Electrical protection equipment of automatic thermal control system
By designing electrical protection equipment for an automated thermal control system and utilizing adjustment and heat dissipation components to enable rapid interface replacement, the problems of system crashes and high costs were solved, the system's reliability and stability were improved, and the risk of production interruption was reduced.
Patent Information
- Application Number
- CN202423102615.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2034-12-16
AI Technical Summary
The electrical protection equipment of existing automated thermal control systems is prone to crashing when the amount of information exceeds the capacity of the communication interface, leading to system failure. Moreover, replacing the interface requires manual operation, and the delay may cause the system to be in an inactive state for a long time, affecting production efficiency and safety. At the same time, using a high-transmission-rate interface increases costs.
An electrical protection device including adjustment and heat dissipation components was designed. The motor drives the lead screw to move the slider, enabling quick interface replacement. The spring and locking block structure ensures stable interface connection. Combined with the control panel to monitor system status, the device reduces system crashes and malfunctions.
It enables rapid interface replacement under high load conditions, avoids prolonged system instability, improves system reliability and stability, reduces the risk of production interruption, and lowers costs.
Smart Images

Figure CN223899432U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electrical protection equipment technology, specifically to an electrical protection device for an automated thermal control system. Background Technology
[0002] With the rapid development of society and the accelerated progress of science and technology, temperature measuring instruments are being used more and more widely in various fields. Automation and intelligence have become the mainstream development direction of modern temperature control systems. Because all industries have increasingly higher requirements for temperature control, temperature control and measurement have become more and more important. Temperature controllers are being used in a wider range of applications, and various intelligent automatic temperature controllers that can be applied to different fields are emerging. Automatic temperature control systems mainly complete functions such as data acquisition, temperature timing display, temperature control, temperature timing setting, and alarm.
[0003] In existing technologies, when the electrical protection equipment of a typical automated thermal control system is in use, the system may crash and cause communication network failure if the amount of information transmitted by the system exceeds the load capacity of the communication interface, preventing the thermal control system from working properly. In existing equipment, the interface is usually replaced manually, which takes a long time, especially in emergency situations. This delay may cause the system to be in an inactive state for a long time, affecting production efficiency and safety. If a high transmission rate interface is used continuously, it may increase unnecessary costs, including but not limited to: purchasing more expensive equipment, equipment maintenance costs, and potential energy consumption. Utility Model Content
[0004] The purpose of this invention is to provide an electrical protection device for an automated thermal control system to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, this utility model provides an electrical protection device for an automated thermal control system, including a chassis. An adjustment assembly is installed inside the chassis. The adjustment assembly includes a mounting block installed on the inner wall of the chassis. A second spring is installed at the top of the mounting block. Mounting plates are installed on both sides of the mounting block. A slider is slidably connected to the opposite side of the mounting plates. An installation joint is installed inside the slider. A slot is formed at the top of the installation joint. A first plug is installed at one end of the installation joint. A first spring is connected to the inner wall of the installation joint. A locking block is installed on the opposite side of the tops of the two mounting plates. A first motor is installed on one side of the slider. A reciprocating lead screw is connected to one end of the first motor. A connecting block is connected to the outer wall of the reciprocating lead screw. One outer wall of the connecting block is connected to the slider. A guide rail is formed on one outer wall of the chassis. Multiple insertion ports are formed on the inner wall of the guide rail. An end slide plate is installed at the top of the inner wall of the guide rail.
[0006] Furthermore, two heat dissipation components are installed at the top of the chassis. Each heat dissipation component includes a second motor installed on the inner wall of the chassis. The top of the second motor is connected to a shaft, and the outer wall of the shaft is connected to a fan rotating plate. Multiple fan blades are installed in a ring on the inner wall of the fan rotating plate. The outer wall of the fan blades is provided with a wavy pattern, and fan blade mounting rings are installed at both ends of the fan blades.
[0007] Furthermore, a cable is connected to one end of the slider, and the cable is fixedly connected to the slider. A second plug is connected to the end of the chassis away from the adjustment component.
[0008] Furthermore, multiple control panels are installed on one side of the chassis, and the control panels are electrically connected to the adjustment components and heat dissipation components.
[0009] Furthermore, one end of the second spring is fixedly connected to the bottom end of the mounting block, and the other end of the second spring is fixedly connected to the bottom end of the slider. One end of the first spring is fixedly connected to the inner wall of the mounting joint, and the other end of the first spring is fixedly connected to the inner wall of the slider.
[0010] Furthermore, the first plug is shaped like a sloping trapezoid, and the shape of the socket matches the shape of the side of the first plug that is close to it. The socket and the first plug are in contact connection. The end slide plate has a sloping opening on one side, and the shape of the sloping opening matches the shape of the side of the first plug that is close to it.
[0011] Furthermore, the bottom end of the second motor is fixedly connected to the inner wall of the chassis, one end of the rotating shaft is rotatably connected to the top end of the second motor, the outer wall of the rotating shaft is fixedly connected to the inner wall of the fan rotating plate, and the fan blades are fixedly connected to the fan blade mounting rings at both ends.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: by using the adjustment component to quickly replace the interface with a higher transmission rate when the amount of transmitted information exceeds the load capacity of the communication interface, the system crashes and failures caused by information overload can be effectively reduced. By timely replacing damaged or degraded interfaces, the system can be prevented from being in an unstable state for a long time, thereby improving the overall system reliability and stability. Under high load conditions, the interface is prone to overheating or damage. Quick replacement can ensure continuous system operation and avoid production interruptions caused by interface problems. Compared with continuously using high transmission rate interfaces, the interface can be replaced only when needed, effectively controlling the cost of use. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of an electrical protection device for an automated thermal control system.
[0014] Figure 2 This is a side view of the electrical protection equipment of an automated thermal control system.
[0015] Figure 3 This is a schematic diagram of the structure of the regulating component in the electrical protection equipment of an automated thermal control system;
[0016] Figure 4 This is a schematic diagram showing the disassembled adjustment component in the electrical protection equipment of an automated thermal control system.
[0017] Figure 5 This is a schematic diagram of the heat dissipation component in the electrical protection equipment of an automated thermal control system.
[0018] Figure 6 This is a schematic diagram of the fan blade structure in the electrical protection equipment of an automated thermal control system.
[0019] In the picture:
[0020] 1. Chassis;
[0021] 2. Adjustment assembly; 201. Mounting block; 202. Mounting plate; 203. Slider; 204. Mounting connector; 205. Slot; 206. First plug; 207. Locking block; 208. First motor; 209. Connecting block; 210. Reciprocating lead screw; 211. Guide rail; 212. Socket; 213. End slide plate; 214. First spring;
[0022] 3. Cables; 4. Control panel;
[0023] 5. Heat dissipation components; 501. Shaft; 502. Fan rotating plate; 503. Fan blades; 504. Wavy texture; 505. Fan blade mounting ring;
[0024] 6. Second plug. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] Please see Figure 1 - Figure 6 This utility model provides a technical solution for electrical protection equipment in an automated thermal control system:
[0027] In the embodiments of this utility model, see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5, Figure 6 The system includes a chassis 1, inside which an adjustment assembly 2 is installed. The adjustment assembly 2 includes a mounting block 201 mounted on the inner wall of the chassis 1, a second spring mounted on the top of the mounting block 201, mounting plates 202 mounted on both sides of the mounting block 201, a slider 203 slidably connected to the opposite side of the mounting plates 202, a mounting connector 204 installed inside the slider 203, a slot 205 formed at the top of the mounting connector 204, a first plug 206 mounted on one end of the mounting connector 204, and the inner wall of the mounting connector 204 connected to... There is a first spring 214, and a locking block 207 is installed on one side of the top of the two mounting plates 202 facing each other. A first motor 208 is installed on one side of the slider 203. One end of the first motor 208 is connected to a reciprocating lead screw 210. A connecting block 209 is connected to the outer wall of the reciprocating lead screw 210. One side of the outer wall of the connecting block 209 is connected to the slider 203. A guide rail 211 is provided on one side of the outer wall of the housing 1. Multiple insertion ports 212 are provided on the inner wall of the guide rail 211. An end slide plate 213 is installed at the top of the inner wall of the guide rail 211.
[0028] It should be noted that: the mounting block 201 is located inside the guide rail 211, and the second spring provides elasticity to the slider 203. The slider 203 is slidably connected to the upper part of the mounting plate 202. The locking block 207 installed on the opposite side of the top of the mounting plate 202 engages with the locking groove 205 opened at the top of the mounting joint 204, thereby ensuring that when the mounting block 201 moves to the bottom of the guide rail 211, the mounting joint 204 can return to its initial state. At the same time, the inner wall of the mounting joint 204 is also equipped with a first spring 214. Utilizing the elastic characteristics of the first spring 214, the mounting joint 204 can be ejected from its initial state again, thereby enabling subsequent contact connection work. The first motor 208 is fixedly connected to the inner wall of the housing 1, and the reciprocating screw 210 is rotatably connected to the first motor 208. When the reciprocating screw 210 starts to rotate, the connecting block 209 can follow the axial displacement of the reciprocating screw 210 according to the texture on the surface of the reciprocating screw 210.
[0029] See Figure 1 , Figure 5 , Figure 6 Two heat dissipation components 5 are installed on the top of the chassis 1. Each heat dissipation component 5 includes a second motor installed on the inner wall of the chassis 1. The top of the second motor is connected to a rotating shaft 501. The outer wall of the rotating shaft 501 is connected to a fan rotating plate 502. Multiple fan blades 503 are installed in a ring on the inner wall of the fan rotating plate 502. The outer wall of the fan blades 503 is provided with a wave pattern 504. Both ends of the fan blades 503 are equipped with fan blade mounting rings 505.
[0030] It should be noted that: the top of the second motor is connected to a rotating shaft 501, and the outer wall of the rotating shaft 501 is fixedly connected to a fan rotating plate 502. Multiple fan blades 503 are installed in a ring on the inner wall of the fan rotating plate 502. The design of the wave pattern 504 on the surface of the fan blades 503 can disrupt the airflow through the surface of the fan blades 503, thereby reducing the noise caused by airflow separation. Furthermore, the wave pattern 504 improves the airflow characteristics and increases the contact area between the airflow and the heat dissipation component 5, thereby improving the heat dissipation efficiency.
[0031] See Figure 1 One end of the slider 203 is connected to a cable 3, and the cable 3 is fixedly connected to the slider 203. The end of the chassis 1 away from the adjustment component 2 is connected to a second plug 6.
[0032] It should be noted that the connection between the cable 3, the second plug 6 and the chassis 1 can ensure the stability of the chassis 1 during use.
[0033] See Figure 1 Multiple control panels 4 are installed on one outer wall of the chassis 1. The control panels 4 are electrically connected to the adjustment components 2 and the heat dissipation components 5.
[0034] It should be noted that using Control Panel 4 to monitor and control the overall system operation status allows the equipment to respond to staff operations more quickly, improving work efficiency while reducing the contact time between staff and equipment and increasing safety.
[0035] Working principle: When the first motor 208 starts, it drives the reciprocating screw 210 to rotate, simultaneously causing the connecting block 209 to move the slider 203. The mounting plates 202 installed at both ends of the mounting block 201 are slidably connected to the slider 203, and the inner wall of the slider 203 is also slidably connected to the mounting connector 204. When the slider 203 moves, it can synchronously drive the mounting connector 204 to move, causing the first plug 206 to abut against the socket 212 opened on the inner wall of the guide rail 211. The abutment between the first plug 206 and the socket 212 allows for the replacement of different interfaces. This effectively reduces system crashes and malfunctions caused by information overload. When the connecting block 209 drives the slider 203 to rise to the end slide plate 213, the slot 205 at the top of the mounting connector 204 engages with the locking block 207, and the mounting connector 204 no longer abuts against the socket 212. Subsequently, when the connecting block 209 drives the mounting block 201 to move to the bottom of the guide rail 211, the mounting block 201 abuts against the inner wall of the guide rail 211, causing the mounting plate 202 to drive the slider 203 to move forward, so that the slot 205 no longer engages with the locking block 207, returning to the initial state.
Claims
1. An electrical protection device for an automated thermal control system, comprising a chassis (1), characterized in that: An adjustment assembly (2) is installed inside the chassis (1). The adjustment assembly (2) includes a mounting block (201) installed on the inner wall of the chassis (1). A second spring is installed on the top of the mounting block (201). Mounting plates (202) are installed on both sides of the mounting block (201). A slider (203) is slidably connected to the opposite side of the mounting plate (202). An installation connector (204) is installed inside the slider (203). A slot (205) is opened on the top of the installation connector (204). A first plug (206) is installed on one end of the installation connector (204). A first plug (206) is connected to the inner wall of the installation connector (204). A spring (214) is installed on one side of the top of the two mounting plates (202) facing each other. A first motor (208) is installed on one side of the slider (203). One end of the first motor (208) is connected to a reciprocating screw (210). A connecting block (209) is connected to the outer wall of the reciprocating screw (210). One side of the outer wall of the connecting block (209) is connected to the slider (203). A guide rail (211) is provided on one side of the outer wall of the housing (1). Multiple insertion slots (212) are provided on the inner wall of the guide rail (211). An end slide plate (213) is installed at the top of the inner wall of the guide rail (211).
2. The electrical protection device for an automated thermal control system as described in claim 1, characterized in that: Two heat dissipation components (5) are installed at the top of the chassis (1). Each heat dissipation component (5) includes a second motor installed on the inner wall of the chassis (1). The top of the second motor is connected to a rotating shaft (501). The outer wall of the rotating shaft (501) is connected to a fan rotating plate (502). Multiple fan blades (503) are installed in a ring on the inner wall of the fan rotating plate (502). The outer wall of the fan blades (503) is provided with a wave pattern (504). Both ends of the fan blades (503) are equipped with fan blade mounting rings (505).
3. The electrical protection device for an automated thermal control system as described in claim 2, characterized in that: One end of the slider (203) is connected to a cable (3), and the cable (3) is fixedly connected to the slider (203). The end of the chassis (1) away from the adjustment component (2) is connected to a second plug (6).
4. The electrical protection device for an automated thermal control system as described in claim 3, characterized in that: Multiple control panels (4) are installed on one side of the outer wall of the chassis (1). The control panels (4) are electrically connected to the adjustment component (2) and the heat dissipation component (5).
5. The electrical protection device for an automated thermal control system as described in claim 4, characterized in that: One end of the second spring is fixedly connected to the bottom end of the mounting block (201), and the other end of the second spring is fixedly connected to the bottom end of the slider (203). One end of the first spring (214) is fixedly connected to the inner wall of the mounting joint (204), and the other end of the first spring (214) is fixedly connected to the inner wall of the slider (203).
6. The electrical protection device for an automated thermal control system as described in claim 5, characterized in that: The first plug (206) is shaped like a sloping trapezoid, and the shape of the socket (212) is adapted to the shape of the side of the first plug (206) that is close to it. The socket (212) and the first plug (206) are in contact connection. The end slide plate (213) has a sloping opening on one side, and the shape of the sloping opening is adapted to the shape of the side of the first plug (206) that is close to it.
7. The electrical protection device for an automated thermal control system as described in claim 6, characterized in that: The bottom end of the second motor is fixedly connected to the inner wall of the casing (1), one end of the rotating shaft (501) is rotatably connected to the top end of the second motor, the outer wall of the rotating shaft (501) is fixedly connected to the inner wall of the fan rotating plate (502), and the fan blade (503) is fixedly connected to the fan blade mounting rings (505) at both ends.