Intelligent logistics container humidity control equipment
By using pulleys, conveyor belts, and rotating components to drive the atomizing nozzles in smart logistics containers, the problems of limited spray range and uneven humidity in atomization humidification methods are solved, achieving uniform distribution and stable control of humidity inside the container.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HONGHAO (SHENZHEN) SUPPLY CHAIN CO LTD
- Filing Date
- 2025-06-25
- Publication Date
- 2026-05-15
AI Technical Summary
Existing atomized humidification methods in smart logistics containers suffer from limited spray range, uneven humidity distribution, and a tendency to cause localized condensation, which affect cargo quality and safety.
The atomizing nozzle is driven to rotate by a pulley, conveyor belt and drive motor. The rotating assembly drives the distribution pipe to rotate synchronously with the atomizing nozzle. Combined with the connection plate and corrugated wheel, the atomizing nozzle can spray in multiple dimensions and all directions inside the container, expanding the spraying range and achieving uniform humidity distribution.
It significantly expands the spraying range and the uniformity of humidity distribution, providing a more stable storage and transportation environment and ensuring improved humidity control within the container.
Smart Images

Figure CN224241786U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of logistics equipment, and in particular relates to a smart logistics container humidity control device. Background Technology
[0002] Smart logistics containers are modern logistics transportation equipment that integrates advanced functions such as information technology, sensing technology, and automatic control technology. They not only enable safe and efficient transportation of goods but also allow for real-time monitoring of the container's internal environment and cargo status through various sensors and communication devices. Applying humidity control equipment to smart logistics containers helps protect goods from damage caused by excessively high or low humidity levels, and also helps businesses meet relevant legal and regulatory requirements, improve service quality and customer satisfaction, thereby further enhancing their market competitiveness.
[0003] In the application scenario of humidity control in smart logistics containers, the current common method is to use atomization humidification to regulate the internal environment of the container. Although this method has the advantages of high humidification efficiency and fast response speed, it has exposed many problems in actual use. For example, the atomization spray range is limited and it is difficult to fully cover the internal space of the container; the humidity distribution is uneven, resulting in some areas having excessively high or low humidity; and it is also easy to cause local condensation, resulting in water droplets on the inner wall of the container or the surface of the goods. These problems seriously affect the overall humidity control effect, and may pose a potential threat to the quality and safety of the goods.
[0004] Therefore, it is necessary to design a smart logistics container humidity control device to solve the above-mentioned technical problems. Utility Model Content
[0005] In order to overcome the shortcomings of atomization humidification, such as limited spray range, uneven humidity distribution, and easy occurrence of local condensation, this utility model provides a smart logistics container humidity control device.
[0006] This utility model is achieved through the following technical approach: A smart logistics container humidity control device includes a container body, an atomizing humidification device, a connecting pipe, a support plate, a distribution pipe, a connecting clamp, a support frame, and an atomizing nozzle. The atomizing humidification device is installed on the upper side of the container body. One end of the connecting pipe is fixedly connected to the upper side of the atomizing humidification device. The support plate is installed on the inner top side of the container body. The distribution pipe is slidably and rotatably disposed between the container body and the support plate. One end of the distribution pipe passes through the container body and extends to the outside of the container body. The other end of the connecting pipe is rotatably connected to one end of the distribution pipe. Multiple nozzles along its length are fixedly connected to the outside of the distribution pipe. The container includes evenly distributed connecting clamps, with a support frame installed between the upper parts of the clamps. Multiple atomizing nozzles are rotatably mounted on the support frame, evenly distributed along its length. The water inlet ends of the multiple atomizing nozzles face downwards and are rotatably connected to multiple water outlet ends of the distribution pipe facing upwards. The container also includes pulleys, a conveyor belt, a drive motor, and a rotating assembly. The drive motor is mounted on the upper part of one end of the support frame, with its output shaft extending downwards. A pulley is fixed to the output shaft of the drive motor and the water inlet ends of the multiple atomizing nozzles. A conveyor belt is rotatably mounted between every two adjacent pulleys. The rotating assembly is located between the container body and the distribution pipe.
[0007] Furthermore, the rotating assembly includes a protective box, a reciprocating rotary motor, a drive gear, and a driven gear. The protective box is installed on the upper side of the container body and is located in front of the atomizing humidification device. One end of the distribution pipe extends to the outside of the container body and passes through the protective box. The reciprocating rotary motor is installed on one side of the protective box, and its output shaft extends to the right and enters the interior of the protective box. The drive gear is fixed to the output shaft of the reciprocating rotary motor. One end of the distribution pipe passes through the drive gear and slides with it. The driven gear is fixed to one end of the distribution pipe and is located behind the drive gear and meshes with it.
[0008] Furthermore, it also includes a connecting plate and a corrugated wheel. The connecting plate is installed inside the protective box, and the corrugated wheel is fixed to one end of the distribution pipe. The protrusions at both ends of the connecting plate are embedded in the corrugated grooves of the corrugated wheel and form a sliding fit with the corrugated wheel through the corrugated grooves.
[0009] Furthermore, one end of the distribution pipe is slidably engaged with the drive gear via two protruding strips.
[0010] Furthermore, the protective box is made of high-strength, corrosion-resistant alloy materials.
[0011] Furthermore, an appropriate gap is left between the top surface of the atomizing nozzle and the inner top surface of the container body. This gap serves as the reserved space for the atomizing nozzle to rotate when the distribution pipe drives it.
[0012] Beneficial effects: 1. By setting up pulleys, conveyor belts and drive motors, the atomizing nozzles are driven to rotate. At the same time, the rotating components drive the distribution pipes to rotate synchronously with the atomizing nozzles, realizing multi-dimensional and all-round spraying of the atomizing nozzles inside the container body. This significantly expands the spraying range, makes the humidity distribution inside the container body more uniform, and provides a more stable storage and transportation environment for goods.
[0013] 2. Through the cooperation of the connecting plate and the corrugated wheel, the distribution pipe is driven to make linear motion during rotation, thereby further expanding the spray coverage area of the atomizing nozzle inside the container body and making the humidity regulation effect better. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a partial sectional view of the container body component of this utility model.
[0016] Figure 3 This is a three-dimensional structural diagram of the connecting clamp, support frame, and atomizing nozzle of this utility model.
[0017] Figure 4 This is a three-dimensional structural diagram of the pulley, conveyor belt, and drive motor components of this utility model.
[0018] Figure 5 This is a partial cross-sectional view of the protective box component of this utility model.
[0019] In the diagram: 1. Container body, 2. Atomizing humidification device, 3. Connecting pipe, 4. Support plate, 5. Distribution pipe, 6. Connecting clamp, 7. Support frame, 8. Atomizing nozzle, 9. Pulley, 10. Conveyor belt, 11. Drive motor, 12. Protective box, 13. Reciprocating rotary motor, 14. Drive gear, 15. Driven gear, 16. Connecting plate, 17. Corrugated wheel. Detailed Implementation
[0020] Example: A smart logistics container humidity control device, such as Figures 1-5As shown, the system includes a container body 1, an atomizing humidifier 2, a connecting pipe 3, a support plate 4, a distribution pipe 5, connecting clamps 6, a support frame 7, and an atomizing nozzle 8. The atomizing humidifier 2 is bolted to the upper left side of the container body 1. The rear end of the connecting pipe 3 is welded to the upper left side of the atomizing humidifier 2. The support plate 4 is bolted to the inner top right side of the container body 1. The distribution pipe 5 is slidably and rotatably positioned between the container body 1 and the support plate 4, with its left end passing through the container body 1 and extending to the outside of the container body 1. The front end of the connecting pipe 3 is rotatably connected to the left end of the distribution pipe 5. Three connecting clamps 6 are welded to the outside of the distribution pipe 5, evenly distributed along its length. A support frame 7 is installed between the upper parts of the three connecting clamps 6. Four connecting clamps along its length are rotatably mounted on the support frame 7. The atomizing nozzles 8 are evenly distributed in the direction. The water inlet ends of the four atomizing nozzles 8 face downwards and are rotatably connected to the four water outlet ends of the distribution pipe 5 facing upwards. An appropriate gap is left between the top surface of the atomizing nozzles 8 and the inner top surface of the container body 1. This gap serves as the reserved space for the atomizing nozzles 8 to rotate when the distribution pipe 5 drives them. The container body 1 also includes pulleys 9, conveyor belts 10, drive motors 11 and rotating components. The drive motor 11 is bolted to the upper left end of the support frame 7, and its output shaft extends downwards. A pulley 9 is welded to the output shaft of the drive motor 11 and the outside of the water inlet ends of the four atomizing nozzles 8. A conveyor belt 10 is rotatably arranged between every two adjacent pulleys 9, for a total of four conveyor belts 10. The rotating component is located between the container body 1 and the distribution pipe 5.
[0021] like Figure 1 , Figure 3 , Figure 4 and Figure 5 As shown, the rotating assembly includes a protective box 12, a reciprocating rotary motor 13, a drive gear 14, and a driven gear 15. The protective box 12 is bolted to the upper left side of the container body 1 and is located in front of the atomizing humidification device 2. The protective box 12 is made of high-strength, corrosion-resistant alloy material. The distribution pipe 5 extends to the left end of the container body 1 and passes through the protective box 12. The reciprocating rotary motor 13 is bolted to the left side of the protective box 12, and its output shaft extends to the right and passes into the interior of the protective box 12. The drive gear 14 is welded to the output shaft of the reciprocating rotary motor 13. The left end of the distribution pipe 5 passes through the drive gear 14 and slides with it. The left end of the distribution pipe 5 slides with the drive gear 14 through two protruding strips. This allows the distribution pipe 5 to rotate and also allows it to move linearly. The driven gear 15 is welded to the left end of the distribution pipe 5 and is located behind the drive gear 14 and meshes with it.
[0022] like Figure 3 , Figure 4 and Figure 5As shown, it also includes a connecting plate 16 and a corrugated wheel 17. The connecting plate 16 is bolted to the inside of the protective box 12, and the corrugated wheel 17 is welded to the left end of the distribution pipe 5. The protrusions at the upper and lower ends of the connecting plate 16 are embedded in the corrugated grooves of the corrugated wheel 17, and form a sliding fit with the corrugated wheel 17 through the corrugated grooves.
[0023] After the atomizing humidifier 2 atomizes the water, it is transported to the distribution pipe 5 through the connecting pipe 3. In the initial state, the atomizing nozzle 8 can spray within a certain angle range. When the drive motor 11 starts, its output shaft drives the pulley 9 connected to it to rotate. Through the transmission action of the conveyor belt 10, the four atomizing nozzles 8 start to rotate synchronously. In this way, the atomizing nozzles 8 can spray mist droplets into the container body 1 in a rotating manner, expanding the spray range of a single nozzle.
[0024] At the same time, the reciprocating rotary motor 13 starts, and its output shaft drives the drive gear 14 to rotate. Since the drive gear 14 meshes with the driven gear 15, the driven gear 15 drives the distribution pipe 5 to rotate, thereby realizing the synchronous rotation of the distribution pipe 5 and the atomizing nozzle 8, so that the atomizing nozzle 8 can perform all-round rotational spraying in the horizontal direction, further increasing the spraying range and making the humidity distribution inside the container body 1 more uniform.
[0025] During the rotation of the distribution pipe 5, the corrugated wheel 17 slides along the connecting plate 16. Due to the special structure of the corrugated wheel 17, a certain axial force is generated during the sliding process, which drives the distribution pipe 5 to make linear motion. This linear motion allows the atomizing nozzle 8 to move along the length of the container body 1 while rotating, thereby covering all areas inside the container body 1 and ensuring that the humidity inside the entire container body 1 can be effectively regulated.
Claims
1. A smart logistics container humidity control device, comprising a container body (1), an atomizing humidifier (2), a connecting pipe (3), a support plate (4), a distribution pipe (5), a connecting clamp (6), a support frame (7), and an atomizing nozzle (8). The atomizing humidifier (2) is installed on the upper side of the container body (1), one end of the connecting pipe (3) is fixed to the upper side of the atomizing humidifier (2), the support plate (4) is installed on the inner top side of the container body (1), and the distribution pipe (5) is slidably and rotatably disposed between the container body (1) and the support plate (4). One end of the connecting pipe (3) passes through the container body (1) and extends to the outside of the container body (1). The other end of the connecting pipe (3) is rotatably connected to one end of the distribution pipe (5). Multiple connecting clamps (6) are fixedly connected to the outside of the distribution pipe (5) and are evenly distributed along its length. A support frame (7) is installed between the upper parts of the multiple connecting clamps (6). Multiple atomizing nozzles (8) are rotatably arranged on the support frame (7) and are evenly distributed along its length. The water inlet ends of the multiple atomizing nozzles (8) face downward and are rotatably connected to the multiple water outlet ends of the distribution pipe (5) facing upward. The characteristic is that... It also includes a pulley (9), a conveyor belt (10), a drive motor (11) and a rotating assembly. The drive motor (11) is installed on the upper part of one end of the support frame (7), and its output shaft extends downward. A pulley (9) is fixed to the outside of the output shaft of the drive motor (11) and the water inlet of multiple atomizing nozzles (8). A conveyor belt (10) is rotatably arranged between every two adjacent pulleys (9). The rotating assembly is arranged between the container body (1) and the distribution pipe (5).
2. The intelligent logistics container humidity control equipment according to claim 1, characterized in that, The rotating assembly includes a protective box (12), a reciprocating rotary motor (13), a drive gear (14), and a driven gear (15). The protective box (12) is installed on the upper side of the container body (1) and is located in front of the atomizing humidification device (2). One end of the distribution pipe (5) extends to the outside of the container body (1) and passes through the protective box (12). The reciprocating rotary motor (13) is installed on one side of the protective box (12), and its output shaft extends to the right and passes into the interior of the protective box (12). The drive gear (14) is fixed to the output shaft of the reciprocating rotary motor (13). One end of the distribution pipe (5) passes through the drive gear (14) and slides with it. The driven gear (15) is fixed to one end of the distribution pipe (5) and is located behind the drive gear (14) and meshes with it.
3. The intelligent logistics container humidity control equipment according to claim 2, characterized in that, It also includes a connecting plate (16) and a corrugated wheel (17). The connecting plate (16) is installed inside the protective box (12), and the corrugated wheel (17) is fixed to one end of the distribution pipe (5). The protrusions at both ends of the connecting plate (16) are embedded in the corrugated groove of the corrugated wheel (17) and form a sliding fit with the corrugated wheel (17) through the corrugated groove.
4. The intelligent logistics container humidity control equipment according to claim 3, characterized in that, One end of the distribution tube (5) is slidably engaged with the drive gear (14) through two protruding strips.
5. The intelligent logistics container humidity control equipment according to claim 4, characterized in that, The protective box (12) is made of high-strength, corrosion-resistant alloy material.
6. The intelligent logistics container humidity control equipment according to claim 5, characterized in that, An appropriate gap is left between the top surface of the atomizing nozzle (8) and the inner top surface of the container body (1). This gap serves as the reserved space for the atomizing nozzle (8) to rotate when the distribution pipe (5) drives it.