Steel cylinder internally provided with air humidity detection device
By designing a fixing mechanism and air humidity detection device on the cylinder, the problem of the inconvenience of fixing the cylinder during storage is solved, the cylinder can be firmly clamped and quickly released, the safety and convenience are enhanced, and the humidity is monitored in real time to adapt to cylinders of different specifications and sizes.
Patent Information
- Application Number
- CN202422241974.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-13
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-09-13
AI Technical Summary
Steel cylinders are difficult to secure when stored in a centralized location and are easily knocked over, posing a safety hazard. Furthermore, it is impossible to monitor the internal humidity in real time.
A steel cylinder with an internal air humidity detection device is designed. It is equipped with a fixing mechanism, including components such as a base plate, a turbine, a connecting rod, a clamping block and a crank. The turbine is driven by a worm to rotate, thereby achieving secure clamping and quick release of the cylinder. It is adaptable to different specifications and sizes. The combination of a threaded groove design and a right-angle meshing power transmission method ensures the stability and safety of the cylinder.
It achieves rapid fixation and release of cylinders, improves ease of use, prevents shaking and loosening, ensures internal environmental stability, has flexibility and adaptability, enhances safety and reliability, and monitors humidity in real time through wireless communication.
Smart Images

Figure CN223345161U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of mechanical installation, in particular to a steel cylinder provided with an air humidity detection device. Background Art
[0002] Steel cylinders equipped with internal humidity detection devices are an advanced steel cylinder design designed to improve their adaptability to environmental conditions during storage and use. Equipped with humidity sensors, these cylinders can monitor the humidity level of the internal environment in real time, ensuring that the stored substances are not affected by excessive humidity, thereby maintaining their performance and quality. However, the inventors of this application have discovered the following problems in practical use:
[0003] At present, there are some problems in the actual use of steel cylinders equipped with air humidity monitoring devices. Usually, the steel cylinders are piled up in the ventilated corner of the laboratory without being restricted or fixed. When the experimenters access them, they may accidentally knock over the cylinders and injure the staff. Therefore, it is necessary to provide a steel cylinder equipped with an air humidity detection device to solve the above technical problems. Utility Model Content
[0004] The technical problem to be solved by the utility model is that it is inconvenient to store steel cylinders in a centralized manner. In view of the convenient fixing of steel cylinders in the prior art, a steel cylinder equipped with an air humidity detection device is provided.
[0005] To achieve the above-mentioned purpose, the technical solution of the utility model is: a steel cylinder provided with an air humidity detection device, comprising a fixing mechanism, a steel cylinder is installed on the fixing mechanism, the fixing mechanism comprises a base plate, a fixing groove is installed on one side of the base plate, a ventilation plate is connected to the inner wall of the fixing groove, a symmetrical support plate is installed on the other side of the base plate, the bottom of the sleeve is fixedly connected above the support plate, the rotating shaft at the head end of the sleeve is connected to a turbine, one end of the turbine is connected to a connecting rod, a clamping block is fixedly connected to the connecting rod, a connecting plate is fixedly connected below the support plate, a crank is installed on the outside of the connecting plate, the output end of the crank passes through the connecting plate and is connected to the worm, the other end of the worm passes through the connecting plate and is rotatably connected to the connecting plate, and a fixing rod is fixedly connected between the connecting rods.
[0006] By adopting the above technical solution, the crank handle is rotated, and the worm drives the turbine to rotate, which in turn drives the connecting rod and the clamping block to apply a firm clamping force to the cylinder, ensuring that the cylinder will not shake or loosen during use, thereby achieving rapid fixing and release of the cylinder, improving the convenience of use, and protecting the cylinder from external force impact through appropriate clamping force, maintaining the stability of the internal environment of the cylinder. The fixing mechanism also has certain flexibility and adaptability, and can adapt to cylinders of different specifications and sizes.
[0007] It is further configured that a circular hole is provided in the middle of the turbine, and the size of the circular hole is adapted to the connecting rod, and thread grooves are provided on the inner wall of the circular hole and the outer wall of the connecting rod. The connecting rod is threadedly connected to the turbine and is partially placed in the sleeve.
[0008] By adopting the above technical solution, the stability and reliability of the cylinder during the fixing process are ensured. Due to the design of the threaded groove, the connecting rod can be tightly screwed into the round hole of the turbine to form a firm connection. When the crank drives the turbine to rotate through the worm, the connecting rod will perform precise linear motion along the direction of the threaded groove, thereby driving the clamping block to apply appropriate clamping force to the cylinder. This precise adjustment mechanism enables the cylinder to be firmly fixed on the fixing mechanism, avoiding loosening or shaking caused by vibration or external force. Since the threaded connection between the connecting rod and the turbine allows the clamping force to be adjusted by rotation, it can easily adapt to cylinders of different specifications and sizes.
[0009] It is further configured that the fixing groove is adapted to the size of the cylinder, the ventilation plate is arc-shaped and adapted to the inner wall of the fixing groove, the fixing groove corresponds to the position of the support plate, and the support plates on both sides of the bottom plate are installed with connecting plates.
[0010] By adopting the above technical solution, the curved ventilation plate not only fits perfectly with the inner wall of the fixing groove, optimizing air circulation, but also protects the cylinder from sudden environmental changes. The curved setting is more conducive to dispersing external impact force, providing an extra layer of safety protection for the cylinder. The precise positioning of the fixing groove and the support plate ensures that the support plate can directly and effectively provide support for the cylinder, so that the cylinder can remain stable in any operating environment. The connecting plates installed on the support plates on both sides of the bottom plate not only strengthen the connection between the support plates, but also improve the structural rigidity of the entire fixing mechanism, providing a stable support platform for other key components such as cranks and worm gears, ensuring the coordination and efficiency of the entire fixing mechanism during operation.
[0011] It is further provided that the worm is located at the bottom of the turbine and meshes with the worm, and the worm and the turbine are at right angles when viewed from above.
[0012] By adopting the above technical solution, the worm is placed at the bottom of the turbine and realizes precise docking of power transmission through right-angle engagement, allowing users to easily drive the turbine to rotate vertically with the help of the crank, thereby realizing precise adjustment of the clamping force of the cylinder. The right-angle engagement between the worm and the turbine gives the fixing mechanism a unique self-locking feature. When the worm stops rotating, the turbine can remain firmly in its current position, effectively resisting external vibration or slight external force interference, preventing the cylinder from loosening or falling off, and greatly improving the safety and reliability of use.
[0013] It is further provided that an air humidity detection device is installed in the cylinder, and the air humidity detection device is connected to a remote monitoring terminal.
[0014] By adopting the above technical solution, an air humidity detection device is installed inside the cylinder. The device transmits the detected humidity data to a remote monitoring terminal in real time through advanced wireless communication technology. Furthermore, the compression block is driven by the connecting rod and the turbine to move in a linear manner.
[0015] By adopting the above technical solution, the precise coordination between the connecting rod and the turbine realizes linear motion, thereby performing precise and efficient clamping and loosening operations on the cylinder, ensuring the stability and safety of the cylinder fixation, and improving work efficiency through a simple transmission mechanism.
[0016] Compared with the related art, the steel cylinder provided by the utility model with an air humidity detection device has the following beneficial effects:
[0017] The utility model provides a steel cylinder with an air humidity detection device. The fixing mechanism is provided, and the crank handle is rotated to drive the worm to rotate the turbine, which in turn drives the connecting rod and the clamping block to apply a firm clamping force to the steel cylinder, ensuring that the steel cylinder will not shake or loosen during use, realizing quick fixation and release of the steel cylinder, improving the convenience of use, and protecting the steel cylinder from external force impact through appropriate clamping force, maintaining the stability of the internal environment of the steel cylinder, the fixing mechanism also has certain flexibility and adaptability, and can adapt to steel cylinders of different specifications and sizes, ensuring the stability and reliability of the steel cylinder during the fixing process, due to the design of the thread groove, the connecting rod can be tightly screwed into the circular hole of the turbine to form a firm connection, when the crank handle drives the turbine to rotate through the worm, the connecting rod will perform precise linear motion along the direction of the thread groove, thereby driving the clamping block to apply appropriate clamping force to the steel cylinder, this precise adjustment mechanism enables the steel cylinder to be firmly fixed on the fixing mechanism, avoiding loosening or shaking caused by vibration or external force.
[0018] The utility model provides a steel cylinder equipped with an air humidity detection device. The worm is placed at the bottom of the turbine and realizes precise docking of power transmission through right-angle engagement, so that the user can easily drive the turbine to rotate vertically by means of a crank, thereby realizing precise adjustment of the clamping force of the steel cylinder. The right-angle engagement between the worm and the turbine gives the fixing mechanism a unique self-locking characteristic. This characteristic ensures that when the worm stops rotating, the turbine can be firmly maintained in the current position, effectively resisting interference from external vibration or slight external force, preventing the steel cylinder from loosening or falling off, and greatly improving the safety and reliability of use. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1This is a schematic diagram of the overall structure of the utility model;
[0020] Figure 2 This is a schematic diagram of the fixing mechanism of the present utility model;
[0021] Figure 3 This is a detailed diagram of the fixing mechanism of the present utility model;
[0022] Figure 4 It is a top view of the fixing mechanism of the present utility model.
[0023] Numbers in the figure: 1. Fixing mechanism; 101. Bottom plate; 102. Fixing groove; 103. Ventilation plate; 104. Support plate; 105. Sleeve; 106. Turbine; 107. Connecting rod; 108. Pressing block; 109. Connecting plate; 110. Crank handle; 111. Fixing rod; 112. Worm; 2. Cylinder. DETAILED DESCRIPTION
[0024] In order to facilitate the understanding of the present invention, the present invention will be described in more detail below with reference to the accompanying drawings, in which typical embodiments of the present invention are shown.
[0025] Example 1:
[0026] like Figures 1 to 4 As shown, a steel cylinder with an air humidity detection device therein comprises a fixing mechanism 1, a steel cylinder 2 is mounted on the fixing mechanism 1, the fixing mechanism 1 comprises a bottom plate 101, a fixing groove 102 is mounted on one side of the bottom plate 101, a ventilation plate 103 is connected to the inner wall of the fixing groove 102, a symmetrical support plate 104 is mounted on the other side of the bottom plate 101, a bottom of a sleeve 105 is fixedly connected above the support plate, a turbine 106 is connected to the rotating shaft at the head end of the sleeve 105, a connecting rod 107 is connected to one end of the turbine 106, a pressing block 108 is fixedly connected to the connecting rod 107, a connecting plate 109 is fixedly connected to the bottom of the support plate 104, A crank 110 is installed on the outside of the connecting plate 109. The output end of the crank 110 passes through the connecting plate 109 and is connected to the worm 112. A fixing rod 111 is fixedly connected between the connecting rods 107 and 107. When the crank is rotated, the worm drives the turbine to rotate, and then drives the connecting rod and the clamping block to apply a firm clamping force to the cylinder, ensuring that the cylinder will not shake or loose during use, realizing rapid fixation and release of the cylinder, improving the convenience of use, and protecting the cylinder from external impact through appropriate clamping force, maintaining the stability of the internal environment of the cylinder. The fixing mechanism also has certain flexibility and adaptability.
[0027] like Figure 3As shown, a circular hole is provided in the middle of the turbine 106, and the size of the circular hole is adapted to the connecting rod 107. The inner wall of the circular hole and the outer wall of the connecting rod 107 are both provided with threaded grooves. The connecting rod 107 is threadedly connected to the turbine 106 and is partially placed in the sleeve 105, ensuring the stability and reliability of the cylinder during the fixing process. Due to the design of the threaded groove, the connecting rod 107 can be tightly screwed into the circular hole of the turbine 106 to form a firm connection. When the crank 110 drives the turbine 106 to rotate through the worm 112, the connecting rod 107 will perform precise linear motion along the direction of the threaded groove, thereby driving the clamping block 108 to apply appropriate clamping force to the cylinder. This precise adjustment mechanism enables the cylinder to be firmly fixed on the fixing mechanism, avoiding loosening or shaking caused by vibration or external force. Since the threaded connection between the connecting rod 107 and the turbine 106 allows the clamping force to be adjusted by rotation, it can easily adapt to cylinders of different specifications and sizes.
[0028] like Figure 1 、 Figure 2 As shown, the fixing groove 102 is adapted to the size of the cylinder 2, the ventilation plate 103 is arc-shaped and adapted to the inner wall of the fixing groove 102, the position of the fixing groove 102 and the support plate 104 corresponds to each other, and the support plates 104 on both sides of the bottom plate 101 are installed with connecting plates 109. The ingenious integration of the arc-shaped ventilation plate 103 not only fits perfectly with the inner wall of the fixing groove 102, optimizing air circulation, but also protects the cylinder from sudden changes in the environment. Its arc-shaped design is more conducive to dispersing external impact force, providing an additional layer of safety protection for the cylinder. The precise positioning of the fixing groove 102 and the support plate 104 ensures that the support plate can directly and effectively provide support for the cylinder, so that the cylinder can remain stable in any operating environment. The connecting plates 109 installed on the support plates 104 on both sides of the bottom plate 101 not only strengthen the connection between the support plates, but also improve the structural rigidity of the entire fixing mechanism, providing a stable support platform for other key components such as cranks and worm gears, ensuring the coordination and efficiency of the entire fixing mechanism during operation.
[0029] Example 2:
[0030] like Figures 1 to 4 As shown, the worm 112 is located at the bottom of the turbine 106 and meshes with it. The worm 112 and the turbine 106 are at right angles when viewed from above. The worm 112 is cleverly placed at the bottom of the turbine 106 and achieves precise docking of power transmission through right-angled meshing, allowing the user to easily drive the turbine to rotate vertically by means of a crank, thereby achieving precise adjustment of the clamping force of the cylinder. The right-angle meshing between the worm and the turbine gives the fixing mechanism a unique self-locking feature. When the worm stops rotating, the turbine can remain firmly in its current position, effectively resisting interference from external vibrations or slight external forces, preventing the cylinder from loosening or falling off, and greatly improving the safety and reliability of use.
[0031] like Figure 1 As shown, an air humidity detection device is installed in the cylinder 2, and the air humidity detection device is connected to the remote monitoring terminal. An air humidity detection device is provided inside the cylinder, and the device transmits the detected humidity data to the remote monitoring terminal in real time through advanced wireless communication technology.
[0032] like Figure 3 As shown, the clamping block 108 moves in a straight line under the drive of the connecting rod 107 and the turbine 106. The precise cooperation between the connecting rod 107 and the turbine 106 realizes the linear motion, thereby performing accurate and efficient clamping and loosening operations on the cylinder, which can ensure the stability and safety of the cylinder fixation and improve work efficiency through a simple transmission mechanism.
[0033] During implementation, the cylinder 2 is placed in the fixing groove 102, and the ventilation plate 103 is tightly attached to the inner wall of the fixing groove 102 to ensure air circulation and reduce moisture accumulation. The support plate 104 is installed on the other side of the bottom plate 101 to ensure that the support plate corresponds to the position of the fixing groove 102 to provide a stable support for the entire fixing mechanism;
[0034] By manually turning the crank 110, since the output end of the crank 110 is connected to the worm 112, the worm 112 drives the turbine 106 to move, and the turbine 106 is threadedly connected to the connecting rod 107, and the connecting rod 107 is fixed by the fixing rod 111. The connecting rod 107 will perform precise linear motion along the direction of the thread groove. At this time, the turbine 106 rotates on the sleeve 105. Since the turbine 106 is threadedly connected to the connecting rod 107, the connecting rod 107 is driven by the turbine 106 to perform left and right tightening and loosening movements. A clamping block 108 is fixedly connected to the connecting rod 107, and the clamping block 108 fixes and limits the cylinder 2, and the humidity detection device inside the cylinder 2 monitors the cylinder 2.
[0035] The advantages of this technical solution in practical applications include but are not limited to the following:
[0036] 1. Due to the design of the thread groove, the connecting rod can be tightly screwed into the circular hole of the turbine to form a firm connection. When the crank drives the turbine to rotate through the worm, the connecting rod will perform precise linear motion along the direction of the thread groove, thereby driving the clamping block to apply appropriate clamping force to the cylinder;
[0037] 2. Rotate the crank handle, the worm drives the turbine to rotate, and then drives the connecting rod and the clamping block to apply a firm clamping force to the cylinder, ensuring that the cylinder will not shake or loosen during use, realizing the rapid fixation and release of the cylinder, improving the convenience of use, and protecting the cylinder from external impact through appropriate clamping force, maintaining the stability of the internal environment of the cylinder. The fixing mechanism also has certain flexibility and adaptability, and can adapt to cylinders of different specifications and sizes.
Claims
1. A steel cylinder equipped with an air humidity detection device, characterized in that: The invention comprises a fixing mechanism (1), wherein a cylinder (2) is installed on the fixing mechanism (1), wherein the fixing mechanism (1) comprises a bottom plate (101), wherein a fixing groove (102) is installed on one side of the bottom plate (101), wherein the inner wall of the fixing groove (102) is connected to a ventilation plate (103), wherein a symmetrical support plate (104) is installed on the other side of the bottom plate (101), wherein the bottom of a sleeve (105) is fixedly connected above the support plate, wherein the rotating shaft at the head end of the sleeve (105) is connected to a turbine (103). 6), one end of the turbine (106) is connected to a connecting rod (107), a pressing block (108) is fixedly connected to the connecting rod (107), a connecting plate (109) is fixedly connected below the support plate (104), a crank (110) is installed on the outside of the connecting plate (109), the output end of the crank (110) passes through the connecting plate (109) and is connected to the worm (112), and a fixing rod (111) is fixedly connected between the connecting rod (107) and the connecting rod (107).
2. A steel cylinder equipped with an air humidity detection device according to claim 1, characterized in that: A circular hole is provided in the middle of the turbine (106), and the size of the circular hole is adapted to the connecting rod (107). The inner wall of the circular hole and the outer wall of the connecting rod (107) are both provided with thread grooves. The connecting rod (107) is threadedly connected to the turbine (106) and is partially placed in the sleeve (105).
3. The steel cylinder with a built-in air humidity detection device according to claim 1, characterized in that: The fixing groove (102) is adapted to the size of the steel cylinder (2); the ventilation plate (103) is arc-shaped and adapted to the inner wall of the fixing groove (102); the fixing groove (102) and the support plate (104) are positioned correspondingly; the support plates (104) on both sides of the bottom plate (101) are installed with connecting plates (109).
4. The steel cylinder with a built-in air humidity detection device according to claim 3, characterized in that: The worm (112) is located at the bottom of the turbine (106) and meshes with the worm (112). The worm (112) and the turbine (106) are at right angles when viewed from above.
5. The steel cylinder with a built-in air humidity detection device according to claim 1, characterized in that: An air humidity detection device is installed in the steel cylinder (2), and the air humidity detection device is connected to a remote monitoring terminal.
6. The steel cylinder with a built-in air humidity detection device according to claim 1, characterized in that: The pressing block (108) is driven by the connecting rod (107) and the turbine (106) to move in a straight line.