Intelligent temperature adjusting type flowerpot
The double-layer structure and remote control system of the intelligent temperature-regulating flowerpot solve the adverse effects of high temperature and suspended environment on the balcony on potted plants, achieve accurate water supply and water conservation, and improve the growth of plants and ease of use.
Patent Information
- Application Number
- CN202422741113.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-11
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-11-11
AI Technical Summary
The high temperature and suspended environment of high-rise building balconies have an adverse effect on the growth and development of potted plants. Existing measures have limited effects and cannot effectively solve the problems of excessively high temperatures and lack of "grounding".
The intelligent temperature-regulating flowerpot is designed with a double-layer outer and inner pot, combined with water holes, water suction wires, solenoid valves and remote APP control to achieve intelligent management and recycling of water, and improve water permeability and ventilation.
By intelligently controlling water supply, plants can obtain the appropriate amount of water in high temperature environments, preventing root rot and water shortage, improving plant growth vitality, saving water and simplifying maintenance operations.
Smart Images

Figure CN223379693U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of potted plants, in particular to an intelligent temperature-regulating flower pot. Background Art
[0002] In high-rise buildings, balconies serve as vital outdoor spaces for residents and are often used to house potted plants. However, because balconies are often exposed to direct sunlight, temperatures often rise significantly, especially in the summer. Furthermore, their suspended structure isolates them from the ground, lacking a grounding effect. This high temperature and suspended environment adversely impacts plant growth and development, particularly affecting the temperature regulation of potted plant roots and the maintenance of soil moisture.
[0003] While some residents currently employ measures such as adding sunshades, installing misting systems, or using insulated pots, these measures are limited in effectiveness and fail to fundamentally address the issues of high temperatures and lack of grounding on balconies, leading to yellowing, wilting, and slowed growth. Furthermore, the unique structure of balconies makes traditional ground-level cooling methods difficult to effectively apply. Utility Model Content
[0004] In view of the deficiencies in the prior art, the present invention provides an intelligent temperature-regulating flower pot, aiming to solve the problems raised by the above-mentioned background technology.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: an intelligent temperature-regulating flowerpot, comprising a flowerpot body, a water-permeable hole being provided at the bottom of the flowerpot body, and an outer basin and an inner basin; a cavity is opened on the side wall of the outer basin, a water inlet pipe is provided on the outer basin, and a water outlet faucet is provided at the bottom of the side wall of the outer basin; the inner basin is arranged in the outer basin, the bottom of the inner basin is connected to the cavity of the outer basin, a filter is provided at the connection between the inner basin and the outer basin, the flowerpot body is arranged in the inner basin, and a space filled with soil is formed between the inner wall of the inner basin and the outer wall of the flowerpot body.
[0006] Preferably, the bottom of the outer basin is provided with supporting feet, and the bottom of the supporting feet is provided with anti-slip pads.
[0007] Preferably, a solenoid valve is provided at one end of the water inlet pipe.
[0008] Preferably, a water absorption lead is provided in the water permeable hole. Beneficial effects
[0009] This utility model provides an intelligent temperature-regulating flowerpot. By optimizing the flowerpot structure and adding an intelligent control system, this utility model provides an intelligent temperature-regulating flowerpot, which effectively solves the adverse effects on the growth and development of potted plants caused by excessively high temperatures and suspended environments on high-rise building balconies. Specifically, this utility model has the following beneficial effects:
[0010] Intelligent moisture control:
[0011] By setting up solenoid valves and combining them with remote app control, users can remotely adjust water supply based on the actual needs of plants, eliminating the inconvenience of manual watering in traditional flowerpots. This intelligent control not only improves irrigation accuracy but also adapts to real-time changes in soil moisture and environmental conditions, ensuring that plants always receive the appropriate amount of water in hot and dry environments, promoting healthy growth.
[0012] Improve water permeability and prevent water accumulation:
[0013] By providing permeable holes at the bottom of the pot and installing water-absorbing wires within the holes, water can penetrate the soil more evenly, avoiding uneven water distribution and preventing excessive water from causing roots to be soaked in water for long periods of time. This design optimizes root water absorption, effectively preventing root rot and water shortage, and ensuring that potted plants remain vibrant even in dry environments.
[0014] Bottom support design improves ventilation and stability:
[0015] There are several legs at the bottom of the outer pot, and anti-slip pads are provided at the bottom of the legs. This not only raises the flower pot and increases air circulation at the bottom, which helps reduce the heat borne by the roots of potted plants in high temperature environments, but also prevents the flower pot from sliding or tipping over on smooth ground, thereby improving the stability of the flower pot in outdoor environments such as balconies.
[0016] Double-layer structure, water recycling:
[0017] By creating a double-layer structure consisting of an outer and inner basin, water can be injected into the outer basin's cavity through an inlet pipe. The water is stored in the cavity and gradually seeps into the soil in the inner basin, achieving water recycling. Excess water can be drained through a tap, preventing excessive water levels from overwetting plant roots. This design improves water resource utilization and allows for flexible adjustment of water volume as needed, conserving water.
[0018] Easy remote control operation:
[0019] By remotely controlling the solenoid valve on the water inlet pipe through an app, users can monitor and adjust the water supply of their plants at any time without frequently touching the flower pots. This convenient operation method greatly reduces the need for daily maintenance of potted plants in high-temperature environments and is particularly suitable for busy users or those who are away from home for long periods of time, ensuring that the plants receive continuous care. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic cross-sectional view of the intelligent temperature-regulating flowerpot of the present invention.
[0021] Description of Reference Numerals
[0022] 1- flower pot body, 11- water permeable hole, 12- water suction lead, 2- outer basin, 21- cavity, 22- water inlet pipe, 23- water outlet faucet, 24- foot, 25- anti-slip pad, 26- solenoid valve, 3- inner basin. DETAILED DESCRIPTION
[0023] 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.
[0024] See also Figure 1 The present invention provides an intelligent temperature-regulating flowerpot, comprising a flowerpot body 1, an outer basin 2, and an inner basin 3. The bottom of the flowerpot body 1 is provided with a water-permeable hole 11 for draining excess water to prevent excessive moisture in the pot. The flowerpot body 1 is disposed within the inner basin 3, and a water storage and temperature regulation structure is formed between the inner basin 3 and the outer basin 2. The specific structure is as follows:
[0025] The sidewall of the outer basin 2 defines a cavity 21 for holding water and communicating with the inner basin 3, thereby achieving water circulation and regulation within the entire structure. A water inlet pipe 22 is provided at the top of the outer basin 2 for injecting water into the cavity 21. A water outlet faucet 23 is provided at the bottom of the sidewall of the outer basin 2, allowing the user to control the amount of water in the outer basin 2, achieving drainage and water regulation.
[0026] Inner basin 3 is located within outer basin 2, and its bottom communicates with cavity 21 of outer basin 2, ensuring that water can flow from outer basin 2 into inner basin 3 and then penetrate the soil within the inner basin. To prevent soil from blocking the water flow, a filter 31 is installed at the connection between inner basin 3 and outer basin 2. Filter 31 acts as a filter, preventing particles such as sand from clogging the water flow path and ensuring smooth water flow.
[0027] The flowerpot body 1 is placed within the inner basin 3. A soil-filled space is formed between the inner wall of the inner basin 3 and the outer wall of the flowerpot body 1 for growing plants. With this design, water is injected from the water inlet pipe 22 into the cavity 21 of the outer basin 2. The water gradually enters the inner basin 3 through osmosis and seeps through the soil within the inner basin 3 into the flowerpot body 1. Water enters the soil through the water holes 11 in the flowerpot body 1, providing water to the plant roots. The water supply is intelligently controlled by regulating the water level within the outer basin.
[0028] During use, the user injects water into the cavity 21 of the outer pot 2 through the water inlet pipe 22. This water seeps into the inner pot 3 and the soil therein, gradually providing moisture to the plants through osmotic action. Excess water is discharged through the water holes 11 in the flowerpot body 1, ensuring proper moisture retention in the soil while preventing water accumulation. The water outlet faucet 23 drains excess water, preventing excessive water levels from affecting soil permeability and root health.
[0029] Specifically, the bottom of the outer basin 2 is provided with several legs 24, which are used to elevate the flower pot and keep it at a certain distance from the ground. This provides good air circulation and helps prevent moisture from accumulating at the bottom of the pot, which can prevent the roots of potted plants from being in a waterlogged state for a long time. To ensure the stability of the flower pot on different surfaces, the bottom of each leg 24 is equipped with an anti-slip pad 25, which increases friction, prevents the flower pot from sliding on smooth surfaces, and protects the ground from being scratched.
[0030] Furthermore, to achieve more intelligent moisture control, a solenoid valve 26 is installed at one end of the water inlet pipe 22. This solenoid valve 26 is used to control the water flow according to preset conditions. By interfacing with a moisture sensor or temperature sensor, the solenoid valve 26 can automatically adjust the water flow, ensuring that the potted plants receive the appropriate amount of water under different environmental conditions, thereby maintaining healthy plant growth.
[0031] To optimize water conduction, the permeable holes 11 of the flowerpot body 1 are provided with a water suction line 12. This line guides water through the permeable holes 11, distributing it more evenly to the soil within the flowerpot, effectively preventing localized excess or deficiency of water. The line 12 offers excellent water absorption and durability, ensuring long-term, stable use and improving the irrigation efficiency of the entire flowerpot system.
[0032] Specifically, the solenoid valve 26 can not only automatically adjust according to the feedback from the environmental sensor, but can also be controlled by a remote app. Users can remotely monitor and adjust the water management in the flower pot in real time through the app on their mobile phone or other smart devices.
[0033] In actual use, the solenoid valve 26 is connected to the user's smart device via a wireless communication module (such as Wi-Fi or Bluetooth). The app displays data such as the current water level in the flowerpot, soil moisture, and ambient temperature. Based on this data, the user can manually open and close the solenoid valve 26 on the app, or preset conditions. When specific environmental conditions are met, the solenoid valve 26 automatically opens or closes to ensure the potted plants receive the appropriate amount of water.
[0034] This remote APP control method allows users to manage the irrigation system of flower pots anytime and anywhere, further improving the level of intelligence. It is especially suitable for busy users or scenarios where it is inconvenient to check the status of potted plants frequently, greatly improving the convenience and accuracy of use.
[0035] It should be noted that, in this document, relational terms such as first and second, etc. are merely used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations.
Claims
1. An intelligent temperature-regulating flower pot, comprising a flower pot body (1), wherein a water-permeable hole (11) is provided at the bottom of the flower pot body (1), characterized in that: The flower pot also comprises an outer basin (2) and an inner basin (3); a cavity (21) is provided on the side wall of the outer basin (2); a water inlet pipe (22) is provided on the outer basin (2); and a water outlet tap (23) is provided at the bottom of the side wall of the outer basin (2); the inner basin (3) is arranged in the outer basin (2); the bottom of the inner basin (3) is connected to the cavity (21) of the outer basin (2); a filter (31) is provided at the connection point between the inner basin (3) and the outer basin (2); the flower pot body (1) is arranged in the inner basin (3), and a space filled with soil is formed between the inner wall of the inner basin (3) and the outer wall of the flower pot body (1).
2. The intelligent temperature-regulating flowerpot according to claim 1, characterized in that: The bottom of the outer basin (2) is provided with a support foot (24), and the bottom of the support foot (24) is provided with an anti-slip pad (25).
3. The intelligent temperature-regulating flowerpot according to claim 1, characterized in that: One end of the water inlet pipe (22) is provided with a solenoid valve (26).
4. The intelligent temperature-regulating flowerpot according to claim 1, characterized in that: A water absorption lead (12) is provided in the water permeable hole (11).