Water-permeable garden stone-like brick
By designing permeable channels and protrusion structures in imitation stone bricks, the problem of high cost of imitation stone bricks is solved, achieving the effects of cost reduction and rapid drainage of accumulated water, making it suitable for widespread promotion.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HEFEI SHIMING NEW BUILDING MATERIALS CO LTD
- Filing Date
- 2025-04-21
- Publication Date
- 2026-05-15
AI Technical Summary
Imitation stone bricks are costly to lay over large areas, making them difficult to promote and use widely.
A permeable garden stone-like brick is designed by setting horizontal and vertical permeable grooves at the interface between the stone-like layer and the stone material layer, and fixing protrusions on the surface of the stone-like layer to form a grid structure. Combined with the design of permeable holes and protrusions, the rapid flow and infiltration of water can be achieved.
It reduces the production cost of imitation stone bricks, while improving the texture and friction of the brick surface, anti-slip performance, and quickly diverts accumulated water under rain conditions, thus improving the infiltration efficiency of surface water.
Smart Images

Figure CN224243602U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of imitation stone bricks, and in particular relates to a permeable garden imitation stone brick. Background Technology
[0002] Imitation stone tiles are a type of artificial stone used in building decoration. Their appearance and texture resemble real natural stone, but they offer advantages such as lower cost, easier processing, and greater versatility. Imitation stone tiles can be categorized as follows: Artificial marble imitation stone tiles, made from a mixture of resin, stone powder, and pigments, possessing realistic marble textures and a delicate feel; PU imitation stone tiles, made from polyurethane materials, featuring softness, elasticity, and durability; Ceramic imitation stone tiles, made from ceramic materials, offering good wear resistance and slip resistance; and Cement fiber imitation stone tiles, made from cement, fiber, and stone powder, exhibiting high strength and durability.
[0003] Because imitation stone bricks contain various pigments and additives, their processing is more complex than that of ordinary concrete bricks, resulting in higher costs. For large-area floor paving, the increased cost translates to lower returns. Therefore, this invention combines the characteristics of imitation stone bricks to produce a modular floor tile that possesses the surface texture of imitation stone bricks while reducing costs, making it suitable for widespread use. Utility Model Content
[0004] The purpose of this utility model is to provide a permeable garden imitation stone brick, which combines the characteristics of imitation stone bricks to process a spliced ground brick with the surface texture of imitation stone bricks, while reducing costs and making it suitable for widespread use.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0006] A permeable garden stone-like brick includes an upper imitation stone layer and a lower stone layer.
[0007] The imitation stone layer has a first permeable groove in the horizontal and vertical directions at the interface connection with the stone layer. Multiple square protrusions are fixed on the imitation stone layer. The protrusions extend horizontally and vertically, and a second permeable groove is formed between adjacent protrusions. The second permeable groove corresponds to the first permeable groove. The intersecting second permeable grooves form a grid structure. Water permeable holes are opened at the intersection points of the second permeable grooves to connect with the first permeable groove.
[0008] Furthermore, columnar protrusions are fixed at the interface connections of the imitation stone layer, with each protrusion corresponding to a raised block. Columnar holes are formed at the interface connections of the stone layer to accommodate the corresponding protrusions. The free end of each protrusion is hemispherical, and the bottom of the columnar hole is a hemispherical groove. The first permeable trough has a circular cross-section and is formed by combining the grooves formed in the imitation stone layer and the stone layer.
[0009] Furthermore, a third longitudinal permeable groove is formed at the end of the first permeable groove in the stone layer. The third permeable groove has a semi-circular cross-section and is formed along the thickness direction of the stone layer, completely penetrating it. A fourth permeable groove is formed at the bottom of the stone layer, corresponding to the first permeable groove, and its end is connected to the third permeable groove.
[0010] This invention has the following beneficial effects: The protrusions enhance the texture of the imitation stone layer surface, increase interfacial friction, and aid in slip resistance. Simultaneously, the protrusions form a second permeable channel, which can quickly guide water flow during rainy weather, preventing water accumulation on the brick surface. The second permeable channel has a semi-circular arc cross-section, and its corresponding cross-shaped intersection connects to the first permeable channel. Water from the second permeable channel is guided through permeable holes into the first permeable channel, and finally, from the end of the first permeable channel, i.e., the edge of the imitation stone brick, it is channeled to the ground surface. Attached Figure Description
[0011] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.
[0012] Figure 1 : Schematic diagram of the structure of this utility model.
[0013] Figure 2 : Schematic diagram of the separate structure of the imitation stone layer and the stone material layer of this utility model.
[0014] Figure 3 : Schematic diagram of the distribution structure of the fourth permeable trough at the bottom of this utility model.
[0015] Figure 4 : Schematic diagram of the upper structure of this utility model in the fully covered state.
[0016] Figure 5 : Schematic diagram of the bottom structure of this utility model in the fully covered state.
[0017] The components represented by each number in the attached diagram are listed below: Imitation stone layer 1, stone layer 2, first permeable channel 11, protrusion 3, second permeable channel 12, permeable hole 13, protrusion 14, columnar hole 21, third permeable channel 23, and fourth permeable channel 24. Detailed Implementation
[0018] 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.
[0019] like Figure 1-3As shown: A permeable garden stone-like brick includes an upper stone-like layer 1 and a lower stone layer 2; the stone layer is made of concrete mortar, which is cheaper and has a thickness of 10-15cm; the stone-like layer is made of resin, stone powder and pigments, which has better hardness and wear resistance and has a thickness of 4-8cm.
[0020] At the interface between the imitation stone layer 1 and the stone layer 2, there are first permeable grooves 11 in the horizontal and vertical directions. Multiple square protrusions 3 are fixed on the surface of the imitation stone layer 1. The protrusions 3 extend horizontally and vertically, and a second permeable groove 12 is formed between adjacent protrusions 3. The second permeable groove 12 corresponds to the first permeable groove 11. The intersecting second permeable grooves 12 form a grid structure. Permeable holes 13 are opened at the intersection points of the second permeable grooves 12 to connect with the first permeable groove 11.
[0021] The protrusions enhance the texture of the stone-like surface, increase interfacial friction, and improve slip resistance. Simultaneously, the protrusions form a second permeable channel, allowing for rapid drainage during rainy weather and preventing water accumulation on the brick surface. The second permeable channel has a semi-circular cross-section, and its corresponding cross-shaped intersection connects to the first permeable channel. Water from the second channel is guided through permeable holes into the first channel, ultimately flowing to the ground surface from the end of the first channel, i.e., the edge of the brick.
[0022] like Figure 2 As shown: At the interface connection point of the imitation stone layer 1, columnar protrusions 14 are fixed, each corresponding to a protrusion 3. At the interface connection point of the stone layer 2, columnar holes 21 are provided to accommodate the corresponding protrusions 14. Both the columnar holes and protrusions are circular, with the diameter of the columnar hole larger than that of the protrusion. When the imitation stone layer and the stone layer are merged and fixed, these holes serve two purposes: positioning and connection. Mortar is injected into the corresponding columnar holes, and then the protrusions and columnar holes are bonded and fixed using the mortar. The free end of the protrusion 14 is hemispherical, and the bottom of the columnar hole 21 is a hemispherical groove. This is used to ensure that the mortar fully fills the gap between the protrusion and the columnar hole under pressure during mortar injection. The first permeable trough 11 has a circular cross-section and is formed by merging the grooves opened on the surface layers of the imitation stone layer 1 and the stone layer 2.
[0023] A longitudinal third permeable trough 23 is provided at the end of the first permeable trough 11 corresponding to the stone layer 2. The cross-section of the third permeable trough 23 is semi-circular. The third permeable trough 23 is opened along the thickness direction of the stone layer 2 and is completely penetrated.
[0024] like Figure 3 As shown: A fourth permeable groove 24 is provided at the bottom of the stone layer 2. The fourth permeable groove 24 corresponds to the first permeable groove 11. The end of the fourth permeable groove 24 is connected to the third permeable groove 23.
[0025] like Figure 4-5As shown: The third and fourth permeable troughs are both open-type troughs, opened along the bottom and side walls of the stone layer, with a semi-circular cross-section. When the imitation stone bricks are fully laid, the corresponding third permeable troughs of adjacent imitation stone bricks are joined together to form a circular pipe-like channel, used to collect water from the first permeable trough, guiding the accumulated water to the lower part of the brick body, and then infiltrating into the groundwater runoff. To prevent poor water absorption in some areas of the soil, a fourth permeable trough is also provided at the bottom of the stone layer, used to laterally diffuse the accumulated water with low permeability, dispersing infiltration and improving the surface water infiltration efficiency.
[0026] These embodiments are selected and specifically described in this specification in order to better explain the principles and practical applications of this utility model, so that those skilled in the art can better understand and utilize this utility model.
Claims
1. A permeable garden stone-like brick, characterized in that: It includes an upper imitation stone layer (1) and a lower stone layer (2); The imitation stone layer (1) has a first permeable groove (11) with a horizontal and a vertical orientation at the interface connection of the stone layer (2). Multiple square protrusions (3) are fixed on the surface of the imitation stone layer (1). The protrusions (3) extend horizontally and vertically, and a second permeable groove (12) is formed between adjacent protrusions (3). The second permeable groove (12) corresponds to the first permeable groove (11). The intersecting second permeable grooves (12) form a grid structure. A permeable hole (13) is opened at the intersection of the second permeable grooves (12) to connect to the first permeable groove (11).
2. The permeable garden stone-like brick according to claim 1, characterized in that: The imitation stone layer (1) has a columnar protrusion (14) fixed at the interface connection point. The protrusion (14) corresponds one-to-one with the protrusion (3). The stone layer (2) has a columnar hole (21) at the interface connection point to accommodate the corresponding protrusion (14).
3. The permeable garden stone-like brick according to claim 2, characterized in that: The free end corresponding to the protrusion (14) is hemispherical, and the bottom of the cylindrical hole (21) is a hemispherical groove.
4. The permeable garden stone-like brick according to claim 2, characterized in that: The first permeable trough (11) has a circular cross-section and is formed by combining the troughs opened on the surface of the imitation stone layer (1) and the stone layer (2).
5. The permeable garden stone-like brick according to claim 1, characterized in that: The stone layer (2) has a longitudinal third permeable groove (23) at the end of the first permeable groove (11). The cross-section of the third permeable groove (23) is semi-circular. The third permeable groove (23) is opened along the thickness direction of the stone layer (2) and is completely penetrated.
6. The permeable garden stone-like brick according to claim 5, characterized in that: The bottom of the stone layer (2) is provided with a fourth permeable groove (24), which corresponds to the first permeable groove (11), and the end of the fourth permeable groove (24) is connected to the third permeable groove.