Silicone oil coating testing device
By designing an automated silicone oil coating testing device, the problem of traditional manual detection being susceptible to the environment is solved, and efficient and accurate coating volume detection is achieved.
Patent Information
- Application Number
- CN202421929109.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-09
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-08-09
AI Technical Summary
Traditional silicone oil coating detection methods rely on manual operations and are susceptible to environmental influences, resulting in inaccurate detection data and insufficient practicality.
A silicone oil coating testing device including a rack, feed rack, detection box and temperature control box is designed. It adopts automated transmission, compression and detection, combined with temperature control and filtration systems to ensure the stability of the detection environment and achieve automation and data accuracy.
It realizes automated detection without manual operation, improves detection efficiency and data accuracy, reduces environmental interference, and improves the practicality of the device.
Smart Images

Figure CN223065274U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of coating processing equipment, and specifically relates to a silicone oil coating test device. Background Art
[0002] Dimethyl silicone oil is a commonly used silicone material with excellent physical and chemical properties, and is widely used in the fields of electronics, chemical industry, medical treatment, etc. During the coating process, the coating amount of dimethyl silicone oil has an important impact on the performance and quality of the product. Therefore, accurately measuring the coating amount of dimethyl silicone oil is of great significance for ensuring product quality and production efficiency. Traditionally, the gravimetric method is mostly used for detection, that is, during the coating process, by measuring the weight change of the product before and after coating, the amount of silicone oil coated can be calculated. However, this method is mostly detected manually, with many human factors, and at the same time, the detection is mostly open detection, and the surrounding environment also has a greater impact on the detection data, so its practicability needs to be improved.
[0003] In view of this, the present utility model is specifically proposed. Summary of the Utility Model
[0004] The technical problem to be solved by the present utility model is to overcome the deficiencies of the prior art and provide a silicone oil coating test device. To solve the above technical problem, the basic concept of the technical solution adopted by the present utility model is:
[0005] A silicone oil coating test device includes a frame and a feeding frame connected thereto. The frame is provided with a feeding and discharging port. One side of the feeding and discharging port is provided with the feeding frame. The inside of the feeding frame is communicated with the feeding and discharging port. One side of the feeding frame is provided with a detection hole. A detection box is fixedly connected to the feeding frame near the detection hole. A reflecting block is embedded in the feeding frame on the side far from the detection hole. The reflecting block is connected to the output end of a pressing air cylinder. The pressing air cylinder is fixedly connected to the feeding frame. A temperature control box is fixedly connected inside the frame. The output end of the temperature control box is provided with an exhaust fan. The temperature control box is connected to an inlet filter box through a flow collecting cover. The other side of the inlet filter box is provided with a louver. The louver is opened on the frame. An inspection cover is embedded on one side of the frame. The feeding frame and the frame play a role in stable support. The detection hole is convenient for detecting the coating amount. The reflecting block plays a role in light reflection. The temperature control box is convenient for heating or cooling the air to keep it stable within a set range. The inlet filter box is convenient for dust removal, dehumidification and filtration of the air. The louver plays a role in guiding and protecting.
[0006] As a further solution of the present utility model: a display screen and a control panel are embedded in the frame, protective nets are arranged on both sides of the frame, an outlet filter box is arranged on one side of the protective net, the outlet filter box is fixedly connected with the frame, the display screen and the control panel facilitate human-machine interaction, and the outlet filter box facilitates dust removal and dehumidification of air.
[0007] As a still further solution of the present utility model: a base is fixedly connected to the frame, a control box is fixedly connected inside the frame, an air pump box is arranged on one side of the temperature control box, the temperature control box and the air pump box are connected to the control box through wires, and through the above design, automatic control is facilitated, and the base plays a role of stable support.
[0008] As a still further solution of the present utility model: a material sensor is embedded at one end of the material conveying frame close to the feeding and discharging port, and a limit sensor is embedded at the other end of the material conveying frame. The material sensor facilitates detecting whether the material exists, and the limit sensor facilitates detecting whether the material arrives.
[0009] As a still further solution of the present utility model: rotating brackets are embedded on both sides of the material conveying frame, a pressing roller and a driving roller are rotatably connected to the rotating brackets, the input end of the driving roller is connected to the output end of the material conveying motor, the material conveying motor is fixedly connected with the material conveying frame, the driving roller plays a role of driving the material, the pressing roller plays a role of pressing and anti-slip, and the material conveying motor provides the material conveying power for the device.
[0010] As a still further solution of the present utility model: two detection frames are rotatably connected inside the detection box, detection heads are embedded on the detection frames, the detection heads are connected to the control box through wires, the detection head on one detection frame is designed as a transmitting end, and the detection head on the other detection frame is designed as a receiving end.
[0011] As a still further solution of the present utility model: a temperature sensor and a humidity sensor are fixedly connected inside the frame, the temperature sensor and the humidity sensor are connected to the control box, and through the above design, it is convenient to detect the temperature and humidity inside the device.
[0012] After adopting the above technical solutions, the present utility model has the following beneficial effects compared with the prior art.
[0013] In the present utility model, through the design of the pressing cylinder, the material conveying frame and the detection box, the material can be automatically transported, pressed, detected and retracted, without manual operation, with a high degree of automation, high detection efficiency, and good practicability and economy.
[0014] The utility model can adjust the temperature and humidity inside the rack through the design of a temperature control box, an exhaust fan and an inlet filter box, thereby ensuring that they are maintained within the set range, avoiding the influence of the environment on the detection data, ensuring the accuracy of the detection data, and further improving the practicability of the device.
[0015] The following further describes in detail the specific implementation manners of the utility model with reference to the accompanying drawings. Description of the Drawings
[0016] The accompanying drawings, as part of this application, are used to provide a further understanding of the utility model. The schematic embodiments and descriptions thereof of the utility model are used to explain the utility model, but do not constitute an improper limitation to the utility model. Obviously, the accompanying drawings in the following description are only some embodiments. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings. In the drawings:
[0017] Figure 1 is a schematic structural diagram of the utility model;
[0018] Figure 2 is a front view of the utility model;
[0019] Figure 3 is a partial enlarged view Ⅰ of the utility model;
[0020] Figure 4 is a side view of the utility model;
[0021] Figure 5 is a partial enlarged view Ⅱ of the utility model.
[0022] In the figures: 1, rack; 2, protective net; 3, shutter; 4, inlet and outlet; 5, display screen; 6, control panel; 7, outlet filter box; 8, inspection cover; 9, humidity sensor; 10, temperature sensor; 11, feeding rack; 12, control box; 13, air pump box; 14, base; 15, temperature control box; 16, exhaust fan; 17, detection box; 18, detection rack; 19, detection head; 20, material sensor; 21, detection hole; 22, pressing cylinder; 23, limit sensor; 24, pressing roller; 25, driving roller; 26, reflective block; 27, feeding motor; 28, current collector cover; 29, inlet filter box; 30, rotating bracket.
[0023] It should be noted that these drawings and textual descriptions are not intended to limit the conception scope of the utility model in any way, but to illustrate the concept of the utility model to those skilled in the art by referring to specific embodiments. Specific Embodiments
[0024] To make the objectives, technical solutions, and advantages of the embodiments of the present utility model clearer, the following will clearly and completely describe the technical solutions in the embodiments in conjunction with the accompanying drawings in the embodiments of the present utility model. The following embodiments are used to illustrate the present utility model but are not intended to limit the scope of the present utility model.
[0025] As Figures 1 to 5 shown, a silicone oil coating testing device includes a frame 1 and a feeding frame 11 connected thereto. An inlet and outlet 4 is provided on the frame 1. A feeding frame 11 is provided on one side of the inlet and outlet 4. The inside of the feeding frame 11 is in communication with the inlet and outlet 4. A detection hole 21 is provided on one side of the feeding frame 11. A detection box 17 is fixedly connected to the feeding frame 11 near the detection hole 21. A reflective block 26 is embedded on the side of the feeding frame 11 away from the detection hole 21. The reflective block 26 is connected to the output end of a pressing cylinder 22. The pressing cylinder 22 is fixedly connected to the feeding frame 11. A temperature control box 15 is fixedly connected inside the frame 1. A suction fan 16 is provided at the output end of the temperature control box 15. The temperature control box 15 is connected to an inlet filter box 29 through a flow collector 28. Another side of the inlet filter box 29 is provided with a shutter 3. The shutter 3 is provided on the frame 1. An inspection cover 8 is embedded on one side of the frame 1. The feeding frame 11 and the frame 1 play a role in stable support. The detection hole 21 is convenient for detecting the coating amount. The reflective block 26 plays a role in light reflection. The temperature control box 15 is convenient for heating or cooling the air to keep it stable within a set range. The inlet filter box 29 is convenient for dust removal, dehumidification, and filtration of the air. The shutter 3 plays a role in guiding and protecting.
[0026] Among them, a display screen 5 and a control panel 6 are embedded on the frame 1. Protective nets 2 are provided on both sides of the frame 1. An outlet filter box 7 is provided on one side of the protective nets 2. The outlet filter box 7 is fixedly connected to the frame 1. The display screen 5 and the control panel 6 are convenient for realizing human-machine interaction. The outlet filter box 7 is convenient for dust removal, dehumidification, and filtration of the air.
[0027] A base 14 is fixedly connected to the frame 1. A control box 12 is fixedly connected inside the frame 1. An air pump box 13 is provided on one side of the temperature control box 15. The temperature control box 15 and the air pump box 13 are connected to the control box 12 through wires. Through the above design, automatic control is convenient to achieve. The base 14 plays a role in stable support.
[0028] A material sensor 20 is embedded at one end of the feeding frame 11 close to the inlet and outlet 4. A limit sensor 23 is embedded at the other end of the feeding frame 11. The material sensor 20 is convenient for detecting whether the material exists. The limit sensor 23 is convenient for detecting whether the material arrives.
[0029] On both sides of the material feeding rack 11, there are rotation brackets 30 embedded. A pressing roller 24 and a driving roller 25 are rotationally connected to the rotation bracket 30. The input end of the driving roller 25 is connected to the output end of the material feeding motor 27. The material feeding motor 27 is fixedly connected to the material feeding rack 11. The driving roller 25 functions to drive the material, and the pressing roller 24 functions to press and prevent slipping. The material feeding motor 27 provides the material feeding power for the device.
[0030] Inside the detection box 17, there are two detection brackets 18 rotationally connected. Detection heads 19 are embedded in the detection brackets 18. The detection heads 19 are connected to the control box 12 through wires. The detection head 19 on one detection bracket 18 is designed as a transmitting end, and the detection head 19 on the other detection bracket 18 is designed as a receiving end.
[0031] A temperature sensor 10 and a humidity sensor 9 are fixedly connected inside the frame 1. The temperature sensor 10 and the humidity sensor 9 are connected to the control box 12. Through the above design, it is convenient to detect the temperature and humidity inside the device.
[0032] The working principle of the present utility model is as follows: When in use, the material is inserted into the inlet and outlet 4. When the material sensor 20 detects the material, the material feeding motor 27 works, and drives the material to be transported forward through the driving roller 25 and the pressing roller 24. Before the limit sensor 23 detects the material, if the material sensor 20 detects that the material has disappeared, it means that the length of the material is insufficient and does not meet the detection requirements. At this time, the material feeding motor 27 rotates in reverse to discharge the material from the inlet and outlet 4. When the limit sensor 23 detects the material, the material feeding motor 27 stops working, and the pressing cylinder 22 works to drive the reflecting block 26 to press the material. The detection head 19 works, emits and receives light waves through the detection hole 21, and transmits the detection data to the control box 12. During the detection process, the temperature sensor 10 and the humidity sensor 9 work to monitor the temperature and humidity inside the frame 1 in real time. If the requirements are not met, the exhaust fan 16 works to draw the air that has been dust-removed and dehumidified by the inlet filter box 29 into the temperature control box 15. Under the action of the temperature control box 15, the air reaches the set temperature and is discharged into the frame 1 under the action of the exhaust fan 16, pushing the air inside the frame 1 to pass through the outlet filter box 7 and the protection net 2 and be discharged. Repeat the above operations until the environment inside the frame 1 reaches the set value, then the temperature control box 15 and the exhaust fan 16 stop working. The present utility model has a reasonable structural design, is convenient for installation and use. Through the design of the pressing cylinder 22, the material feeding rack 11 and the detection box 17, it can automatically transport, press, detect and retract the material without manual operation, with a high degree of automation, high detection efficiency, good practicability and economy. Through the design of the temperature control box 15, the exhaust fan 16 and the inlet filter box 29, it can adjust the temperature and humidity inside the frame 1, thereby ensuring that it is maintained within the set range, avoiding the influence of the environment on the detection data, ensuring the accuracy of the detection data, and further improving the practicability of the device.
[0033] The above are only the preferred embodiments of the present utility model, and do not impose any form of limitation on the present utility model. Although the present utility model has been disclosed above with the preferred embodiments, it is not intended to limit the present utility model. Any person skilled in the art of this patent, without departing from the scope of the technical solution of the present utility model, can make some changes or modifications using the technical content prompted above to obtain equivalent embodiments of equivalent changes. However, as long as it does not depart from the content of the technical solution of the present utility model, any simple modification, equivalent change and modification made to the above embodiments according to the technical essence of the present utility model still fall within the scope of the technical solution of the present utility model.
Claims
1. A silicone oil coating test device, comprising a frame (1) and a feeding frame (11) connected thereto, characterized in that, The frame (1) is provided with a feeding and discharging opening (4). One side of the feeding and discharging opening (4) is provided with the feeding rack (11). The inside of the feeding rack (11) is communicated with the feeding and discharging opening (4). One side of the feeding rack (11) is provided with a detection hole (21). A detection box (17) is fixedly connected to the side of the feeding rack (11) close to the detection hole (21). A reflective block (26) is embedded in the side of the feeding rack (11) away from the detection hole (21). The reflective block (26) is connected to the output end of a pressing cylinder (22). The pressing cylinder (22) is fixedly connected to the feeding rack (11). A temperature control box (15) is fixedly connected inside the frame (1). The output end of the temperature control box (15) is provided with an exhaust fan (16). The temperature control box (15) is connected to an inlet filter box (29) through a flow collector cover (28). The other side of the inlet filter box (29) is provided with a shutter (3). The shutter (3) is opened on the frame (1). An inspection cover (8) is embedded in one side of the frame (1).
2. The silicone oil coating testing device according to claim 1, wherein A display screen (5) and a control panel (6) are embedded in the frame (1). Protective nets (2) are arranged on both sides of the frame (1). An outlet filter box (7) is arranged on one side of the protective net (2). The outlet filter box (7) is fixedly connected to the frame (1).
3. The silicone oil coating testing device according to claim 1, characterized in that, A base (14) is fixedly connected to the frame (1). A control box (12) is fixedly connected inside the frame (1). An air pump box (13) is arranged on one side of the temperature control box (15). The temperature control box (15) and the air pump box (13) are connected to the control box (12) through wires.
4. The silicone oil coating testing device according to claim 1, wherein, A material sensor (20) is embedded at one end of the feeding rack (11) close to the feeding and discharging opening (4). A limit sensor (23) is embedded at the other end of the feeding rack (11).
5. The silicone oil coating testing device according to claim 4, wherein Rotating brackets (30) are embedded on both sides of the feeding rack (11). A pressing roller (24) and a driving roller (25) are rotatably connected to the rotating brackets (30). The input end of the driving roller (25) is connected to the output end of a feeding motor (27). The feeding motor (27) is fixedly connected to the feeding rack (11).
6. The silicone oil coating testing device according to claim 3, characterized in that, Two detection racks (18) are rotatably connected inside the detection box (17). Detection heads (19) are embedded on the detection racks (18). The detection heads (19) are connected to the control box (12) through wires.
7. The silicone oil coating test device according to claim 3, wherein, A temperature sensor (10) and a humidity sensor (9) are fixedly connected inside the frame (1). The temperature sensor (10) and the humidity sensor (9) are connected to the control box (12).