other end of which is connected to an external connecting pipe;

[0008] Multiple storage tanks are linearly connected, wherein the connecting outer pipe of an adjacent storage tank is inserted into the connecting hole of another storage tank and sleeved with the connecting inner pipe, so that rainwater flows through the storage chamber of each storage tank in sequence and is finally stored in the end storage tank.

[0009] The top of each storage tank is provided with a first threaded half-groove and a second threaded half-groove. When adjacent storage tanks are spliced ​​together, the first threaded half-groove and the second threaded half-groove are combined to form a complete threaded groove, which is then locked together by a threaded cap.

[0010] In one possible design, a baffle is fixedly installed inside the collector, and the side wall of the baffle has a water leakage hole.

[0011] In one possible design, the partition cylinder has a cylindrical mesh structure.

[0012] In one possible design, the threaded cap includes a first threaded cap and a second threaded cap, which respectively mate with the threaded holes formed by the first thread half-groove and the second thread half-groove. After disassembly, the first threaded cap can seal the connecting outer tube, and the second threaded cap can seal the connecting hole.

[0013] In one possible design, an end threaded cap is provided in the internal thread of the connection hole located on the side of the end storage tank.

[0014] In one possible design, a rubber ring is provided on the inner wall of the connecting outer tube.

[0015] In this application, during practical use, rainwater is collected by a collector and then enters the storage tank through a connecting pipe for storage. For the assembly of multiple storage tanks, a connecting outer pipe from one side of one storage tank is inserted through a connecting hole into the storage cavity of another storage tank, and is fitted onto the outer wall of the connecting inner pipe, thus connecting the two connecting outer pipes and completing the connection between the two storage tanks. Rainwater will then flow through the connecting outer pipe to the storage cavity at the very end for collection. When two adjacent storage tanks are connected, the two No. 1 threaded half-grooves and two No. 2 threaded half-grooves at their tops will be combined and spliced ​​together. Once a complete threaded groove is formed, the No. 1 threaded cap and the No. 2 threaded cap can be screwed into the threaded groove formed by the No. 1 and No. 2 threaded half grooves respectively to fix the two storage tanks. The storage tank at the end is sealed by screwing the end threaded cap into the connecting hole, thus completing the final assembly. When the end storage tank is full, simply unscrew the adjacent No. 1 and No. 2 threaded caps to release the fixation and remove the tank. The removed No. 1 and No. 2 threaded caps can then be screwed into the connecting outer tube on the removed storage tank and the connecting hole on the side of the end storage tank, respectively.

[0016] In this utility model, the integrated device for efficient collection and storage of rainwater for desertification control can intercept foreign objects such as fallen leaves from the outside through a baffle located inside the collector, thus preventing them from clogging the pipes and making them difficult to clean.

[0017] In this utility model, the integrated device for efficient collection and storage of rainwater for desertification control can be linearly expanded through assembleable and detachable storage tanks. When storing rainwater, it can automatically store it in the last storage tank. When it is removed, it can be directly removed and its storage position will be automatically transferred to the adjacent storage tank, which is convenient for practical use.

[0018] In this invention, the collector can be placed anywhere that can receive rainwater, and the collected rainwater can be automatically stored in the storage tank at the end. This not only collects rainwater effectively, but also allows for convenient extraction and use of the collected rainwater, greatly increasing flexibility and avoiding the transportation difficulties of traditional independent mechanisms. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the main structure of an integrated device for efficient rainwater collection and storage in desertification control proposed in this utility model;

[0020] Figure 2 This is an exploded structural diagram of an integrated device for efficient rainwater collection and storage in desertification control proposed in this utility model.

[0021] Figure 3 This is a cross-sectional structural diagram of the storage tank of an integrated device for efficient rainwater collection and storage in desertification control proposed in this utility model.

[0022] Figure 4 This is a schematic diagram of the diaphragm structure of an integrated device for efficient rainwater collection and storage in desertification control proposed in this utility model;

[0023] Figure 5 This is a schematic diagram of the actual installation structure of the integrated device for efficient rainwater collection and storage in desertification control proposed in this utility model.

[0024] In the diagram: 1. Storage tank; 2. Connecting pipe; 3. Collector; 4. No. 1 thread half groove; 5. No. 2 thread half groove; 6. No. 1 thread cap; 7. No. 2 thread cap; 8. End thread cap; 9. Connecting outer pipe; 10. Storage cavity; 11. Connecting inner pipe; 12. Divider; 13. Leakage hole; 14. Connecting hole. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0026] Example 1

[0027] Reference Figure 1 An integrated collection and storage device includes: a storage tank 1 and a collector 3. The storage tank 1 has a hollow structure and a storage cavity 10 is provided inside.

[0028] Reference Figure 2-3The storage tank 1 has a horizontal connecting inner tube 11 fixedly installed inside. The outer wall of one side of the storage tank 1 has a connecting outer tube 9 that communicates with the connecting inner tube 11, so that rainwater first passes through the outer tube and then through the inner tube before falling into the storage cavity 10. The other side of the storage tank 1 has a connecting hole 14 that communicates with the storage cavity 10, for the connecting outer tube 9 of another storage tank 1 to be inserted into the interior of the storage tank 1. The inner wall of the connecting outer tube 9 is provided with a rubber ring.

[0029] The bottom of collector 3 has an interface welded to connect with connecting pipe 2. One end of connecting pipe 2 is fixedly connected to the interface of collector 3 by a clamp, and the other end is fitted onto the outer wall of connecting outer pipe 9 for connection. The shape and installation position of collector 3 can be selected according to actual needs, as long as it facilitates collection, for example, as shown in the attached image. Figure 5 The rectangular shape can be installed in an open space using a bracket for collection, or it can be long and narrow, installed on the side of the eaves for collection, etc.

[0030] Multiple storage tanks 1 are arranged in a straight line during assembly, and adjacent storage tanks 1 are connected in the following manner: the connecting outer tube 9 of the right storage tank 1 is inserted into the connecting hole 14 of the left storage tank 1 until the outer wall of the connecting outer tube 9 is connected to the inner wall of the connecting inner tube 11 of the left storage tank 1. The connecting hole 14 of the storage tank at the end is provided with an end thread cap 8.

[0031] Specifically, after being collected by collector 3, rainwater enters the storage tank 1 through connecting pipe 2 for storage. At this time, the rainwater will flow through connecting pipe 9 to the storage chamber 10 at the end for collection.

[0032] The connection between adjacent storage tanks 1 adopts a double-threaded connection structure:

[0033] The top left and right sides of storage tank 1 are provided with a first threaded half groove 4 and a second threaded half groove 5. Both threaded half grooves 4 are semi-circular grooves with internal threads on the inner wall. When adjacent storage tanks 1 are spliced, the threaded half groove 5 of the left storage tank 1 and the threaded half groove 4 of the right storage tank 1 are combined to form a complete threaded hole. Then the first threaded cover 6 is screwed into the threaded groove formed by the combination of the first threaded half groove 4. The second threaded cover 7 is screwed into the threaded groove formed by the combination of the second threaded half groove 5, thereby realizing the connection.

[0034] Specifically, when the storage tank 1 at the end is full, simply unscrew the adjacent No. 1 threaded cap 6 and No. 2 threaded cap 7 to release the fixation and remove it. The removed No. 1 threaded cap 6 and No. 2 threaded cap 7 can then be screwed into the connecting outer tube 9 on the removed storage tank 1 and the connecting hole 14 on one side of the end storage tank 1, respectively.

[0035] This application can be used in the field of water resource utilization, or in other fields applicable to this application.

[0036] Example 2

[0037] refer to Figure 4 Based on the first embodiment, an improved version of the device is proposed: an integrated device for efficient collection and storage of rainwater in desertification control, which is applied to the field of water resource utilization. The collector 3 has a coaxially arranged partition cylinder 12 welded inside. The side wall of the partition cylinder 12 has water leakage holes 13 and has a cylindrical mesh structure. The bottom of the partition cylinder 12 is welded to the interface of the collector 3 to form a filter structure.

[0038] The accompanying drawings in this application are for illustrative purposes only. The dimensions and shapes of the components shown are not actual limitations but are merely schematic representations. In actual implementation, the components can be reasonably configured and adjusted according to specific needs and actual conditions.

[0039] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. An integrated device for efficient rainwater collection and storage in desertification control, characterized in that, include: Storage tank (1), the storage tank (1) has a storage cavity (10) inside, a connecting outer tube (9) on one side and a connecting hole (14) on the other side, and a connecting inner tube (11) that communicates with the connecting outer tube (9) is fixedly provided inside the storage tank (1); Collector (3), with a connecting pipe (2) fixedly connected to its bottom, and the other end of the connecting pipe (2) being connected to the connecting outer pipe (9); Multiple storage tanks (1) are arranged in a linear connection, wherein the connecting outer pipe (9) of an adjacent storage tank (1) is inserted into the connecting hole (14) of another storage tank (1) and sleeved with the connecting inner pipe (11), so that rainwater flows through the storage chamber (10) of each storage tank (1) in sequence and is finally stored in the end storage tank (1); The storage tank (1) is provided with a first threaded half groove (4) and a second threaded half groove (5) on both sides of the top. When adjacent storage tanks (1) are spliced ​​together, the first threaded half groove (4) and the second threaded half groove (5) are combined to form a complete threaded groove, which is then locked together by a threaded cap.

2. The integrated device for efficient rainwater collection and storage in desertification control according to claim 1, characterized in that, The collector (3) is fixedly provided with a partition cylinder (12) inside, and the side wall of the partition cylinder (12) is provided with a water leakage hole (13).

3. The integrated device for efficient rainwater collection and storage in desertification control according to claim 2, characterized in that, The partition (12) has a cylindrical mesh structure.

4. The integrated device for efficient rainwater collection and storage in desertification control according to claim 1, characterized in that, The threaded cap includes a first threaded cap (6) and a second threaded cap (7), which respectively cooperate with the threaded holes formed by the first threaded half groove (4) and the second threaded half groove (5). After disassembly, the first threaded cap (6) can seal the connecting outer tube (9), and the second threaded cap (7) can seal the connecting hole (14).

5. The integrated device for efficient rainwater collection and storage in desertification control according to claim 1, characterized in that, An end threaded cap (8) is provided in the internal thread of the connection hole (14) located on one side of the storage tank (1) at the end.

6. The integrated device for efficient rainwater collection and storage in desertification control according to claim 1, characterized in that, The inner wall of the connecting outer tube (9) is provided with a rubber ring.