Composite material rapid sealing device for monitoring ionic viscosity
By combining a tape presser and a stage, rapid sealing of composite materials was achieved, solving the problems of cumbersome sealing operations and material waste during the curing process of composite materials, and improving the accuracy and efficiency of monitoring.
Patent Information
- Application Number
- CN202520019155.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2035-01-06
AI Technical Summary
In the existing technology, each monitoring of ionic viscosity during the curing process of composite materials requires a cumbersome sealing operation, which leads to the waste of auxiliary materials such as sealing bags and tape, and operational errors affect the accuracy of the monitoring results.
The quick sealing device, consisting of a tape presser and a platform, achieves rapid sealing of the bag through the first and second end plates and a fixing knob, eliminating the need for traditional fully enclosed sealing methods. The tape presser can be moved on the platform to adjust its position, and the silicone layer ensures a good seal.
It saves on the use of auxiliary materials, improves the accuracy and efficiency of monitoring, reduces operational errors, and adapts to different experimental needs.
Smart Images

Figure CN223591158U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to composite material manufacturing technical field, especially relate to a kind of composite material quick sealing device for monitoring ion viscosity. BACKGROUND
[0002] The purpose of monitoring ion viscosity in composite material bag compression curing process is to verify, guide and optimize curing process. For the same composite material, it needs to be cured and monitored multiple times to realize accurate verification, guidance and optimization of process. Each curing and monitoring needs to extract air in the sealed bag after the composite material is packaged, and the packaging process needs to bury dielectric sensor, thermocouple and electric blanket into the sealed bag, which is repeated and complicated, causing waste of auxiliary materials such as sealing bag and sealing tape. And the operation error of different packaging processes will affect the result of ion viscosity monitoring. Therefore, how to save the time of multiple packaging, save auxiliary materials such as sealing bag and sealing tape, and improve the accuracy of ion viscosity monitoring in composite material curing process is a technical problem to be solved at present. SUMMARY
[0003] The utility model aims at providing a kind of composite material quick sealing device for monitoring ion viscosity, save the sealing operation before each composite material curing monitoring experiment, save the auxiliary materials (sealing bag, sealing tape etc.) used in each packaging, and can quickly seal composite material.
[0004] In order to achieve the above purpose, the technical scheme adopted is as follows:
[0005] A kind of composite material quick sealing device for monitoring ion viscosity, including tape pressure contactor and object table;Wherein, the first slide rail and the second slide rail are arranged on the object table;
[0006] The tape pressure contactor includes first sliding groove, second sliding groove, first end plate, second end plate and fixed knob;Wherein, the first sliding groove and the second sliding groove are movably assembled on the first slide rail and the second slide rail respectively, the two ends of the first end plate are movably assembled on the first sliding groove and the second sliding groove respectively, the two ends of the second end plate are fixedly connected with the inner side of the first sliding groove and the second sliding groove, the first end plate is arranged above the second end plate, the fixed knob is connected with one end of the first end plate, for fixing the first end plate relative to the first sliding groove or second sliding groove.
[0007] Preferably, in the above composite material quick sealing device for monitoring ion viscosity, the upper end surface of the first end plate is fixed with a lifting rod.
[0008] Preferably, in the above composite material quick sealing device for monitoring ion viscosity, the lower end surface of the first end plate is provided with a first silica gel layer.
[0009] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, the upper end face of the second end plate is provided with a second silica gel layer.
[0010] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, a bag body is further included, the bag body has an unsealed edge and a sealed edge, and the adhesive tape presser is used to realize sealing of the unsealed edge.
[0011] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, the sealed edge is sealed by a sealing adhesive tape.
[0012] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, an auxiliary electronic component is arranged in the bag body, one end of a lead wire of the auxiliary electronic component is connected, and the other end of the lead wire is arranged outside the bag body through the sealed edge.
[0013] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, the auxiliary electronic component includes an electric heating element, a dielectric sensor and a temperature sensor.
[0014] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, the first sliding groove includes a first sliding plate and a first through hole arranged on the first sliding plate, and the first sliding plate is movably arranged in the first sliding rail.
[0015] Preferably, in the composite material rapid sealing device for monitoring ion viscosity, the second sliding groove includes a second sliding plate and a second through hole arranged on the second sliding plate, and the second sliding plate is movably arranged in the second sliding rail.
[0016] The composite material rapid sealing device for monitoring ion viscosity has the following beneficial effects:
[0017] Compared with the traditional mode of completely sealing the bag body by using sealing glue, the unsealed edge of the bag body can be sealed by the first end plate and the second end plate of the adhesive tape presser cooperating with the fixed knob, the sealing operation before each composite material curing monitoring experiment is saved, the auxiliary material used for each packaging is saved, the adhesive tape presser is movably arranged on the object table, the position of the bag body sealed by the adhesive tape presser on the object table can be adjusted according to actual experimental requirements, and experimental operation is facilitated. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 A perspective view of a composite material rapid sealing device for monitoring ion viscosity is shown.
[0019] Figure 2Another perspective view of the composite material rapid sealing device for monitoring ion viscosity is shown.
[0020] Figure 3 An application state schematic diagram of the composite material rapid sealing device for monitoring ion viscosity is shown.
[0021] Reference signs:
[0022] 100, adhesive tape crimping device; 101, first sliding groove; 1011, first sliding plate; 1012, first through hole; 102, second sliding groove; 1021, second sliding plate; 1022, second through hole; 103, first end plate; 104, second end plate; 105, fixed knob; 106, lifting rod; 107, first silica gel layer; 108, second silica gel layer;
[0023] 200, object table; 201, first sliding rail; 202, second sliding rail;
[0024] 300, bag body; 301, unsealed edge; 302, sealed edge; 303, sealing rubber strip;
[0025] 400, auxiliary electronic assembly;
[0026] 500, wire. DETAILED DESCRIPTION
[0027] The embodiments of the present application will be described in detail below with specific reference to the drawings. Those skilled in the art can easily understand other advantages and effects of the present application from the content disclosed in the specification. The present application can also be implemented or applied in other different embodiments, and each detail in the specification can be modified or changed based on different viewpoints and applications without departing from the spirit of the present application. It should be noted that the following embodiments and features in the embodiments can be combined with each other without conflict.
[0028] The specific embodiments of the present application will be described in further detail below with reference to the drawings and embodiments.
[0029] The embodiments of the present application provide a composite material rapid sealing device for monitoring ion viscosity, such as Figure 1As shown, the composite material rapid sealing device for monitoring ion viscosity comprises a tape presser 100 and a carrier 200; wherein the carrier 200 is provided with a first slide rail 201 and a second slide rail 202; the tape presser 100 comprises a first sliding groove 101, a second sliding groove 102, a first end plate 103, a second end plate 104 and a fixing knob 105; wherein the first sliding groove 101 and the second sliding groove 102 are movably assembled on the first slide rail 201 and the second slide rail 202 respectively, the two ends of the first end plate 103 are movably assembled on the first sliding groove 101 and the second sliding groove 102 respectively, the two ends of the second end plate 104 are fixedly connected to the inner sides of the first sliding groove 101 and the second sliding groove 102 respectively, the first end plate 103 is arranged above the second end plate 104, and the fixing knob 105 is connected to one end of the first end plate 103 and used for fixing the first end plate 103 relative to the first sliding groove 101 or the second sliding groove 102.
[0030] In the embodiment, the tape presser 100 is used to realize temporary sealing of the unsealed edge of the bag body, wherein the first sliding groove 101 and the second sliding groove 102 are used to enable the movably mounted first end plate 103 to move up and down, cooperate with the fixing knob 105 to fix the first end plate 103 on the first sliding groove 101 and the second sliding groove 102 when the first end plate 103 reaches the target position, and the second end plate 104 is fixed on the first sliding groove 101 and the second sliding groove 102. In some embodiments, the second end plate 104 can be directly fixedly arranged on the carrier 200 to replace the way of fixing the second end plate 104 through the first sliding groove 101 and the second sliding groove 102. In some embodiments, the fixing knob 105 can be provided with two, which are respectively arranged at the two ends of the first end plate 103 to fix the two ends of the first end plate 103 through the fixing knob 105, so as to ensure that the first end plate 103 can be stably fixed and cooperate with the second end plate 104 to enable the unsealed edge of the bag body to be stably sealed when arranged between the first end plate 103 and the second end plate 104.
[0031] For example, the fixing knob 105 is a threaded knob, a threaded end is arranged at one end of the first end plate 103, and the fixing knob 105 is movably assembled at the one end of the first end plate 103 through the threaded end. When it is needed to fix the position of the first end plate 103, the fixing knob 105 is rotated to make the fixing knob 105 stick to the first sliding groove 101 and / or the second sliding groove 102, so as to realize the fixation of the first end plate 103 through the friction force between the fixing knob 105 and the first sliding groove 101 and / or the second sliding groove 102.
[0032] The function of the object table 200 is to provide a platform for the movable assembly of the tape crimping device 100 and to provide a platform for the placement of the bag. The tape crimping device 100 can move left and right on the object table 200 through the first sliding rail 201 and the second sliding rail 202, so as to adjust the position of the tape crimping device 100. The position of the tape crimping device 100 is usually determined according to the position of the bag required by the experiment, so that the bag can be fixed by the tape crimping device 100 when the bag is in the required position.
[0033] In some embodiments, as shown in Figure 1 The upper end surface of the first end plate 103 is fixed with a lifting rod 106. The lifting rod 106 is in the shape of a handle, and the first end plate 103 in the tape crimping device 100 can be conveniently moved through the lifting rod 106.
[0034] In some embodiments, in order to improve the sealing performance of the first end plate 103 and the second end plate 104 to the unsealed edge of the bag, as shown in Figure 2 The lower end surface of the first end plate 103 is provided with a first silica gel layer 107, and the upper end surface of the second end plate 104 is provided with a second silica gel layer 108. In this embodiment, the first silica gel layer 107 and the second silica gel layer 108 are respectively formed by adhering silica gel to the lower surface of the first end plate 103 and the upper surface of the second end plate 104, so as to ensure that the sealed bag does not leak.
[0035] In some embodiments, the first sliding groove 101 and the second sliding groove 102 are both in the shape of a door. Specifically, the first sliding groove 101 comprises a first sliding plate 1011 and a first through hole 1012 provided on the first sliding plate 1011, and the first sliding plate 1011 is movably arranged in the first sliding rail 201; the second sliding groove 102 comprises a second sliding plate 1021 and a second through hole 1022 provided on the second sliding plate 1021, and the second sliding plate 1022 is movably arranged in the second sliding rail 202.
[0036] It should be noted that the specific structure of the first sliding groove 101 and the second sliding groove 102 described above is only an example and does not constitute a limitation on the present application. It is also understood that other sliding groove structures that can achieve the up-and-down sliding of the first end plate 103 can be used to replace the above-mentioned first sliding groove 101 and second sliding groove 102.
[0037] In some embodiments, as shown in Figure 3As shown, the composite material rapid sealing device for monitoring ion viscosity further comprises a bag 300 having an unsealed edge 301 and a sealed edge 302, the tape crimping device 100 is used to seal the unsealed edge 301, and an auxiliary electronic assembly 400 is arranged in the bag 300, one end of the auxiliary electronic assembly 400 is connected to a lead 500, and the other end of the lead 500 is arranged outside the bag 300 through the sealed edge 302.
[0038] In this embodiment, the bag 300 can be multiple, and a plurality of bags 300 with auxiliary electronic assemblies 400 arranged therein can be prepared in advance as standby experimental materials before the experiment. Figure 3 The bag 300 is shown in the example as a rectangular structure, which has four edges, three of which are sealed edges 302 that can be sealed by a sealing tape 303. Of course, the sealed edges 302 can also be sealed in other forms, which are only examples and not limitations of the utility model. One edge of the bag 300 is an unsealed edge 301. When the bag 300 is sealed by the tape crimping device 100, the position of the first end plate 103 is adjusted, and the unsealed edge 301 is placed between the first end plate 103 and the second end plate 104. Then the first end plate 103 is adjusted to move downward until it abuts against the second end plate 104 to completely seal the bag 300. At this time, the fixing knob 105 is tightened to maintain the sealing state of the bag 300, so that the bag 300 completes the corresponding experiment in this state. After the experiment is completed, the fixing knob 105 is loosened, the position of the first end plate 103 is adjusted, and the sealing state of the bag 300 is ended. The sealing tape 303 of the sealed edge 302 through which the lead 500 passes can be removed, and the auxiliary electronic assembly 400 in the bag 300 can be taken out through the unsealed edge 302 or the sealed edge 302 with the sealing tape 303 removed.
[0039] Of course, the above-mentioned way is only an example, which can improve the experimental efficiency. If the material saving is concerned, such as saving sealing tape and auxiliary materials, multiple experiments can be completed in one bag 300. For example, after completing an experiment, the composite material after the experiment can be taken out through the unsealed side and placed in new composite material (which requires covering the dielectric sensor, thermocouple, and electric heating blanket in the bag), and then the device is sealed again to achieve the purpose of saving materials.
[0040] The auxiliary electronic assembly 400 is used for realizing the ion viscosity monitoring. For example, during the experiment, the composite material is placed in the bag 300, and the auxiliary electronic assembly 400 is placed in the bag 300, the auxiliary electronic assembly 400 comprises an electric heating element, a dielectric sensor and a temperature sensor, the electric heating element is used for heating the composite material, the electric heating element can be an electric heating blanket, the dielectric sensor is used for monitoring the dielectric parameter of the curing process of the composite material, the temperature sensor can be a thermocouple, and the temperature sensor is used for monitoring the temperature in the bag 300, the electric heating element, the dielectric sensor and the temperature sensor are respectively led out through a wire 500, and the wire 500 is used for connecting a computer, the computer is used for acquiring the corresponding parameters collected by the dielectric sensor and the temperature sensor and controlling the electric heating element to operate according to the set experimental parameters.
[0041] The above embodiments are only used for describing the present application, but not for limiting the present application, and the ordinary skilled in the art can make various changes and modifications without departing from the spirit and scope of the present application, therefore all equivalent technical solutions also belong to the scope of the present application, and the patent protection scope of the present application should be defined by the claims.
Claims
1. A composite material rapid sealing device for monitoring ionic viscosity, characterized in that, It includes a tape presser and a platform; wherein, the platform is provided with a first slide rail and a second slide rail; The tape crimping device includes a first slide groove, a second slide groove, a first end plate, a second end plate, and a fixing knob; wherein, the first slide groove and the second slide groove are respectively movably mounted on the first slide rail and the second slide rail, the two ends of the first end plate are respectively movably mounted on the first slide groove and the second slide groove, the two ends of the second end plate are respectively fixedly connected to the inner sides of the first slide groove and the second slide groove, the first end plate is disposed above the second end plate, and the fixing knob is connected to one end of the first end plate for fixing the first end plate relative to the first slide groove or the second slide groove.
2. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 1, characterized in that, A lifting rod is fixed to the upper end face of the first end plate.
3. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 1, characterized in that, A first silicone layer is provided on the lower end surface of the first end plate.
4. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 1, characterized in that, A second silicone layer is provided on the upper surface of the second end plate.
5. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 1, characterized in that, It also includes a bag body having an unsealed side and a sealed side, and the tape crimper is used to seal the unsealed side.
6. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 5, characterized in that, The sealing edge is sealed with a sealing strip.
7. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 5, characterized in that, An auxiliary electronic component is installed inside the bag. One end of the auxiliary electronic component is connected to a wire, and the other end of the wire is sealed through the sealing edge and located on the outside of the bag.
8. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 7, characterized in that, The auxiliary electronic components include heating elements, dielectric sensors, and temperature sensors.
9. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 1, characterized in that, The first slide rail includes a first slide plate and a first through hole disposed on the first slide plate, wherein the first slide plate is movably disposed within the first slide rail.
10. The composite material rapid sealing device for monitoring ionic viscosity as described in claim 1, characterized in that, The second slide rail includes a second slide plate and a second through hole disposed on the second slide plate, the second slide plate being movably disposed within the second slide rail.