Quick dismounting and connecting device for intelligent thermal control equipment
By using a quick-disassembly and connection device for intelligent thermal control equipment, the engagement and disassembly of the limiting and locking parts are utilized to achieve rapid disassembly and connection of the temperature control equipment, solving the problems of low efficiency and high risk in traditional methods. This device is suitable for high temperature, high pressure, and highly corrosive environments.
Patent Information
- Application Number
- CN202520554641.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-03-27
AI Technical Summary
Traditional temperature control equipment is cumbersome to disassemble and install, resulting in low maintenance efficiency and the risk of equipment damage, especially when operated improperly in high temperature, high pressure, and highly corrosive environments.
A quick-release connection device for intelligent thermal control equipment was designed. By engaging and disengaging the limiting and locking parts of the upper and lower connecting frames, and using adjusting bolts to drive the lower connecting frame to move relative to the upper connecting frame, the upper shell and the bottom shell can be quickly locked and disassembled, simplifying the operation process.
It improves the efficiency of equipment disassembly and connection, reduces operation time and labor consumption, lowers the risk of equipment damage, and is suitable for complex environments such as high temperature, high pressure, and high corrosion.
Smart Images

Figure CN223725932U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of thermal control equipment, especially relates to a quick dismounting and connecting device of intelligent thermal control equipment. BACKGROUND
[0002] With the development of industrial automation and intelligentization, the application of temperature control systems in various industries becomes increasingly widespread, especially in thermal power plants, chemical plants, refrigeration equipment, air conditioning systems and other fields that require precise temperature control. The performance and reliability of temperature control equipment are crucial to the efficiency, stability and safety of the entire system. In these fields, the quick dismounting and connecting capability of temperature control equipment has become one of the important factors to improve equipment maintenance efficiency, reduce downtime and reduce maintenance costs.
[0003] Traditional temperature control equipment usually uses manual tools and complicated dismounting methods. Equipment replacement and maintenance often require a lot of time and manual intervention, especially in complex environments such as high temperature, high pressure and high corrosion. The dismounting process often involves high-risk operations. Traditional dismounting and installation methods not only reduce the work efficiency of maintenance personnel, but also easily cause equipment damage or accidents due to improper operation. SUMMARY
[0004] The main purpose of the utility model is to provide a quick dismounting and connecting device of intelligent thermal control equipment, aiming to improve the dismounting and connecting efficiency of intelligent thermal control equipment.
[0005] To achieve the above-mentioned purpose, the utility model provides a quick dismounting and connecting device of intelligent thermal control equipment, which is applied to intelligent thermal control equipment. The intelligent thermal control equipment includes an upper shell and a bottom shell. The quick dismounting and connecting device includes:
[0006] An upper connecting frame connected to the side wall of the upper shell, the upper connecting frame having a limiting portion extending inwardly and bent;
[0007] A lower connecting frame slidingly connected to the bottom shell, the lower connecting frame having a locking portion extending outwardly and bent, the lower connecting frame further drivingly connected with an adjusting bolt, the adjusting bolt penetrating and screwing to the lower connecting frame from the rear side wall of the upper shell to drive the lower connecting frame to move relative to the upper connecting frame, so that the limiting portion and the locking portion are mutually engaged or separated. When the limiting portion and the locking portion are mutually engaged, the upper shell and the bottom shell are mutually locked and fixed. When the limiting portion and the locking portion are mutually separated, the upper shell is separated from the bottom shell.
[0008] In one possible implementation, the bottom of the lower connecting frame is provided with a sliding groove, and the bottom shell is connected with a mounting piece, the mounting piece being connected to the bottom shell through the sliding groove, so that the lower connecting frame is slidingly connected to the bottom shell.
[0009] In a possible implementation, the locking portion is provided with a guide slope which is separated from the lower connecting frame and is upwardly curved.
[0010] In a possible implementation, one side of the locking portion is further provided with a stop portion.
[0011] In a possible implementation, the adjusting bolt comprises:
[0012] a driving rod which is screwed to the lower connecting frame;
[0013] an adjusting knob which is connected to the driving rod and is arranged outside the upper shell, and an outer wall of the adjusting knob is provided with anti-skid lines.
[0014] In a possible implementation, the adjusting knob is further rotationally connected with a rotating ring.
[0015] In a possible implementation, an end surface of the adjusting knob is provided with a cross groove.
[0016] In a possible implementation, the limiting portion is provided with a slope which is separated from the upper connecting frame and is upwardly curved.
[0017] The upper connecting frame and the lower connecting frame can be easily clamped and separated through the adjusting bolt, the user only needs to simply rotate the adjusting bolt, and the firm connection or quick disassembly of the upper shell and the bottom shell can be realized, the process of using complex tools or complicated steps in the traditional mode is avoided, and the working efficiency is greatly improved.
[0018] And the movement of the lower connecting frame relative to the upper connecting frame is driven by the adjusting bolt, the stable separation of the two can be realized, the disassembly process is more rapid and simple, and the physical consumption and operation time of the operator are reduced. BRIEF DESCRIPTION OF DRAWINGS
[0019] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed in the embodiment or the prior art description will be briefly introduced below, and obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can be obtained according to the structures shown in these drawings without creative labor.
[0020] Figure 1 is a structural schematic view of an embodiment of the intelligent thermal control device of the present application.
[0021] Figure 2The utility model discloses an embodiment structure exploded view of intelligent thermal control equipment;
[0022] Figure 3 The utility model discloses an embodiment structure of quick detachable connecting device shows a structure.
[0023] Figure 4 The utility model discloses an embodiment structure exploded view of quick detachable connecting device.
[0024] Explanation of the attached drawing:
[0025] 10, upper shell;20, bottom shell;21, mounting piece;30, upper connecting frame;31, limiting portion;311, inclined surface;40, lower connecting frame;41, locking portion;411, guide slope;412, stop portion;42, sliding groove;50, adjusting bolt;51, drive rod;52, adjusting knob;521, anti -slip pattern;522, rotating ring;523, cross groove.
[0026] The utility model discloses an embodiment structure exploded view of quick detachable connecting device. Specific implementation
[0027] In order to make the purpose, technical scheme and advantage of the application more clear, the following will be further described in detail with the attached drawings and examples. It should be understood that the specific examples described here are only used to explain the application, and not to limit the application.
[0028] In view of the problems in the background art, in combination with the attached drawings Figures 1 to 4 The utility model discloses a kind of quick detachable connecting devices of intelligent thermal control equipment, applied to intelligent thermal control equipment, the intelligent thermal control equipment includes upper shell 10 and bottom shell 20, the quick detachable connecting device includes:
[0029] Upper connecting frame 30, the upper connecting frame 30 is connected to the side wall of the upper shell 10, the upper connecting frame 30 is provided with the limiting portion 31 that bends and extends inward on it;
[0030] Lower connecting frame 40, the lower connecting frame 40 is slidably connected to the bottom shell 20, the lower connecting frame 40 is provided with the locking portion 41 that bends and extends outward, the lower connecting frame 40 is further driven to be connected with adjusting bolt 50, the adjusting bolt 50 is from the rear side wall of the upper shell 10 and is screwed to the lower connecting frame 40, to drive the lower connecting frame 40 relative to the upper connecting frame 30 moves, so that the limiting portion 31 and the locking portion 41 are mutually engaged or separated, when the limiting portion 31 and the locking portion 41 are mutually engaged, the upper shell 10 and bottom shell 20 are mutually locked and fixed, when the limiting portion 31 and the locking portion 41 are mutually separated, the upper shell 10 is separated from the bottom shell 20.
[0031] In the present embodiment, in combination with reference to Figure 3 and Figure 4 shown, the upper connecting frame 30 is generally L-shaped, one end of which is connected to the side wall of the upper shell 10 in a fixed manner (such as screws, welding, etc.). The other end of the upper connecting frame 30 is designed with a limiting part 31, which can be spaced apart, and a mounting or dismounting space is reserved between two adjacent limiting parts 31. The limiting part 31 is bent inward to form a "buckling plate" to provide physical matching space for the locking part 41 of the lower connecting frame 40. The design of such limiting part 31 can ensure that when the lower connecting frame 40 moves upward, the two can be exactly docked and firmly clamped. The upper connecting frame 30 can be made by injection molding, casting or other methods, and the size and shape of the limiting part 31 should be determined according to the design of the locking part 41 of the lower connecting frame 40 to ensure the clamping accuracy and tightness.
[0032] The lower connecting frame 40 is slidably connected to one side of the bottom shell 20, which can be achieved by the form of guide rail or channel. In this way, the lower connecting frame 40 can remain flexible relative to the bottom shell 20, allowing the lower connecting frame 40 to move along the track. The lower connecting frame 40 is provided with a locking part 41, which is bent outward, and the shape is similar to the limiting part 31, but the bending direction is opposite to the limiting part 31, which is used to cooperate with the limiting part 31 of the upper connecting frame 30. When the two are clamped, the upper shell 10 and the bottom shell 20 will be tightly fixed together.
[0033] In addition, the lower connecting frame 40 is also connected with an adjusting bolt 50, which passes through the rear wall of the upper shell 10 and is connected with the lower connecting frame 40. By rotating the adjusting bolt 50, the front end of the adjusting bolt 50 will drive the lower connecting frame 40 to slide along the guide rail or channel, thereby changing the relative position between the locking part 41 and the limiting part 31, and realizing the clamping or separation of the two. It should be noted that the adjusting bolt 50 has a threaded structure, which is connected with the lower connecting frame 40 by threaded connection, so that the position of the lower connecting frame 40 can be accurately adjusted when the adjusting bolt 50 is rotated.
[0034] When the adjusting bolt 50 is rotated to drive the lower connecting frame 40 to slide, the clamping and separation between the limiting part 31 and the locking part 41 will directly affect the connection state of the upper shell 10 and the bottom shell 20.
[0035] Clamping state: in combination with reference to Figure 3 shown, when the limiting part 31 and the locking part 41 are clamped, their physical cooperation forms a stable connection. At this time, the upper shell 10 and the bottom shell 20 are firmly connected and can withstand external forces such as vibration and impact of the equipment in the working state.
[0036] Disengagement state: when the adjusting bolt 50 is rotated, the limiting part 31 and the locking part 41 are disengaged, and the upper shell 10 can be separated from the bottom shell 20, facilitating the disassembly, maintenance or replacement of the device.
[0037] In a possible implementation, the bottom of the lower connecting frame 40 is provided with a sliding groove 42, and the bottom shell 20 is connected with a mounting part 21, which is connected to the bottom shell 20 through the sliding groove 42, so that the lower connecting frame 40 is slidingly connected to the bottom shell 20.
[0038] In this embodiment, the lower connecting frame 40 is connected to the bottom shell 20 through the sliding groove 42. Figures 2 to 4 As shown in the figure, the bottom of the lower connecting frame 40 is provided with a sliding groove 42, which is a groove provided in a long strip shape. The sliding groove 42 enables the lower connecting frame 40 to smoothly slide along the direction of the sliding groove 42, providing a guide channel to ensure that the lower connecting frame 40 can be accurately moved during adjustment, avoiding the situation that it is stuck or not smoothly slid due to errors. In addition, the sliding groove 42 can also be designed in a linear, parallel or curved shape, and the specific design is determined according to the structure of the bottom shell 20 and the sliding direction. The inner surface of the sliding groove 42 can be surface treated (such as coated with a lubricating layer or using low-friction materials), reducing the friction during sliding, prolonging the service life and improving the sliding stability.
[0039] The mounting member 21 is an important structural component connecting the bottom shell 20 and the lower connecting frame 40, which can be a metal or plastic part with sufficient strength. The main function of the mounting member 21 is to fix the lower connecting frame 40 and allow it to slide within the sliding groove 42. The mounting member 21 is usually designed to pass through the sliding groove 42 and be fixed to a certain position of the bottom shell 20, forming a stable connection structure. One end is fixed to the bottom shell 20, and the other end cooperates with the sliding groove 42 of the lower connecting frame 40, ensuring that the lower connecting frame 40 can slide freely within the sliding groove 42 without falling off. The mounting member 21 can use bolts, pins or other suitable fixing structures. When installed, the two ends of the mounting member 21 need to be firmly fixed between the bottom shell 20 and the lower connecting frame 40, ensuring smooth sliding of the lower connecting frame 40 without deviation. According to the requirements of the use environment, the mounting member 21 usually uses metal materials such as stainless steel or aluminum alloy that are resistant to high temperature and corrosion, or high-strength plastic materials, to improve the durability and stability of the device. The mounting member 21 passes through the sliding groove 42 of the lower connecting frame 40 and is fixed to the bottom shell 20, thereby realizing the sliding connection of the lower connecting frame 40. At this time, the lower connecting frame 40 can freely slide along the direction of the sliding groove 42 to complete the clamping or separation with the upper connecting frame 30. The sliding connection mode of the lower connecting frame 40 ensures the connection accuracy, so that when the adjusting bolt 50 rotates, the lower connecting frame 40 can move smoothly without tilting or jamming, thereby ensuring that the limiting part 31 and the locking part 41 can be accurately docked or separated. The interface between the mounting member 21 and the sliding groove 42 can be made through precise machining process to ensure the fitting accuracy between the sliding groove 42 and the mounting member 21. Especially under high load conditions, the fitting accuracy between the sliding groove 42 and the mounting member 21 is crucial to the stability of the equipment. Guide grooves or guards can be added on both sides of the sliding groove 42 to prevent the lower connecting frame 40 from deviating or swinging, ensuring that it always maintains a stable trajectory when sliding.
[0040] In a possible implementation, the locking part 41 is provided with a guide slope 411 which is separated from the lower connecting frame 40 and upwardly tilted.
[0041] In this embodiment, the lower connecting frame 40 is connected to the bottom shell 20 through the mounting member 21 and the sliding groove 42. Figure 3 and Figure 4As shown, the guide slope 411 is a structural feature provided on the locking part 41, which mainly functions to guide the limiting part 31 to the correct position during the connection process and provide smooth guidance during the clamping process. The guide slope 411 of the locking part 41 is usually designed as an inclined surface 311. Through the design of the slope, when the lower connecting frame 40 slides along the sliding groove 42, the slope of the locking part 41 will help the limiting part 31 to smoothly insert or separate from the locking part 41, reducing the possibility of direct collision or jamming. In addition, the angle of inclination of the guide slope 411 is very critical, too small an angle may result in inaccurate clamping, and too large an angle may result in too fast clamping, resulting in unstable connection. Usually, the angle is designed to be between 10° and 30°, depending on the size and relative position of the locking part 41 and the limiting part 31. The guide slope 411 can be a smooth curved shape or a straight inclined surface 311. It should be ensured that the slope surface is smooth to reduce friction and wear, thereby prolonging the service life. The guide slope 411 can be made of high-wear-resistant materials such as hard aluminum alloy or special plastics to avoid damage due to frequent friction during clamping or separation. The upwardly curved design means that the guide slope 411 part is not horizontal or parallel to the locking part 41 in structure, but is inclined and extends upward. The purpose of such design is to provide sufficient guiding space for the limiting part 31 before the locking part 41 clamps the limiting part 31. Through the guiding action of the slope, the limiting part 31 will slide along the slope before clamping, ensuring that the limiting part 31 can be accurately clamped into the appropriate position of the locking part 41, thereby improving the stability and precision of the connection. In addition, this curved design also helps to prevent the "reverse force" or "reverse sliding" that occurs during clamping, avoiding the separation or unstable state between the locking part 41 and the limiting part 31. When assembling, the lower connecting frame 40 is slid to a suitable position by rotating the adjusting bolt 50, at which time the guide slope 411 of the locking part 41 guides the limiting part 31 until the two are completely connected and clamped. When the locking part 41 and the limiting part 31 are completely clamped, the connection between the upper shell 10 and the lower shell is firmly fixed, ensuring the stability of the overall structure of the device. The clamped connection part can withstand the vibration and external force generated by the device during work, maintaining a firm and stable state. When disassembling, the limiting part 31 is moved outward by the slope by rotating the adjusting bolt 50, so that the two are separated, thereby achieving quick disassembly.
[0042] In one possible implementation, one side of the locking part 41 is also provided with a stop part 412.
[0043] In this embodiment, in combination with the above description Figure 4As shown, the stop portion 412 is arranged on one side of the locking portion 41, and is used to prevent the lower connecting frame 40 from being separated from the clamping state of the limiting portion 31 due to external force or vibration during disassembly and installation. The function of the stop portion 412 is to provide a physical barrier, so that the locking portion 41 and the limiting portion 31 can be effectively "blocked" when clamped, avoiding excessive external force from causing the two to separate, thereby ensuring the stability of the connection. The stop portion 412 can be a protruding baffle or a stop piece, which limits the activity range of the locking portion 41 by contacting the lower connecting frame 40, and ensures that it cannot be easily separated when in the locking position.
[0044] In one possible implementation, the adjusting screw 50 comprises:
[0045] a driving rod 51 screwed to the lower connecting frame 40;
[0046] an adjusting knob 52 connected to the driving rod 51 and arranged outside the upper shell 10, and the outer wall of the adjusting knob 52 is provided with anti-slip lines 521.
[0047] In this embodiment, in combination with reference to Figure 3 and Figure 4As shown, the drive rod 51 is one of the core components of the adjustment bolt 50, usually connected with the lower connecting frame 40 through threads. Its main function is to rotate the drive rod 51 by rotating the adjustment knob 52, thereby adjusting the position of the lower connecting frame 40. The drive rod 51 usually has a long axial length and a fine thread design, ensuring that it can smoothly push the lower connecting frame 40 to slide when rotating. The connection between the drive rod 51 and the lower connecting frame 40 can be a standard internal and external thread fit, ensuring that the lower connecting frame 40 can move accurately along the direction of the sliding groove 42 when the drive rod 51 rotates. The adjustment knob 52 is the external operating part of the adjustment bolt 50, which is connected with the drive rod 51, so that the user can adjust the relative position of the lower connecting frame 40 by rotating the knob. The adjustment knob 52 usually has a sufficient outer diameter to be easily operated by the palm or fingers of the user. The design of the adjustment knob 52 should consider comfort and efficiency, so that the user can complete the adjustment in a short time. The design of the adjustment knob 52 should ensure smooth rotation and be able to provide uniform adjustment force through rotation. The connection between the knob and the drive rod 51 is usually an internal and external thread fit or other fixed way. The shape of the adjustment knob 52 can be designed as a circle, a hexagon or other shapes, depending on the operating environment and user habits. The shape of the knob should be able to provide enough operating space to facilitate quick adjustment by the user. The anti-slip pattern 521 is a structural feature provided on the outer wall of the adjustment knob 52, and its main purpose is to increase the friction of the knob to prevent the user's hand from slipping or operating unstable when rotating, thereby affecting the adjustment effect of the connecting device. The anti-slip pattern 521 can adopt concave-convex textures such as spiral, cross-line, dot or ring textures, etc. The depth and spacing of the texture need to be designed according to the hand feeling and anti-slip requirements. The anti-slip pattern 521 should be able to effectively increase the grip of the knob, so that the user can easily adjust, even in a wet or greasy environment, the operation can remain stable. When the user operates through the adjustment knob 52, rotating the knob will drive the drive rod 51 to rotate, thereby driving the lower connecting frame 40 to slide along the sliding groove 42, and then realizing the clamping or separation of the upper shell 10 and the lower shell. When rotating the knob, the anti-slip pattern 521 can ensure that the user can maintain enough grip when operating, thereby avoiding the problem of slipping or inconvenient operation. The drive rod 51 ensures uniform force transmission during adjustment through precise thread design, avoiding jamming or inaccurate adjustment.
[0048] In one possible implementation, the adjustment knob 52 is further rotationally connected with a rotating ring 522.
[0049] In this embodiment, the rotating ring 522 can make the rotation of the adjustment knob 52 more stable, avoiding excessive friction or uneven rotation resistance between the knob and the drive rod 51 during rotation. It can make the user operation more smooth, especially when fine adjustment is needed, the rotating ring 522 provides more rotation control force for operation. After the rotating ring 522 is connected with the adjustment knob 52, it can provide better rotation feeling and more accurate torque transmission during rotation, which is suitable for equipment adjustment that requires high control accuracy. The rotating ring 522 can further enhance the user's control feeling through anti-slip design, making the rotation more stable and reducing the instability caused by hand slip or excessive rotation during operation. The rotating ring 522 is usually connected with the adjustment knob 52 through a rotating connection mode, which may be buckled, threaded or other fixed ways to ensure that the rotating ring 522 rotates synchronously with the knob. The rotating ring 522 is generally arranged outside the adjustment knob 52 for easy finger gripping and rotation. The material of the rotating ring 522 can be a metal or hard plastic with high wear resistance to ensure that it does not wear or deform during long-term use.
[0050] In one possible implementation, the end surface of the adjustment knob 52 is provided with a cross slot 523.
[0051] In this embodiment, in combination with the description of the adjustment knob 52, Figure 4 As shown in the figure, the cross slot 523 is arranged on the end surface of the adjustment knob 52, which mainly provides a more stable and efficient rotation mode for the user. The design of the cross slot 523 allows the user to rotate the adjustment knob 52 by using a standard screwdriver or other tools, making it easier to apply torque, especially in situations that require large torque for rotation. In addition to manual rotation, the cross slot 523 also facilitates the access of mechanical tools, improving the maintainability and operability of the device, especially in high-frequency or long-time operation environments, which can avoid fatigue or inconvenience caused by manual rotation. The design of the cross slot 523 can also enhance the stability during rotation, preventing the knob from being damaged or stuck due to excessive friction or uneven stress during rotation.
[0052] In one possible implementation, the limiting portion 31 is provided with a slope 311, which is separated from the upper connecting frame 30 and upwardly tilted.
[0053] In the present embodiment, the design of the inclined surface 311 mainly functions to guide the relative movement between the upper connecting frame 30 and the lower connecting frame 40, especially during the process of disassembly and assembly, so as to reduce unnecessary friction and resistance and prevent the jamming phenomenon between the two. By setting the inclined surface 311, the separation process of the limiting portion 31 and the locking portion 41 can become smoother when the user rotates the adjusting knob 52 or applies force, thereby improving the operation convenience of the disassembly device. The design of the inclined surface 311 can make the locking and separation process between the upper shell 10 and the lower shell more smooth, and reduce the operation resistance caused by improper operation or environmental factors.
[0054] The same or similar reference numerals in the drawings of the present embodiment correspond to the same or similar components; in the description of the present application, it should be understood that if the orientations or positional relationships indicated by the terms "upper", "lower", "left", "right" and the like are based on the orientations or positional relationships shown in the drawings, they are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore the terms describing the positional relationships in the drawings are only used for exemplary illustration and cannot be understood as a limitation of the present patent, for those skilled in the art, the specific meanings of the above terms can be understood according to the specific circumstances.
[0055] The above is only a preferred embodiment of the present application and does not limit the present application, any modification, equivalent replacement and improvement made within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. A quick-release connection device of an intelligent thermal control device, applied to an intelligent thermal control device, the intelligent thermal control device comprising an upper shell and a bottom shell, characterized in that, The quick dismounting connecting device comprises: an upper connecting frame connected to the side wall of the upper shell, the upper connecting frame having a limiting part extending inwardly and upwardly; a lower connecting frame slidingly connected to the bottom shell, the lower connecting frame having a locking part extending outwardly and downwardly, the lower connecting frame further drivingly connected with an adjusting bolt, the adjusting bolt penetrating through the rear side wall of the upper shell and screwing with the lower connecting frame, so as to drive the lower connecting frame to move relative to the upper connecting frame, so as to make the limiting part and the locking part engage or separate with each other, when the limiting part and the locking part engage with each other, the upper shell and the bottom shell are locked and fixed with each other, when the limiting part and the locking part separate with each other, the upper shell is separated from the bottom shell.
2. The quick disconnect connection device of the smart thermal control apparatus of claim 1, wherein, The bottom of the lower connecting frame is provided with a sliding groove, the bottom shell is connected with a mounting part, the mounting part penetrating through the sliding groove and connecting with the bottom shell, so as to make the lower connecting frame slidingly connected with the bottom shell.
3. Quick disconnect connection device for smart thermal control equipment according to claim 2, characterized in that, The locking part is provided with a guide slope, the guide slope being separated from the lower connecting frame and upwardly warped.
4. Quick release connection device for smart thermal control equipment according to claim 3, characterized in that, The locking part is further provided with a stop part on one side.
5. Quick release connection device for smart thermal control equipment according to any of claims 1 to 4, characterized in that, The adjusting bolt comprises: a driving rod screwing with the lower connecting frame; an adjusting knob connected with the driving rod and arranged outside the upper shell, the outer wall of the adjusting knob being provided with anti-skid lines.
6. Quick release connection device for smart thermal control equipment according to claim 5, characterized in that, The adjusting knob is further rotationally connected with a rotating ring.
7. Quick release connection device for smart thermal control equipment according to claim 6, characterized in that The end surface of the adjusting knob is provided with a cross groove.
8. The quick disconnect coupling device of claim 1, wherein, The limiting part is provided with a slope, the slope being separated from the upper connecting frame and upwardly warped.