Intelligent switch glass panel
By introducing a collaborative design of heat-conducting and heat-dissipating components into the smart switch glass panel, the problem of poor heat dissipation is solved, achieving more efficient heat management and sealing performance, extending service life and improving reliability.
Patent Information
- Application Number
- CN202520226467.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-02-13
AI Technical Summary
Existing smart switch glass panels have poor heat dissipation, resulting in excessively high temperatures of internal electronic components, which affects their lifespan and reliability.
A smart switch glass panel was designed, comprising a touch unit, a protective unit, a heat dissipation unit, and a ventilation unit. Through the coordinated work of the heat conduction and heat dissipation parts, heat is quickly transferred and dissipated to reduce the temperature, and the sealing performance is improved through a multi-layer sealing and protective structure.
It effectively reduces the temperature of the internal components of the smart switch glass panel, extends its service life, improves heat dissipation efficiency and sealing performance, and ensures stable operation and safety in various environments.
Smart Images

Figure CN223810012U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to touch -control panel technical field, specifically, touch -control panel of an intelligent switch glass panel. BACKGROUND
[0002] With the popularization of the smart home concept, the intelligent switch as one of the parts, more and more are favored by consumers, touch -control panel is utilized human body approach touch -control panel, make the sensor disk and the capacitance between the ground change, the sensor detects the change of capacitance, the change of capacitance is calculated through microprocessor, and interference is filtered out to finally judge whether the approach of human body to realize the key function, in the design material of intelligent switch, glass panel as a new material gradually enters the market. Although glass panel has incomparable advantage on the appearance and touch experience, but its poor heat dissipation performance becomes one of important factors hindering its widespread application, glass material has low thermal conductivity, which means that heat is not easy to pass through glass and quickly transmit out, so that the surface temperature of glass panel is easy to rise, and long time high temperature operation can cause internal electronic components to accelerate aging, reduce the overall service life of intelligent switch.
[0003] Therefore, an intelligent switch glass panel is urgently needed to solve the problems in the prior art. CONTENT OF THE UTILITY MODEL
[0004] Therefore, the utility model provides an intelligent switch glass panel, which aims at solving the poor heat dissipation effect of the existing touch -control panel.
[0005] The utility model provides an intelligent switch glass panel, which comprises:
[0006] A touch unit is arranged on the switch control panel body.
[0007] A protection unit comprises a glass panel, an outer protection shell and a sealing assembly, the switch control panel body is arranged in the outer protection shell, the rear end of the outer protection shell is provided with the glass panel, and the glass panel is located at the front end of the touch unit, and the sealing assembly is arranged in the outer protection shell.
[0008] A heat dissipation unit comprises a heat conduction part and a heat dissipation part, the heat conduction part is arranged on the inner wall of the outer protection shell, and the heat conduction part is located at the rear end of the touch unit, and the heat dissipation part is arranged in the outer protection shell, and the heat dissipation part is located at the rear end of the touch unit.
[0009] Two ventilation units are arranged on the two side walls of the outer protection shell.
[0010] Further, the heat dissipation part comprises heat dissipation fins and a first heat dissipation bottom plate, the first heat dissipation bottom plate is attached to the touch unit, and the heat dissipation fins are arranged in parallel to each other and perpendicular to the first heat dissipation bottom plate.
[0011] Further, the heat dissipation part further comprises a heat conduction assembly, which is located between the heat dissipation bottom plate and the touch unit.
[0012] Further, the heat dissipation part further comprises heat dissipation fans and a second heat dissipation bottom plate, the second heat dissipation bottom plate is arranged in parallel to the first heat dissipation bottom plate, and a plurality of heat dissipation fins are arranged between the second heat dissipation bottom plate and the first heat dissipation bottom plate, and the heat dissipation fans are arranged between the heat dissipation fins.
[0013] Further, the heat dissipation part further comprises lateral heat dissipation air ducts, which are arranged between the heat dissipation fins and the first heat dissipation bottom plate and the second heat dissipation bottom plate.
[0014] Further, the ventilation unit comprises a ventilation bottom plate and a dustproof screen, the ventilation bottom plate is arranged on the side walls of the outer protective shell, and the dustproof screen is arranged in the middle of the ventilation bottom plate.
[0015] Further, the ventilation unit further comprises a waterproof shell, a waterproof baffle and a ventilation opening, the waterproof shell is connected to the ventilation bottom plate, the waterproof baffle is arranged in the waterproof shell, the cross section of the waterproof baffle is in the shape of Z, a plurality of waterproof baffles are arranged, the waterproof shell is provided with a ventilation opening, and the ventilation opening is arranged in parallel to the dustproof screen.
[0016] Further, the waterproof baffles are sequentially and staggeredly arranged in the waterproof shell from left to right, and a gap is left between adjacent waterproof baffles in the overlapping arrangement.
[0017] Further, the ventilation unit further comprises a drainage opening, and the waterproof shell is provided with a drainage opening in the lower surface.
[0018] Further, the touch unit comprises an inner touchpad core and a touch block, and the front end of the inner touchpad core is provided with the touch block.
[0019] Compared with the prior art, the utility model discloses the beneficial effect lies in: the utility model discloses the heat dissipation part and the heat conduction part are established at the rear end of touch unit, and the heat dissipation part helps touch unit heat dissipation, and simultaneously the heat conduction part can transport heat to the ventilation unit more quickly, and the heat dissipation part and the heat conduction part can reduce the temperature of the internal electronic assembly of intelligent switch, and slow down its aging speed, not only prolong the service life of intelligent switch, but also reduce the failure rate caused by high temperature, and the temperature is too high and is one of main reasons leading to many electronic equipment failures, and the heat of touch unit can be conducted to the heat dissipation part through the heat dissipation part contact touch unit, and then through dispelling temperature, and simultaneously cooperate with the heat conduction part, can make heat discharge more quickly, make the internal temperature of intelligent switch can be controlled, ensure its stable operation under various use environment. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is the explosion side view of the intelligent switch glass panel provided by the utility model embodiment;
[0021] Figure 2 It is the whole schematic view of the intelligent switch glass panel provided by the utility model embodiment;
[0022] Figure 3 It is the schematic diagram of the outer protective shell in the intelligent switch glass panel provided by the utility model embodiment;
[0023] Figure 4 It is the schematic diagram of the heat dissipation part in the intelligent switch glass panel provided by the utility model embodiment;
[0024] Figure 5 It is the schematic diagram of the ventilation unit in the intelligent switch glass panel provided by the utility model embodiment;
[0025] Figure 6 It is the top view of the ventilation unit in the intelligent switch glass panel provided by the utility model embodiment.
[0026] Wherein: 1, switch control panel body;110, glass panel;120, outer protective shell;130, sealing assembly;210, inner touchpad core;220, touch block;4101, heat dissipation fin;4102, first heat dissipation bottom plate;4103, heat conduction assembly;4104, heat dissipation fan;4105, lateral heat dissipation air duct;4106, second heat dissipation bottom plate;420, heat conduction part;510, ventilation bottom plate;520, dust screen;530, waterproof shell;540, waterproof baffle;550, drain port;6, switch interface. DETAILED DESCRIPTION
[0027] With reference to the drawings and the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of the present application.
[0028] In the description of the present application, it should be understood that the terms "center", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.
[0029] The terms "first", "second" are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more.
[0030] In the description of the present application, it should be noted that unless otherwise specified and limited, the terms "mounting", "connection", "connection" should be understood in a broad sense, for example, it can be fixed connection, or detachable connection, or integral connection; it can be mechanical connection, or electrical connection; it can be directly connected, or indirectly connected through intermediate medium, or the communication between the two elements. For those of ordinary skill in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0031] Referring to Figure 1 The embodiment shown provides a kind of intelligent switch glass panel, comprising: touch unit, it is set on the switch control panel body;
[0032] Protective unit, including glass panel, outer protective shell and sealing assembly, the switch control panel body is arranged in the outer protective shell, the rear end of the outer protective shell is provided with glass panel, and the glass panel is located at the front end of the touch unit, and the sealing assembly is arranged in the outer protective shell;
[0033] Heat dissipation unit, including heat conduction part and heat dissipation part, the heat conduction part is arranged in the inner wall of the outer protective shell, and the heat conduction part is located at the rear end of the touch unit, and the heat dissipation part is arranged in the outer protective shell, and the heat dissipation part is located at the rear end of the touch unit;
[0034] Ventilation units are provided, and the two ventilation units are located on the two side walls of the outer protective shell.
[0035] Specifically, the outer periphery of the touch unit is provided with an outer protective shell to protect the touch unit from external factors. Meanwhile, a heat-conducting part and a heat-dissipating part are arranged inside the space of the outer protective shell. The heat of the touch unit can be conducted to the heat-dissipating part, and the heat-dissipating part dissipates the heat. The heat-conducting part is used for flow guiding, so that hot air can be easily discharged. Ventilation units are arranged on both sides of the outer protective shell. Arranging the ventilation units on both sides can avoid factors such as water that easily damage the touch unit, thereby affecting the service life of the intelligent switch panel.
[0036] It can be understood that poor heat dissipation is one of the important problems that have been plaguing the use of intelligent switch glass panels. In traditional designs, due to the low thermal conductivity of the glass panel, heat is not easily transmitted quickly through the panel, resulting in high temperatures of the touch unit and internal electronic components. The heat-conducting part uses high-efficiency heat-conducting materials to quickly transfer the heat generated by the touch unit to the heat-dissipating part. The heat-dissipating part utilizes its high thermal conductivity and good heat-dissipating performance to dissipate heat out of the outer protective shell, thereby reducing the temperature of the touch unit. The heat-conducting part not only serves for heat transfer but also is designed with a flow guiding structure, so that hot air can flow inside the outer protective shell and be easily discharged through the ventilation units. This makes the heat distribution more uniform, avoiding the problem of local overheating and further improving the heat dissipation efficiency. The outer protective shell and the sealing assembly isolate the touch unit and internal electronic components from the external environment, reducing the influence of external factors such as dust and moisture, thereby prolonging the overall service life of the intelligent switch. Furthermore, through efficient heat dissipation design, the temperature of the touch unit and internal electronic components is controlled, slowing down the aging speed of the materials, prolonging the service life of the components, and reducing maintenance costs and replacement frequency. Temperature is one of the important factors affecting the performance of electronic devices. Efficient heat dissipation design ensures the stable operation of the intelligent switch in various environments, with faster response speed and more stable signal transmission, reducing performance degradation and failures caused by high temperature, avoiding overheating, and reducing safety hazards such as short circuit and fire caused by high temperature. The design of the outer protective shell and the sealing assembly not only protects the internal components but also prevents the entry of external moisture and foreign matter, improving the waterproof and dustproof performance of the intelligent switch and further enhancing its safety in complex environments. The heat dissipation effect makes the surface temperature of the touch unit more uniform and stable, avoiding the burning sensation when the user touches for a long time, and improving the comfort and reliability of touch control. Through the cooperation of the heat-conducting part and the heat-dissipating part, heat can be transferred from the touch unit to the heat-dissipating part and then quickly dissipated. At the same time, the heat-conducting part is also designed with a flow guiding structure, so that hot air can flow inside the outer protective shell and be easily discharged through the ventilation units. This design not only improves the heat dissipation efficiency but also ensures that the heat distribution is more uniform, avoiding the problem of local overheating and further prolonging the service life of the intelligent switch.
[0037] The glass material has light transmission and smooth surface, so that the switch can clearly display operation information under different light conditions. The light transmission of the glass panel is one of its greatest advantages. In a relatively dark environment, the back light of the smart switch can be clearly displayed through the glass panel, making it convenient for users to operate. In a relatively bright environment, the glass panel also makes the switch more beautiful due to its reflective effect. At the same time, the smooth surface of the glass panel makes the user experience more comfortable and the touch more delicate. In addition, the smooth surface also facilitates user cleaning and maintenance, reducing the residue of stains and dust. The glass material has high hardness and wear resistance, making the touch panel of the smart switch more durable. Compared with traditional plastic or metal panels, the glass panel has stronger anti-scratch and anti-wear performance, and can withstand long-term use and frequent touch.
[0038] In some embodiments of the present application, referring to Figure 2 、 Figure 3 As shown, the clamping part 302 includes a first limiting ring 3021 and a first limiting hole 3022. The first limiting ring 3021 is arranged at one end of the first water pipe 5, and a plurality of first limiting holes 3022 are formed in the first limiting ring 3021.
[0039] Specifically, the clamping part 302 arranged on the first water pipe 5 includes a first limiting ring 3021 and a first limiting hole 3022. The first limiting ring 3021 is arranged on the outer surface of the end of the first water pipe 5 away from the heat exchange hole. A plurality of first limiting holes 3022 are arranged on the first limiting ring 3021. The first limiting hole 3022 is used to cooperate with the butt joint part 301 to realize the sealing and fixing of the first water pipe 5 and the second water pipe 6. The sealing part is arranged in the first water pipe 5, and the position of the sealing part is below the first limiting ring 3021. When the second water pipe 6 is inserted into the first water pipe 5, the front end of the second water pipe 6 is attached to the sealing unit 4.
[0040] It can be understood that through the cooperation of the clamping part 302 and the docking part 301, the quick sealing and fixing of the first water pipe 5 and the second water pipe 6 is realized. The installer only needs to align the front end of the second water pipe 6 with the first limiting hole 3022 on the first water pipe 5, and can complete the installation through a simple insertion and rotation action. This plug-and-play not only simplifies the installation steps, but also reduces the installation time. In the traditional installation process of the intelligent switch glass panel, high-precision measuring tools and special equipment are needed to ensure the accurate alignment of each component, which greatly reduces the dependence on these tools and equipment, making the installation process more convenient and efficient. The first limiting ring 3021 and the first limiting hole 3022 ensure the tight connection between the first water pipe 5 and the second water pipe 6, improving the sealing performance. When the second water pipe 6 is inserted into the first water pipe 5, the front end is tightly fitted with the sealing unit 4, forming a double-sealing structure. Not only relying on the sealing of the ball 2 and the sealing ring 7, but also adding an additional sealing point between the first water pipe 5 and the second water pipe 6, further reducing the risk of leakage.
[0041] The sealing unit 4 is arranged below the first limiting ring 3021 and tightly fits with the front end of the second water pipe 6, further enhancing the sealing reliability of the valve. Not only improves the sealing effect, but also can form an additional barrier between the ball 2 and the sealing ring 7, reducing the possibility of external impurities entering the valve. This not only prolongs the service life of the valve, but also improves the reliability and stability of the valve under complex working conditions. Due to the simple installation process and reliable sealing performance, this intelligent switch glass panel is also more convenient during maintenance and repair. The traditional intelligent switch glass panel often needs to disassemble multiple components when disassembling or replacing components, which is complex and prone to errors. The intelligent switch glass panel only needs to simply pull out the second water pipe 6 from the first limiting hole 3022 to quickly complete the disassembly. Maintenance personnel can complete repair and replacement in a short time, reducing the labor and time cost during maintenance. In addition, the sealing unit 4 also makes the replacement of the sealing ring 7 more convenient, further reducing the maintenance difficulty.
[0042] In some embodiments of the present application, referring to Figure 5 As shown in the figure, the sealing part includes a first sealing gasket 410, a first sealing groove 420, and a first sealing ring 7430, the top of the first sealing gasket 410 is fixedly connected with the first sealing ring 7430, and the first sealing groove 420 is equidistantly arranged outside the first sealing ring 7430.
[0043] Specifically, the sealing part includes a first sealing gasket 410, a first sealing groove 420, and a first sealing ring 7430. When applied, it is placed between the clamping mechanism and the docking mechanism inside the first water pipe 5 and the second water pipe 6. The first sealing gasket 410 adheres to the inside of the first water pipe 5 and the second water pipe 6 to achieve preliminary sealing. The first sealing ring 7430 is inserted into the groove inside the first water pipe 5 and is inserted into the first water pipe 5 to improve sealing performance. The first sealing groove 420 and the first sealing ring 7430 between the outer surfaces of the first sealing ring 7430 and the first sealing ring 7430 are mutually embedded and adhered, further enhancing the overall sealing performance. The sealing ring 7 is composed of an elastic aerogel layer, a heat-resistant silicone layer, and a polyimide layer. The elastic aerogel layer ensures sealing stability and durability. The heat-resistant silicone layer makes the sealing ring 7 resistant to high temperatures and less prone to aging and deformation. The polyimide layer increases strength and chemical corrosion resistance.
[0044] It can be understood that the sealing unit 4 improves the sealing performance of the intelligent switch glass panel through multi-layer structure and embedded sealing. First, the first sealing gasket 410 is tightly adhered to the inside of the first water pipe 5 and the second water pipe 6, achieving preliminary sealing. Then, the first sealing ring 7430 is inserted into the groove inside the first water pipe 5, further improving the tightness of the sealing. Finally, the embedded design between the first sealing groove 420 and the first sealing ring 7430 makes the sealing ring 7 form a more tightly sealed structure with the sealing ring 7. This multi-layer sealing design not only relies on a single sealing point, but also through the synergistic effect of multiple sealing points, reducing the risk of fluid leakage and improving the overall sealing performance of the system.
[0045] The first sealing ring 7430 is composed of an elastic aerogel layer, a heat-resistant silicone layer, and a polyimide layer, each of which plays a different role to ensure the stability and durability of the sealing. The elastic aerogel layer has excellent elasticity and pressure resistance, which can maintain a stable sealing state during long-term operation of the valve, reducing the risk of sealing failure due to pressure changes. The heat-resistant silicone layer has excellent high-temperature resistance, which can withstand long-term work in high-temperature environments and is not prone to aging and deformation, ensuring the long service life of the sealing ring 7. The polyimide layer increases the strength and chemical corrosion resistance of the sealing ring 7, making it less likely to be damaged when contacting chemical media, further improving the reliability and stability of the sealing.
[0046] The sealing unit 4 not only applies to general working conditions, but also can cope with various complex working conditions such as high temperature, high pressure, and chemical corrosion. The pressure resistance of the elastic aerogel layer enables the valve to operate stably in high-pressure environments. The heat-resistant silicone layer enables the valve to work for a long time in high-temperature environments. The polyimide layer's chemical corrosion resistance enables the valve to be less likely to be damaged when contacting chemical media.
[0047] The multi-layer structure of the sealing ring 7 enhances its pressure resistance, high-temperature resistance and chemical corrosion resistance, prolonging the service life of the sealing ring 7. Traditional sealing rings 7 are prone to aging, deformation or damage due to pressure changes, high-temperature environments and chemical medium erosion during long-term operation, resulting in a decline in sealing performance. The sealing ring 7 designed in this way can maintain good performance in various harsh environments due to the respective advantages of the three, reducing valve failures caused by damage to the sealing ring 7 and further prolonging the service life of the valve.
[0048] In some embodiments of the present application, referring to Figure 4 As shown, the docking portion 301 includes a first docking pipe 3011, a second limiting ring 3012 and a fastening portion 3013, the second heat exchange pipe is fixedly connected with the first docking pipe 3011 inside, the front end of the first docking pipe 3011 is provided with the fastening portion 3013, the lower end of the fastening portion 3013 is provided with the second limiting ring 3012, and the second limiting ring 3012 is used to prevent the fastening portion 3013 from falling off.
[0049] Specifically, the docking portion 301 is arranged on the second water pipe 6, the outer surface of one end of the second water pipe 6 is provided with the fastening portion 3013, the lower part of the fastening portion 3013 is provided with the second limiting ring 3012, the second limiting ring 3012 is used to prevent the fastening portion 3013 from falling off, the first docking pipe 3011 is arranged inside the second water pipe 6 and fixedly connected with the second water pipe 6, when the second water pipe 6 is inserted into the first water pipe 5, the first docking pipe 3011 is attached to the first sealing gasket 410, and the fastening portion 3013 is connected with the first limiting ring 3021.
[0050] It can be understood that the docking portion 301, through the combination of the fastening portion 3013 and the second limiting ring 3012, makes the installation process of the intelligent switch glass panel more convenient and fast. The installer only needs to align the front end of the second water pipe 6 with the first limiting hole 3022 on the first water pipe 5, and can complete the installation through simple insertion and rotation actions. The connection of the fastening portion 3013 and the first limiting ring 3021 not only ensures the sealing and fixing of the first water pipe 5 and the second water pipe 6, but also simplifies the installation steps and reduces the installation time. This plug-and-play design not only improves the installation efficiency, but also reduces human errors in the installation process, ensuring the success rate and reliability of the installation.
[0051] The design of the second limiting ring 3012 improves the connection reliability between the first water pipe 5 and the second water pipe 6 by preventing the fastening part 3013 from falling off. In the installation process of traditional intelligent switch glass panels, the fastening part 3013 is prone to falling off due to improper operation, resulting in connection failure or poor sealing. The second limiting ring 3012 as a mechanical locking device ensures that the fastening part 3013 will not fall off after being inserted into the first limiting hole 3022 due to external force, improving the firmness and reliability of the connection. This not only reduces the risk in the installation process, but also enables the valve to maintain a stable connection state during long-term operation.
[0052] The first docking pipe 3011 is fixedly connected with the second water pipe 6. When the second water pipe 6 is inserted into the first water pipe 5, the first docking pipe 3011 tightly fits the first sealing gasket 410, achieving multi-point sealing. Not only does it rely on the preliminary sealing of the first sealing gasket 410, but it also forms another sealing point between the first docking pipe 3011 and the first water pipe 5. The tight fit of the first docking pipe 3011 further enhances the sealing performance and reduces the risk of fluid leakage. Especially when the sealing ring 7 is embedded in the sealing groove, this multi-point sealing improves the overall sealing effect through the synergistic effect of multiple sealing points.
[0053] Safety is crucial in some key application scenarios of intelligent switch glass panels, such as the chemical and petroleum industries. Traditional intelligent switch glass panels are prone to fluid leakage and safety hazards when the sealing is poor or the connection is not firm. The intelligent switch glass panel in this embodiment ensures the tight connection between the first water pipe 5 and the second water pipe 6 through the dual protection of the fastening part 3013 and the second limiting ring 3012, reducing the risk of leakage. In addition, the tight fit of the first docking pipe 3011 and the first sealing gasket 410 further enhances the sealing performance and improves the overall safety of the system.
[0054] The docking part 301 design simplifies the installation steps and reduces the dependence on high-precision measuring tools and special equipment. In the installation process of traditional intelligent switch glass panels, high-precision measuring tools and special equipment are needed to ensure the accurate alignment of each component. The intelligent switch glass panel through the simple cooperation of the fastening part 3013 and the second limiting ring 3012 makes the installation process more intuitive and easy to operate. The installer does not need to use complex tools and can complete the installation through simple insertion and rotation actions, which not only reduces the investment cost of installation tools, but also improves the efficiency and success rate of installation.
[0055] In some embodiments of the present application, the fastening part 3013 comprises a first fastener 3014, a second fastener 3015 and a fastening strip 3016, the outer side of the first fastener 3014 is arranged in a ring shape with equal intervals, a through hole 3017 is formed therein, the through hole 3017 penetrates the first fastener 3014, the second fastener 3015 is inserted into the through hole 3017, the top of the second fastener 3015 penetrates the through hole 3017, and the bottom of the second fastener 3015 is provided with the fastening strip 3016.
[0056] Specifically, the fastening part 3013 comprises a first fastener 3014, a second fastener 3015 and a fastening strip 3016, the outer side of the first fastener 3014 is arranged in a ring shape with equal intervals, a through hole 3017 is formed therein, the second fastener 3015 is inserted into the through hole 3017, the second fastener 3015 is arranged through the through hole 3017, the bottom of the second fastener 3015 is provided with the fastening strip 3016, and the second fastener 3015 is fixedly connected with the fastening strip 3016. When the clamping part 302 is clamped with the butt joint part 301, the first fastener 3014 is attached to the first limiting ring 3021, the through hole 3017 on the first fastener 3014 corresponds to the first limiting hole 3022 on the first limiting ring 3021, the first fastener 3014 is inserted through the through hole 3017 and the first limiting hole 3022, so that the first fastener 3014 is fastened with the first limiting ring 3021, and at the same time, the fastening strip 3016 is arranged on the through hole 3017 on the side surface of the first fastener 3014, and is used for limiting the second fastener 3015.
[0057] It can be understood that the fastening part 3013 is fastened by the first fastener 3014, the second fastener 3015 and the fastening strip 3016, which enhances the anti-vibration ability of the connection. In some industrial environments, such as oil drilling platforms, chemical production devices, etc., valves are often affected by mechanical vibration and impact. The traditional fastening method is easy to loosen due to vibration, resulting in connection failure. However, through the multi-point fixing and limiting effect of the fastening strip 3016, the fastening part 3013 still maintains a firm state under vibration and impact, reducing the risk of connection failure and poor sealing caused by vibration. The fastening part 3013 improves the durability of the connection through multi-point fixing and limiting structure. The traditional fastening method is easy to fail due to wear and corrosion in long-term operation, while the fastening part 3013 is less likely to loosen in long-term operation through the close cooperation of the first fastener 3014 and the second fastener 3015, and the limiting effect of the fastening strip 3016, reducing the connection failure caused by wear and corrosion. In addition, the fastening strip 3016 reduces the transverse movement of the second fastener 3015, making the connection of the fastening part 3013 more stable and reliable.
[0058] The through hole 3017 and the fastening strip 3016 in the design of the fastening part 3013 make the installation process more visual. The installer can visually judge whether the installation of the fastening part 3013 is in place by observing the alignment of the through hole 3017 with the first limiting hole 3022 and the limiting effect of the fastening strip 3016. This visual installation process not only improves the success rate of installation, but also reduces the risk of connection failure and poor sealing caused by improper installation, making the installation process more transparent and controllable.
[0059] The multi-point fastening and limiting structure in the design of the fastening part 3013 makes the maintenance process more convenient and efficient. Traditional fastening methods require special tools for disassembly and replacement, which is complex and prone to errors. However, through simple insertion and rotation actions, fastening can be completed, and the disassembly process is relatively simple. The fastening strip 3016 makes the second fastener 3015 not easy to fall off, reducing the risk of component loss during disassembly. Maintenance personnel can complete inspection and replacement in a short time, improving the maintainability of the system.
[0060] The design of the fastening part 3013 improves the fatigue resistance of the system through multi-point fixation and limiting structure. In long-term operation, fasteners are prone to failure due to fatigue, leading to loose connections. However, through the synergistic effect of multiple fastening points and the limiting effect of the fastening strip 3016, the fastening part 3013 can maintain a stable connection state during long-term operation, reducing the risk of connection failure caused by fatigue. This fatigue resistance makes the intelligent switch glass panel more reliable in high-load operating environments.
[0061] The design of the fastening part 3013 improves the impact resistance of the system through multi-point fixation and limiting structure. In some high-impact environments, such as pipeline systems with strong water hammer effect, traditional fastening methods are prone to loosening due to impact, leading to connection failure. However, through the synergistic effect of multiple fastening points and the limiting effect of the fastening strip 3016, the fastening part 3013 can still maintain a firm state under high impact, reducing the risk of connection failure caused by impact. This impact resistance makes the intelligent switch glass panel more reliable in complex working conditions.
[0062] The design of the fastening part 3013 improves the compression resistance of the system through multi-point fixation and limiting structure. In high-pressure environments, traditional fastening methods are prone to loosening due to excessive pressure, leading to connection failure. However, through the synergistic effect of multiple fastening points and the limiting effect of the fastening strip 3016, the fastening part 3013 can still maintain a stable connection state under high pressure, reducing the risk of connection failure caused by pressure changes. This compression resistance makes the intelligent switch glass panel more reliable in high-pressure systems.
[0063] In some embodiments of the present application, the rotating device includes a valve stem 9, a rotating wheel 10, and a connecting sleeve 11. The valve housing 1 is provided with a connecting sleeve 11, and the valve stem 9 is located inside the valve housing 1, with its top connected to the rotating wheel 10 through the connecting sleeve 11.
[0064] It can be understood that the rotating device provides a precise control mechanism through the connection of the valve stem 9 and the rotating wheel 10. The valve stem 9 is located inside the valve housing 1, and its top is connected to the rotating wheel 10 through the connecting sleeve 11, so that the rotation of the rotating wheel 10 can be directly transmitted to the valve stem 9, thereby driving the ball 2 connected by the rocker, ensuring the accuracy of the rotation of the ball 2 and improving the control accuracy. The rotating device provides multi-point support through the connecting sleeve 11 and the rotating wheel 10, enhancing the stability of the valve stem 9. The connecting sleeve 11 is fixed on the valve housing 1, providing a stable connection point for the valve stem 9, and the rotating wheel 10 provides an additional support point through the connection with the valve stem 9. The pressure can be dispersed, reducing the shaking and wear of the valve stem 9, and improving the overall stability and reliability. The rotating device makes the operation more convenient. The connection of the valve stem 9 and the rotating wheel 10 can achieve the flow limiting or closing of the ball 2 through a simple rotating action, reducing the complexity and time of the operation.
[0065] In some embodiments of the present application, the touch panel body further includes a sealing ring 7, which is arranged between the ball 2 and the first water pipe 5.
[0066] It can be understood that the sealing ring 7 is arranged between the ball 2 and the first water pipe 5, which enhances the sealing performance of the intelligent switch glass panel by closely fitting with the valve body. Traditional touch panels often rely on simple metal sealing between the ball 2 and the water pipe, which is prone to failure due to wear and corrosion over a long period of time, resulting in fluid leakage. The introduction of the sealing ring 7 provides an additional sealing layer, making the sealing between the ball 2 and the water pipe more tight and reliable. The sealing ring 7 is usually made of high elasticity and corrosion-resistant material, which can maintain good sealing effect under various working conditions, reducing the risk of fluid leakage.
[0067] The sealing ring 7 not only enhances the sealing performance, but also improves the durability of the valve body. In traditional touch panels, the metal contact between the ball 2 and the water pipe is prone to failure due to wear and corrosion over a long period of time, resulting in internal damage to the valve body. By contacting the ball 2 and the water pipe with the sealing ring 7, the direct friction between metal parts is reduced, and the wear is alleviated. In addition, the material selection of the sealing ring 7 is usually more corrosion-resistant, which can maintain good performance when contacting chemical media, prolonging the service life of the valve body.
[0068] The sealing ring 7 is arranged between the ball 2 and the first water pipe 5, which optimizes the performance of the fluid passing through the valve body. The traditional touch panel sealing design between the ball 2 and the water pipe is often not fine enough, which is easy to cause vortex and pressure loss when the fluid passes through. Through the arrangement of the sealing ring 7, the sealing between the ball 2 and the water pipe is more tight and uniform, which reduces the resistance and vortex when the fluid passes through, and improves the efficiency of the fluid passing through. This is particularly important in some high-flow and high-pressure application scenarios, which can improve the overall performance of the system.
[0069] In some embodiments of the present application, a filtering device 8 is further included, which is arranged on one side of the sealing unit 4, and the filtering device 8 is used to filter impurities in the fluid.
[0070] It can be understood that the filtering device 8 is arranged on one side of the sealing unit 4, which can filter impurities in the fluid. In many industrial applications, the fluid may contain various particulate matter, iron filings, silt and other impurities, which not only affect the normal work of the valve, but also may cause damage to the sealing unit 4. The filtering device 8 can retain these impurities inside the filtering device 8 through its filtering function, ensuring that the fluid passing through the valve is more pure. This not only improves the service life of the valve, but also ensures the stable operation of the system.
[0071] The filtering device 8 can protect the internal components of the valve by filtering impurities in the fluid. For example, the ball 2, the valve seat, the sealing ring 7 and other internal components are easy to wear, corrode or jam after contacting impurities, which causes the valve to fail. The interception of the filtering device 8 reduces the contact between these impurities and the internal components, so that the internal components of the valve can maintain good performance for a long time. This not only prolongs the service life of the valve, but also reduces the maintenance and replacement cost caused by the damage of the internal components.
[0072] In some embodiments of the present application, the limiting unit 3 is a rigid member made of stainless steel or alloy steel.
[0073] It can be understood that the limiting unit 3 is a rigid member made of stainless steel or alloy steel, which improves its corrosion resistance. In some industrial environments with strong chemical corrosion, such as chemical industry, petroleum and pharmaceutical industry, the fluid may contain various corrosive substances, which are easy to cause corrosion to metal parts and affect the normal function of the valve. Stainless steel and alloy steel have excellent corrosion resistance, which can resist the corrosion of most chemical media, ensuring that the limiting unit 3 maintains good performance and structural integrity during long-term operation. This not only prolongs the service life of the limiting unit 3, but also reduces the maintenance and replacement cost caused by corrosion.
[0074] The limiting unit 3 is made of stainless steel or alloy steel, which enhances its mechanical strength. In high-pressure and high-flow pipeline systems, the limiting unit 3 needs to withstand greater mechanical stress. Traditional materials such as ordinary carbon steel are prone to deformation or damage under these conditions, affecting the stability and reliability of the valve. Stainless steel and alloy steel have higher mechanical strength and hardness, can withstand higher pressure and flow, and ensure that the limiting unit 3 still maintains stable structure and performance in complex working conditions. This not only improves the reliability and safety of the intelligent switch glass panel, but also enables it to be applied to more high-load working environments.
[0075] The limiting unit 3 is made of stainless steel or alloy steel, which improves its high-temperature resistance. In some high-temperature working conditions, the limiting unit 3 needs to operate for a long time in a high-temperature environment. Stainless steel and alloy steel have excellent high-temperature stability and can maintain good physical and chemical properties in high-temperature environments, avoiding material softening or deformation caused by high temperature. This high-temperature-resistant design enables the intelligent switch glass panel to better adapt to high-temperature environments and ensures stable operation of the system.
[0076] In some embodiments of the present application, the limiting unit 3 is coated with a high-temperature-resistant corrosion-resistant coating.
[0077] It can be understood that the high-temperature-resistant corrosion-resistant coating can maintain its stability and protective performance in high-temperature working conditions. In the petrochemical, metallurgical and aerospace industries, the working temperature may be as high as several hundred degrees Celsius or even higher. This coating can prevent oxidation and performance degradation of the metal surface in a high-temperature environment, ensuring the normal operation of the valve in high-temperature working conditions. Compared with uncoated metal surfaces, high-temperature-resistant coatings can improve the thermal stability of the material, reduce the impact of thermal stress on the internal structure of the valve, and prolong the service life of the valve.
[0078] The high-temperature-resistant corrosion-resistant coating has excellent corrosion resistance and can maintain good chemical stability and mechanical properties in acidic, alkaline, and salty corrosive media. In some highly corrosive working conditions, such as chemical plants and sewage treatment plants, corrosive substances in the fluid can severely damage metal components, leading to valve failure. This coating can provide an additional protective layer in these corrosive environments, preventing corrosion of the metal surface, improving the corrosion resistance of the valve, and prolonging its service life. In addition, the coating can reduce material fatigue and structural damage caused by corrosion, ensuring the stability and reliability of the valve during long-term operation. The high-temperature-resistant corrosion-resistant coating has a low surface roughness, which can reduce the friction between the fluid and the internal surface of the valve. When the fluid passes through the valve, low surface roughness can reduce the turbulent and irregular flow of the fluid, reducing the impact and wear on the internal components of the valve. This not only improves the transmission efficiency of the fluid, but also prolongs the service life of the valve and reduces maintenance costs.
[0079] The smart switch glass panel in each of the above embodiments is split and arranged on the touch panel pipeline, the first water pipe is fixedly connected with the upper pipe plate, the second water pipe is clamped and connected with the first water pipe, and the first water pipe and the second water pipe are sealingly fixed through the clamping part and the butt joint part, thereby improving the convenience when the water pipe is installed and disassembled, simplifying the installation process compared with the traditional connection mode, reducing the installation time and cost, when the water pipe needs to be replaced or maintained, only the clamped and connected part needs to be disassembled, without the need to disassemble through a cumbersome disassembly process, thereby improving the convenience and efficiency of maintenance and reducing the maintenance cost, meanwhile, the first water pipe and the second water pipe are in high temperature and high pressure working conditions for a long time, and the clamped and connected mode can disperse stress and reduce stress concentration points, thereby improving the mechanical strength and service life of the equipment.
[0080] Obviously, those skilled in the art can make various modifications and variations to the present application without departing from the spirit and scope of the present application. Thus, if these modifications and variations of the present application fall within the scope of the claims of the present application and their equivalents, the present application also intends to include these modifications and variations.
Claims
1. An intelligent switch glass panel comprising a switch control panel body, characterized in that, The utility model relates to a switch control panel, including: A touch unit is arranged on the switch control panel body; A protection unit includes a glass panel, an outer protection shell and a sealing assembly, the switch control panel body is arranged in the outer protection shell, the rear end of the outer protection shell is provided with the glass panel, and the glass panel is located at the front end of the touch unit, and the sealing assembly is arranged in the outer protection shell; A heat dissipation unit includes a heat conduction part and a heat dissipation part, the heat conduction part is arranged on the inner wall of the outer protection shell, and the heat conduction part is located at the rear end of the touch unit, and the heat dissipation part is arranged in the outer protection shell, and the heat dissipation part is located at the rear end of the touch unit; Two ventilation units are arranged on the two side walls of the outer protection shell.
2. The intelligent switchable glass panel of claim 1, wherein, The heat dissipation part includes a heat dissipation fin and a first heat dissipation bottom plate, the first heat dissipation bottom plate is attached to the touch unit, and a plurality of heat dissipation fins are arranged in parallel and perpendicular to the first heat dissipation bottom plate.
3. The intelligent switchable glass panel of claim 2, wherein, The heat dissipation part further includes a heat conduction assembly between the heat dissipation bottom plate and the touch unit.
4. The intelligent switchable glass panel of claim 3, wherein, The heat dissipation part further includes a heat dissipation fan and a second heat dissipation bottom plate, the second heat dissipation bottom plate is arranged in parallel with the first heat dissipation bottom plate, and a plurality of heat dissipation fins are arranged between the second heat dissipation bottom plate and the first heat dissipation bottom plate, and a heat dissipation fan is arranged between the plurality of heat dissipation fins.
5. The intelligent switchable glass panel according to claim 4, wherein, The heat dissipation part further includes a lateral heat dissipation air duct between the heat dissipation fin and the first heat dissipation bottom plate and the second heat dissipation bottom plate.
6. The intelligent switchable glass panel of claim 5, wherein, The ventilation unit includes a ventilation bottom plate and a dust screen, the ventilation bottom plate is arranged on the two side walls of the outer protection shell, and the dust screen is arranged in the middle of the ventilation bottom plate.
7. The intelligent switchable glass panel of claim 6, wherein, The ventilation unit further includes a waterproof shell, a waterproof baffle and a ventilation opening, the waterproof shell is connected to the ventilation bottom plate, the waterproof shell is provided with the waterproof baffle, the cross section of the waterproof baffle is in the shape of Z, a plurality of waterproof baffles are arranged, the waterproof shell is provided with the ventilation opening, and the ventilation opening is arranged in parallel with the dust screen.
8. The intelligent switchable glass panel of claim 7, wherein, The waterproof baffles are sequentially and staggeredly arranged in the waterproof shell from left to right, and a gap is left between adjacent waterproof baffles.
9. The intelligent switchable glass panel of claim 7, wherein, The ventilation unit further includes a drainage opening, and the lower surface of the waterproof shell is provided with the drainage opening.
10. The intelligent switchable glass panel of claim 1, wherein, The touch unit includes an inner touchpad core and a touch block, and the front end of the inner touchpad core is provided with the touch block.