This invention relates generally to electrical appliances, and in particular, it relates to a leakage current protection device for electrical appliance.
With the increased safety awareness relating to electrical appliances, leakage current protection devices are more widely used. There are also increased performance requirements for leakage current protection devices, such as higher power, lower temperature rise, smaller size, increased reliability, etc. These facture influence the design of leakage current protection devices.
The present invention is directed to leakage current protection devices that meet higher performance requirements with increased safety for users.
To achieve the above objects, the present invention provides a leakage current protection device, which includes: a shell; and a core assembly disposed within the shell, wherein the core assembly includes a control circuit board, a trip assembly disposed on the control circuit board, and an input end and an output end connected to the trip assembly; wherein the trip assembly includes a first driving member movable linearly in a first direction and a second driving member pivotable around a pivotal support axis, wherein the first driving member and the second driving member are mechanically engaged with each other and move together with each other, wherein the second driving member has two driving points configured to move in a second direction as the second driving member pivots, the second direction being non-parallel to the first direction, and wherein movements of the two driving points of the second driving member in the second direction are operable to electrically connect or disconnect the input end and the output end.
Based on the above design, the invention may include one or more of the following features.
In some embodiments, the trip assembly further includes a relay coil, wherein the first driving member is a plunger disposed inside the relay coil, and the second driving member is a trip actuator, wherein when the plunger is in its first position, the trip actuator is in its first position which electrically disconnects the input end and output end, and when the plunger is actuated by the relay coil and moves to its second position, the trip actuator moves accordingly to its second position which electrically connects the input end and output end.
In some embodiments, one of the trip actuator and the plunger has a slot and the other one of the trip actuator and the plunger has a corresponding portion that fits in the slot.
In some embodiments, the trip assembly further includes a magnetically permeable device configured to cooperate with the relay coil, the magnetically permeable device includes a magnetic core disposed inside the relay coil, a magnetic frame, and a magnetic plate, wherein the magnetic frame and the magnetic plate are disposed around the relay coil.
In some embodiments, the trip assembly further includes a trip frame, wherein the trip actuator has two pivotal support posts and the trip frame has two corresponding position limiting indentations configured to respectively accommodate the two pivotal support posts, wherein the trip actuator is pivotable around an axis defined by the two pivotal support posts.
In some embodiments, the input end includes a pair of insertion plates, each insertion plate including a stationary contact terminal, wherein the output end includes a pair of resilient contact arms, each resilient contact arm having a moveable contact terminal configured to cooperate with the corresponding stationary contact terminal, and wherein the two driving points of the trip actuator press the moveable contact terminals to contact the corresponding stationary contact terminals.
In some embodiments, the trip frame includes two position limiting slots, wherein the pair of resilient contact arms respectively pass through the two position limiting slots. In some embodiments, the core assembly further includes a detector assembly, and a wiring assembly that passes through the detector assembly, wherein the pair of resilient contact arms are electrically connected to the output end via the wiring assembly.
In some embodiments, the leakage current protection device of further includes: a reset button and a reset conductor embedded in the reset button; a test button and a test conductor embedded in the test button; wherein the reset button and the test button protrude from the shell, and wherein the reset conductor is configured to contact the control circuit board in response to the reset button being depressed, and the test conductor is configured to contact the control circuit board in response to the test button being depressed.
In some embodiments, the reset button and the test button are formed of a flexible insulating material, and the reset conductor and the test conductor are elastically embedded in the reset button and the test button, respectively.
In some embodiments, the leakage current protection device further includes a cable strain relief connected to the shell and extends outside of the shell, and an affixing assembly configured to affix electrical output wires to the shell.
In the embodiment, the trip actuator that causes the electrical connection and disconnection is a component that pivot around an axis. While providing safety protection, this design reduces the size of the leakage current protection device, reduces cost, and reduces manufacturing complexity.
Characteristics and advantages of the present invention may be understood from the detailed descriptions below with reference to the following drawings.
Preferred embodiments of the present and their applications are described below. It should be understood that these descriptions describe embodiments of the present invention but do not limit the scope of the invention. When describing the various components, directional terms such as “up,” “down,” “top,” “bottom” etc. are not absolute but are relative. These terms may correspond to the views in the various illustrations, and can change when the views or the relative positions of the components change. Note that
In this embodiment, the leakage current protection device includes a shell, a core assembly 8 disposed in the shell, which is configured to electrically connect or disconnect the input end and the output end, and a cable strain relief 21 connected to the shell and extends outside of the shell, which is configured to provide waterproof and bend-resistance of the cable. An output electrical cable 2 is electrically connected to the leakage current protection device via the cable strain relief 21. The shell includes a top cover 1, a back cover 3 and a base cover 4, which are fastened to each other by multiple fasteners (such as screws 31 and 41). In alternative embodiments, the back cover 3 and base cover 4 may be an integral piece. The top cover 1 is provided with openings for a reset button 12 (RESET) and a test button 11 (TEST) to extend out of the shell. The reset button 12 and test button 11 may be made of a flexible insulating material, such as rubber. The reset button 12 and test button 11 may be formed as an integral piece, as shown in
In the leakage current protection device, the electrical input end includes a pair of contact arms or other suitable electrical coupling structures, such as line (L) insertion plate (prong) 7 and neutral (N) insertion plate (prong) 6, which may extend out of the shell from openings on the base cover 4. Each insertion plate has a stationary contact terminal, such as a line stationary contact terminal 71 and a neutral stationary contact terminal 61. Correspondingly, the output end includes a pair of resilient contact arms, such as a line resilient contact arm 83 and a neutral resilient contact arm 84. The line and neutral resilient contact arms 83 and 84 have respective moveable contact terminals, such as a line moveable contact terminal 831 and a neutral moveable contact terminal 841, which cooperate with the corresponding line and neutral stationary contact terminals to form electrical switches. Preferably, a ground insertion plate (prong) 5 and a ground conductor plate 51 (see
As shown in
The core assembly 8 of the leakage current protection device is described in more detail below. As shown in
The trip assembly includes a trip frame 85, a trip actuator 81, a plunger 82 and a relay coil 87. The plunger 82 is disposed within the relay coil 87. When the relay coil 87 generates a magnetic field, the plunger 82 is actuated by the magnetic field and moves in a first direction along the internal channel of the relay coil 87. In conventional trip designs, a trip actuator cooperates with the plunger to move in a second direction perpendicular to the first direction, pushing the resilient contact arms to move so that the moveable contact terminals contact the stationary contact terminals, achieving the electrical connection. In embodiments of the present invention, however, the trip actuator 81 is designed to pivot around a pivotal support axis, which converts the movement of the plunger 82 in the first direction to a movement of the trip actuator 81 in the second direction which is non-parallel to (preferably, perpendicular to) the first direction. This design can effectively reduce the distance of travel of the trip actuator 81, which in turn reduces the size of the leakage current protection device and its cost.
More specifically, the plunger 82 and the trip actuator 81 are mechanically engaged with each other and move together with each other, such that: when the plunger 82 is not actuated and is located at a first position, the trip actuator 81 is in a first position so that the input and output ends are electrically disconnected; when the plunger 82 is actuated and moves linearly to a second position, it causes the trip actuator 81 to pivot around a pivotal support axis to a second position so that the input and output ends are electrically connected to each other.
To achieve the above results, in some embodiments, the trip actuator 81 and the plunger 82 are engaged with each other by slots, where one of the trip actuator 81 and the plunger 82 has a slot and the other one has a corresponding portion that fits in the slot. In the embodiment shown in
In some embodiments, the trip actuator 81 has pivotal support posts that allow the trip actuator 81 to pivot relative to the trip frame 85; correspondingly, the trip frame 85 has position limiting indentations that accommodate the pivotal support posts to allow the trip actuator 81 to pivot. It should be understood that, conversely, it is also possible to provide pivotal support posts on the trip frame 85 with corresponding position limiting indentations on the trip actuator 81 to accommodate the posts. In the embodiment shown in
As shown in
As shown in
The operations of the leakage current protection device are described below with reference to
When the leakage current protection device is not connected to the external power source, the relay coil 87 (RELAY in
As shown in
Further, as described earlier, the reset conductor 121 and the test conductor 111 are respectively elastically embedded in the reset button 12 and the test button 11. As shown in
It should be understood that the embodiments shown in the drawings only illustrate the preferred shapes, sizes and spatial arrangements of the various components of the leakage current protection device. These illustrations do not limit the scope of the invention; other shapes, sizes and spatial arrangements may be used without departing from the spirit of the invention.
It will be apparent to those skilled in the art that various modification and variations can be made in the leakage current protection device of the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover modifications and variations that come within the scope of the appended claims and their equivalents.
Number | Date | Country | Kind |
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202010046288.1 | Jan 2020 | CN | national |
202020091363.1 | Jan 2020 | CN | national |