Pretreatment device for compatibility detection of silicone structural sealant
By improving the structure of the silicone structure sealant pretreatment device and using the driving mechanism and exhaust pipe design, the problems of toxic and harmful gas leakage and ultraviolet irradiation during the silicone structure sealant pretreatment process are solved, and environmental pollution and health hazards are reduced.
Patent Information
- Application Number
- CN202422205350.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-09
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-09-09
AI Technical Summary
The leakage of toxic and harmful gases and ultraviolet irradiation during the pretreatment of existing silicone structural sealants leads to environmental pollution and health hazards of detecting personnel.
A pretreatment device including a box, a first box door, a second box door, a support plate, a driving mechanism and a cover plate are designed. The drive mechanism enables switching of the support plate between different chambers, isolating or connecting, avoiding the direct pick-up and withdrawing silicone structural sealant, and toxic gas is discharged using the exhaust pipe to reduce ultraviolet exposure.
It effectively reduces the pollution degree of the surrounding environment of the silicone structural sealant pretreatment device and the physical and mental health hazards of the detectors, ensuring the convenience and safety of operation.
Smart Images

Figure CN223091639U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of sealant compatibility detection, in particular to a pretreatment device for silicone structural sealant compatibility detection. Background Art
[0002] The purpose of silicone structural sealant compatibility detection is to ensure that the sealant can reliably bond with fittings (such as sealing strips, spacer bars, gasket strips, fixtures, etc.) during actual use and does not undergo harmful physical and chemical reactions under various environmental conditions. Through this detection, the discoloration of the sealant, the adhesion of the sealant to glass, and the adhesion of the sealant to fittings can be observed, so as to judge the compatibility of the sealant with different materials and ensure its long-term performance and safety in the building curtain wall structure system.
[0003] Currently, before the compatibility detection of silicone structural sealant, pretreatment is required. Pretreatment means placing the silicone structural sealant to be detected in a box, keeping it static for a period of time under constant temperature (40°C) and ultraviolet light conditions, and then taking it out for inspection by the tester. During pretreatment, in order to improve the pretreatment efficiency, multiple silicone structural sealants are pretreated simultaneously (i.e., multiple silicone structural sealants are placed in the box for pretreatment). Since the pretreatment times of different types of silicone structural sealants are inconsistent and the taking and placing times of multiple silicone structural sealants are inconsistent, directly opening the box door to take and place the silicone structural sealant will cause the leakage of toxic and harmful gases (generated during the pretreatment of silicone structural sealant, such as formaldehyde, acetaldehyde, etc.) in the box (that is, when the box door is opened, some of the silicone structural sealants in the box are still in the pretreatment process, and thus toxic and harmful gases will be generated). The release of these toxic and harmful gases and the direct irradiation of ultraviolet light will pollute the environment and pose a hazard to the physical and mental health of the testers. Summary of the Utility Model
[0004] The technical problem to be solved by the utility model is to solve the technical problem that the direct taking and placing method of silicone structural sealant during the pretreatment process of existing silicone structural sealant will cause the leakage of toxic and harmful gases and the direct irradiation of ultraviolet light to pollute the surrounding environment and endanger the physical and mental health of the testers. The utility model provides a pretreatment device for silicone structural sealant compatibility detection. By improving the structure of the silicone structural sealant pretreatment device, the taking and placing method of the silicone structural sealant is optimized, and the pollution degree of the surrounding environment of the silicone structural sealant pretreatment device and the harm degree to the physical and mental health of the testers are reduced.
[0005] The technical solution adopted by the present utility model to solve its technical problems is as follows: A pretreatment device for detecting the compatibility of silicone structural sealants, comprising: a box body, a first box door, a second box door, a plurality of supporting plates, a driving mechanism, and a first cover plate. The box body is provided with a first chamber and a second chamber. The first box door and the second box door are both connected to the box body. The supporting plates are used to carry silicone structural sealants. The driving mechanism is used to drive the supporting plates to move, so as to realize the reciprocating switching of the supporting plates between the first chamber and the second chamber. The first cover plate is connected to the box body through a first driving member. When the first driving member is in the extended state, the first cover plate can isolate the first chamber and the second chamber. When the first driving member is in the contracted state, the first chamber and the second chamber are communicated with each other; wherein: when the first box door is in the open state, the first chamber is in the open state. When the first box door is in the closed state, the first chamber is in the sealed state; when the second box door is in the open state, the second chamber is in the open state. When the second box door is in the closed state, the second chamber is in the sealed state.
[0006] Thus, during the process of taking and placing the silicone structural sealant, the second chamber is used as a communication medium between the first chamber and the outside. When it is necessary to take and place the silicone structural sealant, the supporting plate carrying the silicone structural sealant to be taken and placed is moved to the second chamber through the driving mechanism, and then taken and placed from the second chamber. Compared with the direct taking and placing method, this method has a simple structure and is easy to operate, and can ensure that the toxic and harmful gases generated during the pretreatment of the silicone structural sealant leak out and the hands of the detection personnel will not be irradiated by the ultraviolet lamp, so as to reduce the pollution degree of the environment around the pretreatment device for silicone structural sealants and the harm degree to the physical and mental health of the detection personnel.
[0007] Furthermore, a plurality of connecting plates are arranged inside the box body. The connecting plates are connected to the box body. The first cover plate is slidably connected to the connecting plates; wherein: the box body, the plurality of connecting plates, the first box door, and the first cover plate form the first chamber; the box body, the plurality of connecting plates, the second box door, and the first cover plate form the second chamber.
[0008] Furthermore, the driving mechanism includes: a first driving part and a second driving part. The first driving part is connected to the box body. The second driving part is connected to the driving end of the first driving part; wherein: the first driving part is used to drive the supporting plate to move along the Y-axis direction, and the second driving part is used to drive the supporting plate to move along the Z-axis direction.
[0009] Furthermore, the first driving part includes: a second driving member, a rotating rod, and a slider. The second driving member is connected to the box body. The rotating rod is connected to the driving end of the second driving member. The slider penetrates through the rotating rod and is threadedly connected to the rotating rod. The second driving part is connected to the slider. Thus, the second driving member drives the rotating rod to rotate, so that the slider slides along the axial direction of the rotating rod, so as to realize the movement of the supporting plate along the Y-axis direction.
[0010] Furthermore, the second driving part includes: a third driving member and an adsorbing member. The third driving member is connected to the slider. The adsorbing member is connected to the telescopic end of the third driving member. Thus, the supporting plate is adsorbed by the adsorbing member, and then the telescopic movement of the third driving member is used to realize the movement of the supporting plate along the Z-axis direction.
[0011] Furthermore, sealing gaskets are provided on the side walls of the first box door, the second box door, and the first cover plate. Thus, the sealing gaskets can further improve the tightness of the first chamber and the second chamber, ensuring that the toxic and harmful gases generated during the pretreatment of the silicone structural sealant will not leak out.
[0012] Furthermore, it further includes: two exhaust pipes and two valves. One valve is connected in series with one exhaust pipe, and one exhaust pipe is communicated with the first chamber. The other valve is connected in series with the other exhaust pipe, and the other exhaust pipe is communicated with the second chamber. Thus, during the pretreatment of the silicone structural sealant, the valves are opened to discharge the generated toxic and harmful gases.
[0013] Furthermore, the connecting plate is provided with a groove, and the first cover plate is adapted to the groove; the first driving member is connected to the box body, and the telescopic end of the first driving member is connected to the first cover plate.
[0014] Furthermore, the box body is provided with a plurality of mounting grooves. The box body is provided with a plurality of second cover plates and a plurality of ultraviolet lamps. The second cover plates are connected to the mounting grooves, and the ultraviolet lamps are located in the mounting grooves; wherein: the number of the mounting grooves and the number of the second cover plates are both equal to the number of the ultraviolet lamps. Thus, when the ultraviolet lamps need to be replaced, there is no need to open the first box door and the second box door, and the second cover plates can be directly opened to achieve this; the ultraviolet lamps provide an ultraviolet irradiation environment for the pretreatment of the silicone structural sealant.
[0015] Furthermore, the box body is further provided with a plurality of heating plates. The heating plates are located in the first chamber and on the side far from the second chamber. Thus, the heating plates provide a constant temperature environment for the pretreatment of the silicone structural sealant.
[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0017] During the process of taking and placing the silicone structural sealant, the second chamber is used as the communication medium between the first chamber and the outside. When it is necessary to take and place the silicone structural sealant, the carrier plate for the silicone structural sealant to be taken and placed is moved to the second chamber through the driving mechanism, and then the taking and placing is carried out from the second chamber. Compared with the direct taking and placing method, this method has a simple structure and is easy to operate, which can ensure that the toxic and harmful gases generated during the pretreatment of the silicone structural sealant leak out and the hands of the detection personnel will not be irradiated by the ultraviolet lamp, so as to reduce the pollution degree of the environment around the pretreatment device for the silicone structural sealant compatibility detection and the harm degree to the physical and mental health of the detection personnel. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present utility model will be further described below in conjunction with the drawings and embodiments.
[0019] Figure 1 It is a schematic structural diagram of the first viewing angle when the first door and the second door of the pretreatment device for the silicone structural sealant compatibility detection of the present utility model are in the open state;
[0020] Figure 2 It is a schematic structural diagram of the second viewing angle when the first door and the second door of the pretreatment device for the silicone structural sealant compatibility detection of the present utility model are in the open state;
[0021] Figure 3 It is a schematic structural diagram of the first viewing angle when the first door and the second door of the pretreatment device for the silicone structural sealant compatibility detection of the present utility model are in the closed state;
[0022] Figure 4 It is a schematic structural diagram of the second viewing angle when the first door and the second door of the pretreatment device for the silicone structural sealant compatibility detection of the present utility model are in the closed state;
[0023] Figure 5 It is an exploded view of the box body when the first door and the second door of the present utility model are in the open state;
[0024] Figure 6 It is a schematic structural diagram of the driving mechanism of the present utility model.
[0025] In the figure: 1. Box body; 101. First chamber; 102. Second chamber; 103. Connecting plate; 104. Groove; 105. Mounting groove; 106. Second cover plate; 107. Ultraviolet lamp; 108. Heating plate; 2. First box door; 3. Second box door; 4. Supporting plate; 5. Driving mechanism; 501. First driving part; 5011. Second driving member; 5012. Rotating rod; 5013. Slide block; 502. Second driving part; 5021. Third driving member; 5022. Adsorbing member; 6. First cover plate; 7. First driving member; 8. Sealing gasket; 9. Exhaust pipe; 10. Valve. Detailed implementation manners
[0026] Now, the present utility model will be further described in detail with reference to the accompanying drawings. These drawings are all simplified schematic diagrams, only illustrating the basic structure of the present utility model in a schematic manner, so they only show the components related to the present utility model.
[0027] In the description of the present utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model 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. Therefore, it should not be construed as a limitation to the present utility model. In addition, the features defined as "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present utility model, unless otherwise specified, the meaning of "plurality" is two or more.
[0028] In the description of the present utility model, it should be noted that unless otherwise clearly defined and limited, the terms "mount", "connect", "couple" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0029] As Figures 1 to 6As shown, it is the optimal embodiment of the utility model. The pre-processing device for compatibility detection of silicone structural sealant in this embodiment includes: a box body 1, a first box door 2, a second box door 3, a plurality of supporting plates 4, a driving mechanism 5 and a first cover plate 6. The box body 1 is provided with a first chamber 101 and a second chamber 102. The first box door 2 and the second box door 3 are both connected to the box body 1. The supporting plate 4 is used to carry the silicone structural sealant. The driving mechanism 5 is used to drive the supporting plate 4 to move so as to realize the back and forth switching of the supporting plate 4 between the first chamber 101 and the second chamber 102. The first cover plate 6 is driven by the first driving member 7 is connected to the box body 1. When the first driving member 7 is in an extended state, the first cover plate 6 can isolate the first chamber 101 from the second chamber 102. When the first driving member 7 is in a shortened state, the first chamber 101 is communicated with the second chamber 102. When the first door 2 is in an open state, the first chamber 101 is in an open state. When the first door 2 is in a closed state, the first chamber 101 is in a closed state. When the second door 3 is in an open state, the second chamber 102 is in an open state. When the second door 3 is in a closed state, the second chamber 102 is in a closed state.Therefore, in the process of taking and placing the silicone structural sealant, the second chamber 102 is used as a connecting medium between the first chamber 101 and the outside world. When the silicone structural sealant needs to be taken and placed, the bearing plate for taking and placing the silicone structural sealant is moved to the second chamber 102 through the driving mechanism 5, and then taken and placed from the second chamber 102 (the taking process (i.e. taking the bearing plate 4 out of the first chamber 101) is: first, the first cover plate 6 is driven by the first driving member 7 to move to the side away from the second chamber 102, so that the first chamber 101 and the outside world are connected. The first chamber 101 is connected to the second chamber 102, and the supporting plate 4 is moved from the first chamber 101 to the second chamber 102 by the driving structure. Then, the first cover plate 6 is driven by the first driving member 7 to move to the side close to the second chamber 102, so that the first chamber 101 is isolated from the second chamber 102. Finally, the second box door 3 is opened, and the inspection personnel takes the supporting plate 4 out of the second chamber 102, and the taking of the supporting plate 4 can be realized. The placing process (i.e. placing the supporting plate 4 into the first chamber 101) is as follows: first, the second box door 3 is opened; The testing personnel place the support plate 4 filled with silicone structural sealant in the second chamber 102, and then drive the first cover plate 6 to move to the side away from the second chamber 102 through the first driving member 7, so that the first chamber 101 is connected with the second chamber 102, and then move the support plate 4 from the second chamber 102 to the first chamber 101 through the driving structure, and finally, drive the first cover plate 6 to move to the side close to the second chamber 102 through the first driving member 7, so that the first chamber 101 is isolated from the second chamber 102) Compared with the direct placement method, this method has a simple structure and is easy to operate. It can ensure that the toxic and harmful gases generated by the silicone structural sealant pretreatment are leaked out and the hands of the inspectors will not be irradiated by the ultraviolet lamp 107 (because there will be no ultraviolet rays generated by the ultraviolet lamp 107 in the second chamber 102, the inspectors will not be irradiated by ultraviolet rays when they put their hands into the second chamber 102), so as to reduce the pollution level of the environment around the silicone structural sealant pretreatment device and the harm to the physical and mental health of the inspectors.
[0030] For example, the first driving member 7 is a cylinder.
[0031] It should be noted that: 1. The switching back and forth of the support plate 4 between the first chamber 101 and the second chamber 102 means that the support plate 4 is in different positions at different times. When the silicone structural sealant is pre-treated, the support plate 4 is located in the first chamber 101. When the silicone structural sealant needs to be taken in and out, the support plate 4 loaded with the silicone structural sealant needs to be moved from the first chamber 101 to the second chamber 102 or from the second chamber 102 to the first chamber 101.
[0032] 2. When the pretreatment device is used for the first time, it is necessary to place silicone structural sealant to be pretreated on all the supporting plates 4. At this time, open the first box door 2 to complete the operation of placing silicone structural sealant on all the supporting plates 4. In this way, the pretreatment efficiency of the silicone structural sealant can be improved. As the pretreatment of the silicone structural sealant progresses, since the pretreatment processes of different silicone structural sealants are inconsistent, at this time, it is necessary to open the second box door 3 to take out the silicone structural sealant in a single supporting plate 4. In this way, the pollution degree of the environment around the pretreatment device for silicone structural sealant and the harm degree to the physical and mental health of the detection personnel can be reduced.
[0033] In this embodiment, a plurality of connecting plates 103 are arranged inside the box body 1. The connecting plates 103 are connected to the box body 1, and the first cover plate 6 is slidably connected to the connecting plates 103. Among them: a first chamber 101 is formed among the box body 1, the plurality of connecting plates 103, the first box door 2 and the first cover plate 6; a second chamber 102 is formed among the box body 1, the plurality of connecting plates 103, the second box door 3 and the first cover plate 6.
[0034] In this embodiment, the driving mechanism 5 includes: a first driving part 501 and a second driving part 502. The first driving part 501 is connected to the box body 1, and the second driving part 502 is connected to the driving end of the first driving part 501. Among them: the first driving part 501 is used to drive the supporting plate 4 to move along the Y-axis direction, and the second driving part 502 is used to drive the supporting plate 4 to move along the Z-axis direction; the first driving part 501 includes: a second driving member 5011, a rotating rod 5012 and a slider 5013. The second driving member 5011 is connected to the box body 1, the rotating rod 5012 is connected to the driving end of the second driving member 5011, the slider 5013 penetrates through the rotating rod 5012 and is threadedly connected to the rotating rod 5012, and the second driving part 502 is connected to the slider 5013; the second driving part 502 includes: a third driving member 5021 and an adsorbing member 5022. The third driving member 5021 is connected to the slider 5013, and the adsorbing member 5022 is connected to the telescopic end of the third driving member 5021. Thus, by driving the rotating rod 5012 to rotate through the second driving member 5011, the slider 5013 can be made to slide along the axial direction of the rotating rod 5012 to realize the movement of the supporting plate 4 along the Y-axis direction; by adsorbing the supporting plate 4 with the adsorbing member 5022 and then through the telescopic movement of the third driving member 5021, the movement of the supporting plate 4 along the Z-axis direction can be realized.
[0035] Specifically, the process of the supporting plate 4 moving from the first chamber 101 to the second chamber 102 is as follows: First, start the second driving member 5011 to move the slider 5013 directly above the supporting plate 4 to be moved; then, turn off the second driving member 5011 and control the third driving member 5021 to extend to drive the suction member 5022 to abut against the supporting plate 4; then, start the air pump and control the third driving member 5021 to shorten and start the second driving member 5011 to move the supporting plate 4 directly above the first cover plate 6; then, turn off the second driving member 5011 and control the first driving member 7 to shorten to connect the first chamber 101 and the second chamber 102; then, control the third driving member 5021 to extend to enable the supporting plate 4 to enter the second chamber 102 from the first chamber 101. After the supporting plate 4 enters the second chamber 102, turn off the suction member 5022 to enable the supporting plate 4 to break free from the restraint of the suction member 5022; finally, control the third driving member 5021 to shorten to enable the suction member 5022 to enter the first chamber 101 from the second chamber 102. After the suction member 5022 enters the first chamber 101, turn off the third driving member 5021 and control the first driving member 7 to extend to isolate the first chamber 101 and the second chamber 102.
[0036] Specifically, the suction cup is connected to an air pump (not shown in the figure). When the air pump is started, the suction cup adsorbs the supporting plate 4, enabling the entire driving mechanism 5 to control the position of the supporting plate 4. When the air pump is turned off, the suction cup cannot exert a binding force on the supporting plate 4. At this time, the driving mechanism 5 cannot control the position of the supporting plate 4.
[0037] Specifically, the process of the supporting plate 4 moving from the second chamber 102 to the first chamber 101 is as follows: First, control the first driving member 7 to shorten to connect the first chamber 101 and the second chamber 102; then, control the third driving member 5021 to extend and start the air pump to enable the suction member 5022 to enter the second chamber 102 from the first chamber 101. After the suction member 5022 enters the second chamber 102 and abuts against the supporting plate 4 to be moved, start the air pump to enable the suction member 5022 to adsorb the supporting plate 4; then, control the third driving member 5021 to shorten and control the first driving member 7 to extend. After the supporting plate 4 moves from the second chamber 102 to the first chamber 101, control the first driving member 7 to extend to isolate the first chamber 101 and the second chamber 102; then, turn off the third driving member 5021 and start the second driving member 5011 to move the supporting plate 4 directly below the position where it is to be placed in the first chamber 101; then, turn off the second driving member 5011 and control the third driving member 5021 to extend to place the supporting plate 4 properly; finally, turn off the air pump and control the third driving member 5021 to shorten to enable the supporting plate 4 to break free from the restraint of the suction member 5022, and the suction member 5022 disengages from the supporting plate 4.
[0038] For example, the second driving member 5011 adopts a motor, the third driving member 5021 adopts a cylinder, and the adsorbing member 5022 adopts a suction cup.
[0039] In this embodiment, sealing gaskets 8 are provided on the side walls of the first cabinet door 2, the second cabinet door 3, and the first cover plate 6. Thus, through the sealing gaskets 8, the tightness of the first chamber 101 and the second chamber 102 can be further improved, ensuring that the toxic and harmful gases generated during the pretreatment of the silicone structural sealant do not leak out.
[0040] In this embodiment, it further includes: two exhaust pipes 9 and two valves 10. One valve 10 is connected in series with one exhaust pipe 9, and one exhaust pipe 9 is communicated with the first chamber 101. The other valve 10 is connected in series with the other exhaust pipe 9, and the other exhaust pipe 9 is communicated with the second chamber 102. Thus, during the pretreatment of the silicone structural sealant, the valve 10 is opened to discharge the generated toxic and harmful gases.
[0041] Specifically, the end of the exhaust pipe 9 away from the first chamber 101 or the second chamber 102 is connected to an exhaust gas treatment device (not shown in the figure, for example: an activated carbon adsorption device), so that the toxic and harmful gases generated after the pretreatment of the silicone structural sealant are discharged after purification treatment.
[0042] In this embodiment, the connecting plate 103 is provided with a groove 104, and the first cover plate 6 is adapted to the groove 104; the first driving member 7 is connected to the box body 1, and the telescopic end of the first driving member 7 is connected to the first cover plate 6.
[0043] In this embodiment, the box body 1 is provided with a plurality of installation grooves 105, the box body 1 is provided with a plurality of second cover plates 106, a plurality of ultraviolet lamps 107, and a plurality of heating plates 108. The second cover plates 106 are connected to the installation grooves 105, the ultraviolet lamps 107 are located in the installation grooves 105, the heating plates 108 are located in the first chamber 101 and on the side away from the second chamber 102; wherein: the number of the installation grooves 105 and the second cover plates 106 are both equal to the number of the ultraviolet lamps 107. Thus, when the ultraviolet lamp 107 needs to be replaced, it can be achieved directly by opening the second cover plate 106 without opening the first cabinet door 2 and the second cabinet door 3; the ultraviolet lamp 107 provides an ultraviolet irradiation environment for the pretreatment of the silicone structural sealant; the heating plate 108 provides a constant temperature environment for the pretreatment of the silicone structural sealant.
[0044] The process of taking out the silicone structural sealant of the present utility model is as follows: First, through the mutual cooperation of the driving structure and the first driving member 7, after driving the first chamber 101 to communicate with the second chamber 102, the supporting plate 4 is moved from the first chamber 101 into the second chamber 102, and then the first chamber 101 is driven to be isolated from the second chamber 102; Next, the second box door 3 is opened, the supporting plate 4 is taken out from the second chamber 102, and after the supporting plate 4 is taken out from the second chamber 102, the second box door 3 is closed. In this way, the taking out of the silicone structural sealant can be realized.
[0045] The process of putting the silicone structural sealant of the present utility model is as follows: First, place the silicone structural sealant to be pretreated on the supporting plate 4, and open the second box door 3. Place the supporting plate 4 into the second chamber 102. After the supporting plate 4 is placed in the second chamber 102, close the second box door 3; Next, through the mutual cooperation of the driving mechanism 5 and the first driving member 7, after driving the first chamber 101 to communicate with the second chamber 102, the supporting plate 4 is moved from the second chamber 102 into the first chamber 101, and then the first chamber 101 is driven to be isolated from the second chamber 102. In this way, the putting of the silicone structural sealant can be realized.
[0046] To sum up, in the process of taking and placing the silicone structural sealant of the present utility model, the second chamber 102 is used as the communication medium between the first chamber 101 and the outside. When taking and placing the silicone structural sealant is needed, the driving mechanism 5 is used to move the carrier plate of the silicone structural sealant to be taken and placed into the second chamber 102, and then take and place it from the second chamber 102. Compared with the direct taking and placing method, this method has a simple structure and is easy to operate, and can ensure that the toxic and harmful gases generated by the pretreatment of the silicone structural sealant leak out and the hands of the inspection personnel will not be irradiated by the ultraviolet lamp 107, so as to reduce the pollution degree of the environment around the silicone structural sealant pretreatment device and the harm degree to the physical and mental health of the inspection personnel.
[0047] The above is based on the ideal embodiments of the present utility model as inspiration. Through the above description, relevant staff can completely make various changes and modifications without departing from the technical idea of this utility model. The technical scope of this utility model is not limited to the content in the specification, and its technical scope must be determined according to the scope of the claims.
Claims
1. A pretreatment device for the compatibility detection of silicone structural sealant, characterized in that, include: A box body (1), wherein the box body (1) is provided with a first chamber (101) and a second chamber (102); A first box door (2) and a second box door (3), wherein the first box door (2) and the second box door (3) are both connected to the box body (1); A plurality of support plates (4) and a driving mechanism (5), wherein the support plates (4) are used to carry silicone structural sealant, and the driving mechanism (5) is used to drive the support plates (4) to move, so as to achieve the switching of the support plates (4) back and forth between the first chamber (101) and the second chamber (102); a first cover plate (6), the first cover plate (6) being connected to the box body (1) via a first driving member (7); when the first driving member (7) is in an extended state, the first cover plate (6) is capable of isolating the first chamber (101) from the second chamber (102); and when the first driving member (7) is in a shortened state, the first chamber (101) is in communication with the second chamber (102); Wherein: when the first door (2) is in an open state, the first chamber (101) is in an open state, and when the first door (2) is in a closed state, the first chamber (101) is in a closed state; When the second door (3) is in an open state, the second chamber (102) is in an open state, and when the second door (3) is in a closed state, the second chamber (102) is in a closed state.
2. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 1, characterized in that, A plurality of connecting plates (103) are arranged inside the box body (1), the connecting plates (103) are connected to the box body (1), and the first cover plate (6) is slidably connected to the connecting plates (103); Wherein: the first chamber (101) is formed between the box body (1), the plurality of connecting plates (103), the first box door (2) and the first cover plate (6); The second chamber (102) is formed between the box body (1), the plurality of connecting plates (103), the second box door (3) and the first cover plate (6).
3. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 1, characterized in that The driving mechanism (5) comprises: A first driving part (501) and a second driving part (502), wherein the first driving part (501) is connected to the box body (1), and the second driving part (502) is connected to a driving end of the first driving part (501); Wherein: the first driving part (501) is used to drive the supporting plate (4) to move along the Y-axis direction, and the second driving part (502) is used to drive the supporting plate (4) to move along the Z-axis direction.
4. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 3, characterized in that, The first driving unit (501) comprises: The second driving member (5011), the rotating rod (5012) and the slider (5013), the second driving member (5011) is connected to the box body (1), the rotating rod (5012) is connected to the driving end of the second driving member (5011), the slider (5013) penetrates through the rotating rod (5012) and is threadedly connected to the rotating rod (5012), and the second driving part (502) is connected to the slider (5013).
5. The pretreatment device for silicone structural sealant compatibility detection according to claim 4, characterized in that, The second driving part (502) includes: A third driving member (5021) and a suction member (5022), the third driving member (5021) is connected to the slider (5013), and the suction member (5022) is connected to the telescopic end of the third driving member (5021).
6. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 1, characterized in that Sealing gaskets (8) are provided on the side walls of the first box door (2), the second box door (3) and the first cover plate (6).
7. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 1, characterized in that, It further includes: Two exhaust pipes (9) and two valves (10), one valve (10) is connected in series with one exhaust pipe (9), and one exhaust pipe (9) is communicated with the first chamber (101), and the other valve (10) is connected in series with the other exhaust pipe (9), and the other exhaust pipe (9) is communicated with the second chamber (102).
8. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 2, characterized in that, The connecting plate (103) is provided with a groove (104), and the first cover plate (6) is adapted to the groove (104); The first driving member (7) is connected to the box body (1), and the telescopic end of the first driving member (7) is connected to the first cover plate (6).
9. The pretreatment device for silicone structural sealant compatibility detection according to claim 1, characterized in that, The box body (1) is provided with a plurality of installation grooves (105), the box body (1) is provided with a plurality of second cover plates (106) and a plurality of ultraviolet lamps (107), the second cover plates (106) are connected to the installation grooves (105), and the ultraviolet lamps (107) are located in the installation grooves (105); Wherein: the number of the installation grooves (105) and the number of the second cover plates (106) are both equal to the number of the ultraviolet lamps (107).
10. The pretreatment device for the compatibility detection of silicone structural sealant according to claim 1, characterized in that, The box body (1) is further provided with a plurality of heating plates (108), the heating plates (108) are located in the first chamber (101) and on the side away from the second chamber (102).