Electric shock preventing device for wire socket
Technical Field
The utility model relates to the technical field of wire sockets, in particular to an electric shock prevention device for a wire socket.
Background
The electric wire socket, also called as power socket and switch socket, is one or more sockets into which circuit wires can be inserted, through which various wires can be inserted, so that the electric wire socket can be conveniently connected with other circuits, and through connection and disconnection between the wires and copper parts, the connection and disconnection of the circuit can be finally achieved.
The current wire socket is in the use through inserting the conducting cavity in the socket with load sheetmetal to this realizes switching on the circuit and supplies power to the load, and above-mentioned mode is in the use, because the conducting cavity is naked all the time, and then leads to dust and steam to get into its inside, causes the electric shock accident because of the short circuit easily, leads to its security lower, consequently, the urgent need wire socket protection against electric shock device solves above-mentioned problem.
Disclosure of utility model
First, the technical problem to be solved
Aiming at the current state of the art, the utility model provides the wire socket which can seal, waterproof and dustproof the conductive cavity, is convenient for plugging and has high safety.
(II) technical scheme
The utility model provides an electric shock prevention device for an electric wire socket, which comprises a power supply seat, wherein a conductive cavity is formed in the upper end of the power supply seat, a concave cavity is formed in the outer side of the top end of the conductive cavity, two groups of telescopic columns are symmetrically arranged in the concave cavity, springs are sleeved outside the telescopic columns, a sealing plate is fixed at the movable end of the telescopic columns, an insulating pad is arranged on one side wall of the sealing plate, one side of the conductive cavity is connected with a conductive sheet, a wiring hole is formed in one side of the conductive sheet, and a line pressing screw is arranged on the wiring hole.
Further, the conductive cavity is formed on the power supply seat, and the wiring hole is formed on the power supply seat.
By adopting the technical scheme, the wiring hole is used for wiring, and the conductive cavity is used for being connected with the metal contact piece of the load plug.
Further, the conducting strip is fixed in the wiring hole through a screw, the other end of the conducting strip is electrically connected with the conducting cavity, and the line pressing screw is in threaded connection with the power supply seat.
By adopting the technical scheme, the wire can be fixed on the conducting strip by the wire pressing screw, so that the conducting cavity is electrified.
Further, the concave cavity is formed on the power supply seat, the fixing part of the telescopic column is connected with the concave cavity through a screw, and the spring is welded on the outer side wall of the telescopic column.
By adopting the technical scheme, the telescopic column and the spring are combined, so that the sealing plate has certain moving performance.
Further, the sealing plate is connected with the movable end of the telescopic column through a screw, the sealing plate is made of an insulating material, and the insulating pad is adhered to the sealing plate.
Through adopting above-mentioned technical scheme, at external plug insertion in-process, the plug passes through insulating pad is right external force is applyed to the closing plate, and then makes flexible post and the spring compresses, can guarantee its normal insertion performance, and when idle, relies on flexible post with the resilience force of spring is automatic will the closing plate resets, makes the closing plate with insulating pad is right conductive cavity seals, prevents water and dust to it, avoids causing the electric shock accident because of short circuit or contact failure, effectively improves the security when socket uses.
Further, a shell is arranged on one side of the power supply seat, and the shell is connected with the power supply seat through a buckle.
By adopting the technical scheme, the shell can seal the power supply seat, so that the attractiveness of the power supply seat is ensured.
Further, two groups of through cavities are formed in the shell, and the positions of the through cavities correspond to the positions of the conductive cavities.
By adopting the technical scheme, the through cavity ensures the plugging performance of the external plug.
Furthermore, mounting holes are formed in four corners of the upper end of the power supply seat, and the mounting holes are threaded holes.
By adopting the technical scheme, the mounting holes are convenient for mounting the power supply seat in the wall.
(III) beneficial effects
Compared with the prior art, the utility model has the following beneficial effects:
In order to solve the problem that the safety of the existing wire socket is lower because dust and water vapor can enter the conductive cavity due to the fact that the conductive cavity is always exposed in the use process and electric shock accidents are easily caused by short circuits, the plug applies external force to the sealing plate through the insulating pad in the use process, the sealing plate is compressed through the insulating pad, normal insertion performance of the sealing plate can be guaranteed, and the sealing plate is automatically reset through resilience force of the sealing plate and the insulating pad when the wire socket is idle, so that the sealing plate and the insulating pad seal the conductive cavity, and electric shock accidents caused by short circuits or poor contact are avoided.
Drawings
Fig. 1 is a schematic structural view of an electric shock prevention device for an electric wire socket according to the present utility model;
Fig. 2 is a front cross-sectional view of a power supply base of the electric wire socket electric shock protection device when a conductive cavity is idle;
fig. 3 is a front cross-sectional view of a power supply base when a conductive cavity of the electric wire socket anti-electric shock device is used;
fig. 4 is an enlarged view of a portion a of fig. 3 of an electric shock prevention device for an electric wire socket according to the present utility model.
The reference numerals are explained as follows:
1. The device comprises a shell, a power supply seat, a through cavity, a wiring hole, a wire pressing screw, a 6, a conducting plate, a 7, a concave cavity, an 8, a telescopic column, a 9, a spring, a 10, a sealing plate, an 11, an insulating pad, a 12, a conducting cavity and a 13, and a mounting hole.
Detailed Description
The present utility model will be described in further detail with reference to the drawings and examples, in order to make the objects, technical solutions and advantages of the present utility model more apparent. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the utility model.
As shown in fig. 1-4, an electric shock protection device for an electric wire socket in this embodiment includes a power supply seat 2, a conductive cavity 12 is provided at the upper end of the power supply seat 2, a cavity 7 is provided at the outer side of the top end of the conductive cavity 12, two groups of telescopic columns 8 are symmetrically installed in the cavity 7, a spring 9 is sleeved at the outer side of the telescopic columns 8, a sealing plate 10 is fixed at the movable end of the telescopic columns 8, an insulating pad 11 is provided on one side wall of the sealing plate 10, in the process of inserting an external plug, the plug applies an external force to the sealing plate 10 through the insulating pad 11, so that the telescopic columns 8 and the spring 9 compress, and can ensure the normal insertion performance, and when idle, the sealing plate 10 and the insulating pad 11 are automatically reset to seal the conductive cavity 12, and prevent electric shock accidents caused by short circuit or poor contact, a wiring hole 4 is provided at one side of the conductive cavity 12, the conductive cavity 12 is used for connecting with a metal contact patch of a load plug, the wiring hole 4 is used for wiring, the conductive cavity 12 is used for connecting with a wiring plug, and a wire 5 is installed on the wiring hole 4, and the wiring plug 5 can be fixed on the conductive patch 6, so that the wiring plug 12 can be electrically connected with the wiring plug.
As shown in fig. 1-4, in this embodiment, a conductive cavity 12 is formed on a power supply seat 2, a wiring hole 4 is formed on the power supply seat 2, a conductive sheet 6 is fixed in the wiring hole 4 by a screw, the other end of the conductive sheet 6 is electrically connected with the conductive cavity 12, a wire pressing screw 5 is in threaded connection with the power supply seat 2, a cavity 7 is formed on the power supply seat 2, a fixing part of a telescopic column 8 is connected with the cavity 7 by a screw, a spring 9 is welded on the outer side wall of the telescopic column 8, a sealing plate 10 is connected with the movable end of the telescopic column 8 by a screw, the sealing plate 10 is made of an insulating material, and an insulating pad 11 is bonded on the sealing plate 10.
As shown in fig. 1-4, in this embodiment, a housing 1 is disposed on one side of a power supply seat 2, the housing 1 is connected with the power supply seat 2 through a buckle, the housing 1 can seal the power supply seat 2 to ensure its aesthetic degree, two sets of through cavities 3 are provided on the housing 1, the positions of the through cavities 3 correspond to the positions of the conductive cavities 12, the through cavities 3 ensure the plugging performance of external plugs, mounting holes 13 are provided at four corners of the upper end of the power supply seat 2, the mounting holes 13 are threaded holes, and the mounting holes 13 facilitate the installation of the power supply seat 2 in a wall.
The specific implementation process of the embodiment is as follows, the power supply seat 2 is installed on a wall through the installation hole 13, then an electric wire is inserted into the wiring hole 4 and fixed through the line pressing screw 5, then the shell 1 is fixed on the power supply seat 2, in the use process, the plug applies external force to the sealing plate 10 through the insulating pad 11, and further the telescopic column 8 and the spring 9 are compressed, so that the normal insertion performance of the socket can be ensured, and in the idle process, the sealing plate 10 is automatically reset by the resilience force of the telescopic column 8 and the spring 9, the sealing plate 10 and the insulating pad 11 seal the conductive cavity 12, the waterproof and dustproof effects are realized, the electric shock accidents caused by short circuit or poor contact are avoided, and the safety of the socket in use is effectively improved.
The previous description of the disclosed embodiments is provided to enable any person skilled in the art to make or use the present utility model. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the spirit or scope of the utility model. Thus, the present utility model is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.