A dynamic intelligent petal sprayer
By introducing a biomimetic leaf structure and drive mechanism into the humidifier, the opening and closing action of plant leaves is simulated, solving the problem of monotonous humidifier appearance design, achieving a combination of functionality and aesthetics, and enhancing the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NINGBO YUANDA TECHNOLOGY CO LTD
- Filing Date
- 2025-08-19
- Publication Date
- 2026-07-24
AI Technical Summary
Existing humidifiers have limited functionality and lack aesthetic appeal in their design, making them difficult to match with the personalized decoration needs of modern homes and offices, and unable to create a natural and comfortable environment.
It adopts a biomimetic leaf structure and uses a drive mechanism to simulate the opening and closing motion of plant leaves. Combined with a humidification function, it achieves a dynamic effect and enhances the emotional decoration.
By using biomimetic blade dynamic simulation, the visual aesthetics of the humidifier are enhanced, visual fatigue is relieved, and it provides dual value as a functional and emotional decoration.
Smart Images

Figure CN224551696U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of humidifier technology, and in particular to a dynamic intelligent petal sprayer. Background Technology
[0002] With the improvement of living standards, humidifiers have become a common device for regulating air humidity in homes, offices, and other indoor environments. However, existing humidifiers generally suffer from limited functionality and rigid design: most products only have basic humidification functions, and their appearance design focuses on simplicity and practicality, lacking aesthetic integration with the environment; while some high-end humidifiers attempt to add decorative elements, their dynamic effects are insufficient, making it difficult to create a natural atmosphere.
[0003] The market lacks humidifiers that combine functionality and emotional appeal. Users not only need stable humidification but also expect the product's design to alleviate visual fatigue and create a natural and comfortable environment. Especially in today's highly homogenized indoor environments, the static appearance of traditional humidifiers struggles to match the personalized decorating needs of modern homes and offices, failing to convey a natural and vibrant environmental feel through their design, resulting in low added value beyond functionality. Utility Model Content
[0004] To address the aforementioned problems, this application provides a dynamic intelligent petal sprayer.
[0005] The dynamic intelligent petal sprayer provided in this application adopts the following technical solution: A dynamic intelligent petal sprayer includes: a humidifier body with an internal installation space for integrating humidification components and mounting a biomimetic leaf structure and a drive mechanism; a biomimetic leaf structure configured as a movable component simulating the morphology of plant leaves, one end of which is rotatably connected to the humidifier body; the biomimetic leaf structure achieves opening and closing actions through rotation; and the drive mechanism is a power execution component disposed inside the humidifier body or connected to the humidifier body and the biomimetic leaf structure, used to output driving force to drive the biomimetic leaf structure to achieve opening and closing actions.
[0006] Preferably, the drive mechanism includes at least one blade drive method, which can independently or collaboratively control the opening and closing states of one or more bionic blades.
[0007] Preferably, the blade driving method includes an electric rotating shaft frame, which is located at the connection between the bionic blade structure and the humidifier body. The electric rotating shaft frame directly drives the rotation of a single bionic blade to achieve opening and closing, and the opening and closing actions of multiple bionic blades can be coordinated and controlled by a control module.
[0008] Preferably, the blade driving method includes a rope drive assembly, which includes a connector, a drive rope, and a displacement drive component disposed on the bionic blade. One end of the drive rope is connected to the connector, and the other end passes through the humidifier body and is connected to the displacement drive component. The elastic reset component is disposed at the connection between the bionic blade and the humidifier body. The displacement action of the displacement drive component causes the drive rope to tighten, thereby closing the bionic blade. After the displacement drive component resets, the elastic reset component drives the bionic blade to return to the open state.
[0009] Preferably, the displacement driving component includes: a rotating block for connecting the transmission rope and a sliding frame for fixing the transmission rope, wherein the rotating block is disposed on the transmission rope fixing frame.
[0010] Preferably, the humidifier body includes: a humidifier shell, a positioning frame, a humidifier nozzle, and a water storage box. The humidifier nozzle is used to output mist, the water storage box is used to store humidification water, and the positioning frame is used to position and fix the humidifier nozzle and the water storage box.
[0011] Preferably, the humidifier housing is provided with a channel structure for the transmission rope to pass through, and the transmission rope enters the interior of the humidifier body through the channel structure.
[0012] Preferably, the biomimetic blade structure includes: a blade body and a connecting support rod that cooperates with an electric rotating shaft frame, wherein the connecting support rod is driven by the electric rotating shaft frame to drive the blade body to rotate.
[0013] In summary, this application includes the following beneficial technical effects: Using a biomimetic leaf structure to simulate plant morphology, the opening and closing of the leaves can dynamically simulate the state of natural plants, adding natural vitality to the indoor environment, relieving visual fatigue, and achieving the dual value of "humidification function + emotional decoration".
[0014] The water storage box, bionic blades and other components adopt a modular design, which is easy to disassemble and clean; the transmission rope, return spring and other vulnerable parts of the rope transmission component are easy to replace, reducing the later maintenance cost. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of a dynamic intelligent petal sprayer according to the present invention.
[0016] Figure 2 This is a schematic diagram of the main body of the humidifier of this utility model.
[0017] Figure 3 This is a schematic diagram of the internal structure of the humidifier body of this utility model.
[0018] Figure 4 This is a schematic diagram of the structure of Embodiment 2 of this utility model.
[0019] Explanation of reference numerals in the attached drawings: 1. Humidifier body; 2. Bionic blade structure; 3. Base structure; 4. Displacement drive component; 11. Humidifier housing; 12. Positioning frame; 13. Humidifier nozzle; 14. Water storage box; 15. Through hole; 21. Blade body; 22. Electric rotating shaft frame; 23. Connecting support rod; 24. Transmission rope fixing block; 25. Transmission rope; 26. Rotating connecting rod; 27. Return spring; 41. Transmission rope fixing frame; 42. Rotating block; 43. Sliding frame. Detailed Implementation
[0020] The following is in conjunction with the appendix Figures 1-4 This application will be described in further detail.
[0021] Example 1 This application discloses a dynamic intelligent petal sprayer. (Refer to...) Figure 1 The humidifier includes a main body 1, a biomimetic blade structure 2, and a drive mechanism. The main body 1 has an internal installation space that supports the position and structure of other components. The installation space integrates the humidification functional components. Mimicking the shape of plant leaves, the biomimetic blade structure 2 is designed as a lotus leaf, with one end of the lotus leaf rotatably connected to the main body 1, enabling opening and closing. The drive mechanism is a power actuator located inside the main body 1 or connected to both the main body 1 and the biomimetic blade structure 2. It provides driving force to drive the biomimetic blades to open and close. A base structure 3 is located at the bottom of the main body 1, and the base structure 3 has multiple blades or discs.
[0022] In the above embodiments, the drive mechanism further utilizes various blade driving methods to achieve independent or coordinated control of the opening and closing state of the bionic blades. In actual use, motor drive or magnetic drive is employed. The motor drives the rotation of the bionic blades through a gear transmission or belt transmission system. The motor can achieve the opening and closing of the blades through different speeds and directions. In electromagnetic drive, the magnetic field generated by an electromagnet is used to control the opening and closing of the blades through electromagnetic force. The electromagnet can be placed between the blade structure and the humidifier body 1, and the strength and direction of the magnetic field can be changed by adjusting the current, thereby achieving the movement of the blades.
[0023] In the above embodiment, the electric rotating shaft frame 22 is further located at the connection between the bionic blade structure 2 and the humidifier body 1, and is responsible for directly driving the rotation of the bionic blades. Its main function is to realize the opening and closing movement of the blades through an electric drive device (such as a motor or electric motor), similar to the swaying of plant leaves in nature under the action of external force. The electric rotating shaft frame 22 rotates a single blade through an electric device, thereby completing the opening and closing action. At this time, the opening and closing action of each blade is independently controlled, realizing flexible adjustment. Through the setting of the control module, the electric rotating shaft frame 22 can control the action of multiple blades, making them work together to form a unified opening and closing mode. Coordinated control enables the bionic blades of the humidifier to present more dynamic effects and increase the naturalness. The electric rotating shaft frame 22 includes: an electric drive device, which is set to the above-mentioned motor drive or electromagnetic drive. The motor generates rotational force by rotating, driving the rotating shaft frame and the connected bionic blades to open and close. The control module controls the movement state of the electric rotating shaft frame 22 and the bionic blades it drives by receiving user settings or sensor data (humidity, temperature or humidifier on / off status). The control module can control the movement of individual bionic leaves as needed. For example, a leaf can open and close independently under specific environmental conditions to simulate the effect of wind blowing or a plant swaying in the wind. Coordinated control: The movement of multiple bionic leaves can be synchronized or opened and closed according to a specific pattern through the control module.
[0024] The control module consists of a microcontroller (MCU), sensors, and a drive interface for the electric swivel mount 22. The MCU is responsible for the core control of the entire system, receiving sensor data, processing control algorithms, and issuing control signals. Sensors provide real-time environmental data to the control module, including temperature and humidity sensors, light sensors, and airflow sensors, which determine the opening and closing state of the blades. The drive interface for the electric swivel mount 22 converts the signals output by the control module into drive signals for the electric swivel mount 22, controlling the opening and closing of the blades. Based on sensor data, the control module uses a specific control algorithm to adjust the opening and closing state of the blades. Common control methods include: PID control (Proportional-Integral-Derivative Control). PID control algorithms can dynamically adjust the opening and closing amplitude and speed of the blades based on input data such as humidity and temperature. For example, when the humidity is too low, PID control can calculate how many blades need to be opened or control the speed of blade opening and closing to ensure humidification effect. Existing control algorithms can be used in practice.
[0025] like Figures 2 to 3As shown, the humidifier body 1 includes: a humidifier shell 11, a positioning frame 12, a humidifier nozzle 13, and a water storage box 14. The humidifier shell 11 serves as the external structure of the humidifier, protecting the internal components. The humidifier shell 11 is integrally injection molded from lightweight and durable materials such as plastic or ABS. The positioning frame 12 is used to fix the humidifier nozzle 13 and the water storage box 14 in the correct positions inside the humidifier, ensuring the stability of the nozzle direction and water supply. The positioning frame 12 must have sufficient strength and stability to prevent changes in component positions due to vibration or improper operation. Plastic or metal alloy is used. The humidifier nozzle 13 converts water into mist and evenly distributes it into the air to achieve a humidification effect. The humidifier nozzle 13 uses the ultrasonic oscillation principle (ultrasonic atomization), but an evaporative nozzle can also be used. The ultrasonic nozzle needs to be made of a material with a suitable frequency and high humidity resistance to ensure it does not fail during long-term operation. The water storage box 14 stores the water required for humidification. To meet the working requirements of the humidifier, in actual use, the humidifier box and the positioning frame 12 are connected by a threaded fit to allow for flexible loading and unloading.
[0026] In the above embodiment, the electric rotating shaft bracket 22, acting as a drive device, is responsible for rotating the entire blade body 21 via an electric motor. Connected to the connecting support rod 23, the electric rotating shaft bracket 22 controls the angle or direction of the blade through rotational motion, simulating the flapping or rotation of a blade in nature. The connecting support rod 23 serves to transmit force; through its connection with the electric rotating shaft bracket 22, it ensures that the rotational motion can be effectively transmitted to the blade body 21.
[0027] In actual use, unscrew the water storage box 14 from the humidifier body 1, add an appropriate amount of clean water, reinstall it, and tighten it to ensure that the positioning frame 12 securely fixes the water storage box 14 and the humidifier nozzle 13. After powering on, the humidifier starts its humidification function, and the humidifier nozzle 13 converts water into mist through ultrasonic oscillation or evaporation and diffuses it outward. In electric drive mode, the control module drives one or more bionic blades to open and close independently or collaboratively through the electric rotating shaft frame 22 according to environmental sensor data (temperature and humidity) or a preset program, simulating the natural swaying of blades. After use, turn off the power. If water needs to be changed or cleaning is required, simply unscrew the water storage box 14 again.
[0028] Example 2 Based on Example 1, a biomimetic humidifier based on rope drive is proposed. The main structure is consistent with that of Example 1, including humidifier body 1 and biomimetic blade structure 2. The main difference is that the drive mechanism uses a rope drive component instead of an electric rotating shaft drive.
[0029] Biomimetic humidifiers based on rope-driven mechanisms, such as Figure 4As shown, the device includes a rope drive assembly and an elastic reset assembly. The rope drive assembly includes a connector, a drive rope 25, and a displacement drive component 4. The connector is mounted on the bionic blade and is used to connect the blade to the drive rope 25. The connector is a drive rope fixing block 24. One end of the drive rope 25 is connected to the drive rope fixing block 24, and the other end passes through the humidifier body 1 and is connected to the displacement drive component 4. The drive rope 25 is made of nylon rope or steel wire rope.
[0030] The displacement drive component 4 is used to tighten the transmission rope 25, thereby achieving the closure of the bionic blades. The displacement drive component 4 adopts an electric drive (motor), pneumatic or hydraulic device, depending on the specific application scenario and requirements. The transmission rope 25 is wound and unwound by rotating or moving up and down the displacement drive component 4. The displacement drive component 4 includes: a transmission rope fixing frame 41, a rotating block 42 and a sliding frame 43. Multiple rotating blocks 42 are set at equal angles around the upper end of the transmission rope fixing frame 41. The rotating blocks 42 fix one end of the transmission rope 25 to the transmission rope fixing frame 41. A pneumatic or hydraulic device is installed at the bottom of the sliding frame 43. The up and down movement of the sliding frame 43 drives the transmission rope 25 to pass through the through hole 15 opened on the humidifier housing 11 for winding and unwinding, thereby pulling the blade body 21 to close. The rotating connecting rod 26 connects the blade body 21 and the humidifier body 1, assisting in the rotation and positioning of the blades.
[0031] After the displacement drive 4 is reset, the elastic reset assembly restores the bionic blades to the open state through elastic force. The elastic reset assembly is configured as a reset spring 27, a rubber sheet, or other elastic element, and is installed at the connection between the bionic blades and the humidifier body 1.
[0032] In the rope drive mode, the control module achieves displacement control through the power device (pneumatic or hydraulic) that drives the displacement drive component, which is compatible with the control module hardware of Embodiment 1.
[0033] In actual use, when the displacement drive component 4 starts working, it tightens the transmission rope 25, causing the bionic blades to gradually close. When the displacement drive component 4 stops working and resets, the elastic reset component uses elastic force to restore the blades to their original open state.
[0034] Finally, the following points should be noted: First, in the description of this application, it should be noted that, unless otherwise specified and limited, the terms "installation", "connection", and "linkage" should be interpreted broadly, and can be mechanical or electrical connections, or internal connections between two components, or direct connections. "Up", "down", "left", "right", etc. are only used to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may change. Secondly: The accompanying drawings of the embodiments disclosed in this utility model only involve the structures involved in the embodiments disclosed in this utility model. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this utility model can be combined with each other. Finally: The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
[0035] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A dynamic intelligent petal sprayer, characterized in that, include: The main body of the humidifier has an internal installation space for integrating humidification functional components and installing a biomimetic blade structure and drive mechanism; The biomimetic leaf structure is designed as a movable part that mimics the shape of plant leaves, with one end rotatably connected to the humidifier body. The biomimetic blade structure achieves opening and closing actions through rotation; The drive mechanism is a power execution component located inside the humidifier body or connected to the humidifier body and the bionic blade structure, and is used to output driving force to drive the bionic blade structure to achieve opening and closing action. The drive mechanism includes at least one blade drive method, which can independently or collaboratively control the opening and closing state of one or more bionic blades. The blade driving method includes an electric rotating shaft frame, which is set at the connection between the bionic blade structure and the humidifier body. The electric rotating shaft frame directly drives the rotation of a single bionic blade to achieve opening and closing, and the opening and closing actions of multiple bionic blades can be coordinated and controlled by the control module. The humidifier body includes: a humidifier shell, a positioning frame, a humidifier nozzle, and a water storage box. The humidifier nozzle is used to output mist, the water storage box is used to store humidification water, and the positioning frame is used to position and fix the humidifier nozzle and the water storage box.
2. The dynamic intelligent petal sprayer according to claim 1, characterized in that, The blade driving method includes a rope drive assembly, which includes a connector, a drive rope, and a displacement drive component disposed on the bionic blade. One end of the drive rope is connected to the connector, and the other end passes through the humidifier body and is connected to the displacement drive component. An elastic reset component is disposed at the connection between the bionic blade and the humidifier body. The displacement action of the displacement drive component causes the drive rope to tighten, thereby closing the bionic blade. After the displacement drive component resets, the elastic reset component causes the bionic blade to return to the open state.
3. A dynamic intelligent petal sprayer according to claim 2, characterized in that, The displacement driving component includes: a rotating block for connecting the transmission rope and a sliding frame for fixing the transmission rope, wherein the rotating block is disposed on the transmission rope fixing frame.
4. A dynamic intelligent petal sprayer according to claim 1, characterized in that, The humidifier housing is provided with a channel structure for the transmission rope to pass through, and the transmission rope enters the interior of the humidifier body through the channel structure.
5. A dynamic intelligent petal sprayer according to claim 1, characterized in that, The biomimetic blade structure includes: a blade body and a connecting support rod that cooperates with an electric rotating shaft frame. The connecting support rod is driven by the electric rotating shaft frame to drive the blade body to rotate.