Photoelectric sensor performance detection device

By designing a photoelectric sensor performance detection device, using environmental controllers and transportation components to simulate different environments, the problem of insufficient photoelectric sensor performance detection accuracy is solved, and efficient and accurate performance evaluation is achieved to ensure stable operation and safety of the equipment.

CN223166169UActive Publication Date: 2025-07-29SUZHOU YOUTAI PRECISION AUTOMATION CO LTD
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Patent Information

Application Number
CN202421798379.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-07-29
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

The existing photoelectric sensor performance detection methods have poor accuracy and are difficult to accurately obtain performance parameters in different usage environments, resulting in the impact of equipment operation efficiency and safety.

Method used

A photoelectric sensor performance detection device is designed, including an environmental controller, transportation component and controller. By adjusting the surface characteristics of the shading component and the environmental parameters in the isolation cavity, it simulates the actual working environment of the photoelectric sensor and realizes automatic detection.

Benefits of technology

It improves the accuracy and efficiency of photoelectric sensor performance detection, provides more comprehensive and accurate data support, ensuring the stable operation and safety of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of photoelectric sensor performance detection, in particular to a photoelectric sensor performance detection device which comprises an environment controller, a transportation assembly and a controller, the environment controller comprises an isolation box and an environment control assembly, an isolation cavity is formed in the isolation box, and the environment control assembly is arranged in the isolation cavity. The environment control assembly is configured to be capable of adjusting environment parameters in the isolation cavity; the transportation assembly is arranged in the isolation cavity and comprises a transportation part and a mounting seat, the transportation part is used for transporting the shielding part, the mounting seat is arranged on the direction side, perpendicular to the transportation direction, of the transportation part, the mounting seat is used for arranging a photoelectric sensor, and the photoelectric sensor is used for detecting the shielding part and outputting a control signal; the controller is electrically connected with the transportation part and used for receiving the control signal and obtaining performance parameters of the photoelectric sensor. The device can accurately detect the performance parameters of the photoelectric sensor.
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Description

Technical Field

[0001] The utility model relates to the technical field of optoelectronic sensor performance detection, in particular to an optoelectronic sensor performance detection device. Background Art

[0002] With the development of modern industrial automation, the requirements for the operating efficiency and safety of each unit and module in the production process are getting higher and higher. Based on the photoelectric effect, optoelectronic sensors convert optical signals into electrical signals, and have the advantages of long detection distance, short response time, non-contact detection, etc., and can effectively ensure the operating efficiency and safety of each unit and module, and are an indispensable part of modern industrial automation.

[0003] There are various types of optoelectronic sensors. Taking several conventional optoelectronic sensors as examples, they include opposed type optoelectronic sensors, retroreflective optoelectronic sensors, and diffuse reflection optoelectronic sensors. Among them, the opposed type optoelectronic sensor is equipped with a light emitter and a light receiver. When the detected object passes through and blocks the light emitted by the light emitter to the light receiver, the light receiver cannot receive the light and thus outputs a control signal. The retroreflective optoelectronic sensor is equipped with a light emitter, a light receiver, and a reflector. When the detected object passes through and blocks the reflector so that the light receiver cannot receive the light, the light receiver outputs a control signal. The diffuse reflection optoelectronic sensor is equipped with a light emitter and a light receiver. When the detected object passes through and reflects light to the light receiver, the light receiver receives the reflected light and outputs a control signal.

[0004] During use, the stability of the performance and the length of the service life of optoelectronic sensors directly affect the operating efficiency and safety of the entire system. However, most of the existing optoelectronic sensors evaluate performance parameters through their hardware, including sensitivity, response time, stability, service life, etc., and the accuracy is poor. At the same time, due to the differences in the actual use environment, working load, etc. of different devices, the performance parameters of optoelectronic sensors will also be affected accordingly, resulting in problems such as performance degradation and premature damage, which easily lead to potential safety hazards in the devices using optoelectronic sensors. Summary of the Utility Model

[0005] Therefore, the technical problem to be solved by the utility model is to overcome the difficulty of accurately obtaining the performance of optoelectronic sensors in different use environments, and provide an optoelectronic sensor performance detection device that can accurately detect the performance parameters of optoelectronic sensors.

[0006] The present utility model provides an optoelectronic sensor performance detection device, which includes an environment controller. The environment controller includes an isolation box and an environment control component. An isolation cavity is formed inside the isolation box, and the environment control component is arranged inside the isolation cavity. The environment control component is configured to be able to adjust the environmental parameters inside the isolation cavity; a transportation component, the transportation component is arranged inside the isolation cavity, the transportation component includes a transportation member and a mounting seat, the transportation member is used for transporting a shielding component, the mounting seat is arranged on the side of the transportation member perpendicular to its transportation direction, and the mounting seat is used for arranging an optoelectronic sensor. The optoelectronic sensor is used for detecting the shielding component and outputting a control signal; a controller, the controller is electrically connected to the transportation member, and the controller is used for receiving the control signal and obtaining the performance parameters of the optoelectronic sensor.

[0007] In an embodiment of the present utility model, the optoelectronic sensor includes a transmissive optoelectronic sensor. The transmissive optoelectronic sensor includes a first light emitter and a first light receiver. Both the first light emitter and the first light receiver are connected to the mounting seat. Along the direction perpendicular to the transportation direction of the transportation member, the first light emitter and the first light receiver are oppositely arranged on both sides of the transportation member. The first light emitter is used for emitting a first light to the first light receiver, and the first light receiver is used for emitting a first control signal to the controller when the shielding component blocks the first light.

[0008] In an embodiment of the present utility model, the optoelectronic sensor includes a reflective component. The reflective component includes a reflective optoelectronic sensor and a reflector. The reflective optoelectronic sensor includes a second light emitter and a second light receiver. The second light emitter, the second light receiver and the reflector are all connected to the mounting seat. Along the direction perpendicular to the transportation direction of the transportation member, both the second light emitter and the second light receiver are arranged on the same side of the transportation member, and the reflector is arranged on the other side of the transportation member and is arranged opposite to the second light emitter and the second light receiver. The second light emitter is used for emitting a second light to the reflector, the reflector is used for reflecting the second light to the second light receiver, and the second light receiver is used for emitting a second control signal to the controller when the shielding component blocks the second light.

[0009] In an embodiment of the present utility model, the optoelectronic sensor includes a diffusive optoelectronic sensor. The diffusive optoelectronic sensor includes a third light emitter and a third light receiver. Both the third light emitter and the third light receiver are connected to the mounting seat. Along the direction perpendicular to the transportation direction of the transportation member, both the third light emitter and the third light receiver are arranged on the same side of the transportation member. The third light emitter is used for emitting a third light, and the third light receiver is used for emitting a third control signal to the controller when receiving the third light reflected by the shielding component.

[0010] In an embodiment of the present utility model, it further includes a photoelectric sensor. The photoelectric sensor is detachably connected to the mounting base, and the photoelectric sensor is electrically connected to the controller.

[0011] In an embodiment of the present utility model, the transportation component includes a synchronous belt, a driving wheel, a driven wheel, and a driving member. The driving wheel and the driven wheel are both rotatably connected to the mounting base. The driving end of the driving member is connected to the driving wheel. The synchronous belt is sleeved on the driving wheel and the driven wheel, and the shielding member is connected to the synchronous belt.

[0012] In an embodiment of the present utility model, the environmental control component includes a temperature control member. The temperature control member is arranged in the isolation cavity. The temperature control member is electrically connected to the controller, and the temperature control member is configured to be able to adjust the temperature in the isolation cavity.

[0013] In an embodiment of the present utility model, the environmental control component includes a humidity control member. The humidity control member is arranged in the isolation cavity. The humidity control member is electrically connected to the controller, and the humidity control member is configured to be able to adjust the humidity in the isolation cavity.

[0014] In an embodiment of the present utility model, the environmental control component includes a brightness control member. The brightness control member is arranged in the isolation cavity. The brightness control member is electrically connected to the controller, and the brightness control member is configured to be able to adjust the brightness in the isolation cavity.

[0015] In an embodiment of the present utility model, it further includes a display. The display is electrically connected to the controller, and the display is used to display the performance parameters obtained by the photoelectric sensor.

[0016] The above technical solution of the present utility model has the following beneficial effects compared with the prior art:

[0017] For the photoelectric sensor performance detection device of the present utility model, by setting the environmental controller, the transportation component, and the controller, it can simulate different working environments by adjusting the surface characteristics of the shielding member and adjusting the environmental parameters in the isolation cavity through the environmental control component, so as to simulate the working state and conditions of the photoelectric sensor in the actual working environment. Through long-term and continuous monitoring and evaluation, its performance parameters can be accurately obtained. This device is simple and convenient to operate, has strong adaptability, can realize automatic detection, improves the detection efficiency and accuracy, and provides more comprehensive and accurate data support for the performance evaluation of the photoelectric sensor. Description of the Drawings

[0018] To make the content of the present utility model easier to be clearly understood, the following further describes the present utility model in detail according to the specific embodiments of the present utility model in conjunction with the accompanying drawings, wherein,

[0019] Figure 1 is a schematic structural diagram of an optoelectronic sensor performance detection device in a preferred embodiment of the present utility model;

[0020] Figure 2 is a schematic structural diagram of the interior of an isolation chamber in a preferred embodiment of the present utility model;

[0021] Figure 3 is a schematic structural diagram of an opposed-type optoelectronic sensor in a preferred embodiment of the present utility model;

[0022] Figure 4 is a schematic structural diagram of a reflective component in a preferred embodiment of the present utility model;

[0023] Figure 5 is a schematic structural diagram of a diffused-type optoelectronic sensor in a preferred embodiment of the present utility model;

[0024] Figure 6 is a schematic diagram of the electrical connection of a controller in a preferred embodiment of the present utility model.

[0025] Explanation of the reference numerals in the drawings of the specification: 11, isolation box; 121, temperature control component; 122, humidity control component; 123, brightness control component; 211, synchronous belt; 212, driving component; 213, mounting seat; 214, shielding component; 22, opposed-type optoelectronic sensor; 221, first light emitter; 222, first light receiver; 23, reflective component; 231, reflective optoelectronic sensor; 232, reflector; 24, diffused-type optoelectronic sensor; 25, reference optoelectronic sensor; 30, controller; 40, display. Specific Embodiments

[0026] The following further describes the present utility model in conjunction with the accompanying drawings and specific embodiments, so that those skilled in the art can better understand the present utility model and be able to implement it, but the embodiments cited do not limit the present utility model.

[0027] Referring to Figure 1 and Figure 2 as shown, the present utility model discloses an optoelectronic sensor performance detection device, including an environmental controller, a transportation component and a controller 30.

[0028] The environmental controller is used to provide an environment for the detection of the photoelectric sensor to simulate the environmental conditions during actual operation, so as to cooperate with the controller 30 to detect the relevant performance of the photoelectric sensor. Specifically, the environmental controller includes an isolation box 11 and an environmental control component. An isolation cavity is formed inside the isolation box 11 to isolate the inside of the isolation cavity from the external environment through the isolation box 11, avoiding being affected by external environmental factors, thereby improving the detection accuracy; the isolation cavity is not shown in the figure. Those skilled in the art can set the specific isolation box 11 according to actual needs to adapt to different detection requirements. The environmental control component is arranged in the isolation cavity and is configured to be able to adjust the environmental parameters in the isolation cavity. Those skilled in the art can set the specific environmental control component according to actual needs to meet different environmental simulation requirements and improve the detection efficiency and accuracy; the environmental parameters include temperature, humidity, brightness, etc.

[0029] The transportation component is arranged in the isolation cavity. The transportation component includes a transportation member, a shielding member 214 and a mounting seat 213. The transportation member is used to transport the shielding member 214. The transportation member belongs to the prior art. Those skilled in the art can set different transportation members according to actual needs as long as they can transport the shielding member 214. By setting the transportation member, the shielding member 214 can be transported to simulate the dynamic detection environment of the photoelectric sensor during actual use, so as to cooperate with the controller 30 to detect the relevant performance of the photoelectric sensor. Those skilled in the art can set the specific shielding member 214 according to actual needs. For example, the shielding member 214 with different surface characteristics can be set, and the surface characteristics include reflectivity, color, etc., so as to simulate the detection objects of the photoelectric sensor in different working environments, with strong adaptability. Preferably, a plurality of shielding members 214 are provided to improve the detection efficiency. The mounting seat 213 is arranged on the side of the transportation member perpendicular to its own transportation direction. The mounting seat 213 is used to set the photoelectric sensor, and the photoelectric sensor is used to detect the shielding member 214 and output a control signal. Those skilled in the art can set the mounting seat 213 on one side or both sides according to actual needs; preferably, the mounting seat 213 is a split structure, and mounting seats 213 are provided on both sides of the transportation member perpendicular to its own transportation direction to mount the corresponding photoelectric sensors and ensure the structural stability.

[0030] The controller 30 is electrically connected to the transport member. By electrically connecting the controller 30 to the transport assembly, the operating parameters of the transport member can be adjusted according to actual needs, so as to cooperate with the controller 30 to detect the relevant performance of the photoelectric sensor. For example, when the transport member is set to be driven by the cooperation of a synchronous pulley and a synchronous belt 211, parameters such as the rotation speed and direction of the synchronous pulley can be adjusted. The controller 30 is used to receive the control signal sent by the photoelectric sensor and obtain the performance parameters of the photoelectric sensor. Specifically, the controller 30 includes a signal processing and analysis module to receive the control signal from the photoelectric sensor in real time, record, process and analyze it, so as to evaluate the corresponding performance parameters of the photoelectric sensor. The performance parameters of the photoelectric sensor include sensitivity, response time, stability, lifespan, etc. Preferably, the controller 30 is also used for the operation control of the entire device, including starting and stopping, parameter adjustment, etc.

[0031] Preferably, the device further includes a reference photoelectric sensor 25. The reference photoelectric sensor 25 is electrically connected to the controller 30. By setting the reference photoelectric sensor 25, its corresponding detection parameters are used as a reference and compared with the photoelectric sensor to be tested, so as to evaluate the performance parameters.

[0032] During the actual detection process, the photoelectric sensor to be detected is set on the mounting base 213. After adjusting the shielding member 214, the transport member, and the environmental control assembly to simulate the actual working environment of the photoelectric sensor to be detected, the transport member and the photoelectric sensor are started for corresponding detection. During the detection process, the signal processing and analysis module of the controller 30 receives and records the control signal from the photoelectric sensor in real time, and analyzes and processes the collected data according to the preset algorithms and rules, so as to evaluate the performance and lifespan of the photoelectric sensor.

[0033] For the photoelectric sensor performance detection device described in the present utility model, by setting an environmental controller, a transport assembly and a controller 30, different working environments can be simulated by adjusting the surface characteristics of the shielding member 214 and the environmental parameters in the isolation cavity through the environmental control assembly, so as to simulate the working state and conditions of the photoelectric sensor in the actual working environment. Through long-term and continuous monitoring and evaluation, its performance parameters can be accurately obtained. This device is simple and convenient to operate, has strong adaptability, can realize automatic detection, improves the detection efficiency and accuracy, and provides more comprehensive and accurate data support for the performance evaluation of the photoelectric sensor.

[0034] Refer to Figure 2 and Figure 3As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the photoelectric sensor includes an opposed photoelectric sensor 22, and the opposed photoelectric sensor 22 includes a first light emitter 221 and a first light receiver 222. Both the first light emitter 221 and the first light receiver 222 are connected to the mounting base 213, and the first light emitter 221 and the first light receiver 222 are relatively arranged on both sides of the transport member along the direction perpendicular to the transport direction of the transport member. The first light emitter 221 is used to emit a first light to the first light receiver 222, and the first light receiver 222 is used to emit a first control signal to the controller 30 when the shielding member 214 shields the first light.

[0035] By setting this structure, the performance of the opposed photoelectric sensor 22 can be detected. Specifically, the shielding member 214 transported by the transport member can simulate the target to be detected by the opposed photoelectric sensor 22 during actual use. When the shielding member 214 arrives and shields the first light, the first light receiver 222 can emit a first control signal to the controller 30, so that the controller 30 can perform corresponding recording, analysis, and processing, thereby accurately and efficiently obtaining the performance parameters of the opposed photoelectric sensor 22.

[0036] Refer to Figure 2 and Figure 4 As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the photoelectric sensor includes a reflective component 23, and the reflective component 23 includes a reflective photoelectric sensor 231 and a reflector 232. The reflective photoelectric sensor 231 includes a second light emitter and a second light receiver. The second light emitter, the second light receiver, and the reflector 232 are all connected to the mounting base 213. The second light emitter and the second light receiver are both arranged on the same side of the transport member along the direction perpendicular to the transport direction of the transport member. The reflector 232 is arranged on the other side of the transport member, and the reflector 232 is arranged opposite to the second light emitter and the second light receiver. The second light emitter is used to emit a second light to the reflector 232, the reflector 232 is used to reflect the second light to the second light receiver, and the second light receiver is used to emit a second control signal to the controller 30 when the shielding member 214 shields the second light.

[0037] By setting this structure, the performance of the reflective photoelectric sensor 231 can be detected. Specifically, the shielding member 214 transported by the transport member can simulate the target to be detected by the reflective photoelectric sensor 231 during actual use. When the shielding member 214 arrives and shields the second light, the second light receiver can emit a second control signal to the controller 30, so that the controller 30 can perform corresponding recording, analysis, and processing, thereby accurately and efficiently obtaining the performance parameters of the reflective photoelectric sensor 231.

[0038] Refer to Figure 2 and Figure 5As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the photoelectric sensor includes a diffuse photoelectric sensor 24. The diffuse photoelectric sensor 24 includes a third light emitter and a third light receiver, and both the third light emitter and the third light receiver are connected to the mounting base 213. Along the direction perpendicular to the transportation direction of the transportation member, both the third light emitter and the third light receiver are arranged on the same side of the transportation member. The third light emitter is used to emit the third light, and the third light receiver is used to emit a third control signal to the controller 30 when receiving the third light reflected by the shielding member 214.

[0039] By setting this structure, the performance of the diffuse photoelectric sensor 24 can be detected. Specifically, the shielding member 214 transported by the transportation member can simulate the target to be detected by the diffuse photoelectric sensor 24 during actual use. When the shielding member 214 is in place, the shielding member 214 can reflect the third light to the third light receiver. After the third light receiver receives the third light, it can emit a third control signal to the controller 30, so that the controller 30 can perform corresponding recording, analysis, and processing, thereby accurately and efficiently obtaining the performance parameters of the diffuse photoelectric sensor 24.

[0040] Refer to Figure 2 As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, it further includes a photoelectric sensor. The photoelectric sensor is detachably connected to the mounting base 213 and is electrically connected to the controller 30. By detachably setting the photoelectric sensor, it is convenient to replace and perform subsequent detections after completing the corresponding detections. Specifically, the detachable connection structure can be set according to actual needs, such as snap connection, threaded connection, etc.

[0041] Refer to Figure 2 As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the transportation assembly includes a synchronous belt 211, a driving wheel, a driven wheel, and a driving component 212. Both the driving wheel and the driven wheel are rotatably connected to the mounting base 213, and the driving wheel and the driven wheel are not shown in the figure. The driving end of the driving component 212 is connected to the driving wheel. Preferably, the driving component 212 is set as a servo motor. The synchronous belt 211 is sleeved on the driving wheel and the driven wheel, and the shielding member 214 is connected to the synchronous belt 211. By setting this structure, the transportation of the shielding member 214 can be realized at a constant temperature, so as to cooperate with other components to detect the service life of the photoelectric sensor. Preferably, the shielding member 214 is detachably connected to the synchronous belt 211; specifically, the detachable connection structure can be set according to actual needs, such as snap connection, threaded connection, etc. Preferably, there is a certain gap between the surface of the synchronous belt 211 and other components, which is convenient for circulating the transportation of the shielding member 214, saving space, improving space utilization rate, and reducing detection costs.

[0042] Refer to Figure 6As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the environmental control component includes a temperature control part 121. The temperature control part 121 is arranged in the isolation chamber, and the temperature control part 121 is electrically connected to the controller 30. The temperature control part 121 is configured to be able to adjust the temperature in the isolation chamber. The temperature control part 121 can be set according to actual needs, such as a combination of a heating element and a temperature detection element, etc. By setting the temperature control part 121, the temperature in the isolation chamber can be adjusted, so as to better simulate the working environment of the photoelectric sensor and accurately obtain its performance parameters.

[0043] Referring to Figure 6 As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the environmental control component includes a humidity control part 122. The humidity control part 122 is arranged in the isolation chamber, and the humidity control part 122 is electrically connected to the controller 30. The humidity control part 122 is configured to be able to adjust the humidity in the isolation chamber. The humidity control part 122 can be set according to actual needs, such as a combination of a humidifying element and a humidity detection element, etc. By setting the humidity control part 122, the humidity in the isolation chamber can be adjusted, so as to better simulate the working environment of the photoelectric sensor and accurately obtain its performance parameters.

[0044] Referring to Figure 6 As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, the environmental control component includes a brightness control part 123. The brightness control part 123 is arranged in the isolation chamber, and the brightness control part 123 is electrically connected to the controller 30. The brightness control part 123 is configured to be able to adjust the brightness in the isolation chamber. The brightness control part 123 can be set according to actual needs, such as a lighting lamp, etc. By setting the brightness control part 123, the brightness in the isolation chamber can be adjusted, so as to better simulate the working environment of the photoelectric sensor and accurately obtain its performance parameters.

[0045] Preferably, the temperature control part 121, the humidity control part 122 and the brightness control part 123 are set simultaneously to cooperate with each other to achieve a better effect.

[0046] Referring to Figure 1 and Figure 6 As shown, in some embodiments of the photoelectric sensor performance detection device of the present utility model, it further includes a display 40. The display 40 is electrically connected to the controller 30, and the display 40 is used to display the performance parameters of the obtained photoelectric sensor. The display 40 belongs to the prior art, and its specific working principle will not be elaborated here. By setting the display 40, the test results can be more intuitively displayed, which is convenient for the staff to view and analyze.

[0047] Working principle:

[0048] I. Preparation stage:

[0049] Set the optoelectronic sensor to be tested on the mounting base 213 to ensure the stability and accurate position of the sensor. Subsequently, set a plurality of shielding components 214 on the synchronous belt 211 to ensure that the shielding components 214 can move along with the transportation of the synchronous belt 211, and ensure that the surface characteristics of the shielding components 214 meet the test requirements. Adjust the corresponding operating parameters of the motor through the controller 30.

[0050] According to requirements, adjust the temperature, humidity, and brightness in the isolation chamber through the environmental control component to simulate the conditions of the actual working environment of the optoelectronic sensor to be tested. After the settings are completed, start the transportation component and the reference optoelectronic sensor 25 to return the device to the origin; after completion, turn on the optoelectronic sensor to be tested.

[0051] II. Testing stage:

[0052] The optoelectronic sensor detects the shielding component 214 and issues a control signal when corresponding conditions are met. The controller 30 receives, analyzes, and processes the control signal to evaluate performance indicators such as the sensitivity, response time, and stability of the optoelectronic sensor. Calculate the time for the shielding component 214 to pass by the optoelectronic sensor each time according to the rotation speed of the motor.

[0053] Conduct long-term continuous monitoring of the optoelectronic sensor to simulate its long-term use in the actual working environment. At the same time, regularly record and analyze the data to promptly detect performance changes and predict its lifespan. During this process, pay special attention to observing whether there are abnormal signals or trends of performance degradation, which may be signs that the sensor's lifespan is about to expire.

[0054] III. Analysis and reporting stage:

[0055] Based on the control signal transmitted by the optoelectronic sensor to the controller 30, combine parameters such as the rotation speed of the motor to summarize into a waveform diagram. Compare this waveform diagram with the waveform diagram summarized according to the corresponding parameters of the reference optoelectronic sensor 25 to judge the situation of the optoelectronic sensor. For example, when the two waveform diagrams are the same, it means that the measured optoelectronic sensor functions normally; otherwise, it may have abnormal functions or obtain the sensor's lifespan.

[0056] Display the test results and analysis reports in the form of charts, curves, or numbers on the display screen to facilitate the staff to intuitively understand information such as the test time, environmental parameters, and performance parameters of the measured optoelectronic sensor.

[0057] Obviously, the above embodiments are merely examples given for clear illustration and are not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or modifications can be made based on the above description. It is not necessary and impossible to enumerate all implementation manners here. And the obvious changes or modifications derived therefrom still fall within the protection scope of this utility model creation.

Claims

1. An optoelectronic sensor performance detection device, characterized in that Including: An environment controller, the environment controller includes an isolation box and an environment control component. An isolation cavity is formed inside the isolation box, and the environment control component is arranged inside the isolation cavity. The environment control component is configured to be able to adjust the environmental parameters inside the isolation cavity; A transportation component, the transportation component is arranged inside the isolation cavity. The transportation component includes a transportation member and a mounting seat. The transportation member is used for transporting the shielding component. The mounting seat is arranged on the side of the transportation member in the direction perpendicular to its transportation direction. The mounting seat is used for arranging a photoelectric sensor, and the photoelectric sensor is used for detecting the shielding component and outputting a control signal; A controller, the controller is electrically connected to the transportation member. The controller is used for receiving the control signal and obtaining the performance parameters of the photoelectric sensor.

2. The optoelectronic sensor performance detection device according to claim 1, wherein: The photoelectric sensor includes a transmissive photoelectric sensor. The transmissive photoelectric sensor includes a first light emitter and a first light receiver. Both the first light emitter and the first light receiver are connected to the mounting seat. Along the direction perpendicular to the transportation direction of the transportation member, the first light emitter and the first light receiver are oppositely arranged on both sides of the transportation member. The first light emitter is used for emitting a first light to the first light receiver, and the first light receiver is used for emitting a first control signal to the controller when the shielding component blocks the first light.

3. The optoelectronic sensor performance detection device according to claim 1, characterized in that: The photoelectric sensor includes a reflective component. The reflective component includes a reflective photoelectric sensor and a reflector. The reflective photoelectric sensor includes a second light emitter and a second light receiver. The second light emitter, the second light receiver and the reflector are all connected to the mounting seat. Along the direction perpendicular to the transportation direction of the transportation member, both the second light emitter and the second light receiver are arranged on the same side of the transportation member. The reflector is arranged on the other side of the transportation member and is arranged opposite to the second light emitter and the second light receiver. The second light emitter is used for emitting a second light to the reflector, the reflector is used for reflecting the second light to the second light receiver, and the second light receiver is used for emitting a second control signal to the controller when the shielding component blocks the second light.

4. The optoelectronic sensor performance detection device according to claim 1, characterized in that: The photoelectric sensor includes a diffuse photoelectric sensor. The diffuse photoelectric sensor includes a third light emitter and a third light receiver. Both the third light emitter and the third light receiver are connected to the mounting seat. Along the direction perpendicular to the transportation direction of the transportation member, both the third light emitter and the third light receiver are arranged on the same side of the transportation member. The third light emitter is used for emitting a third light, and the third light receiver is used for emitting a third control signal to the controller when receiving the third light reflected by the shielding component.

5. The optoelectronic sensor performance detection device according to any one of claims 1 to 4, characterized in that, It further includes a photoelectric sensor. The photoelectric sensor is detachably connected to the mounting seat, and the photoelectric sensor is electrically connected to the controller.

6. The optoelectronic sensor performance detection device according to claim 1, characterized in that: The transportation component includes a synchronous belt, a driving wheel, a driven wheel and a driving component. Both the driving wheel and the driven wheel are rotatably connected to the mounting seat. The driving end of the driving component is connected to the driving wheel. The synchronous belt is sleeved on the driving wheel and the driven wheel. The shielding component is connected to the synchronous belt.

7. The optoelectronic sensor performance detection device according to claim 1, characterized in that: The environmental control component includes a temperature control part, the temperature control part is arranged in the isolation cavity, the temperature control part is electrically connected to the controller, and the temperature control part is configured to be able to adjust the temperature in the isolation cavity.

8. The optoelectronic sensor performance detection device according to claim 1 or 7, characterized in that: The environmental control component includes a humidity control part, the humidity control part is arranged in the isolation cavity, the humidity control part is electrically connected to the controller, and the humidity control part is configured to be able to adjust the humidity in the isolation cavity.

9. The optoelectronic sensor performance detection device according to claim 1 or 7, characterized in that: The environmental control component includes a brightness control part, the brightness control part is arranged in the isolation cavity, the brightness control part is electrically connected to the controller, and the brightness control part is configured to be able to adjust the brightness in the isolation cavity.

10. The optoelectronic sensor performance detection device according to claim 1, wherein, It further includes a display, the display is electrically connected to the controller, and the display is used to display the performance parameters obtained by the photoelectric sensor.