A space fumigation sterilization generator
Patent Information
- Application Number
- CN202521724449.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-14
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-08-14
AI Technical Summary
[0005]为了克服现有的熏蒸操作时,加入福尔马林溶液和高锰酸钾后,操作人员需迅速撤离现场,该操作过程不仅繁琐,而且对人员的操作速度及熟练程度要求较高,一旦出现纰漏将会影响熏蒸效果,并对操作人员的健康带来危害的缺点,本实用新型提供一种能够使人能在密闭空间外进行远程操控,避免药物反应对操作人员带来伤害的空间熏蒸消毒发生器
[0012] Compared with the prior art, the present invention has the following advantages: 1. The present invention controls the rotation of the robotic arm by remote control, causing the graduated bottle to tilt. The motor is started by remote control, which drives the winding wheel to rotate, so that the pull rope is released from the winding wheel. The torsion spring returns to its original state, which drives the sealing cover to rotate and open, so that the large amount of formaldehyde gas generated is released into the sealed space. This achieves the effect of enabling people to remotely control the device from outside the sealed space, avoiding the harm to the operator caused by the drug reaction.
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Figure CN224655699U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fumigation and disinfection technology, and in particular to a space fumigation and disinfection generator. Background Technology
[0002] Space fumigation disinfection is an important disinfection method, mainly used for the thorough disinfection of items and spaces in enclosed areas. In the agricultural field, it is mainly used for the disinfection of materials entering pig farms to prevent the occurrence of African swine fever, as well as for the disinfection of hatching eggs in chicken houses to kill pathogenic microorganisms and insect eggs, ensuring the health of chickens.
[0003] The existing fumigation procedure requires adding formalin solution to a container containing potassium permanganate. When formalin solution and potassium permanganate react, a large amount of formaldehyde gas is produced. Since formaldehyde is harmful to the human body, the operator must quickly evacuate the site after adding formalin solution and potassium permanganate. This procedure is not only cumbersome, but also requires a high level of speed and skill from the operator. Any mistakes will affect the fumigation effect and endanger the health of the operator.
[0004] Therefore, it is necessary to design a space fumigation and disinfection generator that allows people to remotely control it from outside a confined space, thus avoiding harm to operators from drug reactions. Utility Model Content
[0005] To overcome the shortcomings of existing fumigation operations, which require operators to quickly evacuate the site after adding formalin solution and potassium permanganate, making the process cumbersome and demanding high speed and skill, and where any mistakes can affect the fumigation effect and harm the operator's health, this invention provides a space fumigation and disinfection generator that can be remotely controlled from outside a confined space, avoiding harm to the operator from drug reactions.
[0006] The technical implementation scheme of this utility model is as follows: a space fumigation and disinfection generator includes a mixing tank, a robotic arm, a graduated bottle, a mounting frame, an insertion frame, a sealing cap, a torsion spring, a sealing ring, a locking component, and an opening and closing component. The robotic arm is provided on the upper part of the mixing tank. The robotic arm and the processor are electrically connected through a control module. The graduated bottle is clamped on the robotic arm. The mounting frame is connected to the upper right side of the mixing tank. The insertion frame is clamped on the mounting frame. The sealing cap is rotatably connected to the upper part of the insertion frame. Torsion springs are connected between the front and rear parts of the sealing cap and the insertion frame. A sealing ring is connected to the lower side of the sealing cap. The insertion frame is provided with a locking component that can be locked in place and easily disassembled. An opening and closing component that can remotely control the opening and closing of the sealing cap is provided between the sealing cap and the mixing tank.
[0007] More preferably, the sealing ring is made of rubber.
[0008] More preferably, the locking assembly includes a first guide rod, a first limiting frame, and a first telescopic spring. The first guide rod is connected to both the front and rear parts of the insertion frame, and the first limiting frame is slidably connected between the first guide rods. The first limiting frame is snapped into the mounting frame, and the first telescopic spring is connected to both the front and rear parts of the first limiting frame and the insertion frame.
[0009] More preferably, the lower part of the first limiting frame has a wedge-shaped structure.
[0010] More preferably, the upper part of the first limiting frame has an L-shaped structure.
[0011] More preferably, it also includes an opening and closing assembly, which includes a pin, a second guide rod, a second limiting frame, a second telescopic spring, a pull rope, a motor, and a winding wheel. The left side of the sealing cover is engaged with the pin, and the rear of the pin is connected to two upper and lower second guide rods. The second limiting frame is slidably connected between the second guide rods and contacts the sealing cover. The upper and lower parts of the second limiting frame are connected to the pin with second telescopic springs. A collar is sleeved on the pin. The upper left side of the mixing tank is connected to the motor. The motor and the processor are electrically connected through a control module. A winding wheel is connected to the output shaft of the motor. The winding wheel is rotatably connected to the mixing tank. A pull rope is wound on the winding wheel, and the other end of the pull rope is connected to the collar.
[0012] Compared with the prior art, the present invention has the following advantages: 1. The present invention controls the rotation of the robotic arm by remote control, causing the graduated bottle to tilt. The motor is started by remote control, which drives the winding wheel to rotate, so that the pull rope is released from the winding wheel. The torsion spring returns to its original state, which drives the sealing cover to rotate and open, so that the large amount of formaldehyde gas generated is released into the sealed space. This achieves the effect of enabling people to remotely control the device from outside the sealed space, avoiding the harm to the operator caused by the drug reaction.
[0013] 2. This utility model achieves the effect of conveniently disassembling the sealing cover and facilitating the cleaning of the sealing cover and mixing tank by pushing the first limiting frame to the left and then moving the sealing cover upward to remove it, moving the second limiting frame to the right so that the second limiting frame is no longer in contact with the sealing cover, moving the pin forward to remove it, and then removing the collar on the pull rope from the pin. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a three-dimensional structural diagram of the mixing tank and robotic arm components of this utility model.
[0016] Figure 3 This is a three-dimensional structural diagram of the mounting frame and insertion bracket of this utility model.
[0017] Figure 4 This is a three-dimensional structural diagram of the pin and the second limiting frame of this utility model.
[0018] Figure 5 This is a three-dimensional structural diagram of the motor and winding wheel components of this utility model.
[0019] The components in the attached diagram are labeled as follows: 1. Mixing tank, 2. Robotic arm, 3. Graduated bottle, 4. Mounting frame, 5. Insertion frame, 6. Sealing cap, 61. Torsion spring, 7. Sealing ring, 8. First guide rod, 9. First limiting frame, 10. First telescopic spring, 11. Pin, 12. Second guide rod, 13. Second limiting frame, 14. Second telescopic spring, 15. Pull rope, 16. Motor, 17. Winding reel. Detailed Implementation
[0020] The technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0021] A space fumigation and disinfection generator, such as Figures 1-3 As shown, the system includes a mixing tank 1, a robotic arm 2, a graduated bottle 3, a mounting frame 4, an insertion bracket 5, a sealing cap 6, a torsion spring 61, a sealing ring 7, a locking assembly, and an opening / closing assembly. The robotic arm 2 is located on the upper part of the mixing tank 1. The robotic arm 2 and the processor are electrically connected via a control module. The graduated bottle 3 is attached to the robotic arm 2. The mounting frame 4 is connected to the upper right side of the mixing tank 1. The insertion bracket 5 is attached to the mounting frame 4. The sealing cap 6 is rotatably connected to the upper part of the insertion bracket 5. Torsion springs 61 are connected to both the front and rear parts of the sealing cap 6 and the insertion bracket 5. The sealing ring 7 is connected to the lower side of the sealing cap 6. The sealing ring 7 is made of rubber for easy sealing. The locking assembly is located on the insertion bracket 5. The opening / closing assembly is located between the sealing cap 6 and the mixing tank 1.
[0022] like Figure 3 As shown, the locking assembly includes a first guide rod 8, a first limiting frame 9, and a first telescopic spring 10. The first guide rod 8 is connected to both the front and rear parts of the insertion frame 5. The first limiting frame 9 is slidably connected between the first guide rods 8. The lower part of the first limiting frame 9 has a wedge-shaped structure, and the upper part of the first limiting frame 9 has an L-shaped structure for easy pressing. The first limiting frame 9 is snapped into the mounting frame 4. The first telescopic spring 10 is connected between the front and rear parts of the first limiting frame 9 and the insertion frame 5.
[0023] like Figure 1 , Figure 4 and Figure 5 As shown, it also includes an opening and closing assembly, which includes a pin 11, a second guide rod 12, a second limiting frame 13, a second telescopic spring 14, a pull rope 15, a motor 16, and a winding wheel 17. The left side of the sealing cover 6 is engaged with the pin 11. The rear of the pin 11 is connected to two upper and lower second guide rods 12. The second limiting frame 13 is slidably connected between the second guide rods 12. The second limiting frame 13 is in contact with the sealing cover 6. The upper and lower parts of the second limiting frame 13 are connected to the pin 11 with the second telescopic spring 14. A collar is sleeved on the pin 11. The upper left side of the mixing tank 1 is connected to the motor 16. The motor 16 and the processor are electrically connected through a control module. The output shaft of the motor 16 is connected to the winding wheel 17. The winding wheel 17 is rotatably connected to the mixing tank 1. A pull rope 15 is wound on the winding wheel 17. The other end of the pull rope 15 is connected to the collar.
[0024] When using this device, first place the mixing tank 1 in the fumigation and disinfection area, then add potassium permanganate powder into the mixing tank 1. Next, use the robotic arm 2 to grip the graduated bottle 3 containing formalin solution. Then, the operator starts the motor 16 via remote control, driving the winding wheel 17 to rotate, causing the pull rope 15 to wind onto the winding wheel 17, pulling the sealing cap 6 to rotate and close. The torsion spring 61 deforms, sealing the sealing cap 6 and the mixing tank 1 through the sealing ring 7. Then, the operator evacuates outside the confined space and uses the remote control to rotate the robotic arm 2, causing... The graduated bottle 3 is tilted, allowing the formalin solution to be poured into the mixing tank 1. The formalin solution and potassium permanganate are mixed in the mixing tank 1. Then, the motor 16 is started by remote control, which drives the winding wheel 17 to rotate, causing the pull rope 15 to be released from the winding wheel 17. The torsion spring 61 returns to its original state, causing the sealing cap 6 to rotate and open. This allows a large amount of formaldehyde gas generated during the reaction of formalin solution and potassium permanganate to be released into the sealed space, disinfecting the sealed space. This allows people to remotely control the device from outside the sealed space, avoiding harm to the operator from the drug reaction.
[0025] When cleaning the mixing tank 1 and the sealing cap 6 is required, the first limiting frame 9 can be pushed to the left along the first guide rod 8, and the first telescopic spring 10 will be compressed and contracted, so that the first limiting frame 9 is no longer engaged with the mounting frame 4. Then, the sealing cap 6 can be moved upward and removed, so that the insert frame 5 is no longer engaged with the mounting frame 4. The first telescopic spring 10 returns to its original position, causing the first limiting frame 9 to move back to its original position. Then, the second limiting frame 13 can be moved to the right, and the second telescopic spring 14 will be compressed and contracted, so that the second limiting frame 13 is no longer in contact with the sealing cap 6. Then, the pin 11 can be moved forward and removed, and the second limiting frame 13 can move back to its original position through the return of the second telescopic spring 14. Finally, the collar on the pull rope 15 can be removed from the pin 11, which makes it easy to disassemble the sealing cap 6 and facilitates the cleaning of the sealing cap 6 and the mixing tank 1.
[0026] Although this disclosure has been shown and described with reference to specific exemplary embodiments thereof, those skilled in the art will understand that various changes in form and detail may be made to this disclosure without departing from the spirit and scope of the disclosure as defined by the appended claims and their equivalents. Therefore, the scope of this disclosure should not be limited to the above embodiments, but should be defined not only by the appended claims, but also by their equivalents.
Claims
1. A space fumigation and disinfection generator, characterized in that it includes: The device includes a mixing tank (1), a robotic arm (2), a graduated bottle (3), a mounting frame (4), an insertion rack (5), a sealing cap (6), a torsion spring (61), a sealing ring (7), a locking component, and an opening and closing component. The upper part of the mixing tank (1) is equipped with a robotic arm (2), which is electrically connected to the processor via a control module. The graduated bottle (3) is attached to the robotic arm (2). The upper right side of the mixing tank (1) is connected to the mounting frame (4), which is attached to the insertion rack (5). The upper part of the insertion rack (5) is rotatably connected to the sealing cap (6). Both the front and rear parts of the sealing cap (6) are connected to the insertion rack (5) by torsion springs (61). The lower side of the sealing cap (6) is connected to the sealing ring (7). The insertion rack (5) is equipped with a locking component that can be locked and easily disassembled. The sealing cap (6) and the mixing tank (1) are equipped with an opening and closing component that can remotely control the opening and closing of the sealing cap (6).
2. A space fumigation and disinfection generator according to claim 1, characterized in that, The sealing ring (7) is made of rubber.
3. A space fumigation and disinfection generator according to claim 1, characterized in that, The locking assembly includes a first guide rod (8), a first limiting frame (9) and a first telescopic spring (10). The first guide rod (8) is connected to both the front and rear parts of the insertion frame (5). The first limiting frame (9) is slidably connected between the first guide rods (8). The first limiting frame (9) is snapped into the mounting frame (4). The first telescopic spring (10) is connected between the front and rear parts of the first limiting frame (9) and the insertion frame (5).
4. A space fumigation and disinfection generator according to claim 3, characterized in that, The lower part of the first restraint frame (9) is a wedge-shaped structure.
5. A space fumigation and disinfection generator according to claim 3, characterized in that, The upper part of the first restraint frame (9) is an L-shaped structure.
6. A space fumigation and disinfection generator according to claim 1, characterized in that, It also includes an opening and closing assembly, which includes a pin (11), a second guide rod (12), a second limiting frame (13), a second telescopic spring (14), a pull rope (15), a motor (16), and a winding wheel (17). The left side of the sealing cover (6) is engaged with the pin (11), and the rear of the pin (11) is connected to two upper and lower second guide rods (12). The second limiting frame (13) is slidably connected between the second guide rods (12). The second limiting frame (13) contacts the sealing cover (6). The upper and lower parts of the two limiting frames (13) are connected to the pins (11) by a second telescopic spring (14). A collar is sleeved on the pin (11). A motor (16) is connected to the upper left part of the mixing tank (1). The motor (16) and the processor are electrically connected through the control module. A winding wheel (17) is connected to the output shaft of the motor (16). The winding wheel (17) is rotatably connected to the mixing tank (1). A pull rope (15) is wound on the winding wheel (17). The other end of the pull rope (15) is connected to the collar.