Multi-angle irradiation antibacterial device and application thereof in preparation of antibacterial fabric
By designing a multi-angle irradiation antibacterial device and adjusting the position and angle of the lamp, the problem of uneven irradiation of fabrics with different areas was solved, achieving uniform irradiation and efficient antibacterial effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- HUBEI MEIXUE IND CO LTD
- Filing Date
- 2025-05-15
- Publication Date
- 2026-06-02
AI Technical Summary
In existing technologies, uneven irradiation occurs during the antibacterial process of fabrics due to differences in area, which affects the irradiation effect and efficiency.
A multi-angle irradiation antibacterial device is designed. The irradiation structure includes a fixed plate, a first irradiation lamp and a second irradiation lamp, a moving structure and an adjusting structure, which adjust the position and angle of the lamps to adapt to fabrics of different areas and ensure uniform irradiation.
Uniform irradiation of fabrics of different areas was achieved, improving the efficiency and effect of irradiation antibacterial treatment and ensuring that the edges of the fabric were fully irradiated.
Smart Images

Figure CN120305431B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of fabric treatment devices, and particularly relates to a multi-angle irradiation antibacterial device and its application in the preparation of antibacterial fabrics. Background Technology
[0002] When temperatures rise, clothing tends to absorb sweat and dander more easily during wear, leading to bacterial growth. Antibacterial fabrics, as a special type of functional fabric, undergo antibacterial treatment to effectively inhibit the growth and reproduction of bacteria and fungi on the fabric, thus keeping the fabric fresh and hygienic, preventing odors, and avoiding the adverse effects of attached bacteria on the human body. They are widely used in clothing, medical, and other fields.
[0003] In existing technologies, when fabrics of different areas are placed inside an irradiation chamber for antibacterial irradiation, the coverage areas of the fabrics vary. For large-area fabrics, the irradiation time is longer due to their wide overall coverage, while for small-area fabrics, the irradiation time is shorter due to their smaller coverage. During use, when fabrics of different areas are irradiated simultaneously, the different irradiation times result in uneven irradiation, affecting the irradiation effect and hindering the improvement of the fabric's antibacterial irradiation efficiency. Summary of the Invention
[0004] This invention addresses the problems in the prior art by proposing the following technical solution: a multi-angle irradiation antibacterial device, comprising:
[0005] Mounting box and conveyor belt; the mounting box is used to mount the conveyor belt.
[0006] Irradiation chamber, with an irradiation structure connected inside;
[0007] The irradiated structure includes:
[0008] A fixing plate is attached to the inside of the irradiation chamber;
[0009] The first irradiant lamp and three second irradiant lamps are all located at the bottom of the fixed plate;
[0010] The movable structure is connected to the fixed plate.
[0011] Furthermore, the moving structure includes:
[0012] A first driving element and a moving block, the moving block being connected to the top of the first irradiation lamp, the first driving element driving the first irradiation lamp to move through the moving block;
[0013] The second drive unit and the moving plate are connected to the top of the three second irradiators. The first drive unit drives the three second irradiators to move through the moving plate.
[0014] Furthermore, the first irradiation lamp is internally provided with a first adjustment structure, which includes:
[0015] The third driving component is connected to the first rotating body and the moving component, and the moving component is provided with a push plate that pushes the first movable block to move.
[0016] The limiting rod is slidably connected to the moving part;
[0017] The first active block is connected to the first auxiliary light.
[0018] Furthermore, a second adjustment structure is provided inside the second irradiator located on both sides of the bottom of the fixed plate. The second adjustment structure includes:
[0019] The fourth driving component is connected to the second auxiliary light and is used to drive the second auxiliary light to move.
[0020] Furthermore, a mounting plate is connected to the top of the conveyor belt, and a T-shaped opening is provided on the top of the mounting plate. A shielding structure is provided between the T-shaped opening and the top of the mounting plate.
[0021] Furthermore, both the first auxiliary light and the second auxiliary light are provided with rotating structures on both sides, and the rotating components include:
[0022] The rotating component is connected to the first auxiliary light and the second auxiliary light via the second rotating body;
[0023] Two sliding plates are connected to the rotating component and the second rotating body, respectively.
[0024] Furthermore, a third adjustment component is provided at one end of the fourth driving component, the third adjustment component including:
[0025] Connecting plate, connected to the fourth drive component;
[0026] The extrusion rod, connected to the connecting plate, is used to extrude the second movable block and the push block to move. An adjustment plate is connected to one side of the push block.
[0027] The first elastic element is connected to the second movable block;
[0028] An adjustment plate is rotatably connected to both sides of the second irradiation lamp, and a third auxiliary lamp is connected to one side of the adjustment plate.
[0029] Furthermore, the adjustment plate has a groove on the side near the second irradiation lamp, and a connecting spring is connected inside the groove.
[0030] Application of a multi-angle irradiation antibacterial device as described above in the preparation of antibacterial fabrics.
[0031] The beneficial effects of this invention are as follows:
[0032] (1) This invention increases the irradiation range of fabrics of different areas by adjusting the positions of the first irradiation lamp and the second irradiation lamp, and by increasing the irradiation range of fabrics of different areas by adjusting the positions of the first auxiliary lamp and the second auxiliary lamp, while adjusting the distance between the three second irradiation lamps and the fabric irradiation to increase the irradiation intensity and make the irradiation uniform, so that the irradiation time of fabrics of different areas inside the irradiation box is kept the same, thereby improving the efficiency of fabric irradiation antibacterial.
[0033] (2) By adjusting the angles of the first auxiliary lamp, the second auxiliary lamp and the third auxiliary lamp, the present invention can better cover a large area, so that the edge of the fabric can be fully irradiated, ensuring that the fabric can be irradiated evenly, and further improving the irradiation effect of the fabric. Attached Figure Description
[0034] Figure 1 The diagram shown is a schematic representation of the overall structure of the embodiment;
[0035] Figure 2 The diagram shown is a cross-sectional view of the overall structure of the embodiment;
[0036] Figure 3 The diagram shown is an internal structural diagram of the irradiation chamber of an embodiment;
[0037] Figure 4 The diagram shown is a structural diagram of the mounting plate, the first irradiation lamp, and the second irradiation lamp in the embodiment.
[0038] Figure 5 The diagram shown is a structural diagram of the fixed plate and the movable structure of the embodiment;
[0039] Figure 6 The diagram shown is a bottom structural diagram of the mounting plate, the first irradiation lamp, and the second irradiation lamp in the embodiment.
[0040] Figure 7 What is shown is Figure 2 Enlarged view of point A;
[0041] Figure 8 The diagram shown is a structural diagram of the first adjustment structure of the embodiment;
[0042] Figure 9 The image shown is a side view of the second irradiator of embodiment;
[0043] Figure 10 The diagram shown is a cross-sectional view of the second irradiation lamp of embodiment;
[0044] Figure 11 What is shown is Figure 10 Enlarged view of point B.
[0045] In the diagram: 1. Mounting box; 2. Conveyor belt; 3. Irradiation box; 4. Fixing plate; 5. First irradiation lamp; 6. Second irradiation lamp; 9. First driving component; 10. Moving block; 11. Second driving component; 12. Moving plate; 13. Third driving component; 14. First rotating body; 15. Moving component; 16. First movable block; 17. Push plate; 18. First auxiliary lamp; 19. Fourth driving component; 20. Second auxiliary lamp; 21. Mounting plate; 22. Limiting plate; 23. Baffle; 24. Metal block; 25. Fixing block; 26. Electromagnet; 27. Rotating component; 28. Second rotating body; 29. Connecting plate; 30. Pressing rod; 31. First elastic component; 32. Second movable block; 33. Push block; 34. Adjusting plate; 35. Sliding plate. Detailed Implementation
[0046] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments.
[0047] This invention provides a multi-angle irradiation antibacterial device, such as... Figures 1 to 7 As shown, the device includes a mounting box 1, a conveyor belt 2, an irradiation box 3, and an irradiation structure. The conveyor belt 2 is located inside the top of the mounting box 1, which is used to mount the conveyor belt 2. The irradiation box 3 is fixedly mounted to the top of the mounting box 1, and the conveyor belt 2 is located at the bottom of the irradiation box 3. A conveying port is provided on one side of the irradiation box 3, and a control structure is provided on the side of the irradiation box 3 near the conveying port. This structure can set different irradiation parameters for fabrics of different areas, achieving differentiated irradiation and ensuring that each piece of fabric receives a suitable amount of irradiation, achieving good antibacterial effects while maintaining fabric performance. The irradiation structure is connected inside the irradiation box 3 to allow fabrics of different areas to be placed inside for irradiation. The irradiation system allows fabrics of different areas to be irradiated simultaneously inside the irradiation chamber 3. A mounting plate 21 is fixedly connected to the top of the conveyor belt 2. A T-shaped opening is provided on the top of the mounting plate 4. A shielding structure is provided on the top of the T-shaped opening and the mounting plate 21. The T-shaped opening facilitates the movement of the shielding structure, separating fabrics of different areas on the mounting plate 21 to prevent interference during irradiation. The irradiation structure includes the mounting plate 4, the first irradiation lamp 5, three second irradiation lamps 6, and a moving structure. Both sides of the mounting plate 4 are fixedly installed to the inner wall of the irradiation chamber 3. The first irradiation lamp 5 and the three second irradiation lamps 6 are located at the bottom of the mounting plate 4, and the first irradiation lamp 5 and the two second irradiation lamps 6 are located at the top of the mounting plate 21.
[0048] To adjust the positions of the first irradiation lamp 5 and the second irradiation lamp 6, and to regulate the irradiation intensity to irradiate fabrics of different areas, a movable structure is connected to the fixed plate 4. The movable structure includes a first driving component 9, a moving block 10, a second driving component 11, and a moving plate 12. The moving block 10 is fixedly installed on the top of the first irradiation lamp 5 and slidably connected to the inner wall of the fixed plate 4. The first driving component 9 is located on one side of the moving block 10 and is fixedly installed on the inner wall of the fixed plate 4. The first driving component 9 drives the first irradiation lamp 5 to move through the moving block 10. The moving plate 12 is fixedly installed on the top of the three second irradiation lamps 6. The top of the second driving component 11 is fixedly installed on the inner wall of the top of the irradiation box 3. A moving groove is opened at the bottom of the fixed plate 4, and the moving plate 12 is located inside the moving groove. The bottom of the second driving component 11 extends through the fixed plate 4 into the moving groove and is fixedly installed on the moving plate 12. The second driving component 11 drives the three second irradiation lamps 6 to move through the moving plate 12.
[0049] In use, fabrics of different areas are fixed onto the mounting plate 21. The control structure drives the first driving component 9 to move the moving block 10 and the first irradiation lamp 5 along the fixing groove, so that the first irradiation lamp 5 moves to the top of the small area fabric. At the same time, the second driving component 11 drives the moving plate 12 and the second irradiation lamp 6 to move downward away from the groove and move to the top of the large area fabric. The distance between the second irradiation lamp 6 and the large area fabric is adjusted to increase the irradiation intensity. When the first driving component 9 moves the moving block 10, the shielding structure moves through the T-shaped opening to separate the large area fabric and the small area fabric on both sides of the mounting plate 21. Then, the parameters are adjusted by the control structure so that the first irradiation lamp 5 and the second irradiation lamp 6 can simultaneously irradiate the fabric from multiple angles. The clamping and rotating device drives the fabric to flip over so that both the large area and the small area fabric can be irradiated from the top and bottom.
[0050] In this embodiment, the first driving member 9 and the second driving member 11 can be electric push rods. The three second irradiation lamps 6 are arranged in a linear array at the bottom of the moving plate 12. When the first driving member 9 drives the moving block 10 to move, it can drive the first irradiation lamp 5 to move and adjust the position of the first irradiation lamp 5. The second driving member 11 drives the moving plate 12 and the second irradiation lamps 6 to move downward, adjusting the distance between the second irradiation lamps 6 and the fabric, so as to irradiate the fabric of different areas separately.
[0051] like Figures 5 to 8As shown, to increase the irradiation range of the first and second irradiation lamps 5 and 6 after they are moved, the first irradiation lamp 5 is provided with a first adjustment structure. The first adjustment structure includes a third driving component 13, a limiting rod, a moving component 15, a first movable block 16, and a first auxiliary lamp 18. A first mounting groove is opened at the top of the first irradiation lamp 5. The third driving component 13 is fixedly installed on the inner wall of the top of the first mounting groove. A first rotating body 14 is fixedly connected to the bottom. The first rotating body 14 is rotatably connected to the inner wall of the bottom of the first mounting groove. The moving component 15 is threadedly connected to the first rotating body 14. A push plate 17 is provided on the moving component 15 to push the first movable block 16 to move. The limiting rod is slidably connected to both ends of the moving component 15. The limiting rod is flush with the inner wall of the first mounting groove. The first movable block 16 is connected to the first auxiliary light 18. One end of the push plate 17 is hinged to the first movable block 16, and the other end is hinged to the first auxiliary light 18. The first movable block 16 and the first auxiliary light 18 are slidably connected to the inner wall of the first mounting groove. The second irradiant lamps 6 located on both sides of the bottom of the fixed plate 4 are provided with a second adjustment structure. The second adjustment structure includes a fourth drive member 19 and a second auxiliary light 20. The three second irradiant lamps 6 are distributed in sequence along the horizontal direction. The top of the second irradiant lamps 6 located on both sides is provided with a second mounting groove. The fourth drive structure is fixedly installed to the inner wall of the second mounting groove. The fourth drive structure is fixedly connected to the second auxiliary light 20 for driving the second auxiliary light 20 to move. The second auxiliary light 20 is movably connected to the inner wall of the second mounting groove.
[0052] In this embodiment, the third driving component 13 can be a motor, the fourth driving component 19 can be a cylinder, the first movable block 16 and the first auxiliary light 18 are symmetrically arranged with respect to the center of the first mounting slot, and the fourth driving component 19 and the second auxiliary light 20 are symmetrically arranged with respect to the center of the movable plate 12.
[0053] After the first irradiation lamp 5 and the second irradiation lamp 6 move to the top of the large and small areas of the fabric, the third drive unit 13 is activated to drive the first rotating body 14 to rotate along the inner wall of the first mounting groove. The limiting rod causes the moving part 15 to move downward along the first rotating body 14, and causes the push plate 17 to deflect and push the first movable block 16 and the first auxiliary lamp 18 to move along the inner wall of the first mounting groove. This moves the first auxiliary lamp 18 to both sides of the first irradiation lamp 5 to increase the irradiation range. At the same time, the fourth drive unit 19 is activated to drive the second auxiliary lamp 20 to move along the inner wall of the second mounting groove. This moves the second auxiliary lamp 20 to both sides of the second irradiation lamp 6 at the bottom of the fixed plate 4 to increase the irradiation range of the second irradiation lamp 6 and prevent uneven irradiation of the fabric, which would affect the irradiation effect.
[0054] like Figures 2 to 6As shown, the shielding structure includes a limiting plate 22, a baffle 23, a metal block 24, a fixing block 25, and an electromagnet 26. The bottom end of the limiting plate 22 passes through the T-shaped opening and is fixedly installed with the first driving member 9. Both sides of the limiting plate 22 are slidably connected to the inner wall of the T-shaped opening. The limiting plate 22 is L-shaped. A slot is opened on one side of the baffle 23. The limiting plate 22 is inserted into the baffle 23 through the slot. The baffle 23 is located on the T-shaped opening. The baffle 23 is slidably connected to the inner wall of the irradiation box 3 through a slider. The metal block 24 is fixedly connected to the bottom of the baffle 23. The fixing block 25 is fixedly connected to the top of the mounting plate 21. The fixing block 25 is correspondingly set with the baffle 23. The electromagnet 26 is connected inside the fixing block 25. The electromagnet 26 is electrically connected to the control structure. The metal block 24 is magnetically connected to the electromagnet 26.
[0055] When the first driving component 9 moves the moving block 10 and the first irradiation lamp 5, it simultaneously moves the limiting plate 22, causing the limiting plate 22 to separate from the insertion port on the baffle 23. When the first irradiation lamp 5 moves to the top of the fabric, the T-shaped opening is exposed, and the electromagnet 26 is energized by the control structure, attracting the metal block 24. The metal block 24 then moves the baffle 23 and the slider downwards along the inner wall of the irradiation box 3, thereby moving the baffle 23 into the fixed block 25. The electromagnet 26 and the metal block 24 are in contact, and the baffle 23 separates the fabric on both sides of the mounting plate 21. This allows fabrics of different areas to be irradiated in two different regions without interference. After irradiation, the electromagnet 26 is de-energized through a control structure. The electromagnet 26 and the metal block 24 repel each other, causing the metal block 24 to move the baffle 23 and the slider upwards along the inner wall of the irradiation chamber 3. At the same time, the first drive block is activated to move the moving block 10 and the first irradiation lamp 5 to their original positions. When the baffle 23 is in its original position, the limiting plate 22 and the socket of the baffle 23 are connected, thereby limiting the baffle 23 and facilitating the re-irradiation of different areas.
[0056] like Figure 8 , Figure 9 , Figure 11 As shown, in order to adjust the angles of the first auxiliary light 18 and the second auxiliary light 20 to better cover a large area and irradiate at different angles, rotating structures are provided on both sides of the first auxiliary light 18 and the second auxiliary light 20. The rotating components include a rotating component 27, two sliding plates 35 and a second rotating body 28. The rotating component 27 is fixedly connected to the first auxiliary light 18 and the second auxiliary light 20 through the second rotating body 28. The two sliding plates 35 are respectively connected to the rotating component 27 and the second rotating body 28. One side of the rotating component 27 is fixedly installed with the sliding plate 35, and one side of the second rotating body 28 is rotatably connected to the sliding plate 35. The sides of the two sliding plates 35 away from the rotating component 27 and the second rotating body 28 are slidably connected to the first mounting groove and the second mounting groove, respectively.
[0057] In this embodiment, the rotating component 27 can be a motor, and the rotating components inside the first mounting slot are arranged symmetrically with respect to the center of the first mounting slot.
[0058] After the first auxiliary light 18 and the second auxiliary light 20 are moved to the sides of the first irradiation lamp 5 and the second irradiation lamp 6 respectively, the sliding plate 35 facilitates the installation of the first auxiliary light 18 and the second auxiliary light 20. When the sliding plate 35 moves to the opening of the first mounting groove and the second mounting groove, the rotating plate 27 is activated to drive the second rotating plate 28 to rotate, so that the first auxiliary light 18 and the second auxiliary light 20 rotate on the sides of the first irradiation lamp 5 and the second irradiation lamp 6 respectively, adjusting the irradiation angle and improving the irradiation effect at the edge of the fabric.
[0059] like Figures 9 to 11 As shown, in order to increase the irradiation range on both sides of the second irradiation lamp 6 and ensure that the edges of the fabric are fully irradiated, a third adjustment component is provided at one end of the fourth drive component 19. The third adjustment component includes a connecting plate 29, a pressing rod 30, a first elastic element 31, a second movable block 32, a pushing block 33, an adjustment plate 34, and a third auxiliary lamp. One end of the connecting plate 29 is fixedly installed to the fourth drive component 19, and the bottom of the connecting plate 29 is slidably connected to the inner wall of the second mounting groove. The pressing rod 30 is fixedly connected to one side of the connecting plate 29. The bottom of the pressing rod 30 is a rounded convex shape, and the side of the second movable block 32 near the rounded convex shape is an inclined surface. The rounded convex shape is located at the top of the inclined surface and is used to press the second movable block 32. As the push block 33 moves, one end of the first elastic element 31 is fixedly connected to the side of the second movable block 32 near the push block 33. One end of the first elastic element 31 is fixedly installed to the inner wall of the second mounting groove. Two movable openings are opened on both sides of the second irradiation lamp 6. The push block 33 passes through the movable opening and is fixedly connected to the adjustment plate 34. The adjustment plate 34 is rotatably connected to both sides of the second irradiation lamp 6. A third auxiliary lamp is connected to one side of the adjustment plate 34. The third auxiliary lamp is in contact with both sides of the second irradiation lamp 6. A groove is opened on the side of the adjustment plate 34 near the second irradiation lamp 6. A connecting spring is connected in the groove. One end of the connecting spring is fixedly installed to the outside of the second irradiation lamp 6. The connecting spring is located at the top of the third auxiliary lamp.
[0060] In this embodiment, the first elastic element 31 can be a compression spring, there are two sets of connecting springs, each set of connecting springs is located between the second irradiation top light and the adjustment plate 34, and the third adjustment component is symmetrically arranged inside the second mounting groove.
[0061] When the fourth driving member 19 moves the second auxiliary lamp 20, the fourth driving member 19 moves the connecting plate 29 and the extrusion rod 30, causing the round protrusion at the bottom of the extrusion rod 30 to move along the inclined surface of the second movable block 32, causing the first elastic member 31 to be compressed. The second movable block 32 moves the pushing block 33 from the moving port to both sides of the second irradiation lamp 6 and pushes the adjusting plate 34 to deflect, stretching the connecting spring. When the second auxiliary lamp 20 moves to the left and right sides of the second irradiation lamp 6, the adjusting plate 34 drives the third auxiliary lamp to deflect, thereby expanding the irradiation range of the large area of the fabric edge.
[0062] Application of a multi-angle irradiation antibacterial device as described above in the preparation of antibacterial fabrics.
[0063] Working principle: In use, fabrics of different areas are fixed onto the mounting plate 21 by a clamping and rotating device. A control structure moves the fabric from the mounting plate 21 to the irradiation chamber 3 via the conveyor belt 2. The control structure drives the first driving component 9 to move the moving block 10 and the first irradiation lamp 5 along the fixed groove, causing the first irradiation lamp 5 to move to the top of the smaller fabric area. Simultaneously, the second driving component 11 moves the moving plate 12 and the second irradiation lamp 6 downwards away from the groove and to the top of the larger fabric area. The distance between the second irradiation lamp 6 and the larger fabric area is adjusted. When the first... When the driving component 9 moves the moving block 10, it also moves the limiting plate 22, causing the limiting plate 22 to separate from the insertion port on the baffle 23. When the first irradiation lamp 5 moves to the top of the fabric, the T-shaped opening is exposed. The control structure energizes the electromagnet 26, attracting the metal block 24. The metal block 24 then moves the baffle 23 and the slider down along the inner wall of the irradiation box 3, causing the baffle 23 to move into the fixed block 25. The electromagnet 26 and the metal block 24 are in contact, and the baffle 23 separates the large area of fabric and the small area of fabric on both sides of the mounting plate 21.
[0064] After the first irradiation lamp 5 and the second irradiation lamp 6 move to the top of the large and small areas of the fabric, the third drive unit 13 is activated to drive the first rotating body 14 to rotate along the inner wall of the first mounting groove. The limiting rod causes the moving part 15 to move downwards along the first rotating body 14, and the push plate 17 deflects, pushing the first movable block 16 and the first auxiliary lamp 18 to move along the inner wall of the first mounting groove. This moves the first auxiliary lamp 18 to both sides of the first irradiation lamp 5, increasing the irradiation range. Simultaneously, the fourth drive unit 19 is activated to drive the second auxiliary lamp 20 to move along the inner wall of the second mounting groove, moving the second auxiliary lamp 20 to both sides of the second irradiation lamp 6 at the bottom of the fixed plate 4, increasing the irradiation range of the second irradiation lamp 6. After the first auxiliary lamp 18 and the second auxiliary lamp 20 move to both sides of the first irradiation lamp 5 and the second irradiation lamp 6 respectively, the irradiation range of the second irradiation lamp 6 is increased. The two sliding plates 35 move to the openings of the first and second mounting slots, and the rotating component 27 drives the second rotating body 28 to rotate, so that the first auxiliary lamp 18 and the second auxiliary lamp 20 rotate on both sides of the first irradiation lamp 5 and the second irradiation lamp 6 respectively, adjusting the irradiation angle. When the fourth driving component 19 drives the second auxiliary lamp 20 to move, the fourth driving component 19 drives the connecting plate 29 and the extrusion rod 30 to move, so that the round protrusion at the bottom of the extrusion rod 30 moves along the inclined surface of the second movable block 32, so that the first elastic element 31 is compressed. The second movable block 32 drives the pushing block 33 from the moving port to both sides of the second irradiation lamp 6 and pushes the adjusting plate 34 to deflect, and the connecting spring is stretched. When the second auxiliary lamp 20 moves to the left and right sides of the second irradiation lamp 6, the adjusting plate 34 drives the third auxiliary lamp to deflect, expanding the irradiation range of the large area of the fabric edge.
[0065] After the positions and angles of the first auxiliary lamp 18, the second auxiliary lamp 20, and the third auxiliary lamp are adjusted, the parameters are adjusted by the control structure so that the first irradiation lamp 5, the second irradiation lamp 6, the first auxiliary lamp 18, the second auxiliary lamp 20, and the third auxiliary lamp can simultaneously irradiate the fabric from multiple angles. The fabric is turned over by the clamping and rotating device so that both the top and bottom sides of the fabric, whether large or small, can be irradiated. After irradiation, the fabric of different areas is moved to the irradiation box 3 by the conveyor belt 2 for external collection.
[0066] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it.
Claims
1. A multi-angle irradiation antibacterial device, characterized in that, include: A mounting box and a conveyor belt, wherein the mounting box is used to mount the conveyor belt; An irradiation chamber, wherein an irradiation structure is connected inside the irradiation chamber; The irradiated structure includes: A fixing plate is connected to the inside of the irradiation chamber; A first irradiant lamp and three second irradiant lamps, all located at the bottom of the fixed plate; The movable structure is connected to the fixed plate; The movable structure includes: A first driving element and a moving block, wherein the moving block is connected to the top of the first irradiation lamp, and the first driving element drives the first irradiation lamp to move through the moving block; The second driving element and the moving plate are connected to the top of the three second irradiation lamps. The second driving element drives the three second irradiation lamps to move through the moving plate. The first irradiation lamp has a first adjustment structure inside, the first adjustment structure including: The third driving component is connected to the first rotating body and the moving component, and the moving component is provided with a push plate that pushes the first movable block to move. The limiting rod is slidably connected to the moving part; The first movable block is connected to a first auxiliary light; The second irradiant lamps located on both sides of the bottom of the fixed plate are provided with a second adjustment structure, the second adjustment structure including: The fourth driving component is connected to the second auxiliary light and is used to drive the second auxiliary light to move; The top of the conveyor belt is connected to a mounting plate, and the top of the mounting plate has a T-shaped opening. The T-shaped opening and the top of the mounting plate are provided with a shielding structure. Both the first auxiliary light and the second auxiliary light are provided with rotating structures on both sides, the rotating structures including: The rotating component is connected to the first auxiliary light and the second auxiliary light via a second rotating body; Two sliding plates are respectively connected to the rotating component and the second rotating body; The fourth driving component has a third adjustment component at one end, the third adjustment component comprising: A connecting plate is connected to the fourth driving component; An extrusion rod, connected to the connecting plate, is used to extrude the second movable block and the push block to move. An adjustment plate is connected to one side of the push block. The first elastic element is connected to the second movable block; The adjustment plate is rotatably connected to both sides of the second irradiation lamp, and a third auxiliary lamp is connected to one side of the adjustment plate.
2. The multi-angle irradiation antibacterial device according to claim 1, characterized in that, The adjustment plate has a groove on the side near the second irradiation lamp, and a connecting spring is connected in the groove.
3. The application of the multi-angle irradiation antibacterial device as described in claim 2 in the preparation of antibacterial fabrics.