The present invention relates to a method for manufacturing a choke coil, to a choke coil, and to an electrical assembly comprising the choke coil.
A known method for manufacturing a choke coil comprises forming a plurality of coil turns to an elongated piece of electrically conducting material, and forming a first terminal member at a first end of the elongated piece, and a second terminal member at a second end of the elongated piece. The first terminal member is adapted for electrically connecting the choke coil to a first circuit terminal of an electric circuit, and the second terminal member is adapted for electrically connecting the choke coil to a second circuit terminal of the electric circuit. Forming the first and second terminal members comprises pressing the ends of the elongated piece of electrically conducting material flat, and machining identical, rectangular apertures to the terminal members.
One of the problems associated with the above mentioned known method is that the method requires several stages, many of which are usually carried out manually. Further, due to the several stages required for manufacturing the choke coil, a dimensional variance between locations of the terminal members is sometimes relatively large.
An object of the present invention is to provide a method for manufacturing a choke coil, and a choke coil so as to solve the above problems. The objects of the invention are achieved by a method and a choke coil which are described in the following.
The invention is based on the idea of providing a first terminal member of a choke coil with a first aperture, and a second terminal member of the choke coil with a second aperture such that the first aperture is adapted to compensate lateral dimensional variance between locations of the first circuit terminal and second circuit terminal of the electric circuit, and the second aperture is adapted to compensate longitudinal dimensional variance between locations of the first circuit terminal and second circuit terminal, wherein the lateral dimensional variance is perpendicular to a longitudinal direction of the choke coil, and the longitudinal dimensional variance is parallel to the longitudinal direction.
In the method according to the invention, the first aperture of the first terminal member and the second aperture of the second terminal member are formed by bending the same elongated piece of electrically conducting material of which the plurality of coil turns of the choke coil are formed.
An advantage of the method of the invention is that no machining operations are required for forming the first aperture and second aperture, thereby reducing stages required for manufacturing the choke coil. An advantage of the choke coil of the invention is that both lateral and longitudinal dimensional variances between locations of the first terminal member and the second terminal member, and/or between locations of the first circuit terminal and second circuit terminal can be compensated simply by changing a position of the choke coil.
In the following the invention will be described in greater detail by means of preferred embodiments with reference to the attached drawings, in which
The conductor element 2 is made of copper material, and it is coated with insulating varnish. In an alternative embodiment, the conductor element is made of aluminium material. Herein, copper material is an alloy comprising at least fifty five percent by mass copper, and aluminium material is an alloy comprising at least fifty five percent by mass aluminium. In a further alternative embodiment, the conductor element is made of some other suitable electrically conducting material.
The first terminal member 41 comprises a first aperture 11 extending in a first lateral direction perpendicular to the longitudinal direction, and adapted to receive a first mounting component for electrically connecting the first terminal member 41 to the first circuit terminal of the electric circuit. The second terminal member 42 comprises a second aperture 12 extending in a second lateral direction perpendicular to the longitudinal direction, and adapted to receive a second mounting component for electrically connecting the second terminal member 42 to the second circuit terminal of the electric circuit. In
The first aperture 11 is defined by a first bent portion of the conductor element 2, and the second aperture 12 is defined by a second bent portion of the conductor element 2. The first aperture 11 has a different shape than the second aperture 12. The first terminal member 41 is adapted to compensate lateral dimensional variance between locations of the first circuit terminal and second circuit terminal, and the second terminal member 42 is adapted to compensate longitudinal dimensional variance between locations of the first circuit terminal and second circuit terminal. The lateral dimensional variance is perpendicular to the longitudinal direction and first lateral direction. The longitudinal dimensional variance is parallel to the longitudinal direction.
In the plurality of coil turns, the conductor element 2 has a circular cross section. In an alternative embodiment, a cross section of the conductor element has a different shape in the plurality of coil turns.
Each of the first terminal member 41 and second terminal member 42 has a flattened cross section such that the first terminal member 41 comprises a first planar contact surface and a second planar contact surface whose normals are mutually opposite and parallel to the first lateral direction, and the second terminal member 42 comprises a first planar contact surface and a second planar contact surface whose normals are mutually opposite and parallel to the second lateral direction. The flattened cross sections of the first terminal member 41 and second terminal member 42 are best seen in
The first aperture 11 is adapted to provide a pivot point for the choke coil for rotation around a centre axis of the first aperture 11. The second aperture 12 is an adjustment slot whose dimension in the longitudinal direction is greater than in a direction perpendicular to both the longitudinal direction and the second lateral direction.
The second bent portion of the conductor element 2 comprises a U-shaped section whose branches 281 and 282 are parallel to the longitudinal direction such that a free end 229 of the U-shaped section is directed generally towards the first terminal member 41. The U-shaped section provides the adjustment slot of the second terminal member 42.
In an embodiment, the first aperture is defined by a first bent portion of the conductor element, and the second aperture is defined by a second bent portion of the conductor element such that each of the first bent portion and second bent portion comprises a U-shaped section. Branches of the U-shaped section of the first bent portion are perpendicular to the longitudinal direction. Branches of the U-shaped section of the second bent portion are parallel to the longitudinal direction.
In an alternative embodiment, the first aperture is defined by a first bent portion of the conductor element, and the second aperture is defined by a second bent portion of the conductor element such that each of the first bent portion and second bent portion comprises a U-shaped section. Both branches of the U-shaped section of the first bent portion and branches of the U-shaped section of the second bent portion are parallel to the longitudinal direction. Functionality of this alternative embodiment corresponds roughly to the choke coil of
The first mounting component 301 is a bolt whose bolt head presses the first terminal member 41 against the first circuit terminal 61. The second mounting component 302 is a bolt whose bolt head presses the second terminal member 42 against the second circuit terminal 62. The electrical assembly comprises internal threads adapted to co-operate with external threads of the first mounting component 301 and the second mounting component 302. In an embodiment, the internal threads are in nuts located on opposite side of the circuit terminals than the bolt heads. In an alternative embodiment, the internal threads are formed in the circuit terminals.
In
The choke coil of
In an embodiment, the forming of the first aperture and the second aperture by bending the elongated piece of electrically conducting material, and the forming of the plurality of coil turns to the elongated piece of electrically conducting material are carried out with a coiling and bending machine. It is known to use such a machine for manufacturing steel springs. A coiling and bending machine is well suited for shaping an elongated piece having a circular cross section.
When a coiling and bending machine is used for manufacturing a choke coil according to the invention, it is in many cases advantageous to form one of the first aperture and the second aperture by bending the elongated piece of electrically conducting material prior to forming the plurality of coil turns to the elongated piece of electrically conducting material. In an embodiment, the elongated piece of electrically conducting material is coated with insulating material such as insulating varnish prior to the forming of the plurality of coil turns and the first and second terminal members.
The method for manufacturing the choke coil of
In an embodiment, the coiling and bending machine comprises a controller, a plurality of sensors and a computer vision system. The controller is adapted to control coiling and bending of the elongated piece of electrically conducting material, and to receive information from the plurality of sensors and the computer vision system. The plurality of sensors comprises at least one sensor adapted for monitoring hardness of the elongated piece of electrically conducting material. By means of information received from the plurality of sensors and the computer vision system, the controller is capable of ensuring that dimensions and locations of the first aperture and second aperture are accurate.
It will be obvious to a person skilled in the art that the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the examples described above but may vary within the scope of the claims.
Number | Date | Country | Kind |
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21165453.8 | Mar 2021 | EP | regional |