An emergency cut-off protection device for power engineering
By designing an automated emergency cut-off protection device for power engineering, using a battery-powered sliding cabin and electromagnetic lock, combined with an automatic unloading mechanism, the problem of slow and dangerous manual replacement of cylindrical fuses is solved, and fast and safe replacement of cylindrical fuses is achieved, thereby improving the work efficiency of power supply sites.
Patent Information
- Application Number
- CN202411930932.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2044-12-26
AI Technical Summary
Manual replacement of cylinder fuses in power systems is slow, affects work efficiency at power supply sites, and poses operational risks.
An emergency cut-off protection device for power engineering is designed. It uses a battery-powered automated sliding cabin and electromagnetic lock, combined with an automatic unloading mechanism, to achieve automated replacement of cylindrical fuses. It is equipped with a micro hot air blower to maintain a dry environment, and uses a sealing ring to prevent moisture.
It realizes the rapid and automatic replacement of cylindrical fuses, reduces the operation risk, and improves the working efficiency and equipment safety of power supply sites.
Smart Images

Figure CN119742208B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of electric power devices, and in particular to an emergency cut-off protection device for electric power engineering. Background Art
[0002] In large power supply places, such as office places or production and processing workshops, emergency cut-off protection devices will be used in the power system. When the protection device of the power system recognizes an abnormal surge in power consumption, the cylinder fuse in the protection device will automatically disconnect, and the power supply of the entire power system will be cut off in time. At this time, the electrical equipment in the power supply place will be forced to stop running, and the equipment with abnormal power consumption will also stop running, so as to provide emergency protection for the electrical equipment. Afterwards, manual replacement of the cylinder fuse in the protection device is required. If the cylinder fuse of the protection device is not replaced in time, the normal operation of the electrical equipment will be affected, thereby seriously affecting the overall work efficiency of the power supply place. Manual replacement of the cylinder fuse must be done in full beforehand, otherwise there will be greater operational risks, which will prolong the maintenance time of the cylinder fuse. Summary of the Invention
[0003] In order to overcome the shortcomings of manual replacement of cylindrical fuses of protective devices, which is not only slow and affects the overall work efficiency of the power supply site, but also has great operational risks when working with power on, the present invention provides an emergency cut-off protective device for power engineering.
[0004] An emergency cut-off protection device for an electric power project of the present invention includes a waterproof shell, a horizontal plate, a battery, a sliding cabin, a spring, a permanent magnet, an electromagnetic lock, a sealing plug, and an automatic unloading mechanism; an adapter is installed in the waterproof shell; the circuit system of the adapter is electrically connected to a positive electrode sheet and a negative electrode sheet in sequence; the adapter is electrically connected to the battery; a sliding cabin is slidably connected in the waterproof shell; a cylindrical fuse in an energized state is placed in the accommodating channel of the sliding cabin; a horizontal plate is fixed in the waterproof shell; the sliding cabin is slidably connected to the horizontal plate; the bottom of the cylindrical fuse in the sliding cabin is tightly against the horizontal plate; a spring is fixed between the sliding cabin and the waterproof shell; a permanent magnet is fixed on the sliding cabin; an electromagnetic lock is installed in the waterproof shell, and the electromagnetic lock is electrically connected to the battery through the circuit system; the automatic unloading mechanism is connected to the waterproof shell; a sealing plug is fixed to the sliding cabin; the sealing plug is tightly against the discharge port area of the automatic unloading mechanism.
[0005] Further explanation: the horizontal board is made of rubber.
[0006] Further explanation: the adapter is electrically connected with a power off button.
[0007] Further explanation: the sliding cabins are all made of waterproof plastic material.
[0008] It is further explained that the automatic unloading mechanism includes a storage shell, a push plate, a tension spring and a sealing ring; the storage shell is fixedly connected to the waterproof shell, and all spare cylindrical fuses are arranged inside the storage shell; a unloading port structure is opened at the bottom of the storage shell, and the unloading port serves as the discharge port area of the automatic unloading mechanism; the sealing plug is tightly attached to the unloading port of the storage shell; a push plate is slidingly connected to the side of the storage shell away from the unloading port; a tension spring is fixedly connected to the push plate and the storage shell; the unloading port of the storage shell is fixedly connected to the sealing ring, and in the initial state, the sealing plug is tightly attached to the sealing ring to seal and block the unloading port of the storage shell, thereby improving the interception effect of external humid air, and preventing a large amount of external humid air from passing through the unloading port into the storage shell, posing a safety threat to the storage environment of the cylindrical fuses inside the storage shell.
[0009] Further explanation: an electric push rod is installed on the waterproof shell, and the electric push rod is electrically connected to the battery through the circuit system; a sliding rod is slidably connected to the storage shell; and the telescopic end of the electric push rod is fixed to the sliding rod.
[0010] To further explain, a micro rangefinder is installed on the top of the slide rod and is aligned with the feed opening. The micro rangefinder is electrically connected to the battery through the circuit system.
[0011] It is further explained that a cavity structure is provided inside the sliding cabin; a micro hot air blower is installed in the internal cavity of the sliding cabin; an air inlet structure connected to the internal cavity is opened on the sliding cabin; a first air outlet structure connected to the internal cavity is opened in the accommodating channel of the sliding cabin; and each first air outlet is provided with a water-absorbing cotton.
[0012] Further explanation: the air intake is located on the side close to the waterproof housing.
[0013] It is further explained that a plurality of second air vent structures connected to the internal cavity are provided on the upper side of the accommodating channel of the sliding cabin; each second air vent is provided with a water-absorbing cotton.
[0014] The beneficial effects of the present invention are as follows: the present invention describes an emergency cut-off protection device for electric power engineering, wherein a sliding compartment for placing a cylindrical fuse slides inside a waterproof housing. In a power-off state, the sliding compartment is powered by a battery on an adapter, and the opening and closing of the sliding compartment can be automatically operated by an electromagnetic lock and a spring, thereby realizing rapid and automatic replacement of the cylindrical fuse in the sliding compartment in conjunction with an automatic unloading mechanism.
[0015] The unloading port of the storage shell of the automatic unloading mechanism is also equipped with a moisture-proof sealing ring. When the automatic unloading mechanism pushes the new cylindrical fuse into the sliding chamber, it can also use the sealing ring to control the unloading speed of the cylindrical fuse, so as to prevent the cylindrical fuse from falling and being damaged during the replacement work. At the same time, in conjunction with the micro hot air blower built into the sliding chamber, the storage shell and the sliding chamber are kept dry during the replacement of the cylindrical fuse, which is not only conducive to providing a safe working environment for the cylindrical fuse inside the waterproof shell, but also conducive to providing a safe storage environment for the cylindrical fuse inside the storage shell.
[0016] The invention overcomes the disadvantages that manual replacement of the cylindrical fuse of the protection device is not only slow, affecting the overall work efficiency of the power supply site, but also has great operational risks when working with power on. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 A schematic diagram for describing the present invention according to an embodiment;
[0018] Figure 2 A cross-sectional view of a waterproof shell and a storage shell according to an embodiment of the present invention is provided;
[0019] Figure 3 A schematic diagram of an adapter for describing the present invention according to an embodiment;
[0020] Figure 4 A cross-sectional view of a waterproof housing according to an embodiment of the present invention is provided;
[0021] Figure 5 A cross-sectional view of a storage housing is provided to describe the present invention according to an embodiment;
[0022] Figure 6 A schematic diagram of a sliding cabin is provided to describe the present invention according to an embodiment;
[0023] Figure 7 A schematic diagram illustrating the positional relationship between the accommodating channel and the horizontal plate when removing a damaged cylindrical fuse according to an embodiment of the present invention;
[0024] Figure 8 This is a schematic diagram illustrating the positional relationship between the accommodating channel and the horizontal plate when replacing a good cylindrical fuse according to an embodiment of the present invention;
[0025] Figure 9 The present invention is a schematic diagram illustrating a state in which a slide rod and a micro-rangefinder in a storage shell push a cylindrical fuse to fall according to an embodiment of the present invention.
[0026] Markings in the accompanying drawings: 1-waterproof shell, 11-horizontal plate, 2-adapter, 21-positive electrode sheet, 22-negative electrode sheet, 23-battery, 24-power-off button, 3-cylinder fuse, 31-sliding compartment, 3101-accommodation channel, 3102-air inlet, 3103-first air outlet, 3104-second air outlet, 32-spring, 33-permanent magnet, 34-electromagnetic lock, 35-sealing plug, 36-micro hot air blower, 4-storage shell, 401-feeding port, 41-push plate, 42-tension spring, 51-electric push rod, 52-sliding rod, 53-micro rangefinder, 54-sealing ring. DETAILED DESCRIPTION
[0027] The present invention will be further described below with reference to specific embodiments. The illustrative embodiments and descriptions of the present invention are used to explain the present invention but are not intended to limit the present invention.
[0028] Example 1
[0029] An emergency cut-off protection device for power engineering, such as Figures 1-6 As shown, it includes a waterproof shell 1, a horizontal plate 11, an adapter 2, a positive electrode sheet 21, a negative electrode sheet 22, a battery 23, a cylindrical fuse 3, a sliding cabin 31, a spring 32, a permanent magnet 33, an electromagnetic lock 34, a sealing plug 35, and an automatic unloading mechanism; the adapter 2 is installed in the waterproof shell 1, and the adapter 2 is externally connected to the total circuit system; the circuit system of the adapter 2 is electrically connected to the positive electrode sheet 21 and the negative electrode sheet 22 in sequence; the adapter 2 is electrically connected to the battery 23; the inner front side of the waterproof shell 1 is slidably connected to the sliding cabin 31; the cylindrical fuse 3 is placed in the accommodating channel 3101 of the sliding cabin 31; the positive and negative poles of the cylindrical fuse 3 are respectively close to the positive electrode sheet 21 and the negative electrode sheet 22, and the cylindrical fuse 3 forms a complete power-on state with the total circuit system external to the adapter 2 through the positive electrode sheet 21 and the negative electrode sheet 22, and the external total circuit system will only charge the battery 23 The electric power will not be consumed by the battery 23; a horizontal plate 11 is fixed in the waterproof shell 1; the sliding cabin 31 is slidably connected to the horizontal plate 11 through a through groove; the bottom of the cylindrical fuse 3 in the sliding cabin 31 is close to the horizontal plate 11, and the horizontal plate 11 provides bottom support for the cylindrical fuse 3 in the sliding cabin 31; a spring 32 is fixed between the sliding cabin 31 and the waterproof shell 1; a permanent magnet 33 is fixed on the sliding cabin 31; an electromagnetic lock 34 is installed in the waterproof shell 1, and the electromagnetic lock 34 is electrically connected to the battery 23 through the circuit system; the electromagnetic lock 34 in the energized state generates an electromagnetic attraction on the permanent magnet 33, so that the permanent magnet 33 remains in a state close to the electromagnetic lock 34, thereby fixing the position of the sliding cabin 31, and at this time the spring 32 is in a compressed state; an automatic unloading mechanism is connected to the waterproof shell 1; a sealing plug 35 is fixed on the sliding cabin 31; the sealing plug 35 is close to the discharge port area of the automatic unloading mechanism.
[0030] like Figure 4 As shown, the horizontal plate 11 is made of rubber. When the sliding compartment 31 pops out from the waterproof shell 1 to replace the cylindrical fuse 3, the new cylindrical fuse 3 falls downward along the accommodating channel 3101 of the sliding compartment 31 onto the horizontal plate 11. The rubber horizontal plate 11 can provide buffering protection for the fallen cylindrical fuse 3. The sliding compartments 31 are all made of waterproof plastic material.
[0031] like Figure 2 As shown, the adapter 2 is electrically connected to a power-off button 24. When manual replacement of the cylindrical fuse 3 is required on a regular basis, the staff only needs to press the power-off button 24 to cut off the power supply to the circuit system of the entire adapter 2. After forcibly closing the electromagnetic lock 34, the spring 32, which is initially in a compressed state, can pop the sliding compartment 31 and the cylindrical fuse 3 inside it out of the waterproof shell 1, making it easier to manually replace the cylindrical fuse 3.
[0032] As shown in 1 and 5, the automatic unloading mechanism includes a storage shell 4, a push plate 41, a tension spring 42, an electric push rod 51, a slide rod 52, a micro rangefinder 53 and a sealing ring 54; the storage shell 4 is fixedly connected to the waterproof shell 1, and all the spare cylindrical fuses 3 are arranged in the front-to-back direction and placed inside the storage shell 4; a discharge port 401 structure is provided at the bottom of the storage shell 4, and the discharge port 401 serves as the discharge port area of the automatic unloading mechanism; the sealing plug 35 is close to the discharge port 401 of the storage shell 4; the storage shell 4 is slidably connected to the push plate 41 on the side away from the discharge port 401; a tension spring 42 is fixedly connected between the push plate 41 and the storage shell 4, and the tension spring 42 is initially in a stretched state; the push plate 41 is pulled forward and close to the first spare cylindrical fuse 3 on the rear side by the stretched tension spring 42; an electric push rod 51 is fixedly connected to the storage shell 4 The push rod 51 is movable and electrically connected to the battery 23 through the circuit system; a slide rod 52 is slidably connected to the storage shell 4 to push the cylindrical fuse 3 downward through the discharge port 401; the telescopic end of the electric push rod 51 is fixed to the slide rod 52; a miniature rangefinder 53 is installed on the top of the slide rod 52 and is aligned with the discharge port 401 up and down, and the miniature rangefinder 53 is electrically connected to the battery 23 through the circuit system; the discharge port 401 of the storage shell 4 is fixed with a sealing ring 54. In the initial state, the sealing plug 35 is tightly attached to the sealing ring 54 to seal and block the discharge port 401 of the storage shell 4, thereby improving the interception effect of external humid air and preventing a large amount of external humid air from passing through the discharge port 401 into the storage shell 4, posing a safety threat to the storage environment of the cylindrical fuse 3 inside the storage shell 4.
[0033] In the replacement work of the cylinder fuse 3 of the power engineering emergency cut-off protection device of the present invention, the following operations need to be performed for ease of understanding. Figure 2 As shown, the sealing plug 35 is in the front direction relative to the cylindrical fuse 3. Figure 2As shown, the positive electrode sheet 21 is located to the right relative to the cylindrical fuse 3 .
[0034] The top of the storage case 4 features a removable and reclosable cover. A certain number of intact cylindrical fuses 3 must be pre-loaded into the storage case 4 for future use. When a cylindrical fuse 3 within the sliding compartment 31 experiences an abnormal surge in power consumption in the external main circuit system while energized, it will automatically burn out, immediately shutting off power to the entire power system. At this point, the external main circuit system connected to the adapter 2 is de-energized, and the battery 23 alone provides power to the power engineering emergency cutoff protection device of the present invention.
[0035] Then the electromagnetic lock 34 reverses the electromagnetic field and applies electromagnetic repulsion to the permanent magnet 33. Under the combined action of the electromagnetic repulsion and the thrust of the compressed spring 32, the permanent magnet 33 pushes the sliding compartment 31 to drive the cylindrical fuse 3 inside it to pop out from the waterproof shell 1. When the permanent magnet 33 pushes the cylindrical fuse 3 to pop out to the position as shown in the figure, the cylindrical fuse 3 is pushed forward by the electromagnetic repulsion. Figure 7 In the state, the spring 32 is in a stretched state, the horizontal plate 11 leaves the accommodating channel 3101 of the sliding compartment 31, and the bottom of the cylindrical fuse 3 is no longer in contact with the horizontal plate 11 and is no longer supported by the horizontal plate 11. Therefore, the cylindrical fuse 3 will fall directly downward from the sliding compartment 31 along the accommodating channel 3101 to the distribution box of the external main circuit system. In the process of the cylindrical fuse 3 passing through the positive electrode sheet 21 and the negative electrode sheet 22, because the positive electrode sheet 21 and the negative electrode sheet 22 are arc-shaped, combined with Figure 8 It is understood that when the cylindrical fuse 3 wants to restore or break away from the contact with the positive electrode sheet 21 and the negative electrode sheet 22, it is necessary to first slightly squeeze and push the positive electrode sheet 21 and the negative electrode sheet 22 apart. During the squeezing and pushing process, the cylindrical fuse 3 will be subjected to the blocking force brought by the positive electrode sheet 21 and the negative electrode sheet 22, but the blocking force is small and does not affect the normal ejection work and subsequent insertion work of the cylindrical fuse 3, thereby completing the automatic disengagement work of the old cylindrical fuse 3.
[0036] After that, the electromagnetic lock 34 stops the electromagnetic repulsion force exerted on the permanent magnet 33, and only the stretched spring 32 pulls the sliding cabin 31 backward to the position as shown in FIG. Figure 8In the state, the accommodating channel 3101 of the sliding chamber 31 is aligned with the discharge opening 401 of the storage shell 4, and the sealing plug 35 of the sliding chamber 31 leaves the discharge opening 401 of the storage shell 4. The cross plate 11 returns to the accommodating channel 3101 of the sliding chamber 31, and then the electric push rod 51 pushes the slide rod 52 to drive the first cylindrical fuse 3 on the front side of the storage shell 4, and pushes it downward into the accommodating channel 3101 of the sliding chamber 31. When the micro rangefinder 53 is used to connect the cylindrical fuse 3 After being completely pushed downward from the storage shell 4, the electric push rod 51 stops driving the micro-rangefinder 53 to move, and then the cylindrical fuse 3 will continue to fall downward along the accommodating channel 3101 of the sliding compartment 31. At the same time, the micro-rangefinder 53 monitors the subsequent falling distance of the cylindrical fuse 3. When the micro-rangefinder 53 recognizes that the cylindrical fuse 3 has fallen to the specified distance, it means that the cylindrical fuse 3 has successfully fallen onto the horizontal plate 11, and the automatic unloading of the new cylindrical fuse 3 is completed.
[0037] During this period, the cylindrical fuse 3 moving downward will be subjected to sliding friction from the sealing ring 54, causing the cylindrical fuse 3 to be slowly pushed downward from the discharge port 401 of the storage shell 4, thereby preventing the cylindrical fuse 3 from falling directly through the discharge port 401 of the storage shell 4 into the accommodating channel 3101 of the sliding compartment 31, causing the cylindrical fuse 3 to be damaged by a strong falling impact, thereby affecting the safe working state of the cylindrical fuse 3 inside the waterproof shell 1.
[0038] During the automatic unloading process of the new cylindrical fuse 3, if Figure 9 As shown, the micro rangefinder 53 is in a state of blocking the discharge port 401 of the storage shell 4, and the remaining cylindrical fuses 3 in the storage shell 4 will be blocked by the slide bar 52. After the automatic discharge of the new cylindrical fuse 3 is completed, the electric push rod 51 pulls the slide bar 52 to reset upward, and then the tension spring 42 in the stretched state contracts to push the push plate 41 to move forward, and the push plate 41 pushes the remaining cylindrical fuses 3 in the storage shell 4 to move forward until the first existing cylindrical fuse 3 in the storage shell 4 is aligned with the discharge port 401. At the same time, the electromagnetic lock 34 exerts the electromagnetic attraction of the permanent magnet 33 again. Under the action of the electromagnetic attraction, the permanent magnet 33 pulls the sliding cabin 31 and the new cylindrical fuse 3 inside it back into the waterproof shell 1, and the spring 32 is compressed again, allowing the cylindrical fuse 3 to once again form a complete power-on state through the positive electrode sheet 21 and the negative electrode sheet 22 and the total circuit system external to the adapter 2, completing the automatic replacement of the cylindrical fuse 3.
[0039] Example 2
[0040] On the basis of Example 1, Figure 1-Figure 5As shown, the sliding cabin 31 of this embodiment is provided with a cavity structure inside; a micro hot air blower 36 is installed in the internal cavity of the sliding cabin 31, and the micro hot air blower 36 is electrically connected to the battery 23 through the circuit system; an air inlet 3102 structure connected to the internal cavity is opened on the sliding cabin 31, and the air inlet 3102 is located on the side close to the waterproof shell 1; a plurality of first air vents 3103 structures connected to the internal cavity are opened in the accommodating channel 3101 of the sliding cabin 31; when the sliding cabin 31 is in the state of being inserted into the waterproof shell 1, the sliding cabin 3 The air inlet 3102 on the right side of the sliding chamber 31 is blocked by the waterproof housing 1, preventing moist air from entering the air inlet 3102. This prevents moist air from entering the interior of the waterproof housing 1 through the air inlet 3102 and the first air outlet 3103 of the sliding chamber 31, thereby posing a safety threat to the working environment of the cylindrical fuse 3. Several second air outlets 3104 structures connected to the internal cavity are provided on the upper side of the accommodating channel 3101 of the sliding chamber 31. Each first air outlet 3103 and each second air outlet 3104 is provided with a water-absorbing cotton.
[0041] When the outside air is in a humid state, when the sliding cabin 31 pops out from the waterproof shell 1 to replace the cylindrical fuse 3, the micro hot air blower 36 is in an open state. After the outside humid air is drawn into the internal cavity through the air inlet 3102 of the sliding cabin 31 by the micro hot air blower 36, the humid air flow flows out through the first air outlet 3103 and the second air outlet 3104 in a hot air flow state under the heat drying effect of the micro hot air blower 36. At the same time, the absorbent cotton absorbs the moisture in the hot air flow, allowing the hot air flow to flow out in a dry state.
[0042] The hot air flow out of the first air outlet 3103 performs surface air drying treatment on the cylindrical fuse 3 newly placed in the accommodating channel 3101 of the sliding cabin 31, so that when the sliding cabin 31 pushes the cylindrical fuse 3 into the waterproof shell 1, the air entering the waterproof shell 1 along with the sliding cabin 31 and the cylindrical fuse 3 is in a dry state, so that the interior of the waterproof shell 1 is kept in a dry environment, which is conducive to providing a safe working environment for the cylindrical fuse 3 inside the waterproof shell 1.
[0043] In addition, the hot air flow out of the second air outlet 3104 directly passes upward through the discharge port 401 of the storage shell 4 and enters the interior of the storage shell 4, so that the interior of the storage shell 4 is replaced with new dry air, so that the interior of the storage shell 4 is also kept in a dry environment, which is beneficial to provide a safe storage environment for the cylindrical fuse 3 inside the storage shell 4. At the same time, in the process of the hot air flow flowing upward through the sealing ring 54, the sealing ring 54 can be quickly dried, allowing the sealing ring 54 to restore its original water-proof sealing effect.
[0044] While the present disclosure has been described with respect to only a limited number of embodiments, those skilled in the art, having benefit of this disclosure, will appreciate that numerous other embodiments can be devised without departing from the scope of the invention. Accordingly, the scope of the present invention should be limited only by the claims appended hereto.
Claims
1. An emergency cut-off protection device for electric power engineering, comprising: a waterproof housing (1); An adapter (2) is installed in the waterproof housing (1); the circuit system of the adapter (2) is electrically connected to the positive electrode sheet (21) and the negative electrode sheet (22) in sequence; Its characteristics are: The device further comprises a battery (23); the adapter (2) is electrically connected to the battery (23); a sliding compartment (31) is slidably connected to the waterproof shell (1); a cylindrical fuse (3) in an energized state is placed in the accommodating channel (3101) of the sliding compartment (31); a transverse plate (11) is fixedly connected to the waterproof shell (1); the sliding compartment (31) is slidably connected to the transverse plate (11); the bottom of the cylindrical fuse (3) in the sliding compartment (31) is in close contact with the transverse plate (11); a spring (32) is fixedly connected between the sliding compartment (31) and the waterproof shell (1); a permanent magnet (33) is fixedly connected to the sliding compartment (31); an electromagnetic lock (34) is installed in the waterproof shell (1), and the electromagnetic lock (34) is electrically connected to the battery (23) through a circuit system; an automatic unloading mechanism is connected to the waterproof shell (1); a sealing plug (35) is fixedly connected to the sliding compartment (31); the sealing plug (35) is in close contact with the discharge port area of the automatic unloading mechanism; The automatic unloading mechanism comprises a storage shell (4), a push plate (41), a tension spring (42) and a sealing ring (54); the storage shell (4) is fixedly connected to the waterproof shell (1), and all spare cylindrical fuses (3) are arranged and placed inside the storage shell (4); a discharge port (401) structure is opened at the bottom of the storage shell (4), and the discharge port (401) serves as the discharge port area of the automatic unloading mechanism; the sealing plug (35) is closely attached to the discharge port (401) of the storage shell (4); the storage shell (4) is slidably connected to the push plate (42) on the side away from the discharge port (401) 41); a tension spring (42) is fixedly connected between the push plate (41) and the storage shell (4); a sealing ring (54) is fixedly connected to the discharge port (401) of the storage shell (4); in the initial state, the sealing plug (35) is tightly attached to the sealing ring (54) to seal and block the discharge port (401) of the storage shell (4), thereby improving the interception effect of external humid air and preventing a large amount of external humid air from passing through the discharge port (401) and entering the storage shell (4), thereby posing a safety threat to the storage environment of the cylindrical fuse (3) inside the storage shell (4).
2. The power engineering emergency cut-off protection device according to claim 1, characterized in that: The horizontal plate (11) is made of rubber.
3. The power engineering emergency cut-off protection device according to claim 1, characterized in that: The adapter (2) is electrically connected to a power-off button (24).
4. The power engineering emergency cut-off protection device according to claim 1, characterized in that: The sliding compartment (31) is made of waterproof plastic material.
5. The power engineering emergency cut-off protection device according to claim 1, characterized in that: An electric push rod (51) is installed on the waterproof shell (1), and the electric push rod (51) is electrically connected to the battery (23) through the circuit system; a slide rod (52) is slidably connected to the storage shell (4); and the telescopic end of the electric push rod (51) is fixedly connected to the slide rod (52).
6. The power engineering emergency cut-off protection device according to claim 5, characterized in that: A micro-rangefinder (53) aligned with the feed opening (401) is mounted on the top of the slide bar (52), and the micro-rangefinder (53) is electrically connected to the battery (23) via a circuit system.
7. The power engineering emergency cut-off protection device according to any one of claims 5-6, characterized in that: A cavity structure is provided inside the sliding cabin (31); a micro hot air blower (36) is installed in the cavity inside the sliding cabin (31); an air inlet (3102) structure connected to the internal cavity is provided on the sliding cabin (31); a first air outlet (3103) structure connected to the internal cavity is provided in the accommodating channel (3101) of the sliding cabin (31); and each first air outlet (3103) is provided with a water-absorbing cotton.
8. The power engineering emergency cut-off protection device according to claim 7, characterized in that: The air inlet (3102) is located near one side of the waterproof housing (1).
9. The power engineering emergency cut-off protection device according to claim 8, characterized in that: A plurality of second air vents (3104) structures connected to the internal cavity are provided on the upper side of the accommodating channel (3101) of the sliding cabin (31); each second air vent (3104) is provided with a water-absorbing cotton.
Citation Information
Patent Citations
Economical fuse for circuit protection
CN115547779A