Light transmission performance detection device and method for silica gel product production

By designing a light-transmitting performance detection device for the production of silicone products that integrate mechanical transmission and optical detection, the problem of line shutdown in the light-transmitting detection of silicone products in the prior art is solved, and the effect of efficient light-transmitting detection during the movement is achieved.

CN120177360AInactive Publication Date: 2025-06-20喀什斯丽康智能科技有限公司
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Patent Information

Application Number
CN202510255068.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2025-06-20
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing silicone products need to be shut down for inspection when conducting light transmittance detection, resulting in low detection efficiency.

Method used

A light-transmitting performance detection device for the production of silicone products is designed, including a base, a support frame, a feeding conveying line, a detection shell, a rotating cylinder, a rotating motor, a plurality of rotating rods, a plurality of first material extraction plates, a light-emitting probe and a light-receiving probe, which can perform optical light-transmitting detection during the movement of the silicone products without stopping the line.

Benefits of technology

The light transmittance detection is realized during the movement of silicone products, which improves the detection efficiency and avoids inefficiency caused by line shutdown during the detection process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of optical detection, in particular to a light transmittance performance detection device and method.The light transmittance performance detection device for silica gel product production comprises a base, a supporting frame, a feeding conveying line, a detection shell, a rotating cylinder, a rotating motor, a plurality of rotating rods, a plurality of first material taking plates, a light emitting probe and a light receiving probe; the feeding conveying line is arranged on one side of the supporting frame, the detection shell is fixed to the supporting frame, the rotating cylinder is rotationally arranged on the detection shell, the output end of the rotating motor is connected with the rotating cylinder, the multiple rotating rods are fixedly connected with the rotating cylinder and located on the periphery of the rotating cylinder, and the multiple first material taking plates are arranged on the multiple rotating rods. The light emitting probe is arranged in the detection shell, and the light receiving probe is correspondingly arranged opposite to the light emitting probe, so that optical transmission detection can be carried out in the moving process without stopping a line, and the detection efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of optical detection, and particularly relates to a device and method for detecting the light transmittance of silicone products during production. Background Art

[0002] During the production process of silicone products, the use effect of the products is often closely related to multiple factors, and one of them is light transmittance. For silicone products used in certain specific applications, such as transparent or semi-transparent silicone components for electronic devices, optical instruments or the lighting industry, the quality of their light transmittance directly affects the functionality and user experience of the final product. Therefore, in the manufacturing process of such silicone products, it is particularly important to ensure that they have good light transmittance.

[0003] When detecting the light transmittance of existing silicone products, the conveyor line needs to be stopped, and then a sunshade is used to cover it for detection. After the detection is completed, the conveying is carried out again, so the detection efficiency is relatively low. Summary of the Invention

[0004] The purpose of the present invention is to provide a device and method for detecting the light transmittance of silicone products during production, aiming to perform optical light transmittance detection during the moving process without stopping the line, thereby improving the detection efficiency.

[0005] To achieve the above object, in a first aspect, the present invention provides a device for detecting the light transmittance of silicone products during production, including a base, a support frame, a feeding conveyor line, a detection shell, a rotating cylinder, a rotating motor, a plurality of rotating rods, a plurality of first material taking plates, a light emitting probe and a light receiving probe. The support frame is fixedly connected to the base and is located at the top of the base. The feeding conveyor line is arranged on one side of the support frame. The detection shell is fixed to the support frame. The rotating cylinder is rotatably arranged on the detection shell. The output end of the rotating motor is connected to the rotating cylinder. A plurality of the rotating rods are fixedly connected to the rotating cylinder and are located around the rotating cylinder. A plurality of the first material taking plates are arranged on the plurality of rotating rods. The light emitting probe is arranged inside the detection shell, and the light receiving probe is correspondingly arranged opposite to the light emitting probe.

[0006] Wherein, the detection shell includes a shell body, two sealing rotating plates, two sealing strips and two first return springs. The two sealing rotating plates are rotatably arranged below the shell body. The two sealing strips are respectively arranged on the two sealing rotating plates. The two first return springs are respectively connected to the two sealing rotating plates.

[0007] Wherein, the detection shell further includes a position adjusting plate, which is used to limit the position of the silicone product during movement.

[0008] Wherein, the position adjustment plate includes a sliding member, an adjusting screw rod, and an adjustment plate body. The sliding member is slidably disposed within the housing. The adjusting screw rod is threadedly connected to the sliding member and rotatably connected to the housing. The adjustment plate body is fixed to the sliding member.

[0009] Wherein, the rotating rod has a push rod, and the push rod is disposed on a side of the rotating rod close to the sealing rotating plate.

[0010] Wherein, the first material taking plate includes a rotating plate, a counterweight, a sliding limiting plate, and a second screw rod. The rotating plate is rotatably disposed on the rotating rod. The counterweight is disposed at the bottom of the rotating plate. The sliding limiting plate is slidably disposed on the rotating plate. The second screw rod is threadedly connected to the sliding limiting plate.

[0011] Wherein, the light transmittance detection device for silicone product production further includes a brightness detector. The brightness detector includes a brightness detection unit, a judgment unit, and an alarm unit. The brightness detection unit is disposed within the housing. The judgment unit is connected to the brightness detection unit. The alarm unit is connected to the judgment unit.

[0012] Wherein, the light transmittance detection device for silicone product production further includes a discharge control plate, a discharge conveyor line, a blocking rod, and a collection box. The discharge control plate is slidably disposed at the discharge port of the housing. The discharge conveyor line is disposed on one side of the discharge control plate. The blocking rod is disposed on one side of the support frame. The collection box is disposed below the blocking rod.

[0013] In a second aspect, the present invention further provides a method for detecting the light transmittance of silicone products during production, including:

[0014] Placing the silicone product to be processed on the feeding conveyor line for movement;

[0015] Starting the rotating motor to drive the rotating cylinder and multiple rotating rods to rotate, so that the first material taking plate contacts and removes the silicone product;

[0016] The first material taking plate keeps horizontal and drives the silicone product to move up to the light emitting probe;

[0017] The light emitting probe emits detection light and receives it through the light receiving probe to obtain detection data;

[0018] Judging the light transmittance of the silicone product based on the detection data.

[0019] A light transmittance detection device and method for the production of silicone products according to the present invention. The base serves as the basic support part of the entire detection device, providing a stable installation platform and ensuring the stability and reliability of the device during operation. The support frame is fixedly connected to the base and is located at the top of the base. The support frame not only bears the support of the overall structure but also serves as the installation basis for other components such as the feeding conveyor line and the detection shell. The feeding conveyor line is arranged on one side of the support frame and is responsible for smoothly transporting the silicone products to be detected to the designated position, realizing automated operation and improving work efficiency. The detection shell is fixed to the support frame and is the core area for performing light transmittance tests. Its internal environment is relatively enclosed, which can avoid interference from external light and ensure the accuracy of the detection results. The rotating cylinder is rotatably arranged on the detection shell and is driven by a connected rotating motor, enabling the sample to rotate during the detection process for comprehensive detection from multiple angles.

[0020] The output end of the rotating motor is directly connected to the rotating cylinder, providing a power source for the rotating cylinder and enabling the sample to rotate automatically during the detection process. A plurality of rotating rods are fixed around the rotating cylinder, and each rotating rod is provided with a plurality of first material-taking plates. These material-taking plates are used to fix silicone products of different shapes and sizes, ensuring their stable positions during the detection process. The light emission probe and the light reception probe are respectively arranged on both sides inside the detection shell. The light emission probe emits light of a specific wavelength, which passes through the silicone product to be detected and is received by the light reception probe on the opposite side. By analyzing the change in the received light intensity, the light transmittance of the silicone product can be accurately evaluated.

[0021] During specific use, the silicone product is transported to the corresponding position through the feeding conveyor line, and then the rotating motor drives the rotating cylinder to rotate, causing the rotating rod to drive the first material-taking plate to rotate to pick up the silicone product onto the first material-taking plate. The first material-taking plate remains horizontal during rotation, so that it can drive the silicone product through the light emission probe to perform detections at multiple positions by emitting light, thereby making the product detection more complete and improving work efficiency. This detection device integrates multiple technologies such as mechanical transmission and optical detection, aiming to provide an efficient and accurate light transmittance detection solution for the production of silicone products, thus ensuring product quality. Description of the Drawings

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present invention 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 following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0023] Figure 1It is a structural diagram of a light transmittance detection device for the production of silicone products according to the present invention.

[0024] Figure 2 It is a right-side structural diagram of a light transmittance detection device for the production of silicone products according to the present invention.

[0025] Figure 3 It is a longitudinal sectional structural diagram of a light transmittance detection device for the production of silicone products according to the present invention.

[0026] Figure 4 It is a transverse sectional structural diagram of a light transmittance detection device for the production of silicone products according to the present invention.

[0027] Figure 5 It is a structural diagram of a light transmittance detection device for the production of silicone products according to the present invention with the outer wall removed.

[0028] Figure 6 is Figure 5 A partial enlarged view of detail A.

[0029] Figure 7 It is a structural diagram of the brightness detector according to the present invention.

[0030] Figure 8 It is a flowchart of a light transmittance detection method for the production of silicone products according to the present invention.

[0031] Base 101, support frame 102, feeding conveyor 103, detection shell 104, rotating cylinder 105, rotating motor 106, rotating rod 107, first material taking plate 108, light emitting probe 109, light receiving probe 110, housing 111, sealing rotating plate 112, sealing strip 113, first return spring 114, position adjusting plate 115, sliding member 116, adjusting screw 117, adjusting plate body 118, push rod 119, rotating plate 120, counterweight 121, sliding limit plate 122, second screw 123, brightness detector 124, brightness detection unit 125, judgment unit 126, alarm unit 127, discharging conveyor 129, stop bar 130, collection box 131, discharging plate body 132, control cylinder 133, second material taking plate 134, roller 135. Detailed implementation mode

[0032] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the drawings, in which the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present invention and should not be construed as limiting the present invention.

[0033] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention. In addition, in the description of the present invention, the meaning of "a plurality of" is two or more unless otherwise specifically defined.

[0034] First Embodiment

[0035] Please refer to Figures 1 to 7 , the present invention provides a light transmittance detection device for the production of silicone products, including a base 101, a support frame 102, a feeding conveyor 103, a detection shell 104, a rotating cylinder 105, a rotating motor 106, a plurality of rotating rods 107, a plurality of first material taking plates 108, a light emitting probe 109 and a light receiving probe 110. The support frame 102 is fixedly connected to the base 101 and is located on the top of the base 101. The feeding conveyor 103 is arranged on one side of the support frame 102. The detection shell 104 is fixed to the support frame 102. The rotating cylinder 105 is rotatably arranged on the detection shell 104. The output end of the rotating motor 106 is connected to the rotating cylinder 105. A plurality of the rotating rods 107 are fixedly connected to the rotating cylinder 105 and are located around the rotating cylinder 105. A plurality of the first material taking plates 108 are arranged on the plurality of rotating rods 107. The light emitting probe 109 is arranged inside the detection shell 104, and the light receiving probe 110 is correspondingly arranged opposite to the light emitting probe 109.

[0036] In this embodiment, the base 101 serves as the basic support part of the entire detection device. The base 101 provides a stable installation platform, ensuring the stability and reliability of the device during operation. The support frame 102 is fixedly connected to the base 101 and is located on the top of the base 101. The support frame 102 not only bears the support of the overall structure but also is the installation basis for other components such as the feeding conveyor 103 and the detection shell 104. The feeding conveyor 103 is arranged on one side of the support frame 102, responsible for smoothly transporting the silicone products to be detected to the designated position, realizing automated operation and improving work efficiency. The detection shell 104 is fixed to the support frame 102 and is the core area for performing the light transmittance test. Its internal environment is relatively enclosed, which can avoid interference from external light and ensure the accuracy of the detection results. The rotating cylinder 105 is rotatably arranged on the detection shell 104 and is driven by the connected rotating motor 106, enabling the rotation of the sample during the detection process for comprehensive detection from multiple angles.

[0037] The output end of the rotating motor 106 is directly connected to the rotating cylinder 105, providing a power source for the rotating cylinder 105, so that the sample can rotate automatically during the detection process. A plurality of rotating rods 107 are fixed around the rotating cylinder 105, and a plurality of first material taking plates 108 are provided on each rotating rod 107. These material taking plates are used to fix silica gel products of different shapes and sizes to ensure their stable positions during the detection process. The light emitting probe 109 and the light receiving probe 110 are respectively arranged on both sides inside the detection shell 104. Among them, the light emitting probe 109 emits light of a specific wavelength, which is received by the light receiving probe 110 on the opposite side after passing through the silica gel product to be detected. By analyzing the change in the received light intensity, the light transmittance performance of the silica gel product can be accurately evaluated.

[0038] During specific use, the silica gel product is conveyed to the corresponding position through the feeding conveyor line 103, and then the rotating motor 106 drives the rotating cylinder 105 to rotate, so that the rotating rod 107 drives the first material taking plate 108 to rotate to pick up the silica gel product onto the first material taking plate 108. The first material taking plate 108 remains horizontal during rotation, so that the silica gel product can be driven through the light emitting probe 109 to perform detections at multiple positions by emitting light, thereby making the product detection more perfect and improving work efficiency. This detection device integrates multiple technologies such as mechanical transmission and optical detection, aiming to provide an efficient and accurate light transmittance performance detection solution for the production of silica gel products, thereby ensuring product quality.

[0039] The detection shell 104 includes a shell body 111, two sealing rotating plates 112, two sealing strips 113 and two first return springs 114. The two sealing rotating plates 112 are rotatably arranged below the shell body 111, the two sealing strips 113 are respectively arranged on the two sealing rotating plates 112, and the two first return springs 114 are respectively connected to the two sealing rotating plates 112.

[0040] The shell body 111 serves as the main structural framework of the detection shell 104. The shell body 111 provides a closed space to reduce the influence of external light on the detection results, and provides an installation basis for internal components such as the sealing rotating plates 112, the sealing strips 113, the first return springs 114 and the position adjusting plate 115, etc.

[0041] The two sealing rotating plates 112 are rotatably arranged below the shell body 111. Their function is to open and close when the silica gel product enters or leaves the detection area, so as to ensure a closed environment during the detection process. The sealing rotating plates 112 achieve the opening and closing operations through rotation, so that the silica gel product can enter and leave the detection shell 104 without affecting the detection conditions.

[0042] Sealing strips 113 are respectively provided on each sealing rotary plate 112. These sealing strips 113 can effectively fill the gaps between the sealing rotary plate 112 and the housing 111, ensuring that when the sealing rotary plate 112 is closed, an almost completely enclosed space can be formed inside the detection housing 104 to prevent external light from infiltrating and interfering with the detection results.

[0043] Two first reset springs 114: Each sealing rotary plate 112 is connected to a first reset spring 114. The function of these springs is to help the sealing rotary plate 112 automatically return to the closed state. Once the silicone product successfully enters or leaves the detection area, the reset spring will prompt the sealing rotary plate 112 to quickly and smoothly return to its original position, maintaining the sealing performance of the detection housing 104.

[0044] The detection housing 104 further includes a position adjustment plate 115, and the position adjustment plate 115 is used to limit the position of the silicone product during movement.

[0045] The position adjustment plate 115 includes a sliding member 116, an adjustment screw 117, and an adjustment plate body 118. The sliding member 116 is slidably arranged in the housing 111. The adjustment screw 117 is threadedly connected to the sliding member 116 and rotatably connected to the housing 111. The adjustment plate body 118 is fixed to the sliding member 116.

[0046] The sliding member 116 is one of the core components of the position adjustment plate 115 and is designed to be able to slide freely within the housing 111. This design allows the sliding member 116 to move back and forth according to the specific dimensions of the silicone product to accurately position different-sized samples.

[0047] The adjustment screw 117 is threadedly connected to the sliding member 116 and is rotatably connected to the housing 111. By rotating the adjustment screw 117, the position of the sliding member 116 can be precisely controlled. The advantage of this design is that users can fine-tune the position of the sliding member 116 through a simple screwing action without the need for complex tools or techniques to complete high-precision adjustment work.

[0048] The adjustment plate body 118 is fixedly installed on the sliding member 116, and its main function is to directly limit the position of the silicone product. The design of the adjustment plate body 118 takes into account the compatibility with various types of silicone products, and different shapes and sizes can be selected according to actual needs to achieve the best limiting effect.

[0049] The rotating rod 107 has a push rod 119, and the push rod 119 is arranged on the side of the rotating rod 107 close to the sealing rotary plate 112.

[0050] The push rod 119 is arranged on the side of the rotating rod 107 close to the sealing rotating plate 112. Its main function is to push open the sealing rotating plate 112 through the push rod 119 during movement, making it more convenient to use.

[0051] The first material taking plate 108 includes a rotating plate 120, a counterweight 121, a sliding limiting plate 122 and a second screw 123. The rotating plate 120 is rotatably arranged on the rotating rod 107. The counterweight 121 is arranged at the bottom of the rotating plate 120. The sliding limiting plate 122 is slidably arranged on the rotating plate 120. The second screw 123 is threadedly connected with the sliding limiting plate 122.

[0052] The rotating plate 120 is the core part of the first material taking plate 108. It is rotatably arranged on the rotating rod 107 through a rotating shaft, allowing angle adjustment according to the size and shape of the silicone products. This flexibility enables the rotating plate 120 to adapt to products of different specifications, ensuring that each product can be correctly placed and fixed.

[0053] The counterweight 121 located at the bottom of the rotating plate 120 is used to balance the weight of the rotating plate 120 and the silicone products loaded thereon, ensuring that the rotating plate 120 remains stable during operation and avoiding position deviation or flipping caused by imbalance. The design of the counterweight 121 fully considers the needs of products with different weights and can be adjusted according to the actual situation.

[0054] The sliding limiting plate 122 is slidably arranged on the rotating plate 120 and can move back and forth according to the actual size of the silicone products, thereby realizing effective limiting of products of different sizes. This design ensures that the silicone products remain stable throughout the detection process and will not be displaced due to the movement of the equipment, affecting the detection results.

[0055] The second screw 123 threadedly connected with the sliding limiting plate 122 is used to precisely adjust the position of the sliding limiting plate 122. By rotating the second screw 123, the operator can easily adjust the position of the sliding limiting plate 122 to make it closely fit the silicone products, providing the best support and limiting effect.

[0056] The light transmittance detection device for silicone product production further includes a brightness detector 124. The brightness detector 124 includes a brightness detection unit 125, a judgment unit 126 and an alarm unit 127. The brightness detection unit 125 is arranged in the housing 111. The judgment unit 126 is connected with the brightness detection unit 125. The alarm unit 127 is connected with the judgment unit 126.

[0057] The brightness detection unit 125 is arranged inside the housing 111, between the light emitting probe 109 and the light receiving probe 110, or arranged according to specific design requirements, so as to accurately measure the light brightness after passing through the silicone product. This unit adopts high-sensitivity sensor technology, which can capture extremely subtle changes in light intensity, thereby accurately reflecting the light transmission performance of the silicone product. The design of the brightness detection unit 125 takes into account the stability under different environmental conditions, ensuring consistent and reliable detection data under various working conditions.

[0058] The judgment unit 126 is directly connected to the brightness detection unit 125. The judgment unit 126 processes the data collected by the brightness detection unit 125 and analyzes it based on preset standards or parameters. It can quickly calculate whether the basic brightness in the environment meets the expected technical specifications. This process includes comparing the difference between the actual measured value and the standard value, and then judging whether the product is qualified. The alarm unit 127 is connected to the judgment unit 126 and is used to issue an alarm when the detected situation does not meet the standard during the detection process.

[0059] The light transmission performance detection device for silicone product production further includes a discharge control board, a discharge conveyor line 129, a stop bar 130, and a collection box 131. The discharge control board is slidably arranged at the discharge port of the housing 111. The discharge conveyor line 129 is arranged on one side of the discharge control board. The stop bar 130 is arranged on one side of the support frame 102. The collection box 131 is arranged below the stop bar 130.

[0060] After the detection is completed, the discharge control board can be raised to the first position, so that the qualified silicone products can move along the discharge control board to the discharge conveyor line 129.

[0061] The discharge conveyor line 129 is arranged on one side of the discharge control board and is responsible for transporting the silicone products after the detection to the next process or a designated location.

[0062] For unqualified silicone products, the discharge control board will rise to the second position. At this time, the first material taking board 108 continues to rotate to touch the stop bar 130, causing the first material taking board 108 to tilt, and the unqualified silicone products will fall into the collection box 131 under the action of gravity for storage.

[0063] The discharge control board includes a discharge board body 132, a control cylinder 133, a second material taking board 134, and a plurality of rollers 135. The discharge board body 132 is slidably arranged on one side of the housing 111. The output end of the control cylinder 133 is connected to the discharge board body 132. The second material taking board 134 is rotatably arranged on one side of the discharge conveyor line 129 and is connected to the discharge board body 132. The plurality of rollers 135 are rotatably arranged on the second material taking board 134.

[0064] The discharge plate body 132 is slidably arranged at the discharge port of the housing 111, and can automatically open or close the discharge port as needed, ensuring that the silicone products can smoothly leave the detection area after the detection is completed.

[0065] The output end of the control cylinder 133 is connected to the discharge plate body 132, and drives the opening and closing action of the discharge plate body 132 in a pneumatic manner, providing a fast and stable response speed, and ensuring the smoothness of the entire discharging process.

[0066] The second pick-up plate 134 is rotatably arranged on one side of the discharge conveyor line 129 and is connected to the discharge plate body 132. Its function is to assist the silicone products to smoothly transition from the discharge port to the discharge conveyor line 129, reducing the possible damage to the products during the transfer process.

[0067] A plurality of rollers 135 are rotatably arranged on the second pick-up plate 134. The design of these rollers 135 reduces the friction between the silicone products and the pick-up plate, enabling the products to move more smoothly and improving the discharging efficiency.

[0068] Second Embodiment

[0069] Please refer to Figure 8 , the present invention also provides a method for detecting the light transmittance performance of silicone products during production, including:

[0070] S201 Place the silicone products to be processed on the feeding conveyor line 103 and move them;

[0071] An operator or an automated device carefully places the silicone products to be detected on the feeding conveyor line 103. This conveyor line is designed to smoothly and continuously transport the silicone products from the initial position to the inside of the detection device. During this process, it is crucial to ensure that each product can accurately enter the detection process.

[0072] S202 Start the rotation motor 106 to drive the rotation cylinder 105 and a plurality of rotation rods 107 to rotate, so that the first pick-up plate 108 contacts and removes the silicone products;

[0073] When the silicone products reach the designated position, start the rotation motor 106. This motor drives the rotation cylinder 105 connected thereto to start rotating, thereby driving a plurality of rotation rods 107 mounted thereon to rotate together. Each rotation rod 107 is equipped with a first pick-up plate 108. These pick-up plates move as the rotation rods 107 rotate, and contact the silicone products at appropriate positions, stably removing them and preparing for the subsequent detection steps.

[0074] S203 The first pick-up plate 108 keeps horizontal and drives the silicone products to move up to the light emission probe 109;

[0075] Once the silicone product is successfully removed by the first material taking plate 108, the first material taking plate 108 remains in a horizontal state to ensure that the silicone product will not be displaced due to tilting or vibration. Then, continue to control the rotation motor 106 to move the rotating rod 107 upward, accurately bringing the silicone product directly below the light emission probe 109 to prepare for the subsequent light transmittance detection.

[0076] S204 The light emission probe 109 emits detection light and receives it through the light receiving probe 110 to obtain detection data;

[0077] When the silicone product is in the correct position, the light emission probe 109 emits light of a specific wavelength through the silicone product. At the same time, the light receiving probe 110 located opposite is responsible for capturing the intensity of the light after penetration. The data generated in this process reflects the light transmission ability of the silicone product, that is, its light transmittance performance. The entire detection process needs to be carried out in a closed and stable environment to ensure that the accuracy of the data is not interfered by external factors.

[0078] S205 Judge the light transmittance of the silicone product based on the detection data.

[0079] The last step is to analyze the collected detection data. The built-in judgment unit 126 of the system will compare the actual measured value with the preset standard value to evaluate whether the light transmittance performance of the silicone product meets the requirements. If the detection result shows that the product is qualified, it can be sent to the next process or directly packed through the discharge control system; otherwise, if the detection result does not meet the standard, the alarm unit 127 will trigger an alarm to notify the relevant personnel to conduct a re-inspection or processing.

[0080] This systematic detection method not only improves the detection efficiency and accuracy, but also ensures the consistency and reliability of product quality, which is of great significance for enhancing the overall market competitiveness of silicone products.

[0081] The above disclosure is only a preferred embodiment of the present invention. Of course, it cannot be used to limit the scope of the rights of the present invention. Those of ordinary skill in the art can understand all or part of the processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present invention still fall within the scope covered by the invention.

Claims

1. A light transmission performance detection device for silicone product production, comprising a base, a support frame and a feeding conveyor line, wherein the support frame is fixedly connected to the base and is located on the top of the base, and the feeding conveyor line is arranged on one side of the support frame, characterized in that: It also includes a detection shell, a rotating cylinder, a rotating motor, a plurality of rotating rods, a plurality of first material-collecting plates, a light emitting probe and a light receiving probe. The detection shell is fixed to the support frame, the rotating cylinder is rotatably arranged on the detection shell, the output end of the rotating motor is connected to the rotating cylinder, the plurality of rotating rods are fixedly connected to the rotating cylinder and are located around the rotating cylinder, the plurality of first material-collecting plates are arranged on the plurality of rotating rods, the light emitting probe is arranged in the detection shell, and the light receiving probe is correspondingly arranged opposite to the light emitting probe.

2. A light transmission performance detection device for silicone product production according to claim 1, characterized in that: The detection shell includes a shell, two sealing rotating plates, two sealing strips and two first reset springs. The two sealing rotating plates are rotatably arranged below the shell, the two sealing strips are respectively arranged on the two sealing rotating plates, and the two first reset springs are respectively connected to the two sealing rotating plates.

3. A light transmission performance detection device for silicone product production as claimed in claim 2, characterized in that: The detection shell also includes a position adjustment plate, and the position adjustment plate is used to limit the position of the silicone product when it moves.

4. A light transmission performance detection device for silicone product production as claimed in claim 3, characterized in that: The position adjustment plate includes a sliding member, an adjusting screw and an adjusting plate body. The sliding member is slidably arranged in the shell. The adjusting screw is threadedly connected to the sliding member and is rotationally connected to the shell. The adjusting plate body is fixed on the sliding member.

5. A light transmission performance detection device for silicone product production as claimed in claim 4, characterized in that: The rotating rod has a push rod, and the push rod is arranged on a side of the rotating rod close to the sealing rotating plate.

6. A light transmission performance detection device for silicone product production as claimed in claim 5, characterized in that: The first feeding plate includes a rotating plate, a counterweight, a sliding limit plate and a second screw. The rotating plate is rotatably arranged on the rotating rod, the counterweight is arranged at the bottom of the rotating plate, the sliding limit plate is slidably arranged on the rotating plate, and the second screw is threadedly connected to the sliding limit plate.

7. A light transmission performance detection device for silicone product production as claimed in claim 6, characterized in that: The light transmittance detection device for silicone product production also includes a brightness detector, which includes a brightness detection unit, a judgment unit and an alarm unit. The brightness detection unit is arranged in the shell, the judgment unit is connected to the brightness detection unit, and the alarm unit is connected to the judgment unit.

8. A light transmission performance detection device for silicone product production as claimed in claim 7, characterized in that: The light transmittance detection device for silicone product production also includes a discharge control board, a discharge conveyor line, a baffle and a collection box. The discharge control board is slidably arranged at the discharge port of the shell, the discharge conveyor line is arranged on one side of the discharge control board, the baffle is arranged on one side of the support frame, and the collection box is arranged below the baffle.

9. A method for detecting light transmittance of silicone products for production, using a device for detecting light transmittance of silicone products for production as claimed in any one of claims 1 to 8, It is characterized in that Including: placing the silicone products to be processed on the loading conveyor line and moving them; The rotating motor is started to drive the rotating drum and the plurality of rotating rods to rotate, so that the first material taking plate contacts and takes out the silicone product; The first feeding plate keeps horizontal and drives the silicone product to move upward to the light emitting probe; The optical transmitting probe emits detection light, which is received by the optical receiving probe to obtain detection data; The light transmittance of silicone products is judged based on the test data.