An electronic atomization control board detection device

By designing an electronic atomization control board detection device including a lateral oscillation assembly, a longitudinal oscillation assembly and a visual detection assembly, the problem that existing devices are difficult to synchronously detect the welding tightness and stability of electronic components is solved, and multi-directional detection and high-precision detection are realized.

CN118962403BActive Publication Date: 2025-05-30SHENZHEN JIATAIRUI TECH CO LTD
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Patent Information

Application Number
CN202411105530.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-05-30
Estimated Expiration
2044-08-13

AI Technical Summary

Technical Problem

It is difficult for the existing electronic atomization control board detection device to synchronize the welding tightness and welding stability of the electronic components on the atomization control board body through lateral oscillation, longitudinal oscillation and physical soft disturbance.

Method used

An electronic atomization control board detection device is designed, including a conveying mechanism, a high-pressure air cleaner, power-on and solder joint detection components, a visual probe and an environmental box. The device realizes multi-directional detection of electronic components through a lateral oscillation assembly, a longitudinal oscillation assembly and a visual detection assembly, combining a lateral oscillation assembly, a disturbance plate and a clamping assembly.

Benefits of technology

The welding tightness and welding stability of electronic components on the atomized control board body are realized through lateral oscillation, longitudinal oscillation and physical soft disturbance, and the detection stability and accuracy are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of electronic atomization control board detection devices, and discloses an electronic atomization control board detection device. It includes a detection cabinet, and also includes: a conveying mechanism, which is suitable for the step-by-step feeding of the atomization control board body, a high-pressure air cleaning fan, a power-on and solder joint detection component, a first vision probe, and an environmental chamber arranged in sequence along the feeding direction of the conveying mechanism. The power-on and solder joint detection component includes a lifting frame, and a transverse oscillation component, a longitudinal oscillation component, and a vision detection component are installed on the lifting frame. The transverse oscillation component performs transverse oscillation on the atomization control board body. When the present invention works, it can synchronously detect the welding tightness and welding temperature of the electronic components on the atomization control board body through transverse oscillation, longitudinal oscillation, and physical soft perturbation methods. Through the settings of the missing gear, the transverse oscillation gear plate, and the double oscillation spring, when the turning shaft performs a turning motion, it can also reciprocate in the transverse direction through the displacement of the transverse oscillation frame.
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Description

Technical Field

[0001] The present invention relates to the technical field of electronic atomization control board detection devices, and particularly to an electronic atomization control board detection device. Background Art

[0002] In the prior art, a patent document with the publication number CN214622943U discloses a control board detection device, including: a substrate and a detection bin arranged on the substrate. The detection bin is a U-shaped structure with a through front side. A linear guide rail is arranged on the side of the substrate away from the detection bin. A first slider is movably arranged on the linear guide rail. A detection support plate is arranged on the first slider. A guide seat is arranged on the detection support plate, and the width of the detection support plate is adapted to the detection bin. A fixed top plate is arranged above the detection bin. A lifting mechanism is vertically arranged downward at the bottom of the fixed top plate. A detection plate is arranged on the output shaft of the lifting mechanism. First chutes are opened at the tops of the two side arms of the detection bin. Second sliders are slidably arranged in the first chutes. A support frame is fixedly arranged on the second sliders. The tops of the support frames are respectively connected to both sides of the fixed top plate. Dislocation clamping devices are respectively arranged on the two side arms and the rear arm of the detection bin. The dislocation clamping device includes a plurality of telescopic rods. The above device clamps control boards of various shapes through the dislocation detection devices arranged on the two side arms and the rear arm of the detection bin, improving the stability of the detection process. However, when the above device works, it is not convenient to synchronously detect the welding tightness and welding stability of the electronic components on the atomization control board body through horizontal oscillation, vertical oscillation, and physical soft perturbation methods. Based on this, the present invention provides an electronic atomization control board detection device to solve the technical problems raised in the above background art. Summary of the Invention

[0003] The purpose of the present invention is to provide an electronic atomization control board detection device, which solves the problem that in the prior art device during operation, it is not convenient to synchronously detect the welding tightness and welding stability of the electronic components on the atomization control board body through horizontal oscillation, vertical oscillation, and physical soft perturbation methods.

[0004] To solve the above technical problems, the present invention provides the following technical solutions:

[0005] An electronic atomization control board detection device includes a detection cabinet, and further includes:

[0006] A conveying mechanism, which is suitable for the step-by-step feeding of the atomization control board body;

[0007] A high-pressure air cleaning fan, a power-on and solder joint detection component, a first vision probe, and an environmental chamber arranged in sequence along the feeding direction of the conveying mechanism;

[0008] The energization and solder joint detection component includes a lifting frame, on which a transverse oscillation component, a longitudinal oscillation component and a vision detection component are installed. The transverse oscillation component performs transverse oscillation on the atomization control board body, the longitudinal oscillation component performs longitudinal oscillation on the atomization control board body, and the vision detection component performs vision acquisition and vision detection on the double-sided image data of the atomization control board body. The transverse oscillation component is drivenly connected to a transverse oscillation frame at the upper part, and a turning shaft is rotatably connected to the inner wall of the transverse oscillation frame. The turning shaft is adapted to be driven by the transverse oscillation component, and a clamping component is arranged on the turning shaft;

[0009] An environment control component and a positioning and blanking component are respectively arranged in the environment box;

[0010] A moving frame, which is slidably connected to the environment box. A longitudinal lead screw transmission module is installed on the moving frame, and the longitudinal lead screw transmission module is drivingly connected to the environment box;

[0011] Two lead screw lifting modules, which are respectively drivingly connected to the lifting frame and the moving frame.

[0012] Preferably, the conveying mechanism includes an annular conveyor belt and two belt rollers rotatably connected to the inspection cabinet. Both belt rollers are drivingly connected to the annular conveyor belt. A stepping motor is installed on the side of the inspection cabinet, and the output shaft end of the stepping motor is fixedly connected to one of the belts. The annular conveyor belt is equidistantly provided with loading areas, and two symmetrically arranged clamping blocks are installed on each loading area. The annular conveyor belt is adapted to convey the atomization control board body.

[0013] Preferably, the atomization control board body includes a substrate, on which two symmetrically arranged bayonets adapted to the clamping blocks are provided, and a circuit component and a PIN foot interface are respectively arranged on the substrate.

[0014] Preferably, the transverse oscillation component includes a servo motor fixed on the lifting frame. The output shaft end of the servo motor is fixedly installed with a transmission shaft. A rotating shaft sleeve, a differential shaft a and a differential shaft b are rotatably connected to the lifting frame. The differential shaft a, the differential shaft b and the rotating shaft sleeve are all driven by the transmission shaft. A missing gear is fixedly installed on the differential shaft b, a transverse oscillation tooth plate is fixedly installed on the transverse oscillation frame, and the missing gear is drivingly connected to the transverse oscillation tooth plate. A T-shaped guide rod slidably connected to the lifting frame is fixedly installed on the transverse oscillation frame. A vibration restoring spring cooperating with the lifting frame is sleeved on the T-shaped guide rod. The axis of the T-shaped guide rod is parallel to the axis of the turning shaft. A data wiring a cooperating with the PIN foot interface is installed on the turning shaft. A disturbance plate is connected to the surface of the transverse oscillation frame, and soft brush hairs are evenly distributed on the bottom surface of the disturbance plate.

[0015] Preferably, passive bevel gears are fixedly installed on both the rotating shaft sleeve and the differential shaft a, an active bevel gear is installed on the transmission shaft, and the two passive bevel gears are both in transmission connection with the active bevel gear. A linkage shaft groove with openings at both ends is fixedly formed on the rotating shaft sleeve, a driven section is fixedly arranged on the turning shaft, the cross-section of the linkage shaft groove and the outer shape of the driven section are both regular polygons, the turning shaft and the belt roller are arranged in the same direction, and the differential shaft a is in transmission connection with the differential shaft b through a belt.

[0016] Preferably, the longitudinal oscillation assembly includes a longitudinal oscillation plate and a bracket fixed on the turning shaft. A vibration motor is installed on the longitudinal oscillation plate, a group of T-shaped hanging rods are installed on the longitudinal oscillation plate, each T-shaped hanging rod is slidably connected with the bracket, a shock-absorbing spring is sleeved on the T-shaped hanging rod at the position corresponding to the bracket and the longitudinal oscillation plate, and the axis of the T-shaped hanging rod is perpendicular to the axis of the turning shaft.

[0017] Preferably, the clamping assembly includes a negative pressure suction channel opened in the turning shaft and a negative pressure vacuum cleaner fixed on the lifting frame. The negative pressure vacuum cleaner is communicated with the negative pressure suction channel. Two groups of symmetrically arranged negative pressure suction feet communicated with the negative pressure suction channel are installed on the turning shaft. A group of pneumatic double-headed clamping rods are installed on the turning shaft. Clamps suitable for clamping the atomization control board body are arranged on both sides of the turning shaft. Two movable ends of each pneumatic double-headed clamping rod are respectively fixedly connected with the two clamps, and the axis of the pneumatic double-headed clamping rod is perpendicular to the axis of the turning shaft.

[0018] Preferably, the environment control assembly includes an electric heating plate, a refrigeration module and a sprayer fixedly installed on the environment box. A temperature and humidity probe is installed on the environment box, a central control host is installed on the moving frame, and the central control host is in data connection with the temperature and humidity probe.

[0019] Preferably, the positioning and blanking assembly includes a vacuum pump fixed on the environment box. The vacuum generating end of the vacuum pump is communicated with a group of vacuum suction feet. A data wiring b matched with the PIN foot interface is installed inside the environment box. Blanking boxes are installed on the inspection cabinet at positions corresponding to both sides of the environment box.

[0020] Preferably, the vision detection assembly includes a second vision probe fixed on the turning shaft and a third vision probe fixed on the lifting frame. The first vision probe, the second vision probe and the third vision probe are all in data connection with the central control host, and the axes of the second vision probe and the third vision probe are both perpendicular to the axis of the turning shaft.

[0021] Compared with the prior art, the beneficial effects achieved by the present invention are:

[0022] 1. When the present invention is working, it can synchronously detect the welding tightness and welding stability of the electronic components on the atomization control board body by means of transverse oscillation, longitudinal oscillation and physical soft disturbance. By setting the missing gear, transverse vibration tooth plate and repetitive vibration spring, the flip axis can reciprocate in the transverse direction by the displacement of the transverse vibration frame when performing the flipping motion. The oscillation of the transverse oscillation component occurs, so that the electronic components on the atomization control board body are in a transverse oscillation state when powered on. By providing the transverse vibration state, the stability of the electronic components and the stability of the welding points on the atomization control board body can be detected in the transverse direction. When the transverse vibration frame reciprocates, the disturbance plate moves synchronously with the transverse vibration frame, and then By softly contacting the electronic components on the atomization control board body with the soft bristles, the stability of the electronic components and the stability of the solder joints on the atomization control board body can be detected by physical soft probing. When the clamping assembly clamps the atomization control board body, the bottom surface of the longitudinal vibration plate is in close contact with the atomization control board body. When the atomization control board body needs to be tested for longitudinal vibration, the vibration motor outputs the vibration frequency in a set state. The vibration frequency output of the vibration motor allows the electronic components on the atomization control board body to be excited and shaken in the longitudinal direction. The longitudinal excitation of the electronic components on the atomization control board body can detect the stability of the electronic components and the stability of the solder joints on the atomization control board body in the longitudinal direction.

[0023] 2. Before the flipping test of the present invention, sufficient negative pressure is generated inside the negative pressure suction channel. After the negative pressure is generated, the two clamps and the negative pressure suction feet synchronously clamp the atomization control board body, thereby effectively ensuring the connection tightness between the flipping axis and the atomization control board body. The flipping of the flipping axis drives the atomization control board body to flip, thereby realizing double-sided visual imaging detection of the atomization control board body and welding point stability detection.

[0024] 3. The present invention arranges the electric heating plate, the refrigeration module and the sprayer so that the atomization control board body is at the set temperature and humidity during the environmental test, and the temperature and humidity are created to detect the working stability of the atomization control board body under different temperature and humidity conditions. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a structural schematic diagram of an electronic atomization control panel detection device;

[0026] Figure 2 for Figure 1 A schematic diagram of the local enlarged structure at point A in the middle;

[0027] Figure 3 for Figure 1 A schematic diagram of the local enlarged structure at B in the middle;

[0028] Figure 4 It is a structural schematic diagram of the lifting frame and the moving frame;

[0029] Figure 5 Explosion structure schematic diagram of the environmental chamber and the vacuum suction foot;

[0030] Figure 6 Structure schematic diagram of the lifting frame and the disturbance plate;

[0031] Figure 7 Structure schematic diagram of the rotating shaft sleeve and the third vision probe;

[0032] Figure 8 For Figure 6 Partial enlarged structure schematic diagram at position C in

[0033] Figure 9 For Figure 6 Partial enlarged structure schematic diagram at position D in Specific implementation mode

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0035] Please refer to Figures 1-9 , an electronic atomization control board detection device, including a detection cabinet 1, further including:

[0036] A conveying mechanism, which is suitable for step-by-step feeding of the atomization control board body 6;

[0037] The conveying mechanism includes an endless conveyor belt 12 and two belt rollers rotatably connected to the detection cabinet 1, and both belt rollers are drivingly connected to the endless conveyor belt 12;

[0038] A stepping motor 13 is installed on the side of the detection cabinet 1, the output shaft end of the stepping motor 13 is fixedly connected to a belt, and feeding areas are equidistantly arranged on the endless conveyor belt 12, and two symmetrically arranged clamping blocks 14 are installed on each feeding area, and the endless conveyor belt 12 is suitable for conveying the atomization control board body 6.

[0039] The atomization control board body 6 includes a substrate 15, two symmetrically arranged bayonets adapted to the clamping blocks 14 are opened on the substrate 15, and a circuit component and a PIN foot interface 16 are respectively arranged on the substrate 15;

[0040] During operation, the endless conveyor belt 12 works periodically at a set interval period, and then conveys the atomization control board body 6 forward at a set interval period;

[0041] During the conveying interval period of the atomization control board body 6, the detection element provided on the detection device performs detection operations on the atomization control board body 6;

[0042] A high-pressure air cleaning fan 2, an electrification and solder joint detection component, a first vision probe 3, and an environmental chamber 4 are sequentially arranged along the feeding direction of the conveying mechanism;

[0043] The air outlet direction of the high-pressure air cleaning fan 2 is perpendicular to the conveying direction of the annular conveyor belt 12;

[0044] When the annular conveyor belt 12 performs conveying operations, the high-pressure air cleaning fan 2 performs high-pressure blowing on the impurities on the atomization control board body 6. Through high-pressure blowing, the dirt and dust rate of the atomization control board body 6 can be effectively reduced, thereby effectively reducing the influence of dust during visual inspection and improving the visual inspection accuracy;

[0045] A filter is fixedly installed at the air inlet port of the high-pressure air cleaning fan 2;

[0046] The electrification and solder joint detection component includes a lifting frame 5. A transverse oscillation component, a longitudinal oscillation component, and a visual detection component are installed on the lifting frame 5. The transverse oscillation component performs transverse oscillation on the atomization control board body 6, the longitudinal oscillation component performs longitudinal oscillation on the atomization control board body 6, and the visual detection component performs visual acquisition and visual detection on the double-sided image data of the atomization control board body 6;

[0047] A transverse vibration frame 7 is drivingly connected to the transverse oscillation component. A turning shaft 8 is rotatably connected to the inner wall of the transverse vibration frame 7. The turning shaft 8 is adapted to be driven by the transverse oscillation component, and a clamping component is provided on the turning shaft 8;

[0048] The transverse oscillation component includes a servo motor 17 fixed to the lifting frame 5, and a transmission shaft 18 is fixedly installed at the output shaft end of the servo motor 17;

[0049] A rotating shaft sleeve 19, a differential shaft a20, and a differential shaft b21 are rotatably connected to the lifting frame 5. The differential shaft a20, the differential shaft b21, and the rotating shaft sleeve 19 are all driven by the transmission shaft 18;

[0050] Passive bevel gears are fixedly installed on both the rotating shaft sleeve 19 and the differential shaft a20, and an active bevel gear is installed on the transmission shaft 18. Both of the two passive bevel gears are in transmission connection with the active bevel gear;

[0051] A linkage shaft groove with both ends open is fixedly formed on the rotating shaft sleeve 19, and a driven section is fixedly provided on the turning shaft 8. The cross-section of the linkage shaft groove and the external shape of the driven section are both regular polygons;

[0052] Through the setting of the regular polygon structure of the external shape of the driven section and the cross-section of the linkage shaft groove, when the transverse vibration frame 7 reciprocates, the rotating shaft sleeve 19 can continuously drive the turning shaft 8;

[0053] The rotation axis 8 and the belt roller are arranged in the same direction, and the differential axis a20 is drivingly connected to the differential axis b21 through a belt;

[0054] A missing gear 22 is fixedly installed on the differential axis b21, a transverse vibration tooth plate 23 is fixedly installed on the transverse vibration frame 7, the missing gear 22 is drivingly connected to the transverse vibration tooth plate 23, a T-shaped guide rod 24 slidably connected to the lifting frame 5 is fixedly installed on the transverse vibration frame 7, a vibration return spring 25 cooperating with the lifting frame 5 is sleeved on the T-shaped guide rod 24, the axis of the T-shaped guide rod 24 is parallel to the axis of the rotation axis 8, a data connection line a26 cooperating with the PIN foot interface 16 is installed on the rotation axis 8, a disturbance plate 27 is connected to the surface of the transverse vibration frame 7, and soft bristles are evenly distributed on the bottom surface of the disturbance plate 27;

[0055] When the differential axis b21 outputs a rotational speed, through the settings of the missing gear 22, the transverse vibration tooth plate 23 and the vibration return spring 25, when the rotation axis 8 makes a flipping motion, it can reciprocally move in the transverse direction through the displacement of the transverse vibration frame 7;

[0056] Through the oscillation of the transverse oscillation assembly, the electronic components on the atomization control board body 6 are in a transverse oscillation state when powered on. By providing the transverse vibration state, the stability of the electronic components on the atomization control board body 6 and the stability of the solder joints are detected in the transverse direction;

[0057] The longitudinal oscillation assembly includes a longitudinal vibration plate 28 and a bracket fixed on the rotation axis 8. A vibration motor 29 is installed on the longitudinal vibration plate 28. A group of T-shaped suspension rods 30 are installed on the longitudinal vibration plate 28. Each T-shaped suspension rod 30 is slidably connected to the bracket. A damping spring 31 is sleeved on the T-shaped suspension rod 30 at the position corresponding to between the bracket and the longitudinal vibration plate 28. The axis of the T-shaped suspension rod 30 is perpendicular to the axis of the rotation axis 8;

[0058] When the clamping assembly clamps the atomization control board body 6, the bottom surface of the longitudinal vibration plate 28 is in close contact with the atomization control board body 6. When longitudinal vibration detection of the atomization control board body 6 is required, the vibration motor 29 outputs a vibration frequency in a set state. Through the vibration frequency output of the vibration motor 29, the electronic components on the atomization control board body 6 can generate longitudinal excitation and shaking. Through the occurrence of longitudinal excitation of the electronic components on the atomization control board body 6, the stability of the electronic components on the atomization control board body 6 and the stability of the solder joints are detected in the longitudinal direction;

[0059] When the transverse vibration frame 7 reciprocally moves, the disturbance plate 27 moves synchronously with the transverse vibration frame 7, and then soft contact with the electronic components on the atomization control board body 6 is achieved through the soft bristles, thereby detecting the stability of the electronic components on the atomization control board body 6 and the stability of the solder joints through a physical soft probing method;

[0060] An environmental control component and a positioning and blanking component are respectively arranged in the environmental chamber 4;

[0061] A moving frame 9 is slidably connected to the environmental chamber 4. A longitudinal lead screw drive module 10 is installed on the moving frame 9, and the longitudinal lead screw drive module 10 is in transmission connection with the environmental chamber 4;

[0062] Two lead screw lifting modules 11 are respectively in transmission connection with the lifting frame 5 and the moving frame 9.

[0063] The clamping component includes a negative pressure suction channel opened in the turning shaft 8 and a negative pressure vacuum cleaner 32 fixed on the lifting frame 5. The negative pressure vacuum cleaner 32 is communicated with the negative pressure suction channel. Two groups of symmetrically arranged negative pressure suction feet 33 communicated with the negative pressure suction channel are installed on the turning shaft 8. A group of pneumatic double-headed clamping rods 34 are installed on the turning shaft 8. Clamps 35 suitable for clamping the atomization control board body 6 are arranged on both sides of the turning shaft 8. Two movable ends of each pneumatic double-headed clamping rod 34 are respectively fixedly connected to the two clamps 35. The axis of the pneumatic double-headed clamping rod 34 is perpendicular to the axis of the turning shaft 8.

[0064] Before the flipping detection, sufficient negative pressure is generated inside the negative pressure suction channel. After the negative pressure is generated, the two clamps 35 and the negative pressure suction feet 33 synchronously clamp the atomization control board body 6;

[0065] Thereby effectively ensuring the connection tightness between the turning shaft 8 and the atomization control board body 6;

[0066] Through the flipping of the turning shaft 8, the atomization control board body 6 is driven to flip, and then the double-sided vision imaging detection and the solder joint stability detection of the atomization control board body 6 are realized;

[0067] Through the setting of the data connection wire a26, the atomization control board body 6 is kept in an energized state when performing double-sided vision imaging detection and double-sided solder joint stability detection;

[0068] The environmental control component includes an electric heating plate 36, a refrigeration module 37 and a sprayer 38 fixedly installed on the environmental chamber 4. A temperature and humidity probe 39 is installed on the environmental chamber 4. A central control host 40 is installed on the moving frame 9, and the central control host 40 is in data connection with the temperature and humidity probe 39.

[0069] Through the setting of the data connection wire b43, the atomization control board body 6 is kept in an energized state when performing environmental tests;

[0070] Through the setting of the electric heating plate 36, the refrigeration module 37 and the sprayer 38, the atomization control board body 6 is at a set temperature and humidity during environmental tests. Through the temperature and humidity creation, the working stability of the atomization control board body 6 under different temperature and humidity conditions is detected;

[0071] The positioning and blanking assembly includes a vacuum pump 41 fixed on the environmental chamber 4. A group of vacuum suction feet 42 are connected to the vacuum generating end of the vacuum pump 41. Inside the environmental chamber 4, a data wiring b43 that mates with the PIN foot interface 16 is installed. Blanking bins 44 are installed on the inspection cabinet 1 at positions corresponding to both sides of the environmental chamber 4;

[0072] The two blanking bins 44 are respectively used for storing the good atomization control board body 6 and the non-good atomization control board body 6.

[0073] The vision inspection assembly includes a second vision probe 45 fixed on the turning shaft 8 and a third vision probe 46 fixed on the lifting frame 5. The first vision probe 3, the second vision probe 45, and the third vision probe 46 are all connected to the central control host 40 for data. The axes of the second vision probe 45 and the third vision probe 46 are both perpendicular to the axis of the turning shaft 8;

[0074] The working principle of the present invention is:

[0075] During operation, the annular conveyor belt 12 operates periodically at a set interval, and then conveys the atomization control board body 6 forward at a set interval. During the conveying interval of the atomization control board body 6, the detection element provided on the detection device performs a detection operation on the atomization control board body 6. When the differential shaft b21 outputs a rotational speed, through the settings of the missing gear 22, the transverse vibration gear plate 23, and the double vibration spring 25, when the turning shaft 8 performs a turning motion, it can also reciprocate in the transverse direction through the displacement of the transverse vibration frame 7. Through the oscillation of the transverse oscillation assembly, the electronic components on the atomization control board body 6 are in a transverse oscillation state under the energized state. By providing the transverse vibration state, the stability of the electronic components and the solder joints on the atomization control board body 6 is detected in the transverse direction. When the transverse vibration frame 7 reciprocates, the disturbance plate 27 moves synchronously with the transverse vibration frame 7, and then the soft bristles are in soft contact with the electronic components on the atomization control board body 6, so as to detect the stability of the electronic components and the solder joints on the atomization control board body 6 through the physical soft probing method. When the clamping assembly clamps the atomization control board body 6, the bottom surface of the longitudinal vibration plate 28 is in close contact with the atomization control board body 6. When it is necessary to perform longitudinal vibration detection on the atomization control board body 6, the vibration motor 29 outputs a vibration frequency in a set state. Through the vibration frequency output of the vibration motor 29, the electronic components on the atomization control board body 6 can generate longitudinal excitation and shaking. Through the generation of longitudinal excitation of the electronic components on the atomization control board body 6, the stability of the electronic components and the solder joints on the atomization control board body 6 is detected in the longitudinal direction. Before the turning detection, sufficient negative pressure is generated inside the negative pressure suction channel. After the negative pressure is generated, the two clamps 35 and the negative pressure suction feet 33 clamp the atomization control board body 6 synchronously, thereby effectively ensuring the connection tightness between the turning shaft 8 and the atomization control board body 6. Through the turning of the turning shaft 8, the atomization control board body 6 is driven to turn, and then the double-sided visual imaging detection and the solder joint stability detection of the atomization control board body 6 are realized. Through the settings of the electric heating plate 36, the refrigeration module 37, and the sprayer 38, the atomization control board body 6 is in a set temperature and humidity during the environmental test. Through the creation of temperature and humidity, the working stability of the atomization control board body 6 under different temperature and humidity conditions is detected.

[0076] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirits of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An electronic atomization control panel detection device, comprising a detection cabinet (1), characterized in that: Also includes: A conveying mechanism, wherein the conveying mechanism is suitable for step-by-step feeding of the atomization control plate body; High-pressure air blower, power-on and solder joint detection components, first vision probe and environmental chamber are arranged in sequence along the feeding direction of the conveying mechanism; The power-on and welding point detection component includes a lifting frame, on which a transverse oscillation component, a longitudinal oscillation component and a visual detection component are installed. The transverse oscillation component performs transverse oscillation on the atomization control board body, the longitudinal oscillation component performs longitudinal oscillation on the atomization control board body, and the visual detection component performs visual collection and visual detection on the double-sided image data of the atomization control board body. The transverse oscillation component is transmission-connected with a transverse oscillation frame, and the inner wall of the transverse oscillation frame is rotationally connected with a flip shaft, and the flip shaft is suitable for being driven by the transverse oscillation component, and a clamping component is provided on the flip shaft; The environmental box is provided with an environmental control component and a positioning and unloading component respectively; A moving frame, the moving frame is slidably connected to the environmental chamber, a longitudinal screw drive module is installed on the moving frame, and the longitudinal screw drive module is drivingly connected to the environmental chamber; Two screw rod lifting modules are respectively connected to the lifting frame and the moving frame in a transmission manner.

2. The electronic atomization control panel detection device according to claim 1, characterized in that: The conveying mechanism includes an annular conveyor belt and two belt rollers rotatably connected to the inspection cabinet, the two belt rollers are both drivingly connected to the annular conveyor belt, a stepper motor is installed on the side of the inspection cabinet, the output shaft end of the stepper motor is fixedly connected to one of the belts, and loading areas are equidistantly arranged on the annular conveyor belt, each of the loading areas is equipped with two symmetrically arranged blocks, and the annular conveyor belt is suitable for conveying the atomization control board body.

3. The electronic atomization control panel detection device according to claim 1, characterized in that: The atomization control board body comprises a base plate, on which two symmetrically arranged bayonet ports adapted to the card block are provided, and on which circuit components and PIN pin interfaces are respectively provided.

4. The electronic atomization control panel detection device according to claim 1, characterized in that: The lateral oscillation component includes a servo motor fixed on a lifting frame, a transmission shaft is fixedly installed on the output shaft end of the servo motor, a swivel sleeve, a differential shaft a and a differential shaft b are rotatably connected to the lifting frame, the differential shaft a, the differential shaft b and the swivel sleeve are all driven by the transmission shaft, a missing gear is fixedly installed on the differential shaft b, a transverse vibration frame is fixedly installed with a transverse vibration tooth plate, the missing gear is transmission-connected to the transverse vibration tooth plate, a T-shaped guide rod slidably connected to the lifting frame is fixedly installed on the transverse vibration frame, a re-vibration spring cooperating with the lifting frame is sleeved on the T-shaped guide rod, the axis of the T-shaped guide rod is parallel to the axis of the flip shaft, a data connection a cooperating with the PIN pin interface is installed on the flip shaft, a disturbance plate is connected to the surface of the transverse vibration frame, and soft bristles are evenly distributed on the bottom surface of the disturbance plate.

5. The electronic atomization control panel detection device according to claim 4, characterized in that: Passive bevel gears are fixedly mounted on the swivel sleeve and the differential shaft a, active bevel gears are mounted on the transmission shaft, the two passive bevel gears are transmission-connected with the active bevel gears, a linkage shaft groove with openings at both ends is fixedly provided on the swivel sleeve, a driven section is fixedly provided on the flip shaft, the cross-section of the linkage shaft groove and the external shape of the driven section are both regular polygons, the flip shaft and the belt roller are arranged in the same direction, and the differential shaft a is transmission-connected with the differential shaft b through a belt.

6. The electronic atomization control panel detection device according to claim 1, characterized in that: The longitudinal oscillation component includes a longitudinal vibration plate and a bracket fixed on the flip shaft, a vibration motor is installed on the longitudinal vibration plate, a group of T-shaped suspension rods are installed on the longitudinal vibration plate, each of the T-shaped suspension rods is slidably connected to the bracket, and a shock-absorbing spring is sleeved on the T-shaped suspension rod and at a position corresponding to the position between the bracket and the longitudinal vibration plate, and the axis of the T-shaped suspension rod is perpendicular to the axis of the flip shaft.

7. The electronic atomization control panel detection device according to claim 6, characterized in that: The clamping assembly includes a negative pressure suction duct opened in the flip shaft and a negative pressure vacuum cleaner fixed on the lifting frame, the negative pressure vacuum cleaner is connected to the negative pressure suction duct, two groups of negative pressure suction feet symmetrically arranged and connected to the negative pressure suction duct are installed on the flip shaft, a group of pneumatic double-head clamping rods are installed on the flip shaft, and clamps suitable for clamping the atomization control panel body are provided on both sides of the flip shaft, the two movable ends of each of the pneumatic double-head clamping rods are respectively fixedly connected to the two clamps, and the axis of the pneumatic double-head clamping rod is perpendicular to the axis of the flip shaft.

8. The electronic atomization control panel detection device according to claim 1, characterized in that: The environmental control component includes an electric heating plate, a refrigeration module and a sprayer fixedly mounted on the environmental box. A temperature and humidity probe is mounted on the environmental box. A central control host is mounted on the mobile frame. The central control host is data-connected with the temperature and humidity probe.

9. An electronic atomization control panel detection device according to any one of claims 1 to 8, characterized in that: The positioning and unloading assembly includes a vacuum pump fixed on the environmental chamber, the vacuum generating end of the vacuum pump is connected to a group of vacuum suction pins, a data connection b that cooperates with a PIN pin interface is installed inside the environmental chamber, and unloading boxes are installed on the inspection cabinet and at positions corresponding to both sides of the environmental chamber.

10. The electronic atomization control panel detection device according to claim 9, characterized in that: The visual detection component includes a second visual probe fixed on the flip axis and a third visual probe fixed on the lifting frame. The first visual probe, the second visual probe and the third visual probe are all connected to the central control host data, and the axes of the second visual probe and the third visual probe are perpendicular to the axis of the flip axis.

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