Multi-angle irradiation antibacterial device and application thereof in preparation of antibacterial fabric

The multi-angle irradiation device addresses uneven irradiation issues by adjusting lamp positions and angles, ensuring uniform antibacterial treatment across fabrics of varying sizes, thereby improving treatment efficiency.

CN120305431AActive Publication Date: 2025-07-15HUBEI MEIXUE IND CO LTD
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Patent Information

Application Number
CN202510623558.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-15
Publication Date
2025-07-15
Estimated Expiration
2045-05-15

AI Technical Summary

Technical Problem

In the prior art, fabrics of different areas have uneven radiation due to different coverage and time during the irradiation and antibacterial process, which affects the irradiation efficiency.

Method used

A multi-angle irradiation antibacterial device is designed to ensure that fabrics of different areas are irradiated evenly in the irradiation box by moving and adjusting the position, distance and angle between the first irradiation lamp and the second irradiation lamp, combined with the transmission of the conveyor belt.

Benefits of technology

It realizes uniform irradiation of fabrics in different areas, improves irradiation antibacterial efficiency, ensures that the edges of the fabric can also be fully irradiated, and improves the irradiation effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of fabric treatment devices, and discloses a multi-angle irradiation antibacterial device and application thereof in preparation of antibacterial fabric, the multi-angle irradiation antibacterial device comprises a mounting box and a conveyor belt, and the mounting box is used for mounting the conveyor belt; the interior of the irradiation box is connected with an irradiation structure; the irradiation structure comprises a fixed plate connected to the interior of the irradiation box; and the first irradiation lamp and the three second irradiation lamps as well as the first irradiation lamp and the three second irradiation lamps are all positioned at the bottom of the fixed plate. The positions of the first irradiation lamp and the second irradiation lamp are adjusted, the irradiation range of the fabric with different areas is increased through the first auxiliary lamp and the second auxiliary lamp, the irradiation distance between the three second irradiation lamps and the fabric is adjusted at the same time, the irradiation intensity is improved, irradiation is uniform, the irradiation time of the fabric with different areas in the irradiation box is kept the same, and the irradiation efficiency is improved. The radiation antibacterial efficiency of the fabric is improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of fabric processing devices, and particularly relates to a multi-angle irradiation antibacterial device and its application in the preparation of antibacterial fabrics. Background Art

[0002] Whenever the temperature rises, clothes are always more likely to absorb human sweat or dander during wearing, leading to bacterial growth. As a special functional fabric, antibacterial fabric can effectively inhibit the growth and reproduction of bacteria and fungi on the fabric after antibacterial finishing, thus keeping the fabric fresh and hygienic, preventing the generation of odors and avoiding the adverse effects on the human body caused by attached bacteria. It is widely used in the fields of clothing, medical treatment, etc.

[0003] In the prior art, when fabrics of different areas are put into the irradiation box for irradiation antibacterial, due to different coverage ranges of fabrics of different areas, for large-area fabrics, because of their wide overall coverage range and long irradiation time, while small-area fabrics have a small coverage range and short irradiation time. During use, when fabrics of different areas are irradiated simultaneously, due to different irradiation times, the irradiation is uneven, affecting the irradiation effect, and thus it is not convenient to improve the efficiency of fabric irradiation antibacterial. Summary of the Invention

[0004] The present invention aims at the problems in the prior art and proposes the following technical solutions: A multi-angle irradiation antibacterial device, comprising:

[0005] An installation box and a conveyor belt, the installation box is used for installing the conveyor belt;

[0006] An irradiation box, an irradiation structure is connected inside the irradiation box;

[0007] The irradiation structure includes:

[0008] A fixing plate, connected inside the irradiation box;

[0009] A first irradiation lamp and three second irradiation lamps, both the first irradiation lamp and the three second irradiation lamps are located at the bottom of the fixing plate;

[0010] A moving structure, connected to the fixing plate.

[0011] Further, the moving structure includes:

[0012] A first driving member and a moving block, the moving block is connected to the top of the first irradiation lamp, and the first driving member drives the first irradiation lamp to move through the moving block;

[0013] A second driving member and a moving plate, the moving plate is connected to the tops of the three second irradiation lamps, and the first driving member drives the three second irradiation lamps to move through the moving plate.

[0014] Further, a first adjustment structure is provided inside the first irradiation lamp. The first adjustment structure includes:

[0015] A third driving member is connected to a first rotating body and a moving member. A pushing plate for pushing the first movable block to move is provided on the moving member.

[0016] A limiting rod is slidably connected to the moving member.

[0017] The first movable block is connected to a first auxiliary lamp.

[0018] Further, a second adjustment structure is provided inside the second irradiation lamps located on both sides of the bottom of the fixing plate. The second adjustment structure includes:

[0019] A fourth driving member is connected to a second auxiliary lamp and is used to drive the second auxiliary lamp to move.

[0020] Further, a mounting plate is connected to the top of the conveyor belt. A T-shaped opening is provided in the top of the fixing plate, and a shielding structure is provided between the T-shaped opening and the top of the mounting plate.

[0021] Further, rotating structures are provided on both sides of the first auxiliary lamp and the second auxiliary lamp. The rotating assembly includes:

[0022] A rotating member is connected to the first auxiliary lamp and the second auxiliary lamp through a second rotating body.

[0023] Two sliding plates are respectively connected to the rotating member and the second rotating body.

[0024] Further, a third adjustment assembly is provided at one end of the fourth driving member. The third adjustment assembly includes:

[0025] A connecting plate is connected to the fourth driving member.

[0026] An extrusion rod is connected to the connecting plate and is used to extrude the second movable block and the pushing block to move. One side of the pushing block is connected to an adjustment plate.

[0027] A first elastic member is connected to the second movable block.

[0028] The adjustment plate is rotatably connected to both sides of the second irradiation lamp. One side of the adjustment plate is connected to a third auxiliary lamp.

[0029] Further, a groove is provided on the side of the adjustment plate close to 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 the present invention are:

[0032] (1) By adjusting the positions of the first irradiation lamp and the second irradiation lamp, the irradiation range of fabrics with different areas is increased through the first auxiliary lamp and the second auxiliary lamp. At the same time, the irradiation distances between the three second irradiations and the fabrics are adjusted to increase the irradiation intensity, and the irradiation is uniform, so that the irradiation time of fabrics with different areas inside the irradiation box remains the same, improving the efficiency of fabric irradiation and antibacterial treatment;

[0033] (2) By adjusting the angles of the first auxiliary lamp, the second auxiliary lamp and the third auxiliary lamp, they can better cover large areas, enabling the edges of the fabrics to be fully irradiated, ensuring uniform irradiation of the fabrics, and further improving the effect of fabric irradiation. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 FIG. shows the overall structural schematic diagram of the embodiment;

[0035] Figure 2 FIG. shows the overall structural sectional view of the embodiment;

[0036] Figure 3 FIG. shows the internal structural diagram of the irradiation box of the embodiment;

[0037] Figure 4 FIG. shows the structural diagram of the fixing plate, the first irradiation lamp and the second irradiation lamp of the embodiment;

[0038] Figure 5 FIG. shows the structural diagram of the fixing plate and the moving structure of the embodiment;

[0039] Figure 6 FIG. shows the bottom structural diagram of the fixing plate, the first irradiation lamp and the second irradiation lamp of the embodiment;

[0040] Figure 7 FIG. shows Figure 2 the enlarged view at A of

[0041] Figure 8 FIG. shows the structural diagram of the first adjustment structure of the embodiment;

[0042] Figure 9 FIG. shows the side view of the second irradiation lamp of the embodiment;

[0043] Figure 10 FIG. shows the sectional view of the second irradiation lamp of the embodiment;

[0044] Figure 11 FIG. shows Figure 10 the enlarged view at B of

[0045] In the figure: 1, mounting box; 2, conveyor belt; 3, irradiation box; 4, fixing plate; 5, first irradiation lamp; 6, second irradiation lamp; 9, first driving member; 10, moving block; 11, second driving member; 12, moving plate; 13, third driving member; 14, first rotating body; 15, moving member; 16, first movable block; 17, pushing plate; 18, first auxiliary lamp; 19, fourth driving member; 20, second auxiliary lamp; 21, mounting plate; 22, limiting plate; 23, baffle; 24, metal block; 25, fixing block; 26, electromagnet; 27, rotating member; 28, second rotating body; 29, connecting plate; 30, pressing rod; 31, first elastic member; 32, second movable block; 33, pushing block; 34, adjusting plate; 35, sliding plate. Detailed implementation mode

[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] The present invention provides a multi-angle irradiation antibacterial device, as Figures 1 to 7 shown, including 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. The mounting box 1 is used to mount the conveyor belt 2. The irradiation box 3 is fixedly installed on the top of the mounting box 1. The conveyor belt 2 is located at the bottom of the irradiation box 3. An outlet is provided on one side of the irradiation box 3. A control structure is provided on one side of the irradiation box 3 close to the outlet, which can separately set different irradiation parameters for fabrics of different areas, realize differential irradiation, ensure that each fabric can obtain an appropriate irradiation amount, achieve a good antibacterial effect and maintain the fabric performance. An irradiation structure is connected inside the irradiation box 3. In order to place fabrics of different areas inside the irradiation box 3 for irradiation and antibacterial, so that fabrics of different areas can be irradiated simultaneously inside the irradiation box 3, a mounting plate 21 is fixedly connected to the top of the conveyor belt 2. A T-shaped opening is provided at the top of the fixing plate 4. A shielding structure is provided between the T-shaped opening and the top of the mounting plate 21. The shielding structure can move conveniently through the T-shaped opening, separate fabrics of different areas on the mounting plate 21, and prevent interference during irradiation. The irradiation structure includes a fixing plate 4, a first irradiation lamp 5, three second irradiation lamps 6, and a moving structure. Both sides of the fixing plate 4 are fixedly installed on the inner wall of the irradiation box 3. The first irradiation lamp 5 and the three second irradiation lamps 6 are both located at the bottom of the fixing plate 4. The first irradiation lamp 5 and the second irradiation lamps 6 are both 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 the intensity of irradiation so as to irradiate fabrics of different areas, a moving structure is connected to the fixing plate 4. The moving structure includes a first driving member 9, a moving block 10, a second driving member 11 and a moving plate 12. The moving block 10 is fixedly installed on the top of the first irradiation lamp 5. The moving block 10 is slidably connected to the inner wall of the fixing plate 4. The first driving member 9 is located on one side of the moving block 10 and fixedly installed on the inner wall of the fixing plate 4. The first driving member 9 drives the first irradiation lamp 5 to move through the moving block 10. The moving plate 12 is fixedly installed on the tops of the three second irradiation lamps 6. The top of the second driving member 11 is fixedly installed on the inner wall of the top of the irradiation box 3. A moving groove is formed at the bottom of the fixing plate 4. The moving plate 12 is located inside the moving groove. The bottom of the second driving member 11 passes through the fixing plate 4 and extends into the moving groove to be fixedly installed with the moving plate 12. The second driving member 11 drives the three second irradiation lamps 6 to move through the moving plate 12.

[0049] During use, fabrics of different areas are respectively fixed on the mounting plate 21. The control structure drives the first driving member 9 to drive the moving block 10 and the first irradiation lamp 5 to move 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 member 11 drives the moving plate 12 and the second irradiation lamps 6 to move downward away from the groove and move to the top of the large-area fabric, adjusting the distance between the second irradiation lamps 6 and the large-area fabric to increase the irradiation intensity. When the first driving member 9 drives the moving block 10 to move, the shielding structure moves through the T-shaped opening to separate the large-area and small-area fabrics on both sides of the mounting plate 21. Then, the parameters are adjusted through the control structure, so that the first irradiation lamp 5 and the second irradiation lamps 6 can irradiate the fabric from multiple angles at the same time. The clamping and rotating device drives the fabric to turn over, so that both the upper and lower sides of the large-area and small-area fabrics can be irradiated.

[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 linearly arranged 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. When the second driving member 11 drives the moving plate 12 and the second irradiation lamps 6 to move downward, the distance between the second irradiation lamps 6 and the fabric is adjusted to irradiate fabrics of different areas respectively.

[0051] Such as Figures 5 to 8As shown, in order to increase the irradiation range of the first irradiation lamp 5 and the second irradiation lamp 6 after they move, a first adjustment structure is provided inside the first irradiation lamp 5. The first adjustment structure includes a third driving member 13, a limiting rod, a moving member 15, a first movable block 16 and a first auxiliary lamp 18. A first installation groove is formed at the top of the first irradiation lamp 5. The third driving member 13 is fixedly installed on the inner wall of the top of the first installation groove, and 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 installation groove. A moving member 15 is threadedly connected to the first rotating body 14. A push plate 17 for pushing the first movable block 16 to move is arranged on the moving member 15. The limiting rod is slidably connected to both ends of the moving member 15 and is fixedly installed on the inner wall of the first installation groove. The first movable block 16 is connected to a first auxiliary lamp 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 lamp 18. The first movable block 16 and the first auxiliary lamp 18 are slidably connected to the inner wall of the first installation groove. Second adjustment structures are provided inside the second irradiation lamps 6 on both sides of the bottom of the fixed plate 4. The second adjustment structures include a fourth driving member 19 and second auxiliary lamps 20. The three second irradiation lamps 6 are arranged in sequence along the horizontal direction. Second installation grooves are formed at the tops of the second irradiation lamps 6 on both sides. The fourth driving structure is fixedly installed on the inner wall of the second installation groove. The fourth driving structure is fixedly connected to a second auxiliary lamp 20 for driving the second auxiliary lamp 20 to move. The second auxiliary lamp 20 is movably connected to the inner wall of the second installation groove.

[0052] In this embodiment, the third driving member 13 can be a motor, the fourth driving member 19 can be a cylinder, the first movable block 16 and the first auxiliary lamp 18 are symmetrically arranged with respect to the center of the first installation groove, and the fourth driving member 19 and the second auxiliary lamp 20 are symmetrically arranged with respect to the moving plate 12.

[0053] After the first irradiation lamp 5 and the second irradiation lamp 6 move to the tops of the large-area and small-area fabrics, start the third driving member 13 to drive the first rotating body 14 to rotate along the inner wall of the first installation groove. Through the limiting action of the limiting rod, the moving member 15 moves downward along the first rotating body 14, and the push plate 17 deflects to push the first movable block 16 and the first auxiliary lamp 18 to move along the inner wall of the first installation groove, so that the first auxiliary lamp 18 moves to both sides of the first irradiation lamp 5 to increase the irradiation range. At the same time, start the fourth driving member 19 to drive the second auxiliary lamp 20 to move along the inner wall of the second installation groove, so that the second auxiliary lamp 20 moves 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, affecting the irradiation effect.

[0054] As Figures 2 to 6As shown in the figure, the shielding structure includes a limiting plate 22, a baffle plate 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 in an L shape. An insertion opening is formed on one side of the baffle plate 23. The limiting plate 22 is inserted into the baffle plate 23 through the insertion opening. The baffle plate 23 is located on the T-shaped opening. The baffle plate 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 plate 23. The fixing block 25 is fixedly connected to the top of the mounting plate 21. The fixing block 25 is arranged corresponding to the baffle plate 23. An 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 member 9 drives the moving block 10 and the first irradiation lamp 5 to move, it simultaneously drives the limiting plate 22 to move, causing the limiting plate 22 to separate from the insertion opening on the baffle plate 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 through the control structure to adsorb the metal block 24, causing the metal block 24 to drive the baffle plate 23 and the slider to move downward along the inner wall of the irradiation box 3. Furthermore, the baffle plate 23 moves into the fixing block 25, and the electromagnet 26 is in contact with the metal block 24. The baffle plate 23 separates the fabrics on both sides of the mounting plate 21, enabling fabrics of different areas to be irradiated in two different regions without interference. Through the irradiation effect, when the irradiation is completed, the electromagnet 26 is de-energized through the control structure, and the electromagnet 26 and the metal block 24 repel each other, causing the metal block 24 to drive the baffle plate 23 and the slider to move upward along the inner wall of the irradiation box 3. At the same time, the first driving block is started to drive the moving block 10 and the first irradiation lamp 5 to move back to their original positions. When the baffle plate 23 moves back to its original position, the limiting plate 22 is inserted into the insertion opening of the baffle plate 23, thereby limiting the baffle plate 23 and facilitating irradiation of different areas again.

[0056] As Figure 8 、 Figure 9 、 Figure 11 shown, in order to adjust the angles of the first auxiliary lamp 18 and the second auxiliary lamp 20 to better cover a large area and irradiate at different angles, rotating structures are provided on both sides of the first auxiliary lamp 18 and the second auxiliary lamp 20. The rotating assembly includes a rotating member 27, two sliding plates 35 and a second rotating body 28. The rotating member 27 is fixedly connected to the first auxiliary lamp 18 and the second auxiliary lamp 20 through the second rotating body 28. The two sliding plates 35 are respectively connected to the rotating member 27 and the second rotating body 28. One side of the rotating member 27 is fixedly installed with the sliding plate 35. 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 member 27 and the second rotating body 28 are respectively slidably connected to the first installation groove and the second installation groove.

[0057] In this embodiment, the rotating member 27 can be a motor, and the rotating components inside the first mounting groove are symmetrically arranged with the center of the first mounting groove as the center.

[0058] After the first auxiliary lamp 18 and the second auxiliary lamp 20 respectively move to both sides of the first irradiation lamp 5 and the second irradiation lamp 6, when the first auxiliary lamp 18 and the second auxiliary lamp 20 are facilitated to be installed by the sliding plate 35, the rotating member 27 and the second rotating body 28 can be driven to move. When the two sliding plates 35 move to the openings of the first mounting groove and the second mounting groove, the rotating member 27 is started to drive the second rotating body 28 to rotate, so that the first auxiliary lamp 18 and the second auxiliary lamp 20 respectively rotate on both sides of the first irradiation lamp 5 and the second irradiation lamp 6, adjusting the irradiation angle and improving the irradiation effect at the edge of the fabric.

[0059] As Figures 9 to 11 shown, in order to improve the irradiation range on both the front and rear sides of the second irradiation lamp 6, so that the edge of the fabric can be fully irradiated, a third adjusting component is arranged at one end of the fourth driving member 19. The third adjusting component includes a connecting plate 29, a pressing rod 30, a first elastic member 31, a second movable block 32, a pushing block 33, an adjusting plate 34 and a third auxiliary lamp. One end of the connecting plate 29 is fixedly installed with the fourth driving member 19, the bottom of the connecting plate 29 is slidably connected with 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 round convex, and one side of the second movable block 32 close to the round convex is an inclined surface. The round convex is located at the top of the inclined surface and is used for pressing the second movable block 32 and the pushing block 33 to move. One end of the first elastic member 31 is fixedly connected to the side of the second movable block 32 close to the pushing block 33, and one end of the first elastic member 31 is fixedly installed with the inner wall of the second mounting groove. Two moving ports are opened on both sides of the second irradiation lamp 6. The pushing block 33 passes through the moving port and is fixedly connected with the adjusting plate 34. The adjusting plate 34 is rotatably connected to both sides of the second irradiation lamp 6. One side of the adjusting plate 34 is connected with a third auxiliary lamp. The third auxiliary lamp is attached to both sides of the second irradiation lamp 6. A groove is opened on the side of the adjusting plate 34 close to the second irradiation lamp 6. A connecting spring is connected in the groove. One end of the connecting spring is fixedly installed on the outer side of the second irradiation lamp 6. The connecting spring is located on the top of the third auxiliary lamp.

[0060] In this embodiment, the first elastic member 31 can be a compression spring. There are two groups of connecting springs, and each group of connecting springs is located between the second irradiation ceiling lamp and the adjusting plate 34. The third adjusting component is symmetrically arranged inside the second mounting groove.

[0061] When the fourth driving member 19 drives the second auxiliary lamp 20 to move, the fourth driving member 19 drives the connecting plate 29 and the extrusion rod 30 to move, so that the circular convex at the bottom of the extrusion rod 30 moves along the inclined surface of the second movable block 32, compressing the first elastic member 31. The second movable block 32 drives the pushing block 33 to move from the moving port to both sides of the second irradiation lamp 6 and push 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 edges of the large-area fabric.

[0062] Application of a multi-angle irradiation antibacterial device as described above in the preparation of antibacterial fabrics.

[0063] Working principle: During use, fabrics of different areas are respectively fixed on the mounting plate 21 through the clamping and rotating device. The control structure moves the fabric on the mounting plate 21 into the irradiation box 3 through the conveyor belt 2. The control structure drives the first driving member 9 to drive the moving block 10 and the first irradiation lamp 5 to move along the fixed groove, so that the first irradiation lamp 5 moves to the top of the small-area fabric. At the same time, the second driving member 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, adjusting the distance between the second irradiation lamp 6 and the large-area fabric. When the first driving member 9 drives the moving block 10 to move, it also drives the limiting plate 22 to move, so that the limiting plate 22 is separated from the socket on the baffle 23. When the first irradiation lamp 5 moves to the top of the fabric, the T-shaped port is exposed, and the control structure energizes the electromagnet 26 to adsorb the metal block 24, so that the metal block 24 drives the baffle 23 and the slider to move downward along the inner wall of the irradiation box 3, and then the baffle 23 moves into the fixing block 25, and the electromagnet 26 is in contact with the metal block 24. The baffle 23 separates the large-area fabric and the small-area 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-area and small-area fabrics, the third driving member 13 is activated to drive the first rotating body 14 to rotate along the inner wall of the first installation groove. Due to the limiting effect of the limiting rod, the moving member 15 moves downward along the first rotating body 14, and the pushing plate 17 deflects to push the first movable block 16 and the first auxiliary lamp 18 to move along the inner wall of the first installation groove, so that the first auxiliary lamp 18 moves to both sides of the first irradiation lamp 5 to increase the irradiation range. At the same time, the fourth driving member 19 is activated to drive the second auxiliary lamp 20 to move along the inner wall of the second installation groove, so that the second auxiliary lamp 20 moves 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. 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 two sliding plates 35 move to the openings of the first installation groove and the second installation groove. The rotating member 27 is activated to drive 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 to adjust the irradiation angle. When the fourth driving member 19 drives the second auxiliary lamp 20 to move, the fourth driving member 19 drives the connecting plate 29 and the pressing rod 30 to move, so that the round convex at the bottom of the pressing rod 30 moves along the inclined surface of the second movable block 32, compressing the first elastic member 31. The second movable block 32 drives the pushing block 33 to move from the moving port to both sides of the second irradiation lamp 6 and push 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, expanding the irradiation range of the edge of the large-area fabric.

[0065] After the position and angle of the first auxiliary lamp 18, the second auxiliary lamp 20 and the third auxiliary lamp are adjusted, the parameters are adjusted through 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 irradiate the fabric from multiple angles at the same time. The fabric is turned over by the clamping and rotating device, so that both the upper and lower sides of the large-area and small-area fabrics can be irradiated. After the irradiation is completed, the fabrics of different areas are moved to the irradiation box 3 through the conveyor belt 2 for external collection.

[0066] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it.

Claims

1. A multi-angle irradiation antibacterial device, characterized in that, Comprising: An installation box (1) and a conveyor belt (2), the installation box (1) being used for installing the conveyor belt (2); An irradiation box (3), an irradiation structure being connected inside the irradiation box (3); The irradiation structure includes: A fixed plate (4), connected inside the irradiation box (3); A first irradiation lamp (5) and three second irradiation lamps (6), the first irradiation lamp (5) and the three second irradiation lamps (6) both being located at the bottom of the fixed plate (4); A moving structure, connected to the fixed plate (4).

2. The multi-angle irradiation antibacterial device according to claim 1, wherein, The moving structure includes: A first driving member (9) and a moving block (10), the moving block (10) being connected to the top of the first irradiation lamp (5), the first driving member (9) driving the first irradiation lamp (5) to move through the moving block (10); A second driving member (11) and a moving plate (12), the moving plate (12) being connected to the tops of the three second irradiation lamps (6), the second driving member (11) driving the three second irradiation lamps (6) to move through the moving plate (12).

3. The multi-angle irradiation antibacterial device according to claim 2, wherein, A first adjustment structure is arranged inside the first irradiation lamp (5), and the first adjustment structure includes: A third driving member (13), connected with a first rotating body (14) and a moving member (15), a pushing plate (17) for pushing a first movable block (16) to move being arranged on the moving member (15); A limiting rod, slidably connected to the moving member (15); The first movable block (16) is connected with a first auxiliary lamp (18).

4. The multi-angle irradiation antibacterial device according to claim 3, wherein, Second adjustment structures are arranged inside the second irradiation lamps (6) on both sides of the bottom of the fixed plate (4), and the second adjustment structures include: A fourth driving member (19), connected with a second auxiliary lamp (20), for driving the second auxiliary lamp (20) to move.

5. The multi-angle irradiation antibacterial device according to claim 4, wherein, An installation plate (21) is connected to the top of the conveyor belt (2), a T-shaped opening is formed in the top of the fixed plate (4), and a shielding structure is arranged between the T-shaped opening and the top of the installation plate (21).

6. The multi-angle irradiation antibacterial device according to claim 5, wherein, Rotating structures are arranged on both sides of the first auxiliary lamp (18) and the second auxiliary lamp (20), and the rotating assembly includes: A rotating member (27), connected to the first auxiliary lamp (18) and the second auxiliary lamp (20) through a second rotating body (28); Two sliding plates (35), respectively connected to the rotating member (27) and the second rotating body (28).

7. The multi-angle irradiation antibacterial device according to claim 6, characterized in that A third adjustment assembly is arranged at one end of the fourth driving member (19), and the third adjustment assembly includes: A connecting plate (29), connected to the fourth driving member (19); An extrusion rod (30), connected to the connecting plate (29), for extruding a second movable block (32) and a pushing block (33) to move, a regulating plate (34) being connected to one side of the pushing block (33); A first elastic member (31), connected to the second movable block (32); The regulating plate (34), rotatably connected to both sides of the second irradiation lamp (6), a third auxiliary lamp being connected to one side of the regulating plate (34).

8. The multi-angle irradiation antibacterial device according to claim 7, characterized in that, A groove is formed in one side of the regulating plate (34) close to the second irradiation lamp (6), and a connecting spring is connected inside the groove.

9. Use of a multi-angle irradiation antibacterial device as described in claim 8 in the preparation of antibacterial fabrics.

Citation Information

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