Testing equipment and method based on physical sterilization and algae inhibition devices

By designing a synergistic effect of drive, lifting, clamping, and drying mechanisms, the problem of testing the pressure resistance and sealing performance of ultraviolet germicidal lamps was solved, enabling convenient testing and rapid drying, and improving testing efficiency and convenience.

CN117342645BActive Publication Date: 2025-10-31NANJING CHAOXUSCIENCE&TECH DEV
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Patent Information

Application Number
CN202210744939.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-06-28
Publication Date
2025-10-31
Estimated Expiration
2042-06-28

AI Technical Summary

Technical Problem

The lack of effective testing equipment in the current technology to test the pressure resistance and sealing performance of ultraviolet germicidal lamps makes it impossible to guarantee their normal use.

Method used

An inspection device based on physical sterilization and algae inhibition equipment was designed, including a drive mechanism, a lifting mechanism, a clamping mechanism, an inspection mechanism, and a drying mechanism. The ultraviolet germicidal lamp is driven and clamped by a servo motor, and its pressure resistance and sealing performance are tested by stirring water. Then the drying mechanism quickly removes water stains.

Benefits of technology

It enables convenient clamping and disassembly of ultraviolet germicidal lamps, improves testing efficiency, effectively tests pressure resistance and sealing performance, and quickly dries water stains for easy subsequent storage.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a testing device and method based on physical sterilization and algae inhibition equipment, relating to the field of sampling device technology. The invention includes a base frame, on which a U-shaped frame is fixedly mounted. A driving mechanism is provided on both the U-shaped frame and the base frame. An array of lifting mechanisms is fixedly mounted at the top of the driving mechanism, and one end of each lifting mechanism is fixedly connected to a clamping mechanism. An ultraviolet germicidal lamp body is detachably mounted on the inner side of the clamping mechanism. The coordinated action of the driving mechanism, lifting mechanism, and clamping mechanism facilitates the clamping, fixing, and disassembly of the ultraviolet germicidal lamp body, making it easier for users to operate. It also facilitates the lifting of the ultraviolet germicidal lamp body, thus facilitating subsequent testing. Furthermore, the intermittent rotation of the four clamping mechanisms enables the simultaneous loading, unloading, and testing of the ultraviolet germicidal lamp body, thereby improving testing efficiency.
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Description

Technical Field

[0001] This invention relates to the field of sampling device technology, specifically to a testing device and method based on physical sterilization and algae inhibition equipment. Background Technology

[0002] Ultraviolet (UV) germicidal lamps work by emitting ultraviolet light that irradiates water, thereby destroying and altering the DNA structure of microorganisms in the water to achieve sterilization. They are simple, convenient, highly efficient, and produce no secondary pollution, making them commonly used in the food industry and hospitals.

[0003] Patent CN105679643A discloses an ultraviolet germicidal lamp, characterized by comprising: a lamp tube, a positive electrode head, and a negative electrode head. The lamp tube has a positive electrode head and a negative electrode head at its two ends, respectively. The inner wall of the lamp tube is provided with a tensile-resistant fiber layer, and the outer wall of the lamp tube is provided with a sealing fiber layer. The end faces of the positive and negative electrode heads are provided with anti-oxidation contacts. Through the above method, the ultraviolet germicidal lamp of this invention has a simple structure, high stability, strong sealing performance, and long service life.

[0004] Although the patent discloses a UV germicidal lamp with high stability and strong sealing, it lacks corresponding testing equipment to conduct efficient testing, thus failing to effectively test the UV germicidal lamp's pressure resistance and sealing performance, and consequently failing to guarantee the normal use of the UV germicidal lamp in the future.

[0005] To address the aforementioned problems, the inventors have proposed a testing device and method based on physical sterilization and algae inhibition equipment to solve these issues. Summary of the Invention

[0006] To address the problem of the inability to effectively test the pressure resistance and sealing performance of ultraviolet germicidal lamps, the present invention aims to provide a testing device and method based on physical sterilization and algae inhibition equipment.

[0007] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: an inspection device based on physical sterilization and algae inhibition equipment, including a base frame, a U-shaped frame fixedly installed on the base frame, and a driving mechanism provided on the U-shaped frame and the base frame. An array of lifting mechanisms is fixedly installed at the top of the driving mechanism, and a clamping mechanism is fixedly connected to one end of the lifting mechanism. An ultraviolet germicidal lamp body is detachably provided on the inner side of the clamping mechanism. An inspection mechanism that works in conjunction with the ultraviolet germicidal lamp body is provided on the upper side of one side of the base frame, and a drying mechanism that works in conjunction with the ultraviolet germicidal lamp body is provided on the base frame.

[0008] Preferably, the drive mechanism includes a servo motor and a first rotating rod. The servo motor is fixedly installed on the inner top of the U-shaped frame, and the end of the servo motor output is rotatably connected to the base frame. A notched disc is fixedly sleeved on the outer side of the servo motor output, and a push plate that works with the notched disc is fixedly sleeved on the end of the servo motor output near the base frame. A push rod is rotatably installed on the upper end of the push plate on the side away from the notched disc. The first rotating rod is rotatably inserted into the base frame and the U-shaped frame, and a rotating plate is fixedly sleeved on the end of the first rotating rod near the notched disc. An array of arc-shaped grooves and push slots are opened on the rotating plate. The arc-shaped grooves and push slots are staggered. The outer wall of the notched disc can fit against the inner wall of the arc-shaped grooves, and the push rod can be movably inserted into the push slot. A cross-shaped plate is fixedly sleeved on the top of the first rotating rod, and the cross-shaped plate slides against the U-shaped frame.

[0009] Preferably, the lifting mechanism includes an L-shaped plate, which is fixedly connected to a cross-shaped plate. A second loop frame is fixedly installed at each of the four corners of the cross-shaped plate away from the U-shaped frame. The end of the L-shaped plate near the U-shaped frame is fixedly inserted into the second loop frame. A multi-stage electric push rod is fixedly installed at the end of the L-shaped plate away from the cross-shaped plate. A lifting plate is fixedly installed at the end of the output end of the multi-stage electric push rod. A first loop frame is fixedly connected to one end of the lifting plate, and the first loop frame is slidably sleeved on the L-shaped plate. A U-shaped plate is fixedly installed at the end of the lifting plate away from the first loop frame.

[0010] Preferably, the clamping mechanism includes a first clamp, which is fixedly connected to a U-shaped plate. Both sides of the first clamp are integrally formed with first side plates. A slide rod is slidably inserted on the first side plate, and an I-shaped plate is fixedly installed at the top of the slide rod. A second side plate is fixedly installed at the bottom of the slide rod, and a second clamp is fixedly installed between adjacent second side plates. The end of the ultraviolet germicidal lamp body can be movably inserted between adjacent first and second clamps. A spring is movably sleeved on the slide rod, and both ends of the spring are fixedly connected to the first side plate and the second side plate, respectively.

[0011] Preferably, the inspection mechanism includes a housing, which is fixedly connected to a base frame. A drain pipe is connected to the lower end of the housing on the side away from the U-shaped frame, and a control valve is fixedly installed on the drain pipe. A second rotating rod, symmetrically arranged, is rotatably inserted into the housing on the side near the U-shaped frame. A first synchronous pulley is fixedly fitted onto the end of the second rotating rod near the U-shaped frame. A third rotating rod is rotatably inserted into the U-shaped frame, and a second synchronous pulley is fixedly fitted onto the third rotating rod. A synchronous belt meshes with the outer side of the second synchronous pulley and the outer side of the first synchronous pulley. A bevel gear is fixedly installed on the end of the third rotating rod away from the housing, and a side gear is fixedly fitted onto the outer side of the servo motor output end. The side gear meshes with the bevel gear. The second rotating rod is located away from the U-shaped frame. One end of the box is fixedly installed with a first rotating plate, and the end of the first rotating plate away from the second rotating rod is rotatably connected to a second rotating plate, and the end of the second rotating plate away from the second rotating rod is rotatably connected to a connecting block. A threaded rod is rotatably installed on the upper end of the connecting block, and a herringbone plate is fixedly sleeved on the top end of the threaded rod. Two threaded cylinders are fixedly installed in the inner cavity of the box, and the threaded rod is threadedly inserted into the threaded cylinder. Symmetrically arranged side connecting rods are fixedly installed in the inner cavity of the box, and the opposite ends of the side connecting rods are fixedly connected to the threaded cylinders. A first rotating shaft is rotatably installed on the first rotating plate, and the second rotating plate is rotatably sleeved on the first rotating shaft. A second rotating shaft is rotatably inserted on the second rotating plate, and the connecting block is rotatably sleeved on the second rotating shaft.

[0012] Preferably, the drying mechanism includes a fan, which is fixedly inserted into the base frame and has a symmetrical structure. A symmetrically distributed sleeve is fixedly installed on the upper side of one side of the base frame. The sleeve is fixedly sleeved on the outside of the fan, and an electric heating wire plate is fixedly installed on the inside of the sleeve.

[0013] A method for using a testing device based on physical sterilization and algae inhibition equipment includes the following steps:

[0014] Step 1: The user can first inject an appropriate amount of water into the chamber. Then, the user can turn on the power of the servo motor, fan and heating wire plate and press down the I-shaped plate away from the drying mechanism. This will drive the four corresponding sliding rods to move down, which will then drive the corresponding second side plate to move down. Furthermore, it will drive the corresponding two second clips to move down and stretch the corresponding springs. When the distance between the second clip and the corresponding first clip is adjusted to the maximum, the user can place the UV germicidal lamp body to be tested between the corresponding second clip and the first clip and release the I-shaped plate. At this time, the spring will drive the corresponding second side plate to reset, thereby stably clamping the UV germicidal lamp body to be tested.

[0015] Step two: During this period, the servo motor will drive the side gear, the notched disc, and the push plate to rotate, thereby driving the push rod to rotate. When the outer wall of the notched disc separates from the corresponding arc-shaped groove, the push rod will insert into the corresponding push groove. Then, the push rod will roll back and forth along the inner wall of the push groove, thereby driving the rotating plate to rotate. When the push rod separates from the push groove, the outer wall of the notched disc will contact the inner wall of the next arc-shaped groove. The above steps will be repeated, thereby driving the cross plate to rotate intermittently by 90 degrees through the first rotating rod, and thus driving the four lifting mechanisms and the corresponding clamping mechanisms to rotate intermittently by 90 degrees.

[0016] Step 3: While the side gear rotates, the bevel gear drives the third rotating rod to rotate, which in turn drives the timing belt to rotate via the second timing pulley. This, in turn, drives the two second rotating rods to rotate via the first timing pulley, which in turn drives the first rotating plate to rotate. The rotation of the first rotating plate drives the second rotating plate to rotate, which in turn drives the connecting block to move up and down in a reciprocating motion. This, in turn, drives the threaded rod to move up and down in a reciprocating motion. Under the constraint of the threaded cylinder, the threaded rod can rotate back and forth while moving up and down, which in turn drives the herringbone plate to move up and down in a reciprocating motion and rotate back and forth, thereby fully agitating the water source.

[0017] Step four: When the first UV germicidal lamp body to be tested is moved to the top of the chamber, the corresponding multi-stage electric push rod will push the corresponding lifting plate to move closer to the base frame. This will allow the corresponding clamping mechanism to move down via the U-shaped plate, thus moving the UV germicidal lamp body into the water source. When the water source is completely submerged on the UV germicidal lamp body, the multi-stage electric push rod will stop. The agitated water source will then continuously impact the UV germicidal lamp body, effectively testing its pressure resistance and sealing performance. During this period, the user can repeat step one to clamp and fix the next UV germicidal lamp body to be tested. In subsequent use, the user can also remove and store or discard the tested UV germicidal lamp body.

[0018] Step 5: After the inspection is completed, the corresponding multi-stage electric push rod will drive the inspected UV germicidal lamp body to reset. Then, the UV germicidal lamp body will rotate 90 degrees again, so that it can be moved directly above the drying mechanism. At this time, the fan can evenly guide the heat generated by the heating wire plate to the inspected UV germicidal lamp body, so as to quickly dry the water stains attached to the outer wall of the UV germicidal lamp body. After that, the UV germicidal lamp body will be moved to the initial position, and the user can then remove it. The above steps will then be repeated for subsequent inspection and drying operations of the UV germicidal lamp body.

[0019] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0020] 1. Under the coordinated action of the drive mechanism, lifting mechanism and clamping mechanism, it facilitates the clamping, fixing and disassembly of the ultraviolet germicidal lamp body, thus making it easier for users to operate. It also facilitates the lifting of the ultraviolet germicidal lamp body, which in turn facilitates its subsequent inspection. In addition, it realizes the intermittent rotation of the four clamping mechanisms, thereby realizing the simultaneous operation of loading, unloading and inspection of the ultraviolet germicidal lamp body, thus improving the inspection efficiency.

[0021] 2. Through the combined use of the drive mechanism and the detection mechanism, the connecting block can be pushed to move up and down in a reciprocating motion via the second rotating plate, thereby driving the threaded rod to move up and down in a reciprocating motion. Under the constraint of the threaded cylinder, the threaded rod can rotate back and forth while moving up and down, thereby driving the herringbone plate to move up and down in a reciprocating motion and rotate back and forth synchronously. This can fully agitate the water source and allow the agitated water source to continuously impact the ultraviolet germicidal lamp body, thereby effectively testing the pressure resistance and sealing performance of the ultraviolet germicidal lamp body.

[0022] 3. The drying mechanism can evenly direct the heat generated by the heating wire plate to the UV germicidal lamp body after inspection, thereby quickly drying the water stains attached to the outer wall of the UV germicidal lamp body, which is then convenient for subsequent centralized storage. Attached Figure Description

[0023] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0024] Figure 1 This is a schematic diagram of the structure of the present invention.

[0025] Figure 2 For the present invention Figure 1 Enlarged schematic diagram of the structure at point A in the middle.

[0026] Figure 3 This is a schematic diagram of the installation of the inspection mechanism in this invention.

[0027] Figure 4 For the present invention Figure 3 Enlarged schematic diagram of the structure at point B.

[0028] Figure 5 This is a schematic diagram of the drying mechanism installation in this invention.

[0029] Figure 6 For the present invention Figure 5 Enlarged schematic diagram of the structure at point C.

[0030] Figure 7 For the present invention Figure 5 Enlarged schematic diagram of the structure at point D.

[0031] Figure 8 For the present invention Figure 5 Enlarged schematic diagram of the structure at point E in the middle.

[0032] In the diagram: 1. Base frame; 2. U-shaped frame; 3. Drive mechanism; 31. Servo motor; 32. First rotating rod; 33. Notched disc; 34. Push plate; 35. Push rod; 36. Rotating plate; 37. Arc-shaped groove; 38. Push groove; 39. Cross-shaped plate; 4. Lifting mechanism; 41. L-shaped plate; 42. Multi-stage electric push rod; 43. Lifting plate; 44. First return frame; 45. U-shaped plate; 46. Second return frame; 5. Clamping mechanism; 51. First clamping sleeve; 52. First side plate; 53. Slide rod; 54. I-shaped plate; 55. Second side plate; 56. Second clamping sleeve; 57. Spring 6. Spring; 7. Ultraviolet germicidal lamp body; 8. Inspection mechanism; 9. Box body; 10. Second rotating rod; 11. First synchronous pulley; 12. Third rotating rod; 13. Second synchronous pulley; 14. Synchronous belt; 15. Bevel gear; 16. Side gear; 17. First rotating plate; 18. Second rotating plate; 19. Connecting block; 10. Threaded rod; 10. Herringbone plate; 11. Threaded cylinder; 12. Side connecting rod; 13. First rotating shaft; 14. Second rotating shaft; 15. Drain pipe; 16. Control valve; 17. Drying mechanism; 18. Fan; 19. Sleeve; 20. Heating wire plate. Detailed Implementation

[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0034] Example 1: As Figure 1-8 As shown, the present invention provides an inspection device based on physical sterilization and algae inhibition equipment, including a base frame 1, a U-shaped frame 2 fixedly installed on the base frame 1, and a drive mechanism 3 provided on the U-shaped frame 2 and the base frame 1. An array of lifting mechanisms 4 are fixedly installed at the top of the drive mechanism 3, and a clamping mechanism 5 is fixedly connected to one end of the lifting mechanism 4. An ultraviolet germicidal lamp body 6 is detachably provided on the inner side of the clamping mechanism 5. An inspection mechanism 7 that works in conjunction with the ultraviolet germicidal lamp body 6 is provided on the upper side of one side of the base frame 1, and a drying mechanism 8 that works in conjunction with the ultraviolet germicidal lamp body 6 is provided on the base frame 1.

[0035] The drive mechanism 3 includes a servo motor 31 and a first rotating rod 32. The servo motor 31 is fixedly installed on the inner top of the U-shaped frame 2, and the end of the output end of the servo motor 31 is rotatably connected to the base frame 1. A notched disc 33 is fixedly sleeved on the outer side of the output end of the servo motor 31, and a push plate 34 that cooperates with the notched disc 33 is fixedly sleeved on the end of the output end of the servo motor 31 near the base frame 1. A push rod 35 is rotatably installed on the upper end of the side of the push plate 34 away from the notched disc 33. The first rotating rod 32 is rotatably inserted. On the base frame 1 and the U-shaped frame 2, a rotating plate 36 is fixedly sleeved on one end of the first rotating rod 32 near the notched disc 33. The rotating plate 36 has an array of arc-shaped grooves 37 and pushing grooves 38. The arc-shaped grooves 37 and pushing grooves 38 are staggered. The outer wall of the notched disc 33 can fit with the inner wall of the arc-shaped groove 37. The pushing rod 35 can be movably inserted into the pushing groove 38. A cross-shaped plate 39 is fixedly sleeved on the top of the first rotating rod 32. The cross-shaped plate 39 slides and fits against the U-shaped frame 2.

[0036] By adopting the above technical solution, during use, the servo motor 31 will drive the notched disc 33 and the push plate 34 to rotate, thereby driving the push rod 35 to rotate. When the outer wall of the notched disc 33 separates from the corresponding arc-shaped groove 37, the push rod 35 will be inserted into the corresponding push groove 38. Then the push rod 35 will roll back and forth along the inner wall of the push groove 38, thereby driving the rotating plate 36 to rotate. When the push rod 35 separates from the push groove 38, the outer wall of the notched disc 33 will contact the inner wall of the next arc-shaped groove 37. The above steps will be repeated, thereby driving the cross plate 39 to rotate intermittently by ninety degrees through the first rotating rod 32, thereby driving the four lifting mechanisms 4 and the corresponding clamping mechanisms 5 to rotate intermittently by ninety degrees.

[0037] The lifting mechanism 4 includes an L-shaped plate 41, which is fixedly connected to a cross-shaped plate 39. A multi-stage electric push rod 42 is fixedly installed at the end of the L-shaped plate 41 away from the cross-shaped plate 39. A lifting plate 43 is fixedly installed at the output end of the multi-stage electric push rod 42. A first loop frame 44 is fixedly connected to one end of the lifting plate 43, and the first loop frame 44 is slidably sleeved on the L-shaped plate 41. A U-shaped plate 45 is fixedly installed at the end of the lifting plate 43 away from the first loop frame 44.

[0038] By adopting the above technical solution, when in use, the multi-stage electric push rod 42 will push the corresponding lifting plate 43 to move towards the side closer to the base frame 1, thereby enabling the corresponding clamping mechanism 5 to move down through the U-shaped plate 45, and thus enabling the ultraviolet germicidal lamp body 6 to move into the water source. When the water source completely submerges the ultraviolet germicidal lamp body 6, the multi-stage electric push rod 42 will stop.

[0039] The clamping mechanism 5 includes a first clamp 51, which is fixedly connected to a U-shaped plate 45. Both sides of the first clamp 51 are integrally formed with first side plates 52. A slide rod 53 is slidably inserted on the first side plate 52. An I-shaped plate 54 is fixedly installed on the top of the slide rod 53. A second side plate 55 is fixedly installed on the bottom of the slide rod 53. A second clamp 56 is fixedly installed between adjacent second side plates 55. The end of the ultraviolet germicidal lamp body 6 can be movably inserted between adjacent first clamps 51 and second clamps 56. A spring 57 is movably sleeved on the slide rod 53. Both ends of the spring 57 are fixedly connected to the first side plate 52 and the second side plate 55, respectively.

[0040] By adopting the above technical solution, when in use, the I-shaped plate 54 can be pressed down, thereby driving the four corresponding sliding rods 53 to move downward, which in turn drives the corresponding second side plate 55 to move downward, and further drives the corresponding two second clamps 56 to move downward and stretch the corresponding springs 57. When the distance between the second clamps 56 and the corresponding first clamps 51 is adjusted to the maximum, the user can place the ultraviolet germicidal lamp body 6 to be inspected between the corresponding second clamps 56 and the first clamps 51 and release the I-shaped plate 54. At this time, the springs 57 will drive the corresponding second side plates 55 to reset, thereby stably clamping the ultraviolet germicidal lamp body 6 to be inspected.

[0041] The inspection mechanism 7 includes a housing 71, which is fixedly connected to the base frame 1. A drain pipe 718 is connected to the lower end of the housing 71 on the side away from the U-shaped frame 2, and a control valve 719 is fixedly installed on the drain pipe 718. The use of the drain pipe 718 and the control valve 719 facilitates the replacement of the water source inside the housing 71. A second rotating rod 72, symmetrically arranged, is rotatably inserted into the side of the housing 71 near the U-shaped frame 2. A first synchronous pulley 73 is fixedly fitted onto the end of the second rotating rod 72 near the U-shaped frame 2. A third rotating rod 74 is rotatably inserted on the frame 2, and a second synchronous pulley 75 is fixedly sleeved on the third rotating rod 74. The second synchronous pulley 75 is meshed with the outer side of the first synchronous pulley 73 by a synchronous belt 76. A bevel gear 77 is fixedly installed at the end of the third rotating rod 74 away from the housing 71, and a side gear 78 is fixedly sleeved on the outer side of the output end of the servo motor 31. The side gear 78 meshes with the bevel gear 77. A first rotating plate 79 is fixedly installed at the end of the second rotating rod 72 away from the U-shaped frame 2, and the first rotating plate 79 is away from the second rotating rod 72. One end of rod 72 is rotatably connected to a second rotating plate 710, and the end of the second rotating plate 710 away from the second rotating rod 72 is rotatably connected to a connecting block 711. A threaded rod 712 is rotatably mounted on the upper end of the connecting block 711, and a herringbone plate 713 is fixedly sleeved on the top end of the threaded rod 712. Two threaded cylinders 714 are fixedly installed in the inner cavity of the housing 71, and the threaded rod 712 is threadedly inserted into the threaded cylinder 714. Symmetrically arranged side connecting rods 715 are fixedly installed in the inner cavity of the housing 71, and the side connecting rods 715 are... Both ends are fixedly connected to the threaded cylinder 714. A first rotating shaft 716 is rotatably mounted on the first rotating plate 79, and a second rotating plate 710 is rotatably sleeved on the first rotating shaft 716. A second rotating shaft 717 is rotatably inserted on the second rotating plate 710, and a connecting block 711 is rotatably sleeved on the second rotating shaft 717. The arrangement and use of the first rotating shaft 716 and the second rotating shaft 717 provide a guarantee for the stable rotational connection between the first rotating plate 79 and the second rotating plate 710, as well as the stable rotational connection between the second rotating plate 710 and the connecting block 711.

[0042] By adopting the above technical solution, while the side gear 78 rotates, the bevel gear 77 drives the third rotating rod 74 to rotate, which in turn drives the synchronous belt 76 to rotate via the second synchronous pulley 75. This, in turn, drives the two second rotating rods 72 to rotate via the first synchronous pulley 73, which in turn drives the first rotating plate 79 to rotate. While the first rotating plate 79 rotates, it drives the second rotating plate 710 to rotate, which in turn drives the connecting block 711 to move up and down in a reciprocating motion. This, in turn, drives the threaded rod 712 to move up and down in a reciprocating motion. Under the constraint of the threaded cylinder 714, the threaded rod 712 can move up and down while reciprocating, which in turn drives the herringbone plate 713 to move up and down in a reciprocating motion and reciprocate, thereby fully agitating the water source.

[0043] The drying mechanism 8 includes a fan 81, which is fixedly inserted into the base frame 1 and has a symmetrical structure. A symmetrically distributed sleeve 82 is fixedly installed on the upper side of one side of the base frame 1. The sleeve 82 is fixedly sleeved on the outside of the fan 81, and an electric heating wire plate 83 is fixedly installed on the inside of the sleeve 82.

[0044] By adopting the above technical solution, the fan 81 can evenly guide the heat generated by the heating wire plate 83 to the inspected ultraviolet germicidal lamp body 6 during use, thereby quickly drying the water stains attached to the outer wall of the ultraviolet germicidal lamp body 6.

[0045] Example 2: Figure 2 As shown, the four corners of the cross-shaped plate 39 away from the U-shaped frame 2 are all fixedly installed with the second loop frame 46, and the end of the L-shaped plate 41 near the U-shaped frame 2 is fixedly inserted into the second loop frame 46.

[0046] By adopting the above technical solution, the second circular frame 46 can effectively improve the connection stability between the L-shaped plate 41 and the cross-shaped plate 39, thereby ensuring the normal use of the lifting mechanism 4.

[0047] A method for using a testing device based on physical sterilization and algae inhibition equipment includes the following steps:

[0048] Step 1: The user can first inject an appropriate amount of water into the box 71. Then, the user can turn on the power of the servo motor 31, fan 81 and heating wire plate 83 and press down the I-shaped plate 54 away from the drying mechanism 8. This will drive the four corresponding sliding rods 53 to move downward, which will then drive the corresponding second side plate 55 to move downward. Furthermore, it will drive the corresponding two second clips 56 to move downward and stretch the corresponding spring 57. When the distance between the second clip 56 and the corresponding first clip 51 is adjusted to the maximum, the user can place the ultraviolet germicidal lamp body 6 to be tested between the corresponding second clip 56 and the first clip 51 and release the I-shaped plate 54. At this time, the spring 57 will drive the corresponding second side plate 55 to reset, thereby stably clamping the ultraviolet germicidal lamp body 6 to be tested.

[0049] Step two: During this period, the servo motor 31 will drive the side gear 78, the notched disc 33 and the push plate 34 to rotate, thereby driving the push rod 35 to rotate. When the outer wall of the notched disc 33 separates from the corresponding arc-shaped groove 37, the push rod 35 will be inserted into the corresponding push groove 38. Then the push rod 35 will roll back and forth along the inner wall of the push groove 38, thereby driving the rotating plate 36 to rotate. When the push rod 35 separates from the push groove 38, the outer wall of the notched disc 33 will contact the inner wall of the next arc-shaped groove 37. The above steps will be repeated, thereby driving the cross plate 39 to rotate intermittently by ninety degrees through the first rotating rod 32, thereby driving the four lifting mechanisms 4 and the corresponding clamping mechanisms 5 to rotate intermittently by ninety degrees.

[0050] Step 3: As the side gear 78 rotates, the bevel gear 77 drives the third rotating rod 74 to rotate, which in turn drives the timing belt 76 to rotate via the second timing pulley 75. This, in turn, drives the two second rotating rods 72 to rotate via the first timing pulley 73, which in turn drives the first rotating plate 79 to rotate. As the first rotating plate 79 rotates, it drives the second rotating plate 710 to rotate, which in turn drives the connecting block 711 to move up and down in a reciprocating motion. This, in turn, drives the threaded rod 712 to move up and down in a reciprocating motion. Under the constraint of the threaded cylinder 714, the threaded rod 712 can rotate back and forth while moving up and down, which in turn drives the herringbone plate 713 to move up and down in a reciprocating motion and rotate back and forth, thereby fully agitating the water source.

[0051] Step four: When the first UV germicidal lamp body 6 to be tested is moved to the top of the box 71, the corresponding multi-stage electric push rod 42 will push the corresponding lifting plate 43 to move closer to the base frame 1. This will allow the corresponding clamping mechanism 5 to move down through the U-shaped plate 45, thereby moving the UV germicidal lamp body 6 into the water source. When the water source is completely submerged on the UV germicidal lamp body 6, the multi-stage electric push rod 42 will be paused. The agitated water source will then continuously impact the UV germicidal lamp body 6, effectively testing its pressure resistance and sealing performance. During this period, the user can repeat step one to clamp and fix the next UV germicidal lamp body 6 to be tested. In subsequent use, the user can also remove and store or discard the tested UV germicidal lamp body 6.

[0052] Step 5: After the inspection is completed, the corresponding multi-stage electric push rod 42 will drive the inspected UV germicidal lamp body 6 to reset. Then, the UV germicidal lamp body 6 will rotate 90 degrees again, so that it can be moved directly above the drying mechanism 8. At this time, the fan 81 can evenly guide the heat generated by the heating wire plate 83 to the inspected UV germicidal lamp body 6, so as to quickly dry the water stains attached to the outer wall of the UV germicidal lamp body 6. After that, the UV germicidal lamp body 6 will be moved to the initial position, and then the user can remove it. Then, the above steps will be repeated for subsequent inspection and drying operations of the UV germicidal lamp body 6.

[0053] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.

Claims

1. A testing device based on physical sterilization and algae inhibition equipment, comprising a base frame (1), characterized in that: A U-shaped frame (2) is fixedly installed on the base frame (1), and a driving mechanism (3) is provided on the U-shaped frame (2) and the base frame (1). An array of lifting mechanisms (4) is fixedly installed at the top of the driving mechanism (3), and a clamping mechanism (5) is fixedly connected to one end of the lifting mechanism (4). An ultraviolet germicidal lamp body (6) is detachably provided on the inner side of the clamping mechanism (5). An inspection mechanism (7) is provided on the upper side of one side of the base frame (1) for use with the ultraviolet germicidal lamp body (6), and a drying mechanism (8) is provided on the base frame (1) for use with the ultraviolet germicidal lamp body (6). The drive mechanism (3) includes a servo motor (31) and a first rotating rod (32). The servo motor (31) is fixedly installed on the inner top of the U-shaped frame (2), and the end of the output end of the servo motor (31) is rotatably connected to the base frame (1). A notched disc (33) is fixedly sleeved on the outer side of the output end of the servo motor (31), and a push plate (34) that cooperates with the notched disc (33) is fixedly sleeved on the end of the output end of the servo motor (31) near the base frame (1). A push rod (35) is rotatably installed on the upper end of the push plate (34) away from the notched disc (33). The first rotating rod (32) is rotatably inserted into the push plate. The first rotating rod (32) is fixedly fitted with a rotating plate (36) at one end near the notched disc (33), and the rotating plate (36) is provided with an array of arc-shaped grooves (37) and pushing grooves (38). The arc-shaped grooves (37) and pushing grooves (38) are staggered. The outer wall of the notched disc (33) can fit with the inner wall of the arc-shaped grooves (37), and the pushing rod (35) can be movably inserted into the pushing groove (38). The top end of the first rotating rod (32) is fixedly fitted with a cross-shaped plate (39), and the cross-shaped plate (39) slides and fits with the U-shaped frame (2). The inspection mechanism (7) includes a housing (71), which is fixedly connected to the base frame (1). A second rotating rod (72) is symmetrically arranged and inserted into the side of the housing (71) near the U-shaped frame (2). A first synchronous pulley (73) is fixedly sleeved on the end of the second rotating rod (72) near the U-shaped frame (2). A third rotating rod (74) is rotatably inserted into the U-shaped frame (2), and a second synchronous pulley (75) is fixedly sleeved on the third rotating rod (74). A synchronous belt (76) is meshed with the outer side of the second synchronous pulley (75) and the first synchronous pulley (73). A bevel gear (77) is fixedly installed on the end of the third rotating rod (74) away from the housing (71), and the outer side of the output end of the servo motor (31) is fixedly... A side gear (78) is fitted onto the housing (71), which meshes with a bevel gear (77). A first rotating plate (79) is fixedly installed at the end of the second rotating rod (72) away from the U-shaped frame (2), and a second rotating plate (710) is rotatably connected at the end of the first rotating plate (79) away from the second rotating rod (72). A connecting block (711) is rotatably connected at the end of the second rotating plate (710) away from the second rotating rod (72). A threaded rod (712) is rotatably installed at the upper end of the connecting block (711), and a herringbone plate (713) is fixedly fitted at the top end of the threaded rod (712). Two threaded cylinders (714) are fixedly installed in the inner cavity of the housing (71), and the threaded rod (712) is threadedly inserted into the threaded cylinder (714). The drying mechanism (8) includes a fan (81), which is fixedly inserted on the base frame (1) and has a symmetrical structure. A symmetrically distributed sleeve (82) is fixedly installed on the upper side of one side of the base frame (1). The sleeve (82) is fixedly sleeved on the outside of the fan (81), and an electric heating wire plate (83) is fixedly installed on the inside of the sleeve (82).

2. The testing equipment based on physical sterilization and algae inhibition as described in claim 1, characterized in that, The lifting mechanism (4) includes an L-shaped plate (41), which is fixedly connected to a cross-shaped plate (39). A multi-stage electric push rod (42) is fixedly installed at one end of the L-shaped plate (41) away from the cross-shaped plate (39). A lifting plate (43) is fixedly installed at the output end of the multi-stage electric push rod (42). A first loop frame (44) is fixedly connected to one end of the lifting plate (43), and the first loop frame (44) is slidably sleeved on the L-shaped plate (41). A U-shaped plate (45) is fixedly installed at one end of the lifting plate (43) away from the first loop frame (44).

3. The testing equipment based on physical sterilization and algae inhibition device as described in claim 2, characterized in that, The cross-shaped plate (39) is fixedly installed with a second loop frame (46) at each of the four corners on the side away from the U-shaped frame (2), and the L-shaped plate (41) is fixedly inserted into the second loop frame (46) at the end closest to the U-shaped frame (2).

4. The testing equipment based on physical sterilization and algae inhibition as described in claim 3, characterized in that, The clamping mechanism (5) includes a first clamp (51), which is fixedly connected to a U-shaped plate (45). Both sides of the first clamp (51) are integrally formed with first side plates (52). A slide rod (53) is slidably inserted on the first side plate (52), and an I-shaped plate (54) is fixedly installed at the top of the slide rod (53). A second side plate (55) is fixedly installed at the bottom of the slide rod (53), and a second clamp (56) is fixedly installed between adjacent second side plates (55). The end of the ultraviolet germicidal lamp body (6) can be movably inserted between adjacent first clamps (51) and second clamps (56). A spring (57) is movably sleeved on the slide rod (53), and both ends of the spring (57) are fixedly connected to the first side plate (52) and the second side plate (55) respectively.

5. The testing equipment based on physical sterilization and algae inhibition device as described in claim 4, characterized in that, The inner cavity of the housing (71) is fixedly installed with symmetrically arranged side connecting rods (715), and the opposite ends of the side connecting rods (715) are fixedly connected to the threaded cylinder (714). The first rotating plate (79) is rotatably mounted with a first rotating shaft (716), and the second rotating plate (710) is rotatably sleeved on the first rotating shaft (716). The second rotating plate (710) is rotatably inserted with a second rotating shaft (717), and the connecting block (711) is rotatably sleeved on the second rotating shaft (717).

6. The testing equipment based on physical sterilization and algae inhibition device as described in claim 5, characterized in that, The lower end of the box (71) away from the U-shaped frame (2) is connected to a drain pipe (718), and a control valve (719) is fixedly installed on the drain pipe (718).

7. A method for using a testing device based on physical sterilization and algae inhibition equipment, characterized in that, The testing equipment using the physical sterilization and algae-inhibiting device as described in claim 6 includes the following steps: Step 1: The user can first inject an appropriate amount of water into the box (71), and then the user can turn on the power of the servo motor (31), fan (81) and heating wire plate (83) and press down the I-shaped plate (54) away from the drying mechanism (8), so that the corresponding four slide rods (53) can be moved down, which in turn can move the corresponding second side plate (55) down, and further can move the corresponding two second clips (56) down and stretch the corresponding spring (57). When the distance between the second clip (56) and the corresponding first clip (51) is adjusted to the maximum, the user can place the ultraviolet germicidal lamp body (6) to be tested between the corresponding second clip (56) and the first clip (51) and loosen the I-shaped plate (54). At this time, the spring (57) will drive the corresponding second side plate (55) to reset, and then the ultraviolet germicidal lamp body (6) to be tested can be stably clamped. Step 2: During this period, the servo motor (31) will drive the side gear (78), the notched disc (33) and the push plate (34) to rotate, thereby driving the push rod (35) to rotate. When the outer wall of the notched disc (33) separates from the corresponding arc groove (37), the push rod (35) will be inserted into the corresponding push groove (38). Then the push rod (35) will roll back and forth along the inner wall of the push groove (38), thereby driving the rotating plate (36) to rotate. When the push rod (35) separates from the push groove (38), the outer wall of the notched disc (33) will contact the inner wall of the next arc groove (37). The above steps will be repeated, thereby driving the cross plate (39) to rotate intermittently by ninety degrees through the first rotating rod (32), thereby driving the four lifting mechanisms (4) and the corresponding clamping mechanisms (5) to rotate intermittently by ninety degrees. Step 3: While the side gear (78) rotates, the bevel gear (77) drives the third rotating rod (74) to rotate, which in turn drives the timing belt (76) to rotate via the second timing wheel (75), which in turn drives the two second rotating rods (72) to rotate via the first timing wheel (73), which in turn drives the first rotating plate (79) to rotate. While the first rotating plate (79) rotates, the second rotating plate (710) rotates, which in turn drives the connecting block (711) to move up and down in a reciprocating motion, which in turn drives the threaded rod (712) to move up and down in a reciprocating motion. Under the constraint of the threaded cylinder (714), the threaded rod (712) can rotate back and forth while moving up and down, which in turn drives the herringbone plate (713) to move up and down in a reciprocating motion and rotate back and forth, thus fully agitating the water source. Step 4: When the first UV germicidal lamp body (6) to be tested is moved to the top of the box (71), the corresponding multi-stage electric push rod (42) will push the corresponding lifting plate (43) to move closer to the base frame (1), so that the corresponding clamping mechanism (5) can be moved down through the U-shaped plate (45), and the UV germicidal lamp body (6) can be moved into the water source. When the water source is completely submerged on the UV germicidal lamp body (6), the multi-stage electric push rod (42) will be paused. Then the agitated water source will continuously impact the UV germicidal lamp body (6), so as to effectively test the pressure resistance and sealing of the UV germicidal lamp body (6). During this period, the user can repeat step 1 to clamp and fix the next UV germicidal lamp body (6) to be tested. In subsequent use, the user can also remove and store or discard the tested UV germicidal lamp body (6). Step 5: After the inspection is completed, the corresponding multi-stage electric push rod (42) will drive the inspected ultraviolet germicidal lamp body (6) to reset. Then the ultraviolet germicidal lamp body (6) will rotate 90 degrees again, so that it can be moved directly above the drying mechanism (8). At this time, the fan (81) can evenly guide the heat generated by the heating wire plate (83) to the inspected ultraviolet germicidal lamp body (6), so that the water stains attached to the outer wall of the ultraviolet germicidal lamp body (6) can be dried quickly. Then the ultraviolet germicidal lamp body (6) will be moved to the initial position, and then the user can remove it. The above steps will be repeated for subsequent inspection and drying of the ultraviolet germicidal lamp body (6).

Citation Information

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