Laboratory biological lamp

By incorporating a cylindrical body, curved slide, movable plate, movable rod, crossbar, light strip, spring, and motor into the laboratory biological lamp, the problem of the existing laboratory biological lamp's single function is solved. This enables the switching between focused and diffused light modes of the light strip and the adjustment of the light direction, thus improving the applicability of the laboratory biological lamp.

CN224003607UActive Publication Date: 2026-03-17LONGKE BIOLOGICAL (QINGDAO) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing laboratory biological lamps have relatively limited functions and cannot meet the diverse needs for illumination range in different experimental scenarios.

Method used

By coordinating the use of a cylindrical body, curved slide, movable plate, movable rod, horizontal bar, light strip, spring, and motor, the light strip can switch between focusing and diffused light modes, and the focusing direction can be adjusted. The design of the top plate and vertical plate allows for further adjustment of the lighting direction.

Benefits of technology

It enables multi-functional switching of lighting modes and flexible adjustment of lighting direction for the light strip, improving the applicability of the device in different experimental scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of biological lamps, and particularly discloses a laboratory biological lamp which comprises a cylinder body, arc-shaped slide ways which are evenly distributed are formed in the outer wall of the cylinder body, movable plates which are evenly distributed are rotatably arranged in the cylinder body, movable rods which are evenly distributed are fixedly installed on the movable plates, and the arc-shaped slide ways are arranged on the outer wall of the cylinder body. The movable rods are arranged on the arc-shaped sliding ways in a sliding mode, transverse strips are jointly and fixedly installed at the ends of the movable rods in each row, lamp strips are arranged on the outer walls of the transverse strips, springs are fixedly installed between the adjacent movable plates, and symmetrical first motors are fixedly installed in the barrel. The ends of output shafts of the two first motors are fixedly provided with arc plates, the side edges of the two arc plates directly face the movable plates on the two sides correspondingly, a top plate is arranged over the barrel, the biological lamp for the laboratory can drive the multiple lamp strips to be close to or away from each other, the light condensation mode and the light diffusion mode are switched, the light condensation direction can be adjusted, and the applicability is high.
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Description

Technical Field

[0001] This utility model belongs to the field of biological lamp technology, and in particular relates to a laboratory biological lamp. Background Technology

[0002] Laboratory biological lamps are lighting devices specifically designed for laboratory environments. They come in various types, such as fluorescent lamps, LED lamps, ultraviolet lamps, and infrared lamps, to meet the needs of different biological experiments. They provide stable and suitable lighting conditions for laboratory personnel, ensuring the accuracy and reliability of experiments.

[0003] Existing laboratory biolights have relatively limited functions, mostly providing light within a single illumination range, which is insufficient to meet the diverse lighting requirements of different experimental scenarios. Therefore, improvements are needed, and a new type of laboratory biolight is proposed. Utility Model Content

[0004] The purpose of this invention is to provide a laboratory biological lamp to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a laboratory biological lamp, comprising a cylindrical body, wherein the outer wall of the cylindrical body is provided with uniformly distributed arc-shaped slides, and the cylindrical body is provided with uniformly distributed movable plates that are rotatably arranged. Each movable plate is fixedly mounted with uniformly distributed movable rods, which are slidably arranged on the arc-shaped slides. Each row of movable rods has a common horizontal bar fixedly mounted at its end, and each horizontal bar has a light strip on its outer wall. A spring is fixedly mounted between adjacent movable plates. A symmetrical motor is fixedly mounted inside the cylindrical body, and arc plates are fixedly mounted at the ends of the output shafts of the two sets of motors. The sides of the two sets of arc plates are respectively facing the movable plates on both sides.

[0006] As a further description of the above solution: by setting up the cylinder, arc-shaped slide, movable plate, movable rod, crossbar, light strip, spring, motor, and the coordinated operation between the arc plate, it is possible not only to drive multiple sets of light strips to move closer or further apart, switch between focusing and diffused light modes, but also to adjust the focusing direction, making it highly applicable.

[0007] Preferably, a top plate is provided directly above the cylinder, and symmetrical vertical plates are fixedly installed on the bottom surface of the top plate.

[0008] As a further description of the above solution: a top plate and a vertical plate are provided to facilitate the overall installation of the device.

[0009] Preferably, a second motor is fixedly installed on the outer wall of one of the vertical plates, the cylinder is rotatably arranged between the two sets of vertical plates, and the output shaft end of the second motor is fixedly installed with the cylinder shaft end.

[0010] As a further description of the above solution: by setting up the top plate, vertical plate, motor two, and the coordinated operation between the cylinder, the direction of light can also be adjusted, thereby improving the applicability of the device.

[0011] Preferably, all the springs are configured to be arc-shaped.

[0012] As a further description of the above solution: all springs are set in an arc shape, which can better adapt to the deflection of the movable plate.

[0013] Preferably, the movable rod is adapted to the size of the arc-shaped slide.

[0014] As a further description of the above solution: the size of the movable rod is adapted to the arc-shaped slide, which can improve the stability of the movable rod, the crossbar, and the light strip during the deflection process.

[0015] In summary, compared with the prior art, the beneficial effects of this utility model are:

[0016] 1. In this utility model, by setting up a cylinder, an arc-shaped slide, a movable plate, a movable rod, a crossbar, a light strip, a spring, a motor, and the coordinated operation of the arc plate, it can not only drive multiple sets of light strips to move closer or further apart, switch between focusing and diffusing modes, but also adjust the focusing direction, making it highly applicable.

[0017] 2. In this utility model, by setting up a top plate, a vertical plate, a second motor, and working together with the cylinder, the direction of light can also be adjusted, thus improving the applicability of the device. Attached Figure Description

[0018] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0019] Figure 2 This is a structural diagram of the cylinder and light strip of this utility model;

[0020] Figure 3 This is a front view of the cylindrical body and light strip structure of this utility model;

[0021] Figure 4 This is a structural diagram of the motor and the arc plate of this utility model.

[0022] Legend:

[0023] 1. Cylinder body; 2. Arc-shaped slide; 3. Movable plate; 4. Movable rod; 5. Horizontal bar; 6. Light strip; 7. Spring; 8. Motor 1; 9. Arc plate; 10. Top plate; 11. Vertical plate; 12. Motor 2. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.

[0025] Please see Figure 1-4 This utility model provides a technical solution:

[0026] A laboratory biological lamp includes a cylindrical body 1. The outer wall of the cylindrical body 1 has evenly distributed arc-shaped slides 2. The cylindrical body 1 is rotatably arranged with evenly distributed movable plates 3. Evenly distributed movable rods 4 are fixedly installed on each movable plate 3. The movable rods 4 are slidably arranged on the arc-shaped slides 2. A crossbar 5 is fixedly installed at the end of each row of movable rods 4. A lamp strip 6 is provided on the outer wall of each crossbar 5. A spring 7 is fixedly installed between adjacent movable plates 3. A symmetrical motor 8 is fixedly installed inside the cylindrical body 1. Arc plates 9 are fixedly installed at the ends of the output shafts of the two sets of motors 8. The sides of the two sets of arc plates 9 are respectively facing the two movable plates 3.

[0027] In the laboratory biological lamp, the light strips 6 on multiple horizontal strips 5 provide experimental lighting for the laboratory;

[0028] When adjusting multiple sets of light strips 6, the motors inside the cylinder 1 are started simultaneously. The arc plates 9 fixedly installed at the ends of the output shafts of the two sets of motors rotate accordingly. During the rotation of the arc plates 9, the movable plates 3 on both sides contact and push the movable plates 3 on both sides to deflect inside the cylinder 1. Springs 7 are fixedly installed between adjacent movable plates 3. When the two sets of movable plates 3 deflect, the force of the springs 7 drives multiple sets of movable plates 3 to move closer to each other. Since the movable plates 3 are fixedly installed with evenly distributed movable rods 4, and the movable rods 4 are respectively slidably set on the evenly distributed arc-shaped slides 2 opened on the outer wall of the cylinder 1, the deflection of the movable plates 3 will drive the movable rods 4 to slide along the arc-shaped slides 2. The horizontal bars 5 fixedly installed at the ends of each row of movable rods 4 will also move closer to each other as the movable rods 4 slide, thereby driving the light strips 6 set on the outer wall of the horizontal bars 5 to move closer to each other, thus realizing the focusing mode.

[0029] When motor 8 reverses, the arc plate 9 gradually moves away from the two movable plates 3. Under the action of the spring 7 between the adjacent movable plates 3, the movable plates 3 are driven to gradually deflect and reset, thereby driving the light strips 6 to move away from each other and switch to diffused light mode.

[0030] In addition, by controlling the deflection stroke of the two sets of motors 8 to the arc plate 9, the degree of deflection of the two movable plates 3 can also be controlled, thereby adjusting the focusing direction.

[0031] This laboratory bio-lamp can not only drive multiple sets of light strips to move closer or further apart, switch between focused and diffused light modes, but also adjust the focused light direction, making it highly versatile.

[0032] A top plate 10 is provided directly above the cylinder 1, and symmetrical vertical plates 11 are fixedly installed on the bottom surface of the top plate 10;

[0033] When installing the laboratory biological lamp, the entire device can be fixed to the laboratory ceiling by the top plate 10, and the vertical plate 11 is used to support the cylinder 1.

[0034] A motor 12 is fixedly installed on the outer wall of one side of the vertical plate 11. The cylinder 1 is rotatably arranged between the two sets of vertical plates 11. The output shaft end of the motor 12 is fixedly installed with the rotating shaft end of the cylinder 1.

[0035] Start the second motor 12 on the vertical plate 11. The output shaft of the second motor 12 rotates, causing the cylinder 1 to rotate between the two sets of vertical plates 11. As the cylinder 1 rotates, the illumination direction emitted by the lamp strip 6 will also change accordingly. For example, when it is necessary to illuminate the experimental samples in different directions, start the second motor 12 and adjust the rotation angle of the cylinder 1 so that the illumination of the lamp strip 6 can accurately cover the target sample area, further improving the applicability of the device to adjust the illumination direction in different experimental scenarios.

[0036] All 7 springs are designed to be arc-shaped;

[0037] All springs 7 are designed in an arc shape to better accommodate the deflection of the movable plate 3.

[0038] The movable rod 4 is compatible with the size of the curved slide 2;

[0039] The movable rod 4 is matched with the size of the arc-shaped slide 2, which can improve the stability of the movable rod 4, the horizontal bar 5, and the light bar 6 during the deflection process.

[0040] Working principle:

[0041] In the laboratory biological lamp, the light strips 6 on multiple horizontal strips 5 provide experimental lighting for the laboratory;

[0042] When adjusting multiple sets of light strips 6, the motors inside the cylinder 1 are started simultaneously. The arc plates 9 fixedly installed at the ends of the output shafts of the two sets of motors rotate accordingly. During the rotation of the arc plates 9, the movable plates 3 on both sides contact and push the movable plates 3 on both sides to deflect inside the cylinder 1. Springs 7 are fixedly installed between adjacent movable plates 3. When the two sets of movable plates 3 deflect, the force of the springs 7 drives multiple sets of movable plates 3 to move closer to each other. Since the movable plates 3 are fixedly installed with evenly distributed movable rods 4, and the movable rods 4 are respectively slidably set on the evenly distributed arc-shaped slides 2 opened on the outer wall of the cylinder 1, the deflection of the movable plates 3 will drive the movable rods 4 to slide along the arc-shaped slides 2. The horizontal bars 5 fixedly installed at the ends of each row of movable rods 4 will also move closer to each other as the movable rods 4 slide, thereby driving the light strips 6 set on the outer wall of the horizontal bars 5 to move closer to each other, thus realizing the focusing mode.

[0043] When motor 8 reverses, the arc plate 9 gradually moves away from the two movable plates 3. Under the action of the spring 7 between the adjacent movable plates 3, the movable plates 3 are driven to gradually deflect and reset, thereby driving the light strips 6 to move away from each other and switch to diffused light mode.

[0044] In addition, by controlling the deflection stroke of the two sets of motors 8 to the arc plate 9, the degree of deflection of the two movable plates 3 can also be controlled, thereby adjusting the focusing direction.

[0045] This laboratory bio-lamp can not only drive multiple sets of light strips 6 to move closer or further apart, switch between focused and diffused light modes, but also adjust the focused light direction, making it highly versatile.

[0046] in,

[0047] When installing the laboratory biological lamp, the entire device can be fixed to the laboratory ceiling by the top plate 10, and the vertical plate 11 is used to support the cylinder 1.

[0048] Start the second motor 12 on the vertical plate 11. The output shaft of the second motor 12 rotates, causing the cylinder 1 to rotate between the two sets of vertical plates 11. As the cylinder 1 rotates, the illumination direction emitted by the lamp strip 6 will also change accordingly. For example, when it is necessary to illuminate the experimental samples in different directions, start the second motor 12 and adjust the rotation angle of the cylinder 1 so that the illumination of the lamp strip 6 can accurately cover the target sample area, further improving the applicability of the device to adjust the illumination direction in different experimental scenarios.

[0049] All springs 7 are designed in an arc shape to better adapt to the deflection of the movable plate 3;

[0050] The movable rod 4 is matched with the size of the arc-shaped slide 2, which can improve the stability of the movable rod 4, the horizontal bar 5, and the light bar 6 during the deflection process.

[0051] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A laboratory biological lamp comprising a cylinder (1), characterized in that The outer wall of the barrel (1) is provided with uniformly distributed arc-shaped slides (2), the barrel (1) is rotatably provided with uniformly distributed movable plates (3) inside, the movable plates (3) are all fixedly installed with uniformly distributed movable rods (4), the movable rods (4) are respectively slidably arranged on the arc-shaped slides (2), the end portions of each row of movable rods (4) are all fixedly installed with horizontal strips (5) in common, the outer walls of the horizontal strips (5) are all provided with light strips (6), the adjacent movable plates (3) are all fixedly installed with springs (7), the barrel (1) is fixedly installed with oppositely symmetrical motors (8) inside, the output shaft end portions of the two groups of motors (8) are all fixedly installed with arc plates (9), and the side edges of the two groups of arc plates (9) respectively face the two movable plates (3).

2. A laboratory biological light according to claim 1, characterized in that The top plate (10) is provided above the barrel (1), and the bottom surface of the top plate (10) is fixedly installed with oppositely symmetrical vertical plates (11).

3. A lab-grown biological light according to claim 2, wherein, The outer wall of the vertical plate (11) on one side is fixedly installed with a motor (12), the barrel (1) is rotatably arranged between the two groups of vertical plates (11), and the output shaft end portion of the motor (12) is fixedly installed with the rotating shaft end of the barrel (1).

4. A lab-grown biological light according to claim 1, wherein, The springs (7) are all arranged in an arc shape.

5. A laboratory biological light according to claim 1, characterized in that The movable rods (4) are suitable in size with the arc-shaped slides (2).