Induction lamp production detection device

By designing the induction lamp production and testing device, using two sets of testing components and a fast cutting structure, the problems of detection efficiency and low cutting efficiency are solved, and efficient testing and rapid cutting are achieved.

CN223138943UActive Publication Date: 2025-07-22JIANGMEN AOERXING LIGHTING TECH CO LTD
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Patent Information

Application Number
CN202422457631.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-11
Publication Date
2025-07-22
Estimated Expiration
2034-10-11

AI Technical Summary

Technical Problem

The existing induction lamp production and detection devices have low detection efficiency and low discharge efficiency.

Method used

A sensing lamp production detection device is designed, including two sets of detection components and a fast discharge structure. By observing the switching of the induction lamp on the outside and inside of the metal box, it is determined whether its thermal infrared induction control is qualified, and quickly discharged by flipping the support plate.

Benefits of technology

The detection efficiency and discharge efficiency of the induction lamp are improved, and efficient detection and rapid discharge are achieved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of induction lamp production detection, and particularly relates to an induction lamp production detection device which comprises a first foot stool, two groups of detection assemblies are installed on a base, two groups of guide grooves are formed in a guide plate, guide blocks are assembled in the guide grooves, a stepping motor is installed on the guide plate through a machine base, and the first foot stool and the second foot stool are installed on the machine base. A lead screw is installed on an output shaft of the stepping motor, the lead screw is rotatably installed on the inner wall of one guide groove, a metal box is fixedly installed on the guide block, low-radiation coated glass is installed on one side wall of the metal box, and a placing table is installed on the base; whether pyroelectric infrared induction control in the induction lamps is qualified or not is judged by observing the on-off conditions of the induction lamps outside and inside the metal box, the two detection assemblies are arranged and can detect the two induction lamps at the same time, the produced induction lamps can be efficiently detected, and the detection efficiency can be improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of induction lamp production detection, in particular to an induction lamp production detection device. Background Technique

[0002] An induction lamp is a new type of intelligent lighting product that automatically controls the lighting of a light source through an induction module. Among them, pyroelectric infrared induction control is achieved through a pyroelectric infrared sensor, that is, a pyroelectric infrared induction lamp. When conducting factory inspections on pyroelectric infrared induction lamps, a detection device is required.

[0003] A Chinese patent with the publication number CN208953680U discloses a pyroelectric infrared induction lamp detection device. A fixed support plate is screwed and fixed at the upper end of a fixed test stand. A left support vertical plate is screwed at the left edge of the fixed support plate, and a right support vertical plate is screwed at the right edge of the fixed support plate. Spaced baffles arranged at intervals from left to right are screwed on the upper surface of the fixed support plate between the left and right support vertical plates. The space between two adjacent spaced baffles is a light-transmitting channel, and a movable light-shielding plate is respectively installed in each light-transmitting channel; a movable push rod is installed on the upper end side of the fixed support plate. The movable push rod sequentially penetrates through the push rod through holes of the left support vertical plate, each spaced baffle, and the right support vertical plate from left to right, and each movable light-shielding plate is respectively installed on the movable push rod; an electric heating plate driven by a linear drive module is installed on the upper end side of the frame at the rear side of the fixed support plate. Through the above structural design, the utility model has the advantages of novel structural design, high automation degree, and high test efficiency.

[0004] During the process of detecting the pyroelectric infrared induction control of an induction lamp by the existing detection device, due to the relatively single detection structure, the detection efficiency is low; therefore, an induction lamp production detection device is proposed for the above problems. Content of the Utility Model

[0005] In order to make up for the deficiencies of the existing technology and solve the problems existing in the existing technology, the utility model proposes an induction lamp production detection device.

[0006] The technical solution adopted by the present utility model to solve its technical problems is as follows: An induction lamp production and detection device described in the present utility model includes a first tripod. A base is installed on the first tripod, and two groups of detection components are installed on the base. The detection component includes a guide plate. Two guide grooves are provided on the guide plate, and guide blocks are assembled in the guide grooves. A stepping motor is installed on the guide plate through a machine base. A lead screw is installed on the output shaft of the stepping motor, and the lead screw is rotatably installed on the inner wall of one of the guide grooves. A metal box is fixedly installed on the guide block, and a low-emissivity coated glass is installed on one side wall of the metal box. A placement table is installed on the base, and an induction lamp is placed on the placement table. A power socket is installed on the placement table. A rubber pad is installed on the base, and the rubber pad is located around the placement table. A chute is provided on the base, a fixing block is installed on the inner wall of the chute, a first electrode plate is installed on the fixing block, a sliding block is assembled in the chute, a second electrode plate is installed on the bottom side of the sliding block, and a button is installed on the top side of the sliding block. The first electrode plate and the second electrode plate are connected to the stepping motor through an internal circuit. A first spring is installed between the sliding block and the inner wall of the chute. By observing the switching conditions of the induction lamp outside and inside the metal box, it is judged whether the pyroelectric infrared induction control inside the induction lamp is qualified. By setting two groups of detection components, the two groups of detection components can simultaneously detect two induction lamps, and the produced induction lamps can be efficiently detected, which is beneficial to improving the detection efficiency.

[0007] Preferably, a blanking groove is provided at the center of the base. A limiting rod is installed on the side wall of the blanking groove, and a rotating shaft is rotatably installed on the inner wall of the blanking groove. A support plate is sleeved on the rotating shaft. A material guiding frame is installed on the bottom side of the base, a second tripod is installed on the bottom side of the material guiding frame, and a mounting plate is installed on the top side of the material guiding frame. A plurality of second springs are installed between the mounting plate and the support plate. By placing the detected induction lamp on the support plate, the support plate rotates left and down around the rotating shaft until the support plate is attached to the material guiding frame, and the induction lamp on the support plate slides obliquely down along the slope onto the material guiding frame, realizing the rapid blanking of the induction lamp, which is beneficial to improving the blanking efficiency of the induction lamp.

[0008] The advantages of the present utility model are as follows:

[0009] 1. By observing the switching conditions of the induction lamp outside and inside the metal box, the present utility model judges whether the pyroelectric infrared induction control inside the induction lamp is qualified. By setting two groups of detection components, the two groups of detection components can simultaneously detect two induction lamps, and the produced induction lamps can be efficiently detected, which is beneficial to improving the detection efficiency.

[0010] 2. The utility model realizes the rapid blanking of the induction lamp by placing the detected induction lamp on the support plate, and the support plate rotates left and downward around the rotating shaft until the support plate abuts against the material guiding frame, and the induction lamp on the support plate slides obliquely downward along the slope onto the material guiding frame, which is beneficial to improving the blanking efficiency of the induction lamp. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0012] Figure 1 is a first - perspective three - dimensional structure diagram;

[0013] Figure 2 is a three - dimensional structure diagram at the guide plate;

[0014] Figure 3 is a three - dimensional structure diagram at the placement table;

[0015] Figure 4 is a three - dimensional structure diagram at the button;

[0016] Figure 5 is a three - dimensional structure diagram at the support plate.

[0017] In the figure: 1, the first footrest; 2, the base; 3, the guide plate; 4, the guide groove; 5, the guide block; 6, the stepping motor; 7, the lead screw; 8, the metal box; 9, the low - emissivity coated glass; 10, the placement table; 11, the power socket; 12, the rubber pad; 13, the sliding groove; 14, the fixed block; 15, the first electrode plate; 16, the sliding block; 17, the second electrode plate; 18, the button; 19, the first spring; 20, the blanking groove; 21, the limiting rod; 22, the rotating shaft; 23, the support plate; 24, the material guiding frame; 25, the second footrest; 26, the mounting plate; 27, the second spring; 28, the induction lamp. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, rather than all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0019] Please refer to Figures 1-4As shown in the figure, an induction lamp production detection device includes a first tripod 1, on which a base 2 is installed. Two groups of detection components are installed on the base 2. Each detection component includes a guide plate 3, on which two groups of guide grooves 4 are formed. Guide blocks 5 are assembled in the guide grooves 4. A stepping motor 6 is installed on the guide plate 3 through a machine base. A lead screw 7 is installed on the output shaft of the stepping motor 6. The lead screw 7 is rotatably installed on the inner wall of one of the guide grooves 4. A metal box 8 is fixedly installed on the guide block 5. A low-emissivity coated glass 9 is installed on one side wall of the metal box 8. A placement table 10 is installed on the base 2. An induction lamp 28 is placed on the placement table 10. A power socket 11 is installed on the placement table 10. A rubber pad 12 is installed on the base 2, and the rubber pad 12 is located outside the placement table 10. A chute 13 is formed on the base 2. A fixed block 14 is installed on the inner wall of the chute 13. A first electrode plate 15 is installed on the fixed block 14. A sliding block 16 is assembled in the chute 13. A second electrode plate 17 is installed on the bottom side of the sliding block 16. A button 18 is installed on the top side of the sliding block 16. The first electrode plate 15 and the second electrode plate 17 are connected to the stepping motor 6 through an internal circuit. A first spring 19 is installed between the sliding block 16 and the inner wall of the chute 13; during operation, in the process of detecting the pyroelectric infrared induction control of the induction lamp 28 by the existing detection device, due to the relatively single detection structure, the detection efficiency is low. The induction lamp 28 is placed on the placement table 10, and the plug on the induction lamp 28 is inserted into the power socket 11. The induction lamp 28 is an automatic control product based on infrared technology. When someone enters the switch induction range, the dedicated sensor detects the change in the human infrared spectrum, and the switch automatically turns on the load. As long as the person does not leave and is moving, the switch remains conducting;After the person leaves, the switch delays and automatically turns off the load. When the person arrives, the light turns on, and when the person leaves, the light goes out. Since the operator is located next to the detection device, the induction lamp 28 detects the human body infrared spectrum, and the internal switch of the induction lamp 28 automatically connects the load, and the induction lamp 28 lights up. Then, the operator presses the button 18 downward. The button 18 drives the sliding block 16 to move vertically downward. The sliding block 16 drives the second electrode plate 17 to move vertically downward. The second electrode plate 17 contacts the first electrode plate 15, and the internal circuit of the stepping motor 6 is connected, and the stepping motor 6 starts. The stepping motor 6 drives the lead screw 7 to rotate. The lead screw 7 drives the guide block 5 thereon to move vertically downward. The guide block 5 drives the metal box 8 to move vertically downward until the metal box 8 is buckled on the rubber pad 12. At this time, the induction lamp 28 is buckled inside the metal box 8. The metal material on the metal box 8 can block infrared rays. At the same time, the low-emissivity coated glass 9 is a film system product with multiple layers of metals or other compounds coated on the glass surface. Its coating layer has the characteristics of high transmittance to visible light and high reflectivity to medium and far infrared rays. Compared with ordinary glass, it has excellent heat insulation effect and good light transmittance. That is, the metal box 8 and the low-emissivity coated glass 9 isolate the induction lamp 28 from the operator. The induction lamp 28 cannot detect the human body infrared spectrum. At this time, the induction lamp 28 will automatically turn off. It is possible to directly observe whether the induction lamp 28 is turned off through the low-emissivity coated glass 9. This structure judges whether the pyroelectric infrared induction control inside the induction lamp 28 is qualified by observing the switch status of the induction lamp 28 outside and inside the metal box 8; by setting two sets of detection components, the two sets of detection components can detect two induction lamps 28 at the same time, and can efficiently detect the produced induction lamps 28, which is beneficial to improving the detection efficiency.

[0020] Please refer to Figure 5 As shown, a blanking groove 20 is opened at the center of the base 2. A limiting rod 21 is installed on the side wall of the blanking groove 20. A rotating shaft 22 is rotatably installed on the inner wall of the blanking groove 20. A support plate 23 is sleeved on the rotating shaft 22. A material guiding frame 24 is installed on the bottom side of the base 2. A second tripod 25 is installed on the bottom side of the material guiding frame 24. A mounting plate 26 is installed on the top side of the material guiding frame 24. Multiple groups of second springs 27 are installed between the mounting plate 26 and the support plate 23; during operation, after the existing detection device finishes detecting the induction lamp 28, it is impossible to quickly blank the induction lamp 28, resulting in low blanking efficiency. By placing the detected induction lamp 28 on the support plate 23, the support plate 23 rotates left and downward around the rotating shaft 22 until the support plate 23 is attached to the material guiding frame 24. The induction lamp 28 on the support plate 23 slides obliquely downward along the slope. After the induction lamp 28 slides off the support plate 23, under the upward thrust of the second spring 27, the support plate 23 rotates back to its original position, and the induction lamp 28 slides from the support plate 23 onto the material guiding frame 24, realizing the quick blanking of the induction lamp 28, which is beneficial to improving the blanking efficiency of the induction lamp 28.

[0021] Working principle: During the process of detecting the pyroelectric infrared induction control of the induction lamp 28 by the existing detection device, due to the relatively single detection structure, the detection efficiency is low. By placing the induction lamp 28 on the placement table 10 and inserting the plug on the induction lamp 28 into the power socket 11, the induction lamp 28 is an automatic control product based on infrared technology. When someone enters the switch induction range, the dedicated sensor detects the change in the human body's infrared spectrum, and the switch automatically turns on the load. If the person does not leave and is moving, the switch remains continuously conducting; after the person leaves, the switch delays and automatically turns off the load. When a person approaches, the lamp lights up, and when a person leaves, the lamp goes out. Since the operator is located next to the detection device, the induction lamp 28 detects the human body's infrared spectrum, and the internal switch of the induction lamp 28 automatically turns on the load, and the induction lamp 28 lights up. Then, the operator presses the button 18 downward, and the button 18 drives the slider 16 to move vertically downward. The slider 16 drives the second electrode plate 17 to move vertically downward. The second electrode plate 17 contacts the first electrode plate 15, the internal circuit of the stepper motor 6 is connected, the stepper motor 6 is turned on, the stepper motor 6 drives the lead screw 7 to rotate, the lead screw 7 drives the guide block 5 thereon to move vertically downward, and the guide block 5 drives the metal box 8 to move vertically downward until the metal box 8 is buckled on the rubber pad 12. At this time, the induction lamp 28 is buckled inside the metal box 8. The metal material on the metal box 8 can block infrared rays. At the same time, the low-emissivity coated glass 9 is a film system product with multiple layers of metals or other compounds coated on the glass surface. Its coating layer has the characteristics of high transmittance to visible light and high reflectivity to medium and far infrared rays. Compared with ordinary glass, it has excellent heat insulation effect and good light transmittance. That is, the metal box 8 and the low-emissivity coated glass 9 isolate the induction lamp 28 from the operator. The induction lamp 28 cannot detect the human body's infrared spectrum, and at this time, the induction lamp 28 will automatically turn off. It is possible to directly observe whether the induction lamp 28 is turned off through the low-emissivity coated glass 9. This structure judges whether the pyroelectric infrared induction control inside the induction lamp 28 is qualified by observing the switch status of the induction lamp 28 outside and inside the metal box 8; by setting two groups of detection components, the two groups of detection components can detect two induction lamps 28 simultaneously, and can efficiently detect the produced induction lamps 28, which is beneficial to improving the detection efficiency; after the existing detection device finishes detecting the induction lamp 28, it cannot quickly unload the induction lamp 28, resulting in low unloading efficiency. By placing the detected induction lamp 28 on the support plate 23, the support plate 23 rotates counterclockwise around the rotating shaft 22 until the support plate 23 is attached to the material guiding frame 24. The induction lamp 28 on the support plate 23 slides obliquely downward along the slope. After the induction lamp 28 slides off the support plate 23, under the upward thrust of the second spring 27, the support plate 23 rotates back to its original position, and the induction lamp 28 slides from the support plate 23 onto the material guiding frame 24, realizing the rapid unloading of the induction lamp 28, which is beneficial to improving the unloading efficiency of the induction lamp 28.

[0022] The foregoing has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above-mentioned embodiments. What is described in the above embodiments and the specification is only to illustrate the principle of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and all these changes and improvements fall within the scope of the present utility model claimed.

Claims

1. An induction lamp production detection device, characterized in that: It includes a first tripod (1), a base (2) is installed on the first tripod (1), two groups of detection components are installed on the base (2), the detection component includes a guide plate (3), two guide grooves (4) are formed on the guide plate (3), a guide block (5) is assembled in the guide groove (4), a stepping motor (6) is installed on the guide plate (3) through a machine base, a lead screw (7) is installed on the output shaft of the stepping motor (6), the lead screw (7) is rotatably installed on the inner wall of one of the guide grooves (4), a metal box (8) is fixedly installed on the guide block (5), a low-emissivity coated glass (9) is installed on one side wall of the metal box (8), a placement table (10) is installed on the base (2), an induction lamp (28) is placed on the placement table (10), a power socket (11) is installed on the placement table (10), a rubber pad (12) is installed on the base (2), the rubber pad (12) is located outside the placement table (10), a chute (13) is formed on the base (2), a fixing block (14) is installed on the inner wall of the chute (13), a first electrode plate (15) is installed on the fixing block (14), a sliding block (16) is assembled in the chute (13), a second electrode plate (17) is installed on the bottom side of the sliding block (16), and a button (18) is installed on the top side of the sliding block (16).

2. The production inspection device for an induction lamp according to claim 1, characterized in that: The first electrode plate (15) and the second electrode plate (17) are connected to the stepping motor (6) through an internal circuit, and a first spring (19) is installed between the sliding block (16) and the inner wall of the chute (13).

3. An induction lamp production detection device according to claim 1, characterized in that: A blanking groove (20) is formed at the center of the base (2), and a limiting rod (21) is installed on the side wall of the blanking groove (20).

4. The production and detection device for an induction lamp according to claim 3, characterized in that: A rotating shaft (22) is rotatably installed on the inner wall of the blanking groove (20), and a support plate (23) is sleeved on the rotating shaft (22).

5. An induction lamp production detection device according to claim 1, characterized in that: A material guide frame (24) is installed on the bottom side of the base (2), and a second tripod (25) is installed on the bottom side of the material guide frame (24).

6. The production inspection device for an induction lamp according to claim 5, wherein: A mounting plate (26) is installed on the top side of the material guide frame (24), and multiple groups of second springs (27) are installed between the mounting plate (26) and the support plate (23).

Citation Information

Patent Citations

  • Pyroelectric infrared induction lamp detection device

    CN208953680U