Flower trough with dryness and humidity adjusting function
By designing a flower trough with humidity control function, and utilizing the cooperation of water supply and control mechanisms, the problem of insufficient humidity control in the flower trough is solved, achieving precise control of soil moisture inside the flower trough, and improving the growth stability and survival rate of green plants.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 姚月燕
- Filing Date
- 2025-07-03
- Publication Date
- 2026-05-12
AI Technical Summary
Existing flower beds lack efficient and timely humidity control methods when humidity is too high, leading to root rot due to lack of oxygen and the growth of pathogens, which affects the growth status and survival rate of green plants and limits their applicability and reliability in landscaping and horticulture.
A flower trough with humidity regulation function was designed. Through the combined use of water supply and regulation mechanisms, the soil moisture inside the flower trough can be precisely controlled. By switching the switching pipe and water-absorbing filler, the humidity can be quickly adjusted and switched to ensure that the soil moisture is within a suitable range.
It achieves stable control of soil moisture inside the flower trough, improves the growth stability and survival rate of green plants, enhances the flexibility and adaptability of the device, and adapts to planting environments with different humidity requirements.
Smart Images

Figure CN224218998U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of landscape architecture technology, and in particular to a flower trough with humidity regulation function. Background Technology
[0002] As an important carrier for garden landscape and horticulture, flower troughs have both practical functions and aesthetic value. They can provide growing space for flowers and green plants. Through reasonable design and layout, they can effectively utilize diverse spaces such as vertical and facade spaces to achieve richness and three-dimensionality in landscape layers.
[0003] When using existing flower troughs, the internal humidity can usually be increased by watering or spraying to meet the growth needs of green plants. However, when the humidity inside the flower trough is too high, existing technologies often lack efficient and timely humidity control methods. If the soil in the flower trough is in a high-humidity state for a long time, it will not only lead to root rot due to lack of oxygen, but may also cause the growth of pathogens and the withering of green plants, seriously affecting the growth status and survival rate of green plants. This one-way defect in humidity control makes it difficult for flower troughs to maintain a suitable microenvironment in practical applications, which restricts their applicability and reliability in landscape greening, horticulture and other scenarios. Utility Model Content
[0004] This utility model relates to a flower trough with a humidity regulation function. It has a control component that can regulate the humidity of the soil inside the flower trough, thereby ensuring that the green plants are always growing within a suitable humidity range. It is stable in use, and the humidity can be controlled and switched by adjusting the use of the switching tube. Moreover, the water-absorbing filler inside is easy to replace, which can ensure the stability and efficiency of the humidity control function of the control component. It can adapt to the planting and growth of green plants with different humidity requirements, and has extremely high flexibility, adaptability and practicality.
[0005] This utility model provides a flower trough with humidity regulation function, specifically including: a flower trough and a control component, wherein the control component consists of a water supply mechanism and an adjustment mechanism;
[0006] The water supply mechanism comprises a water supply pipe and a control valve, wherein the control valve is installed at one end of the water supply pipe; the regulating mechanism comprises a buried pipe and a switching pipe, wherein one end of the buried pipe is fixedly installed on the side of the water supply pipe and the buried pipe is fixedly installed inside the flower bed, the buried pipe is buried inside the soil of the flower bed, and the switching pipe is rotatably connected inside the buried pipe.
[0007] Furthermore, the switching tube is damped when it rotates inside the buried tube, and the switching tube is provided with a humidification chamber and a drying chamber, which are independent of each other.
[0008] Furthermore, the upper part of the buried pipe has a functional hole inside, the pipe body of the switching pipe located in the humidification chamber has a humidification hole, and the pipe body of the switching pipe located in the drying chamber has a drying hole.
[0009] Furthermore, the humidification chamber at the end furthest from the water supply pipe is designed to be sealed, and the drying chamber at the end closest to the water supply pipe is also designed to be sealed.
[0010] Furthermore, the upper part of the buried pipe is provided with a water supply channel. When the humidification chamber is facing upwards, the water supply channel connects the water supply pipe and the humidification chamber.
[0011] Furthermore, the adjustment mechanism also includes a replacement lever, which is inserted into the interior of the drying chamber, and the interior of the drying chamber is filled with water-absorbing packing.
[0012] This utility model provides a flower trough with humidity control function, which has the following beneficial effects:
[0013] The control component can regulate the moisture content of the soil inside the flower trough, ensuring that the plants are always growing within a suitable humidity range. It is stable in use, and the moisture content can be controlled and switched by adjusting the status of the switching tube. The internal water-absorbing filler is easy to replace, which ensures the stability and efficiency of the moisture control function of the control component. It can adapt to the planting and growth of plants with different humidity requirements, improving the flexibility, adaptability and stability of the device. Attached Figure Description
[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly described below.
[0015] The accompanying drawings described below are only related to some embodiments of the present invention and are not intended to limit the scope of the present invention.
[0016] In the attached diagram:
[0017] Figure 1 A schematic diagram of the structure of this utility model is shown.
[0018] Figure 2 A schematic diagram of the disassembled adjustment mechanism of this utility model is shown.
[0019] Figure 3 This utility model is shown Figure 2 The structural diagram on the right.
[0020] Figure 4 A schematic diagram of the internal structure of this utility model in humidification mode is shown.
[0021] Figure 5 This utility model is shown Figure 4Enlarged structural diagram of part A in the middle.
[0022] Figure 6 A schematic diagram of the internal structure of this invention in its dry state is shown.
[0023] Figure 7 This utility model is shown Figure 6 Enlarged structural diagram of part B in the middle.
[0024] Figure 8 This utility model is shown Figure 6 Enlarged structural diagram of part C in the middle.
[0025] List of reference numerals
[0026] 1. Flower trough;
[0027] 2. Water supply system; 201. Water supply pipeline; 202. Control valve;
[0028] 3. Adjustment mechanism; 301. Buried pipe; 3011. Functional hole; 3012. Water supply channel; 302. Switching pipe; 3021. Humidification chamber; 30211. Humidification hole; 3022. Drying chamber; 30221. Drying hole; 303. Replacement lever. Detailed Implementation
[0029] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the described embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0030] Please refer to Figures 1 to 8 Example 1:
[0031] This utility model proposes a flower trough with humidity regulation function, including: flower trough 1 and control component, the control component is composed of water supply mechanism 2 and adjustment mechanism 3;
[0032] The water supply mechanism 2 consists of a water supply pipe 201 and a control valve 202, with the control valve 202 installed at one end of the water supply pipe 201; the regulating mechanism 3 consists of a buried pipe 301 and a switching pipe 302, with one end of the buried pipe 301 fixedly installed on the side of the water supply pipe 201 and the buried pipe 301 fixedly installed inside the flower bed 1, the buried pipe 301 being buried inside the soil of the flower bed 1, and the switching pipe 302 being rotatably connected inside the buried pipe 301;
[0033] The adjustment mechanism 3 also includes a replacement lever 303, which is inserted into the drying chamber 3022.
[0034] The upper part of the buried pipe 301 is provided with a water supply channel 3012. When the humidification chamber 3021 is facing upwards, the water supply channel 3012 connects the water supply pipe 201 and the humidification chamber 3021. The upper part of the buried pipe 301 is provided with a functional hole 3011. The switching pipe 302 located in the humidification chamber 3021 is provided with a humidification hole 30211, and the switching pipe 302 located in the drying chamber 3022 is provided with a drying hole 30221. The end of the humidification chamber 3021 away from the water supply pipe 201 is designed to be sealed, and the end of the drying chamber 3022 close to the water supply pipe 201 is designed to be sealed. In use, the combined operation of the water supply mechanism 2 and the regulating mechanism 3 can increase the soil moisture inside the flower trough 1. When it is necessary to increase the soil moisture inside the flower trough 1, the humidification chamber 3021 inside is turned upward by rotating the switching pipe 302, and then the control valve 202 is opened. When the control valve 202 is opened, water can enter the humidification chamber 3021 through the water supply pipe 201 and the water supply channel 3012. Since the humidification hole 30211 can overlap with the functional hole 3011 when the humidification chamber 3021 is turned upward, water can pass through the humidification hole 30211 and the functional hole 3011. 1. Entering the soil, it humidifies the soil. When the soil moisture reaches the desired range, the control valve 202 is closed to cut off the water supply, thus stopping the humidification operation. The humidification operation is quick, convenient, and flexible. The adjustment mechanism 3 can also reduce the soil moisture inside the flower trough 1. When it is necessary to reduce the soil moisture inside the flower trough 1, simply rotate the switching pipe 302 so that the drying chamber 3022 faces upwards. When the drying chamber 3022 faces upwards, its side blocks the water supply channel 3012. Water from the water supply pipe 201 enters the drying chamber 3022, affecting the drying and dehumidification effect. At the same time, the drying hole 30221 can... When the humidification chamber 3022 is aligned with the functional hole 3011, the moisture in the soil can be absorbed by the absorbent packing material (such as absorbent paper, activated carbon, etc.) inside the drying chamber 3022 through the functional hole 3011 and the drying hole 30221, thereby reducing the moisture content inside the soil and thus reducing soil humidity. The switching is quick and easy to use. After the dehumidification operation is completed, the switching tube 302 can be restored to the state where the humidification chamber 3021 is facing upwards. This can prevent the excessive absorption of moisture inside the soil. At the same time, closing the control valve 202 will not continue to humidify the soil, ensuring that the soil humidity is within a suitable range and the operation is stable.
[0035] The switching tube 302 is damped when it rotates inside the buried tube 301. The switching tube 302 is equipped with a humidification chamber 3021 and a drying chamber 3022. The humidification chamber 3021 and the drying chamber 3022 are independent of each other. This design allows the switching tube 302 to maintain its current operating state and operate stably when it is not rotated manually.
[0036] The drying chamber 3022 is filled with water-absorbing packing. By replacing the pry bar 303, the water-absorbing packing inside the drying chamber 3022 can be quickly removed, which facilitates the replacement of the water-absorbing packing and further improves the flexibility of the device.
[0037] The working principle of this embodiment is as follows: The humidity is adjusted as needed based on the actual moisture content of the soil inside the flower trough 1. The combined use of the water supply mechanism 2 and the adjustment mechanism 3 increases the moisture content of the soil inside the flower trough 1. When it is necessary to increase the moisture content of the soil inside the flower trough 1, the switching pipe 302 is rotated so that the humidification chamber 3021 is in the upward-facing position, and then the control valve 202 is opened. When the control valve 202 is opened, water can enter the humidification chamber 3021 through the water supply pipe 201 and the water supply channel 3012. Since the humidification hole 30211 can overlap with the functional hole 3011 when the humidification chamber 3021 is in the upward-facing position, water can enter the soil through the humidification hole 30211 and the functional hole 3011, thus humidifying the soil. When the soil moisture reaches the required range, the control valve 202 is closed to cut off the water supply, stopping the humidification operation. The adjustment mechanism 3 can also reduce the moisture content of the soil inside the flower trough 1. When it is necessary to reduce the soil moisture inside the flower trough 1, simply rotate the switching pipe 302 so that the drying chamber 3022 faces upwards. When the drying chamber 3022 faces upwards, its side blocks the water supply channel 3012, and the water inside the water supply pipe 201 enters the drying chamber 3022, affecting the drying and dehumidification effect. At the same time, the drying hole 30221 can overlap with the functional hole 3011. At this time, the moisture in the soil can be absorbed by the water-absorbing filler (such as water-absorbing paper, activated carbon, etc.) inside the drying chamber 3022 through the functional hole 3011 and the drying hole 30221, thereby reducing the moisture content inside the soil, that is, reducing the soil moisture. The switching is quick and easy to use. After the dehumidification operation is completed, simply return the switching pipe 302 to the state where the humidification chamber 3021 faces upwards. This can prevent the phenomenon of excessive absorption of soil moisture. At the same time, closing the control valve 202 will not continue to humidify the soil, ensuring that the soil moisture is within a suitable range.
Claims
1. A flower trough with humidity control function, characterized in that, include: The flower trough (1) and the control assembly, the control assembly consisting of a water supply mechanism (2) and an adjustment mechanism (3); The water supply mechanism (2) consists of a water supply pipe (201) and a control valve (202). The control valve (202) is installed at one end of the water supply pipe (201). The regulating mechanism (3) consists of a buried pipe (301) and a switching pipe (302). One end of the buried pipe (301) is fixedly installed on the side of the water supply pipe (201), and the buried pipe (301) is fixedly installed inside the flower bed (1). The buried pipe (301) is buried inside the soil of the flower bed (1), and the switching pipe (302) is rotatably connected to the inside of the buried pipe (301).
2. A flower trough with humidity control function according to claim 1, characterized in that, The switching tube (302) is damped when it rotates inside the buried tube (301), and the switching tube (302) is provided with a humidification chamber (3021) and a drying chamber (3022), and the cavities of the humidification chamber (3021) and the drying chamber (3022) are independent of each other.
3. A flower trough with humidity control function according to claim 2, characterized in that, The upper part of the buried pipe (301) has a functional hole (3011) inside. The switching pipe (302) located in the humidification chamber (3021) has a humidification hole (30211), and the switching pipe (302) located in the drying chamber (3022) has a drying hole (30221).
4. A flower trough with humidity control function according to claim 3, characterized in that, The humidification chamber (3021) is designed to be sealed at the end away from the water supply pipe (201), and the drying chamber (3022) is designed to be sealed at the end near the water supply pipe (201).
5. A flower trough with humidity control function according to claim 4, characterized in that, The upper part of the buried pipe (301) is provided with a water supply channel (3012). When the humidification chamber (3021) is facing upwards, the water supply channel (3012) connects the water supply pipe (201) and the humidification chamber (3021).
6. A flower trough with humidity control function according to claim 5, characterized in that, The adjustment mechanism (3) also includes a replacement lever (303), which is inserted into the interior of the drying chamber (3022), and the interior of the drying chamber (3022) is filled with water-absorbing filler.