Electrical safety protection device

By combining the design of the upper buffer component, the housing component and the heat dissipation component, the problem of electrical safety protection devices being easily broken down under the impact of large objects is solved, the impact resistance and stability of the device are achieved, and the loosening of the processing components and the accumulation of dust are prevented.

CN121748950APending Publication Date: 2026-03-27華能新疆能源開発有限公司奥庫水電分公司
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-05
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing electrical safety protection devices are easily damaged when subjected to the impact of falling objects of large mass, resulting in the devices becoming unusable.

Method used

It adopts a combined design of upper buffer component, housing component, heat dissipation component and clamping device, including outer sliding plate, alloy rotating shaft rod, deflection shell, main buffer belt, spring sleeve, rubber protrusion rod and other structures. Through multi-layer buffer and fixing mechanism, it prevents objects from directly impacting the device.

Benefits of technology

It effectively reduces the direct impact of objects on the device, extends the device's service life, prevents the processing components from loosening and dust from accumulating, and ensures the stable operation of electrical equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121748950A_ABST
    Figure CN121748950A_ABST
Patent Text Reader

Abstract

The invention belongs to the technical field of electrical equipment, and particularly relates to an electrical safety protection device which comprises a containing part, and a processing element is arranged in the containing part. The upper buffer component is arranged at the top of the accommodating component; the heat dissipation component is arranged at the upper part of the inner wall of the accommodating component; and the clamping devices are arranged on the left side and the right side of the outer surface of the processing element and used for fixing the internal processing element, the upper buffering component comprises an outer sliding clamping plate, and a sliding inserting groove is formed in the axis position of the top of an inner cavity of the outer sliding clamping plate. According to the device, the impact acting force of construction materials falling from the upper portion can be borne through the upper buffering component, when the impact force of the materials is too large, the upper buffering component can guide the materials to fall on the ground through the oblique deflection shell, the materials are pressed within the buffering capacity range of the upper buffering component, and the materials are prevented from falling off. The problem that impact force of materials completely acts on the upper portion of the device, and consequently the deflection shell is directly punctured and damaged is solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention belongs to the field of electrical equipment technology, specifically an electrical safety protection device. Background Technology

[0002] Electrical equipment is a general term for equipment such as generators, transformers, power lines, and circuit breakers in a power system. It is indispensable in our daily life and production, and its stable and reliable performance is the key to ensuring our normal life.

[0003] An existing electrical safety protection device for electrical equipment, with publication number CN222826860U, significantly reduces the buffering force of falling objects and the impact of falling objects on electrical equipment through the action of a buffer plate and water inside the protective box. However, the device has a certain limit to its bearing capacity. When the potential energy of the falling object exceeds its bearing capacity, such as a large object with a large mass like a metal part, it will be directly punctured, leading to the device becoming unusable. Therefore, improvements are needed. Summary of the Invention

[0004] To address the problem that existing equipment is directly punctured when subjected to the impact of a large falling object, the technical solution adopted in this invention is: an electrical safety protection device, comprising:

[0005] A receiving component, wherein a processing element is disposed inside the receiving component;

[0006] The upper buffer component is located on top of the receiving component;

[0007] The heat dissipation component is located on the upper part of the inner wall of the receiving component;

[0008] Clamping devices are installed on the left and right sides of the outer surface of the processing element to fix the internal processing element.

[0009] The upper buffer component includes:

[0010] An outer sliding plate, wherein a sliding slot is provided at the axis center of the top of the inner cavity of the outer sliding plate;

[0011] An alloy rotating shaft, wherein deflection housings are rotatably connected to the left and right sides of the outer surface of the alloy rotating shaft;

[0012] The main buffer strips are evenly distributed on the top of the inner wall of the deflection housing, and the bottom end of the main buffer strips is inserted into the upper surface of the outer sliding plate. Under normal circumstances, the deflection housings on both sides are supported by the elastic force of the main buffer strips, thus maintaining a horizontal state. Figure 3 As shown.

[0013] Furthermore, the upper buffer component includes:

[0014] A spring housing, the top end of which is inserted into the center of the lower surface of the alloy rotating shaft.

[0015] A guide plate, the top of which is inserted into the axis of the inner wall of the spring sleeve;

[0016] A secondary buffer strip, the top end of which is inserted into the bottom of the outer surface of the spring housing;

[0017] The pressure base pad has its bottom end inserted into the upper surface of the secondary buffer belt. When the alloy rotating shaft slides down, it will press the spring sleeve downward, thereby increasing the downward pressure force of the pressure base pad.

[0018] Furthermore, the receiving component includes

[0019] The upper housing, the top of the outer surface of the upper housing is slidably connected to the inner wall of the outer sliding plate;

[0020] Rotary sealing plates are symmetrically arranged on the front and rear sides of the inner wall of the upper housing. The outer surface of the rotating sealing plates is rotatably connected to the inner wall of the upper housing through a rotating shaft. After opening the rotating sealing plates on both sides, the internal processing components can be taken out.

[0021] An isolation interlayer, the top of which is fixedly connected to the bottom of the upper housing;

[0022] A supporting base shell, the top of which is inserted into the lower surface of the insulating interlayer.

[0023] Furthermore, the receiving component also includes:

[0024] The sliding insert rods consist of four rods, with the top of each rod extending through a through-hole to the outside of the upper housing. The top of each rod is inserted into the top of the inner wall of the outer sliding plate, and the bottom of each rod extends into the interior of the supporting bottom housing. A spring washer is fitted onto the bottom of the outer surface of each rod. The sliding insert rods are used to connect to the top outer sliding plate. When the outer sliding plate slides down, it pushes the sliding insert rods down, causing the bottom of each rod to insert into the ground below.

[0025] Furthermore, the receiving component also includes:

[0026] Rubber protrusions are evenly distributed at the bottom of the outer surface of the processing element. Insertion slots are evenly provided at the top of the inner cavity of the isolation interlayer. The bottom of the processing element is inserted into the inner wall of the insertion slot through the rubber protrusions.

[0027] An inner sliding sealing plate, wherein the inner cavity of the inner sliding sealing plate is inserted into the outer surface of the sliding insert rod through an insertion interface, and the outer surface of the inner sliding sealing plate is slidably connected to the inner wall of the isolation interlayer;

[0028] The rubber sealing tape has its outer surface inserted into the axis at the bottom of the inner wall of the isolation interlayer through a large groove. After the sliding rod slides down, it will drive the inner sliding sealing plate to slide down. At this time, the pressure in the upper area of ​​the inner sliding sealing plate decreases and the pressure in the lower area of ​​the inner sliding sealing plate increases, so that the bottom rubber protrusion is further fixed in the insertion groove under the action of air pressure, while the lower rubber sealing tape will expand downward due to the pressure.

[0029] Furthermore, the heat dissipation component includes:

[0030] The cluster card holder has slots on both sides of its outer surface that are inserted into the center of the top of the inner wall of the upper housing.

[0031] A pressure-sensitive base plate, the middle of the outer surface of the pressure-sensitive base plate is fixedly connected to the middle of the inner wall of the cluster card holder, and transmission rod pads are symmetrically arranged on both sides of the upper surface of the pressure-sensitive base plate. The lower surface of the pressure pad is pressed against the upper surface of the pressure-sensitive base plate through the transmission rod pads.

[0032] Furthermore, the heat dissipation component also includes:

[0033] The unit includes four motors, which are symmetrically arranged on the left and right sides of the inner wall of the cluster card holder. The outer surface of the unit motor is fixedly connected to the inner wall of the cluster card holder, and the inner cavity of the unit motor is connected to the inner cavity of the pressure-sensing base plate through connecting wires.

[0034] Furthermore, the heat dissipation component also includes:

[0035] The fan blade rotating plate has an insertable shaft at its axis, and the front and rear ends of the insertable shaft are respectively inserted into the rotating shafts of the front and rear container motors. The container motors can drive the fan blade rotating plate to deflect. When all the fan blade rotating plates rotate to a horizontal state, they will completely block the bundle bracket, thereby isolating the top of the upper housing from the outside world.

[0036] Furthermore, the clip device includes:

[0037] Side fixing shells, the number of which is two, symmetrically arranged on the left and right sides of the inner wall of the upper box shell;

[0038] An air pump plate, the outer surface of which is snapped into the top of the inner wall of the side fixing shell, and the air inlet groove on the upper surface of the air pump plate extends to the outside of the side fixing shell. Switch buttons are symmetrically arranged on the front and rear sides of the air pump plate.

[0039] Furthermore, the clip device also includes:

[0040] An external compression rod, one end of which is pressed against the outer surface of the switch button, and the other end of which is pressed against the outer surface of the rotating sealing plate;

[0041] An expansion cushion is provided at the bottom of the inner wall of the side fixing shell, and the outer surface of the expansion cushion extends to the side close to the processing element.

[0042] The arc-shaped adapter tube has its top end inserted into the inner cavity of the air pump plate and its bottom end inserted into the inner cavity of the expansion air cushion. The air pump plate can pressurize the inside of the expansion air cushion through the arc-shaped adapter tube, causing the expansion air cushion to inflate and expand. After contacting the outer surface of the processing element, it limits and protects the side of the processing element.

[0043] The beneficial effects of this invention are as follows:

[0044] 1. The device can withstand the impact force of construction materials falling from above through the upper buffer component. When the impact force of the material is too large, the upper buffer component can guide the material to fall to the ground through the inclined deflection shell, and be compressed within its own buffering capacity range, so as to avoid the problem that the impact force of the material is fully applied to the upper part of the device, causing the deflection shell to be directly punctured and damaged.

[0045] 2. The upper buffer component can work together with the main buffer belt, the secondary buffer belt and the spring sleeve to buffer. The deflection shell can slide down as a whole, and the outer sliding plate can also slide down along the upper box shell as a whole. Therefore, after long-term use, the upper buffer component of the device can be maintained by disassembling and replacing parts. The housing component for loading and processing elements will not be damaged due to harsh construction environment, thus better meeting the needs of production and use.

[0046] 3. After the processing element is installed inside the upper housing, when material falls, the suction force on the rubber protrusion at the bottom of the processing element will increase sharply, causing the bottom of the processing element to stick tightly to the insertion slot, that is, the upper surface of the isolation layer. This prevents the processing element from loosening when the device is hit by material, thus avoiding the problem of unstable power supply to the circuit.

[0047] 4. Under normal circumstances, the top of the upper housing is open, and the internal processing components can exchange heat with the external airflow through the cluster bracket to achieve heat dissipation. When material falls, dust will inevitably spread. At this time, the container motors on both sides will be controlled by the activated pressure-sensitive base plate to rotate the fan blades to a horizontal position, thereby sealing the top of the upper housing and preventing the spread dust from entering the interior of the upper housing and causing dust accumulation on the processing components.

[0048] 5. After the processing element is placed inside the upper housing, during the closing and rotating sealing plate process, the expansion air cushion will automatically inflate and expand from the inside of the side fixing shell towards the side of the processing element until the expansion air cushions on both sides clamp and fix the processing element. The processing element is internally buffered by the expanded air cushion, thereby effectively preventing the internal processing element from slipping or misaligning when the device is subjected to lateral impact. Attached Figure Description

[0049] Figure 1 This is the front view of the present invention;

[0050] Figure 2 This is a cross-sectional view of the present invention;

[0051] Figure 3 This is a cross-sectional view of the buffer component of the present invention;

[0052] Figure 4 This is a cross-sectional view of the housing component of the present invention;

[0053] Figure 5 This is the present invention. Figure 4 Enlarged view of point A in the middle;

[0054] Figure 6 This is a cross-sectional view of the cluster card holder of the present invention;

[0055] Figure 7 This is a cross-sectional view of the side fixing shell of the present invention.

[0056] In the diagram: 1. Receiving component; 2. Upper buffer component; 3. Heat dissipation component; 4. Clamping device; 5. Processing element; 21. Outer sliding plate; 22. Spring sleeve; 23. Alloy rotating shaft; 24. Deflection shell; 25. Main buffer belt; 26. Guide plate; 27. Secondary buffer belt; 28. Pressurized bottom pad; 11. Upper housing; 12. Isolation layer; 13. Supporting bottom shell; 14. Sliding rod; 15. Spring washer; 16. Rotating sealing plate; 17. Insertion slot; 18. Rubber protrusion; 19. Inner sliding sealing plate; 20. Rubber sealing strip; 31. Bundled card holder; 32. Pressure-sensing bottom plate; 33. Transmission rod gasket; 34. Container motor; 35. Fan blade rotating plate; 41. Side fixing shell; 42. Air pump plate; 43. Switch button; 44. Outer compression rod; 45. Arc-shaped adapter pipe; 46. Inflatable air cushion. Detailed Implementation

[0057] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for a particular purpose.

[0058] Example 1, please refer to Figures 1-4 The present invention provides a technical solution: an electrical safety protection device, comprising:

[0059] The housing component 1 has a processing element 5 disposed inside it;

[0060] The upper buffer component 2 is disposed on top of the receiving component 1;

[0061] Heat dissipation component 3 is disposed on the upper part of the inner wall of receiving component 1;

[0062] The clamping device 4 is set on the left and right sides of the outer surface of the processing element 5 and is used to fix the internal processing element 5.

[0063] Upper buffer component 2 includes:

[0064] The outer sliding plate 21 has a sliding slot at the center of the top of the inner cavity of the outer sliding plate 21;

[0065] Alloy rotating shaft 23, with deflecting housing 24 rotatably connected to the left and right sides of the outer surface of alloy rotating shaft 23;

[0066] The main buffer strips 25 are evenly distributed on the top of the inner wall of the deflection housing 24, and the bottom end of the main buffer strips 25 is inserted into the upper surface of the outer sliding plate 21. Under normal circumstances, the deflection housings 24 on both sides are supported by the elastic force of the main buffer strips 25, thereby maintaining a horizontal state. Figure 3 As shown.

[0067] Upper buffer component 2 includes:

[0068] Spring sleeve 22, the top end of spring sleeve 22 is inserted into the axis of the lower surface of alloy rotating shaft 23;

[0069] Guide plate 26, the top of guide plate 26 is inserted into the axis of the inner wall of spring sleeve 22;

[0070] The secondary buffer strip 27 has its top end inserted into the bottom of the outer surface of the spring sleeve 22.

[0071] The bottom end of the pressure pad 28 and the secondary buffer belt 27 are inserted into the upper surface of the pressure pad 28. When the alloy rotating shaft 23 slides down, it will press the spring sleeve 22 down, thereby increasing the downward pressure force of the pressure pad 28.

[0072] Receiving component 1 includes

[0073] The top of the outer surface of the upper housing 11 is slidably connected to the inner wall of the outer sliding plate 21.

[0074] Rotary sealing plates 16 are symmetrically arranged on the front and rear sides of the inner wall of the upper housing 11, and the outer surface of the rotating sealing plates 16 is rotatably connected to the inner wall of the upper housing 11 through a rotating shaft. After opening the rotating sealing plates 16 on both sides, the internal processing element 5 can be taken out.

[0075] The top of the isolation interlayer 12 is fixedly connected to the bottom of the upper housing 11;

[0076] The bottom support shell 13 is inserted into the lower surface of the isolation interlayer 12.

[0077] The housing component 1 also includes:

[0078] There are four sliding rods 14. The top of each sliding rod 14 extends to the outside of the upper housing 11 through a through-hole. The top of each sliding rod 14 is inserted into the top of the inner wall of the outer sliding plate 21. The bottom of each sliding rod 14 extends into the interior of the supporting bottom housing 13. A spring washer 15 is fitted onto the bottom of the outer surface of each sliding rod 14. The sliding rod 14 is used to connect to the top outer sliding plate 21. When the outer sliding plate 21 slides down, it pushes the sliding rod 14 down, so that the bottom of the sliding rod 14 is inserted into the ground below.

[0079] After the device is set up, open the rotating sealing plates 16 on the front and rear sides, place the electrical processing element 5 inside the upper housing 11, and then close the rotating sealing plates 16. The device installation is now complete.

[0080] At the construction site, if impacted by falling materials, the material may act on two parts. When the material hits the upper surface of the deflector housing 24, the deflector housing 24 will deflect downwards along the alloy shaft 23 under the downward impact. At this time, the deflector housing 24 will rotate from a horizontal state to an inclined state. The deflector housing 24 will absorb the impact force through the elasticity of the main buffer belt 25. Then, the material will slide down the inclined surface of the deflector housing 24 to the side of the device and then fall heavily to the ground. After the material leaves the upper buffer component 2, the deflector housing 24 will return to its original position under the elasticity of the main buffer belt 25. Figure 1 The horizontal position shown;

[0081] When the material hits the alloy shaft 23 in the middle, the alloy shaft 23 will press down the entire upper buffer component 2 by pressing down the spring sleeve 22. Thus, the spring sleeve 22 and the secondary buffer belt 27 will perform initial buffering work. Since the alloy shaft 23 itself is curved, the material will still slide down to the ground along the deflection shells 24 on both sides.

[0082] After the material falls onto the upper buffer component 2, if the impact force of the material is too large, the entire outer sliding plate 21 will also slide down along the outer surface of the upper housing 11 under the impact, thereby pressing down the sliding rod 14 and making the bottom end of the sliding rod 14 insert into the ground, thereby increasing the stability of the connection between the supporting bottom shell 13 and the construction ground, and preventing the device from tipping over due to the impact of the material.

[0083] Example 2, please refer to Figures 1-7 The present invention provides a technical solution: the accommodating component 1 further includes:

[0084] Rubber protrusions 18 are evenly distributed at the bottom of the outer surface of the processing element 5. Insertion slots 17 are evenly distributed at the top of the inner cavity of the isolation layer 12. The bottom of the processing element 5 is inserted into the inner wall of the insertion slots 17 through the rubber protrusions 18.

[0085] The inner sliding sealing plate 19 has its inner cavity connected to the outer surface of the sliding insert rod 14 via an insertion interface, and its outer surface is slidably connected to the inner wall of the isolation interlayer 12.

[0086] The outer surface of the rubber sealing strip 20 is inserted into the axis at the bottom of the inner wall of the isolation interlayer 12 through a large groove. After the sliding rod 14 slides down, it will drive the inner sliding sealing plate 19 to slide down. At this time, the pressure in the upper part of the inner sliding sealing plate 19 decreases and the pressure in the lower part of the inner sliding sealing plate 19 increases, so that the bottom rubber protrusion 18 is further fixed in the insertion groove 17 under the action of air pressure, while the lower rubber sealing strip 20 will expand downward due to the pressure.

[0087] Heat dissipation component 3 includes:

[0088] The cluster card holder 31 has slots on both sides of its outer surface that are inserted into the axis at the top of the inner wall of the upper housing 11.

[0089] The pressure-sensitive base plate 32 is fixedly connected to the middle of the inner wall of the cluster card holder 31 at the middle of the outer surface of the pressure-sensitive base plate 32. The two sides of the upper surface of the pressure-sensitive base plate 32 are symmetrically provided with transmission rod pads 33. The lower surface of the pressure pad 28 is pressed against the upper surface of the pressure-sensitive base plate 32 through the transmission rod pads 33.

[0090] Heat dissipation component 3 also includes:

[0091] There are four unit motors 34, which are symmetrically arranged on the left and right sides of the inner wall of the cluster card holder 31. The outer surface of the unit motor 34 is fixedly connected to the inner wall of the cluster card holder 31, and the inner cavity of the unit motor 34 is connected to the inner cavity of the pressure-sensing base plate 32 through connecting wires.

[0092] Heat dissipation component 3 also includes:

[0093] The fan blade rotating plate 35 has a plug-in shaft at its axis, and the front and rear ends of the plug-in shaft are respectively plugged into the rotating shafts of the front and rear side collection motors 34. The collection motors 34 can drive the fan blade rotating plate 35 to deflect. When all the fan blade rotating plates 35 rotate to a horizontal state, they will completely block the cluster bracket 31, thereby isolating the top of the upper housing 11 from the outside world.

[0094] Card clip device 4 includes:

[0095] Side fixing shell 41, there are two side fixing shells 41, which are symmetrically arranged on the left and right sides of the inner wall of the upper box shell 11.

[0096] The air pump plate 42 has its outer surface snapped into the top of the inner wall of the side fixing shell 41, and the air inlet groove on the upper surface of the air pump plate 42 extends to the outside of the side fixing shell 41. Switch buttons 43 are symmetrically arranged on the front and rear sides of the air pump plate 42.

[0097] Card holder device 4 also includes:

[0098] The outer compression rod 44 has one end pressing against the outer surface of the switch button 43, and the other end pressing against the outer surface of the rotating sealing plate 16.

[0099] An expansion cushion 46 is disposed at the bottom of the inner wall of the side fixing shell 41, and the outer surface of the expansion cushion 46 extends to the side close to the processing element 5.

[0100] The top end of the arc-shaped adapter pipe 45 is inserted into the inner cavity of the air pump plate 42, and the bottom end of the arc-shaped adapter pipe 45 is inserted into the inner cavity of the expansion air cushion 46. The air pump plate 42 can pressurize the inside of the expansion air cushion 46 through the arc-shaped adapter pipe 45, causing the expansion air cushion 46 to inflate and expand. After contacting the outer surface of the processing element 5, it performs limiting and protection work on the side of the processing element 5.

[0101] When the sliding rod 14 slides down, it will cause the inner sliding plate 19 to slide down. At this time, the adsorption force on the rubber protrusion 18 at the bottom of the processing element 5 will increase sharply, so that the bottom of the processing element 5 will be tightly attached to the insertion groove 17, that is, the upper surface of the isolation layer 12. This will prevent the processing element 5 from becoming loose when the device is hit by materials, thus avoiding the problem of unstable power supply to the circuit.

[0102] Under normal circumstances, the fan blades 35 of the heat dissipation component 3 are in a vertical position. At this time, the cluster bracket 31 is in a ventilated state, that is, the top of the upper housing 11 is in a ventilated state. The internal processing element 5 can exchange heat with the external airflow through the cluster bracket 31, thereby achieving heat dissipation. When materials fall, dust will inevitably spread. At this time, as the spring sleeve 22 slides down, it will press the transmission rod pad 33 on the top of the pressure-sensitive base plate 32 through the secondary buffer belt 27 and the pressure pad 28. When the pressure-sensitive base plate 32 is activated, the two side motors 34 are controlled by the activated pressure-sensitive base plate 32 to rotate the fan blade plate 35 to a horizontal position, thereby sealing the top of the upper housing 11 and preventing the spread of dust from entering the interior of the upper housing 11 and causing dust accumulation in the processing element 5. When the device is back in a stable state, the pressure of the pressure base plate 28 on the transmission rod pad 33 is released, and the pressure-sensitive base plate 32 causes the motors 34 to rotate the fan blade plate 35 back to a horizontal position, so that the processing element 5 can perform heat dissipation normally.

[0103] After the processing element 5 is placed inside the upper housing 11, during the closing of the rotating sealing plate 16, the rotating sealing plate 16 will gradually press the outer compression rod 44, thereby pressing the switch button 43 of the air pump plate 42, so that the air pump plate 42 inflates and pressurizes the expansion air cushion 46 through the arc-shaped adapter pipe 45. At this time, after the expansion air cushion 46 expands, it expands from the inside of the side fixing shell 41 towards the side of the processing element 5 until the expansion air cushions 46 on both sides clamp and fix the processing element 5. The processing element 5 is internally buffered by the expanded expansion air cushion 46, thereby effectively avoiding the problem of the internal processing element 5 slipping or misaligning when the device is subjected to lateral impact.

[0104] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.

Claims

1. An electrical safety protection device, comprising: A receiving component (1) is provided with a processing element (5) inside the receiving component (1); The upper buffer component (2) is disposed on top of the receiving component (1); The heat dissipation component (3) is disposed on the upper part of the inner wall of the receiving component (1); The clamping device (4) is set on the left and right sides of the outer surface of the processing element (5) to fix the internal processing element (5); The upper buffer component (2) is characterized in that it comprises: An outer sliding plate (21) has a sliding slot at the center of the top of its inner cavity; Alloy rotating shaft (23), with deflection shell (24) rotatably connected to the left and right sides of the outer surface of the alloy rotating shaft (23); The main buffer strip (25) is evenly distributed on the top of the inner wall of the deflection shell (24), and the bottom end of the main buffer strip (25) is inserted into the upper surface of the outer sliding plate (21).

2. The electrical safety protection device according to claim 1, characterized in that: The upper buffer component (2) includes: Spring housing (22), the top end of which is inserted into the center of the lower surface of the alloy rotating shaft (23); Guide plate (26), the top end of which is inserted into the axis of the inner wall of the spring sleeve (22); A secondary buffer strip (27) is inserted at the top end of which is inserted into the bottom of the outer surface of the spring sleeve (22). The pressure base pad (28) is inserted into the upper surface of the secondary buffer strip (27).

3. The electrical safety protection device according to claim 2, characterized in that: The receiving component (1) includes The top of the outer surface of the upper housing (11) is slidably connected to the inner wall of the outer sliding plate (21); Rotary sealing plates (16) are symmetrically arranged on the front and rear sides of the inner wall of the upper housing (11), and the outer surface of the rotating sealing plates (16) is rotatably connected to the inner wall of the upper housing (11) through a rotating shaft. An isolation interlayer (12) is fixedly connected at the top to the bottom of the upper housing (11); A supporting bottom shell (13) is provided, the top of which is inserted into the lower surface of the isolation interlayer (12).

4. The electrical safety protection device according to claim 3, characterized in that: The receiving component (1) further includes: The sliding insert (14) consists of four rods, with the top of each rod extending through a through-hole to the outside of the upper housing (11). The top of each rod is inserted into the top of the inner wall of the outer sliding plate (21), and the bottom of each rod extends into the interior of the supporting bottom housing (13). A spring washer (15) is fitted onto the bottom of the outer surface of each rod.

5. The electrical safety protection device according to claim 4, characterized in that: The receiving component (1) further includes: Rubber protrusions (18) are evenly arranged at the bottom of the outer surface of the processing element (5). The top of the inner cavity of the isolation interlayer (12) is evenly provided with insertion grooves (17). The bottom of the processing element (5) is inserted into the inner wall of the insertion groove (17) through the rubber protrusions (18). The inner sliding sealing plate (19) has its inner cavity connected to the outer surface of the sliding insert rod (14) through an insertion interface. The outer surface of the inner sliding sealing plate (19) is slidably connected to the inner wall of the isolation interlayer (12). A rubber sealing strip (20) is inserted into the center of the bottom of the inner wall of the isolation interlayer (12) through a large groove on its outer surface.

6. The electrical safety protection device according to claim 2, characterized in that: The heat dissipation component (3) includes: The cluster card holder (31) has slots on both sides of its outer surface that are inserted into the center of the top of the inner wall of the upper housing (11); The pressure-sensitive base plate (32) is fixedly connected to the middle of the inner wall of the cluster card holder (31) at the middle of the outer surface of the pressure-sensitive base plate (32). The upper surface of the pressure-sensitive base plate (32) is symmetrically provided with transmission rod pads (33) on both sides. The lower surface of the pressure pad (28) is pressed against the upper surface of the pressure-sensitive base plate (32) through the transmission rod pads (33).

7. The electrical safety protection device according to claim 6, characterized in that: The heat dissipation component (3) also includes: The number of the four unit motors (34) is symmetrically arranged on the left and right sides of the inner wall of the bundle card holder (31). The outer surface of the unit motor (34) is fixedly connected to the inner wall of the bundle card holder (31), and the inner cavity of the unit motor (34) is connected to the inner cavity of the pressure-sensing base plate (32) through the connecting wire.

8. The electrical safety protection device according to claim 7, characterized in that: The heat dissipation component (3) also includes: The fan blade rotating plate (35) has a plug-in shaft at its axis, and the front and rear ends of the plug-in shaft are respectively plugged into the rotating shafts of the front and rear side container motors (34).

9. The electrical safety protection device according to claim 3, characterized in that: The clip device (4) includes: Side fixing shell (41), there are two side fixing shells (41), which are symmetrically arranged on the left and right sides of the inner wall of the upper box shell (11); The air pump plate (42) has its outer surface engaged with the top of the inner wall of the side fixing shell (41), and the air inlet groove on the upper surface of the air pump plate (42) extends to the outside of the side fixing shell (41). Switch buttons (43) are symmetrically arranged on the front and rear sides of the air pump plate (42).

10. The electrical safety protection device according to claim 9, characterized in that: The clip device (4) further includes: An external compression rod (44) is formed, with one end pressing against the outer surface of the switch button (43) and the other end pressing against the outer surface of the rotating sealing plate (16). An expansion cushion (46) is provided at the bottom of the inner wall of the side fixing shell (41), and the outer surface of the expansion cushion (46) extends to the side close to the processing element (5). An arc-shaped adapter pipe (45) is provided, with its top end inserted into the inner cavity of the air pump plate (42) and its bottom end inserted into the inner cavity of the expansion air cushion (46).

Citation Information

Patent Citations

  • Electrical safety protection device for electrical equipment

    CN222826860U