Combined water and soil conservation biobrick
Through the design of connecting components and drainage components, the problems of loosening and soil loss of bio bricks are solved, firm fixing of bio bricks and collection and storage of rainwater are achieved, and soil conservation effect and water resource utilization are improved.
Patent Information
- Application Number
- CN202422569320.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-24
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-10-24
AI Technical Summary
The existing combined soil and water conservation bio bricks cannot be closely connected, resulting in loose structures, unable to effectively prevent soil loss, and may damage the plant growth environment.
The connecting components, including placement frames and surface bonding, are designed with a combination of connecting slots, connecting blocks, bolts and insert rods to achieve a tight connection of bio-bricks, and collect and store rainwater through drainage components to relieve water pressure.
The firm fixation of biological bricks is achieved, soil loss is prevented, and the water pressure problem is solved through rainwater collection and storage, and the effective utilization of water resources is promoted.
Smart Images

Figure CN223214515U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of combined soil and water conservation biological bricks, in particular to a combined soil and water conservation biological brick. Background Art
[0002] With the continuous improvement of environmental protection awareness and the increasing attention to soil and water resource protection, combined soil and water conservation biological bricks have come into being. In traditional soil and water conservation measures, engineering means such as building retaining walls and slope protection are often used. Although these methods can prevent soil and water erosion to a certain extent, there are problems such as complex construction, high cost, and great impact on the ecological environment. At the same time, simple engineering measures are difficult to achieve the goals of ecological restoration and sustainable development.
[0003] After searching, the applicant found that a Chinese patent disclosed "a combined soil and water conservation biological brick", and its publication (announcement) number is "CN221218844U". This patent mainly provides slots and plug-ins matching the slots on the bio-bricks, so that when the bio-bricks are laid on the slope, the plug-ins and slots of adjacent bio-bricks can be inserted together, thereby facilitating the alignment of the bio-bricks to cover the slope, facilitating the workers' masonry work, and thus improving the workers' masonry efficiency. However, this patent cannot tightly connect two adjacent bio-bricks and cannot prevent soil loss. In actual use, the overall structure may become loose, and it will also destroy the basic environment for plant growth. For this reason, we propose a combined soil and water conservation biological brick. Utility Model Content
[0004] The purpose of the present utility model is to provide a combined soil and water conservation biological brick to solve the problem proposed in the above-mentioned background technology that two adjacent biological bricks cannot be tightly connected and soil loss cannot be prevented, and the overall structure may become loose during actual use, which will also destroy the basic environment for plant growth.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a combined soil and water conservation bio-brick, comprising a bio-brick body, a connecting assembly being provided on the outside of the bio-brick body, the connecting assembly comprising a placement frame and a surface bonding plate, a top side of the placement frame being provided with a plurality of groups of connecting grooves distributed at equal distances, a second side of the placement frame being fixedly provided with a plurality of connecting blocks distributed at equal distances, the connecting blocks being adapted to the connecting grooves, the interiors of the plurality of groups of the connecting grooves being provided with threaded holes, the interiors of the plurality of groups of the connecting blocks being threadedly connected with bolts, the bolts being adapted to the threaded holes.
[0006] As a preferred solution, a slide groove is provided at the top of the surface bonding plate, the bottom of the placement frame is slidably connected to the inside of the slide groove, and an insert is fixedly installed on one side of the surface bonding plate.
[0007] As a preferred solution, a slot is provided on the other side of the surface bonding plate, the plug is adapted to the slot, an insert rod is provided inside the plug, and the bottom of the bio-brick body is fitted with the inner bottom surface of the placement frame.
[0008] As a preferred solution, a drainage assembly is provided on the outside of the bio-brick body, and the drainage assembly includes a rainwater storage tank, a nozzle cover and a connecting pipe. The rainwater storage tank is fixedly installed on the top of the surface bonding board.
[0009] As a preferred solution, the rainwater storage box is fixedly connected to the placement frame through a connecting pipe, a drainage pipe is fixedly installed on the front of the rainwater storage box, a plurality of groups of circumferentially distributed embedded blocks are fixedly installed on the front of the drainage pipe, and a plurality of groups of circumferentially distributed water outlet holes are opened on the front of the drainage pipe.
[0010] As a preferred solution, an embedding groove is provided inside the nozzle cover, the embedding block is adapted to the embedding groove, a rainwater infiltration groove is provided inside the placement frame, and a plurality of groups of rainwater infiltration holes are provided on the inner wall of the placement frame at equal distances.
[0011] The technical effects and advantages of this utility model are:
[0012] 1. Through the provided connection components, the staff can connect the two bio-brick bodies by the adaptation relationship between the connection block and the connection groove, and then fix them by bolts and threaded holes. This can form a tight connection between the adjacent bio-brick bodies, and prevent the bio-brick bodies from being displaced or misplaced when subjected to external forces (such as water impact, wind blowing or ground vibration). Then, the surface bonding plate is fixed to the ground by inserting rods, thereby firmly fixing the bio-brick body to the ground, which can effectively prevent rainwater, runoff, etc. from eroding the soil and prevent soil loss;
[0013] 2. Through the drainage components, when rainwater falls on the bio-brick body and the placement frame, the rainwater will pass through the rainwater infiltration groove and the rainwater infiltration hole and be transported to the inside of the rainwater storage tank through the connecting pipe. This can realize the collection and storage of rainwater. When the weather is hot, the staff can manually open the nozzle cover to discharge the rainwater stored in the rainwater storage tank. The stored rainwater can be used for irrigation, thereby alleviating water pressure and making full use of water resources. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0015] Figure 2 This is an exploded schematic diagram of the overall structure of the utility model;
[0016] Figure 3 It is a schematic diagram of the overall structure of the utility model;
[0017] Figure 4 This is an exploded view of the drainage component part of the utility model.
[0018] In the figure: 1. Bio-brick body; 2. Connection assembly; 201. Placement frame; 202. Connection groove; 203. Threaded hole; 204. Connection block; 205. Bolt; 206. Insert block; 207. Slot; 208. Insert rod; 209. Slide; 210. Surface bonding board; 3. Drainage assembly; 301. Rainwater storage tank; 302. Connection pipe; 303. Drainage pipe; 304. Embedded block; 305. Water outlet; 306. Nozzle cover; 307. Rainwater infiltration groove; 308. Rainwater infiltration hole. DETAILED DESCRIPTION
[0019] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0020] Example 1:
[0021] Please see the attached Figure 1 - Attachment Figure 3 A combined soil and water conservation bio-brick comprises a bio-brick body 1, a connecting assembly 2 is provided on the outside of the bio-brick body 1, the connecting assembly 2 comprises a placement frame 201 and a surface bonding plate 210, a top side of the placement frame 201 is provided with a plurality of connection grooves 202 distributed at equal distances, a plurality of connection blocks 204 distributed at equal distances are fixedly installed on the other side of the placement frame 201, the connection blocks 204 are adapted to the connection grooves 202, a plurality of connection grooves 202 are provided with threaded holes 203 inside, a plurality of connection blocks 204 are threadedly connected with bolts 205 inside, the bolts 205 are adapted to the threaded holes 203, and a surface bonding plate 210 is provided. There is a slide groove 209 at the top, and the bottom of the placement frame 201 is slidably connected to the inside of the slide groove 209. An insert block 206 is fixedly installed on one side of the surface bonding plate 210, and a slot 207 is opened on the other side of the surface bonding plate 210. The insert block 206 is adapted to the slot 207, and an insert rod 208 is provided inside the insert block 206. The bottom of the bio-brick body 1 is fitted with the inner bottom surface of the placement frame 201. A drainage component 3 is provided on the outside of the bio-brick body 1. The drainage component 3 includes a rainwater storage tank 301, a nozzle cover 306 and a connecting pipe 302. The rainwater storage tank 301 is fixedly installed on the top of the surface bonding plate 210.
[0022] A slider is fixedly installed at the bottom of the placement frame 201, and the placement frame 201 is slidably connected to the inside of the slide groove 209 through the slider. When the staff inserts the plug-in blocks 206 fixedly connected to the bottom of one group of placement frames 201 into the inside of the slots 207 of another group of placement frames 201, the connecting block 204 is also inside the connecting groove 202 at this time.
[0023] Specifically, through the provided connection assembly 2, the staff can use the adaptation relationship between the connecting block 204 and the connecting groove 202, and then fix the two bio-brick bodies 1 through the bolts 205 and the threaded holes 203. This can form a tight connection relationship between adjacent bio-brick bodies 1, and can prevent the bio-brick bodies 1 from being displaced or misplaced when subjected to external forces such as water impact, wind blowing or ground vibration. Then, the surface bonding plate 210 is fixed to the ground through the insertion rod 208, thereby firmly fixing the bio-brick body 1 to the ground, which can effectively prevent rainwater, runoff, etc. from eroding the soil and prevent soil loss.
[0024] Example 2:
[0025] Please see the attached Figure 1 - Attachment Figure 4 , and on the basis of Example 1, it is further obtained that the rainwater storage tank 301 is fixedly connected to the placement frame 201 through the connecting pipe 302, a drainage pipe 303 is fixedly installed on the front of the rainwater storage tank 301, a plurality of groups of circumferentially distributed embedded blocks 304 are fixedly installed on the front of the drainage pipe 303, a plurality of groups of circumferentially distributed water outlet holes 305 are provided on the front of the drainage pipe 303, an embedded groove is provided inside the nozzle cover 306, the embedded block 304 is adapted to the embedded groove, a rainwater infiltration groove 307 is provided inside the placement frame 201, and a plurality of groups of equidistantly distributed rainwater infiltration holes 308 are provided on the inner wall of the placement frame 201.
[0026] A plurality of rainwater infiltration holes 308 are provided around the inner wall of the placement frame 201 at equal distances. Rainwater falling on the bio-brick body 1 will flow through the rainwater infiltration holes 308 to the inside of the rainwater infiltration groove 307, and then be transported to the inside of the rainwater storage tank 301 through the connecting pipe 302.
[0027] Specifically, through the provided drainage assembly 3, when rainwater falls into the bio-brick body 1 and the placement frame 201, the rainwater will pass through the rainwater infiltration groove 307 and the rainwater infiltration hole 308, and then be transported to the inside of the rainwater storage tank 301 through the connecting pipe 302, so that the rainwater can be collected and stored. When the weather is hot, the staff can manually open the nozzle cover 306 to discharge the rainwater stored in the rainwater storage tank 301. The stored rainwater can be used for irrigation, thereby alleviating water pressure and making full use of water resources.
[0028] Working principle of the utility model: The utility model is a combined soil and water conservation biological brick. First, the staff places the biological brick body 1 inside the placement frame 201, then the staff aligns the two sets of placement frames 201 horizontally and places them steadily on the ground, and then the staff manually pushes the placement frame 201. At this time, the placement frame 201 will slide on the slide groove 209 until the connecting block 204 is pushed into the connecting groove 202. Then, the two sets of placement frames 201 are fixedly connected by bolts 205. At this time, the insert block 206 is also in the slot 207. Then the staff will fix the two sets of placement frames 201 on the ground through the insertion rod 208, thereby further fixing the two sets of placement frames 201. Secondly, when it rains, rainwater falls on the bio-brick body 1 and the placement frame 201. At this time, the rainwater will pass through the rainwater infiltration groove 307 and the rainwater infiltration hole 308, and then be transported to the rainwater storage tank 301 through the connecting pipe 302. The staff can manually open the nozzle cover 306, and at this time the rainwater will be discharged through the water outlet 305 opened on the drain pipe 303.
[0029] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A combined soil and water conservation bio-brick, comprising a bio-brick body (1), characterized in that: The bio-brick body (1) is provided with a connection assembly (2) on the outside. The connection assembly (2) comprises a placement frame (201) and a surface bonding plate (210). A plurality of connection grooves (202) distributed at equal distances are provided on one side of the top of the placement frame (201). A plurality of connection blocks (204) distributed at equal distances are fixedly installed on the other side of the placement frame (201). The connection blocks (204) are adapted to the connection grooves (202). Threaded holes (203) are provided inside the plurality of connection grooves (202). Bolts (205) are threadedly connected to the interiors of the plurality of connection blocks (204). The bolts (205) are adapted to the threaded holes (203).
2. The combined soil and water conservation biological brick according to claim 1, characterized in that: A slide groove (209) is provided at the top of the surface bonding plate (210), the bottom of the placement frame (201) is slidably connected to the inside of the slide groove (209), and an insert block (206) is fixedly installed on one side of the surface bonding plate (210).
3. The combined soil and water conservation biological brick according to claim 2, characterized in that: A slot (207) is provided on the other side of the surface bonding plate (210), the plug block (206) is adapted to the slot (207), an insert rod (208) is provided inside the plug block (206), and the bottom of the bio-brick body (1) is bonded to the inner bottom surface of the placement frame (201).
4. The combined soil and water conservation biological brick according to claim 3, characterized in that: A drainage assembly (3) is provided on the outside of the bio-brick body (1), and the drainage assembly (3) comprises a rainwater storage tank (301), a nozzle cover (306), and a connecting pipe (302). The rainwater storage tank (301) is fixedly mounted on the top of the ground-bonded plate (210).
5. The combined soil and water conservation biological brick according to claim 4, characterized in that: The rainwater storage tank (301) is fixedly connected to the placement frame (201) via a connecting pipe (302); a drainage pipe (303) is fixedly installed on the front of the rainwater storage tank (301); a plurality of groups of circumferentially distributed embedded blocks (304) are fixedly installed on the front of the drainage pipe (303); and a plurality of groups of circumferentially distributed water outlet holes (305) are opened on the front of the drainage pipe (303).
6. The combined soil and water conservation biological brick according to claim 5, characterized in that: An embedding groove is provided inside the nozzle cover (306), and the embedding block (304) is adapted to the embedding groove. A rainwater infiltration groove (307) is provided inside the placement frame (201), and a plurality of rainwater infiltration holes (308) are provided on the inner wall of the placement frame (201) at equal distances.
Citation Information
Patent Citations
Combined water and soil conservation biobrick
CN221218844U