The present invention relates to the technical field of power electronics, and in particular, to a DC magnetic system and a power equipment.
A contactor, an electronic device commonly used in a power system, is able to close a contact using a magnetic field generated by a current flowing through a coil so as to control a load. Generally, a contactor mainly includes a DC electromagnetic system for transmission, a contact system for performing switching on and off, and an electric arc extinguishing device for extinguishing an electric arc. The DC electromagnetic system is one of the important components of the contactor, which generally includes a magnetic conductive body, an electromagnetic coil, a control circuit, and etc.
A conventional magnetic conductive body generally adopts the following two solutions: the first solution adopts a laminated yoke and a laminated armature. Costs are controllable in this solution; however, since the lamination needs to reach a certain thickness for riveting using rivets, the overall volume is relatively large, which in turn imposes limitations on the space when using this solution; the other solution adopts a bent and stamped yoke and an armature formed by machined members. The volume is adjustable in this solution; however, production costs of the armature is relatively high, resulting in difficulty in mass production and promoted use.
Therefore, a DC magnetic system of a smaller size with lower costs is currently desirable.
With respect to the above problems in the prior art, the present invention provides a DC magnetic system, comprising a yoke and an armature, wherein the yoke comprises a U-shaped magnetic conductive member and an armature moving up and down in a limited space within the U-shaped magnetic conductive member, the armature being of a laminated structure.
Preferably, the yoke further comprises a cover plate with a through hole, and the armature passing through the through hole of the cover plate so as to be inserted into the yoke.
Preferably, when moving up and down, a bottom surface of the armature is in direct contact with an inner side of a bottom surface of the magnetic conductive member.
Preferably, the yoke further comprises a seat connected to an inner side of a bottom surface of the U-shaped magnetic conductive member; and when moving up and down, the bottom surface of the armature is in contact with an upper surface of the seat.
Preferably, the seat has a laminated structure.
Preferably, the upper surface of the seat is of a platform-like structure, the armature having a flat bottom surface structure matching the upper surface of the seat in size.
Preferably, the seat is of a square structure having an inverted trapezoidal recess provided on the upper surface thereof, the armature having a trapezoidal lower portion structure matching the inverted trapezoidal recess of the upper surface of the seat in size.
Preferably, the DC magnetic system further comprises an induction coil provided on an outer side of the yoke and wound around a frame, and a control circuit connected to the induction coil and used for controlling a current in the induction coil.
Preferably, the DC magnetic system further comprises a conductor provided within a plastic frame above the induction coil; one end of the conductor being connected to the control circuit, and the other end thereof being connected to an external power source.
According to another aspect of the present invention, a power equipment is further provided, comprising the above DC magnetic system.
The DC magnetic system provided by the present invention adopts a magnetic conductive body formed by combining a single-piece bent yoke structure manufactured by means of a mature process and a laminated armature structure, which not only reduces the overall volume of the magnetic conductive body without increasing costs, but such a design also guarantees a relatively low energy consumption level. In addition, a preferred magnetic conductive member structure with a boss is also used in conjunction with the armature, thereby improving the yoke's capability in transmitting magnetic lines of force.
To make objectives, technical solutions, and advantages of the present invention clearer and more comprehensible, the present invention will be further described in detail below through specific embodiments with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only intended to explain the present invention, rather than to limit the present invention.
The operating principle of a DC controlled contactor is different from that of an AC controlled contactor; in existing design solutions, when a contact housing frame of a DC controlled contactor is the same as that of an AC controlled contactor in size, the size of the DC control contactor is generally about 10% larger than that of the AC controlled contactor. In addition, the inventor has noticed that the reason for having a larger DC controlled contactor is mainly because the volume of a magnet in a magnetic conductive body is relatively large.
In order to reduce the size of the DC controlled contactor while maintaining an energy consumption level similar to the original low energy consumption level, the inventor has proposed a DC controlled contactor after research. The main design idea is that a magnetic conductive body of a DC magnetic system adopts a combination of a bent single-piece yoke and a laminated armature. Such a design reduces the volume of the DC magnetic system; at the same time, the system is ensured to have the same low energy consumption level as that of a DC magnetic system using the current solution. The description will be provided below with reference to specific embodiments.
A preferred embodiment of the present invention provides a DC magnetic system. The magnetic system comprises a yoke 1 for transmitting magnetic lines of force and constraining magnetic flux leakage from diffusing outwards; an armature 2 capable of moving up and down in a direction perpendicular to a lower surface of the yoke 1 under the reaction force; an induction coil 3 wound around a frame; and a control circuit 4 for controlling a current flowing through the induction coil 3.
Although a seat with a recess and a rectangular boss are adopted as examples to illustrate the yoke structure with the seat provided by the present invention in the above embodiments, a person of ordinary skill in the art shall understand that the shape of the seat provided by the present invention can be arbitrarily adjusted according to actual requirements so that the seat can be used in conjunction with the armature. In addition, although the above embodiments adopt a cover plate with a through hole to limit an upward and downward movement direction of the armature, a person skilled in the art shall understand that other means can also be adopted to achieve the above position-limiting function, such as adopting a position-limiting protruding block.
Although the present invention has been described by using the preferred embodiments, the present invention is not limited thereto; and various changes and modifications can be made without departing from the scope of the present invention.
Number | Date | Country | Kind |
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201811081534.6 | Sep 2018 | CN | national |