Basin with micropores in side wall
By setting up a multi-layered structure and micropores on the side wall of the flowerpot, the problem of insufficient root aeration of aerial plants was solved, which promoted the growth and nutrient absorption of aerial plants and improved their growth effect.
Patent Information
- Application Number
- CN202520030530.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-07
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-01-07
AI Technical Summary
Existing flowerpot designs cannot meet the root aeration requirements of aerial root plants, resulting in insufficient oxygen in the roots and affecting plant growth.
The flowerpot has a multi-layered structure and micropores on its side wall, including an outer protective layer and an inner functional layer. Several vertical micropores are machined on the side wall, and ventilation holes and support protrusions are set at the bottom to improve air circulation.
The microporous structure of the sidewalls improves the growth environment of aerial root plants, promotes root expansion and nutrient absorption, prevents heavy metals from entering the soil, and increases plant growth rate.
Smart Images

Figure CN223885786U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of flower pot technology, specifically relating to a single-color, transparent, or multi-color flower pot with micropores on its side wall. Background Technology
[0002] In the process of growing potted plants, most of the plastic flower pots used for potted plants have a tapered design, and this structure is mostly dark red or black.
[0003] However, according to the growth characteristics of the root system, plants are divided into aerial root plants and non-aerial root plants. The side-wall microporous pot product disclosed in this utility model is mainly used for aerial root plants.
[0004] In existing flower pots, ventilation holes are often designed at the bottom to ensure root aeration, allowing vertical airflow. However, when aerial plants are growing, the limited ventilation at the bottom is insufficient to provide the oxygen needed for root extension. This results in aerial plants being unable to extend their root system after being placed in a flower pot. Without a large area of root extension and expansion, they cannot absorb sufficient water and nutrients, leading to slow stem and leaf growth, and even problems such as root suffocation and wilting.
[0005] In view of this practical drawback in the current field of flower pots, those skilled in the art should design a flower pot that, while keeping the production cost basically unchanged, can achieve side ventilation by processing several ventilation holes on the side wall. Summary of the Invention
[0006] To overcome the shortcomings of existing technologies, this utility model provides a sidewall microporous pot, which, by setting up a multi-layer structure and processing several micropores on the sidewall, can effectively achieve permeability in terms of gas entry and exit, maximize the circulation of gas inside the pot, and provide a good environment for the growth of aerial root plants.
[0007] To achieve the above technical objectives, the present invention adopts the following solution: a sidewall microporous pot, comprising a pot body, wherein the pot body is multi-layered inside and out, the multi-layered structure of the pot body includes an outer protective layer and an inner functional layer, wherein the inner functional layer is a light-shielding layer or a light-transmitting layer, or is designed and manufactured to be multi-layered with light transmission inside and out according to the photosynthetic needs of the root systems of different plant species; a plurality of thermal micropores are provided on the sidewall of the pot body, and a heat collection ring is provided at the edge of the thermal micropores.
[0008] The micropores are perpendicular to the side wall of the flowerpot body.
[0009] The bottom of the flowerpot body is provided with a bottom sink groove, and the perimeter of the bottom sink groove is provided with spaced protrusions, and the spaced protrusions are provided with ventilation holes; the bottom surface of the sink groove is provided with a support protrusion facing downwards.
[0010] The flowerpot body includes a white light-repelling layer and an inner black or dark gray functional layer, the inner functional layer being an inner light-shielding and heat-insulating layer; an outer reflective layer is provided on the light-repelling layer.
[0011] The flowerpot body has a transparent layer on the inner side of the inner insulation layer. The transparent layer isolates the soil in the flowerpot from the inner insulation layer. It is used for heat preservation and to prevent heavy metals in the plastic flowerpot from entering the soil and being absorbed by the soil.
[0012] A toughening layer is provided between the inner insulation layer and the light-repellent layer. The toughening layer is made of PP or PE material and is used to improve the overall strength of the flowerpot body.
[0013] The beneficial effects of this utility model are as follows: This utility model discloses a side-wall microporous pot with a multi-layered structure. The multi-layered structure includes an outer protective layer and an inner functional layer, which is either a light-blocking layer or a light-transmitting layer. Several thermal micropores are provided on the side wall of the pot body. These micropores are formed by hot needle stamping, and a heat-gathering ring is provided at the edge of each micropore. The micropores and heat-gathering rings are perpendicular to the side wall of the pot body. Furthermore, the structure of the pot body can be further functionally enhanced, such as by designing a reinforced structure or making it multi-layered and transparent for plants that prefer light. This structural improvement provides high air permeability for the growth of aerial-rooted plants, promoting root growth and nutrient absorption, making it an ideal side-wall microporous pot. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the top three-dimensional structure of this utility model;
[0015] Figure 2 This is a schematic diagram of the bottom three-dimensional structure of this utility model;
[0016] Figure 3 This is a schematic diagram of the main structure of this utility model;
[0017] Figure 4 for Figure 3 Enlarged diagram of the structure of region A in the middle Figure I ;
[0018] Figure 5 for Figure 3 Enlarged diagram of the structure of region A in the middle Figure II ;
[0019] Figure 6 for Figure 3 Enlarged schematic diagram of the structure of region B in the middle;
[0020] In the attached image:
[0021] 1. Flowerpot body; 2. Top flange; 3. Base; 4. Central protrusion; 41. Heat collection ring; 5. Bottom groove; 51. Support protrusion; 6. Interval protrusion; 61. Interval ventilation holes; 7. Transparent layer; 8. Outer reflective layer; 9. Light-repellent layer; 10. Toughening layer; 11. Inner light-blocking and heat-insulating layer; 12. Stacked screw positioning protrusion. Detailed Implementation
[0022] As shown in the accompanying drawings, this utility model will be described in detail below through specific embodiments. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. However, it should be noted that the appearance and structure of this utility model are the same as those of the prior art; the difference lies in the improvement of the product structure. The specific embodiments described below do not limit the technical solution. Those skilled in the art can make further technical extensions under the guidance of the following technical solutions. The scope of protection of this patent application is determined by the claims.
[0023] Example 1:
[0024] A sidewall microporous pot includes a pot body 1. The pot body 1 has multiple layers, both inside and out. The multi-layer structure of the pot body 1 includes an outer protective layer and an inner functional layer. The inner functional layer is a light-shielding and heat-insulating layer 11. In this embodiment, as shown... Figure 4 As shown, the flowerpot body 1 comprises, from the outside to the inside, a white light-repelling layer 9, a toughening layer 10, and an inner light-shielding and heat-insulating layer 11; an outer reflective layer 8 is provided on the light-repelling layer 9. The outer reflective layer 8 is a transparent layer structure, made of PP and a mixture of weather-resistant and UV-resistant materials, equivalent to a reflective film, refracting external light to the outside within a certain range. This weather-resistant and UV-resistant mixture is a commonly used chemical additive in existing technology, and will not be described in detail here. The toughening layer 10 is made of a blend of PP and PE, which is used to improve the overall strength of the flowerpot body.
[0025] The key design feature of this utility model is that a plurality of thermal microholes 4 are provided on the side wall of the flowerpot body 1. The thermal microholes 4 are arranged perpendicular to the side wall of the flowerpot body. When the thermal microholes 4 are formed, the flowerpot body is usually stamped with a high-temperature punch mold to achieve the forming of the thermal microholes 4. During the forming process, a heat accumulation ring 41 will be formed around the edge of the thermal microholes 4. This heat accumulation ring 41 will prevent the material at the thermal microholes 4 from tearing and causing damage to the flowerpot body 1.
[0026] Furthermore, the bottom of the flowerpot body 1 is a base 3, and a bottom groove 5 is provided inside the base 3. The bottom groove 5 is surrounded by spaced protrusions 6, and ventilation holes 61 are provided on the spaced protrusions 6. The bottom surface of the bottom groove 5 is provided with supporting protrusions 51 facing downwards, so that the bottom can be permeable when the flowerpot body 1 is placed on the ground.
[0027] Through the above structural design, this utility model can ensure horizontal permeability on the sides of the roots and vertical permeability of the bottom surface when the roots of some light-sensitive plants are growing, which facilitates root respiration, effectively improves plant root growth, and promotes the growth of potted plants.
[0028] This utility model also provides an annular stacked screw positioning protrusion 13 around the middle perimeter of the flowerpot body 1 to constrain the flowerpot body 1 from easily falling off and tilting during transportation. The flowerpot can be easily separated vertically by prying the top flange with your fingers, making it more convenient for people to handle.
[0029] Example 2:
[0030] Based on Example 1, such as Figure 5 As shown, the flowerpot body 1 comprises, from the outside to the inside, a white light-repellent layer 9, a toughening layer 10, and a transparent layer 7; an outer reflective layer 8 is provided on the light-repellent layer 9. The outer reflective layer 8 is also made of PP and a mixture of weather-resistant and UV-resistant materials. The toughening layer 10 is made of a blend of PP and PE materials.
[0031] The flowerpot body 1 has several thermal microholes 4 on its side wall. The edges of the thermal microholes 4 form a heat collection ring 41 to prevent the material at the thermal microholes 4 from tearing and causing damage to the flowerpot body 1.
[0032] This invention, through the above structural design, allows light to enter the pot when the roots of some light-loving and drought-tolerant plants are growing. It ensures horizontal permeability to the sides of the roots and vertical air permeability to the bottom, facilitating root respiration and effectively improving root growth, thus promoting the growth of potted plants. Furthermore, the transparent layer isolates the soil from the inner insulation layer, serving both heat preservation and preventing heavy metals from the plastic pot from entering the soil and being absorbed by it.
[0033] Similar to the design in Embodiment 1, this utility model also provides an annular stacked screw positioning protrusion 13 around the middle periphery of the flowerpot body 1 to constrain the flowerpot body 1 from easily detaching and tilting during transportation. The flowerpot can be easily separated vertically by prying the top flange with a finger, making it more convenient for personnel to handle.
[0034] In summary, with the above structural design, this utility model improves the air permeability of the growth environment for aerial root plants, promotes root growth and diffusion, and enhances nutrient absorption, making it an ideal side-wall microporous pot.
Claims
1. A microporous pot with sidewalls, comprising a pot body, characterized in that: The flowerpot body has several thermal micropores on its side wall, and a heat collection ring is provided at the edge of the thermal micropores; the flowerpot body has multiple layers inside and out, and the multi-layer structure of the flowerpot body includes an outer protective layer and an inner functional layer, the inner functional layer being a light-blocking layer or a light-transmitting layer; or the flowerpot body as a whole has a multi-layer structure that is light-transmitting inside and out.
2. A microporous basin with sidewalls as described in claim 1, characterized in that: The micropores are perpendicular to the side wall of the flowerpot body.
3. A microporous basin with sidewalls as described in claim 1, characterized in that: The bottom of the flowerpot body is provided with a bottom sink groove, and the perimeter of the bottom sink groove is provided with spaced protrusions, and the spaced protrusions are provided with ventilation holes; the bottom surface of the sink groove is provided with a support protrusion facing downwards.
4. A microporous basin with sidewalls as described in claim 1, characterized in that: The flowerpot body includes a white light-repelling layer and an inner black or dark gray functional layer, the inner functional layer being an inner light-shielding and heat-insulating layer; an outer reflective layer is provided on the light-repelling layer.
5. A microporous basin with sidewalls as described in claim 1, characterized in that: The flowerpot body has a transparent layer on the inner side of the inner insulation layer.
6. A microporous basin with sidewalls as described in claim 5, characterized in that: A toughening layer is provided between the inner insulation layer and the light-repellent layer, and the toughening layer is made of PP or PE material.