Inductor and inductor core
09607755 ยท 2017-03-28
Assignee
Inventors
Cpc classification
H01F27/306
ELECTRICITY
International classification
H01F27/26
ELECTRICITY
H01F27/30
ELECTRICITY
Abstract
The inductor core has a higher magnetic permeability than air, and includes an endless channel adapted for containing an inductor winding, where the inductor core extends along a first axis A, and the inductor winding extends completely around the first axis A of the inductor core in such a way that the inductor winding has a number of discrete positions or first sections where it extends in a direction being perpendicular to the first axis A of the inductor core, and wherein the inductor winding, between the discrete positions or first sections, has second sections where it extends at least partly along the first axis A.
Claims
1. An inductor comprising an inductor core having a higher magnetic permeability than air, and an inductor winding comprising at least one conductor wound in one or more loops, where the inductor core at least partly extends along a first axis, and the inductor winding extends completely around the first axis of the inductor core in such a way that the inductor winding has a number of discrete positions or first sections where it extends in a direction being perpendicular to the first axis of the inductor core, and wherein the inductor winding between the discrete positions or sections has second sections where the inductor winding extends at least partly along the first axis, wherein the inductor core comprises a first and a second inductor core part, each having a first number of abutment surfaces being arranged substantially parallel to the first axis, and a second number of abutment surfaces being arranged transverse to the first axis, and where the first number of abutment surfaces on the first and the second inductor core part are complementarily shaped, so that the inductor core parts can be assembled by sliding the first number of abutment surfaces of the first inductor core part on the first number of abutment surfaces on the second inductor core part, and along the first axis, until the second number of abutment surfaces on the first inductor part abuts the abutment surfaces on the second inductor part.
2. An inductor according to claim 1, wherein the inductor winding, at least at one discrete position or section of each second section, extends in a direction being parallel to the first axis of the inductor core.
3. An inductor according to claim 1, wherein the inductor core surrounds the inductor winding at least along a section of one or more of the second sections.
4. An inductor according to claim 3, wherein the inductor core completely encapsulates the inductor winding.
5. An inductor according to claim 1, wherein when the second number of abutment surfaces on the first inductor part abuts the abutment surfaces on the second inductor part, the two inductor core parts form a channel for enclosing at least the second sections of the inductor winding.
6. An inductor comprising an inductor core having a higher magnetic permeability than air, and an inductor winding comprising at least one conductor wound in one or more loops, where the inductor core at least partly extends along a first axis, the one or more loops being u-shaped so that each loop has two legs extending from a base portion of the u-shape and the two legs extend in a direction parallel with the first axis, and the inductor winding extends completely around the first axis of the inductor core in such a way that the inductor winding has a number of discrete positions or first sections where it extends in a direction being perpendicular to the first axis of the inductor core, and wherein the inductor winding between the discrete positions or first sections has one of the legs extending in the direction parallel with the first axis, wherein the inductor core surrounds the inductor winding at least along a section of one or more of the legs.
7. An inductor according to claim 6, wherein the inductor core completely encapsulates the inductor winding.
8. An inductor according to claim 6, wherein the inductor core comprises a first and a second inductor core part, each having a first number of abutment surfaces being arranged substantially parallel to the first axis, and a second number of abutment surfaces being arranged transverse to the first axis, and where the first number of abutment surfaces on the first and the second inductor core part are complementarily shaped, so that the inductor core parts can be assembled by sliding the first number of abutment surfaces of the first inductor core part on the first number of abutment surfaces on the second inductor core part, and along the first axis, until the second number of abutment surfaces on the first inductor part abuts the abutment surfaces on the second inductor part, in which mutual position the two inductor core parts forms a channel for enclosing at least the two legs of the inductor winding.
9. An inductor according to claim 1, wherein the two inductor core parts comprise surface-insulating soft magnetic powder.
10. An inductor according to claim 1, wherein the two inductor core parts comprise soft magnetic powder wherein the soft magnetic powder comprises at least one element selected from the group consisting of iron, nickel, and cobalt, and wherein the soft magnetic powder further comprises electrical insulation comprising an inorganic material.
11. An inductor according to claim 1, wherein the two inductor core parts comprise soft magnetic powder with a weight average particle size of about 10 m to about 300 m.
12. An inductor according to claim 1, wherein the two inductor cores have a symmetrical cross section perpendicular to the first axis, wherein the symmetrical cross section is selected from the group consisting of an oval cross section, a triangular cross section, a square cross section, and a polygonal cross section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the various aspects disclosed herein, as well as additional objects, features and advantages of the present inventive concept, will be described in more detail in the following illustrative and non-limiting description of embodiments of the aspects disclosed herein with reference to the appended drawings, where like reference numerals refer to like elements unless stated otherwise, wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(6)
(7) The outline of the inductor winding 2 shown in
(8) The outline of the inductor winding 2 and/or the endless channel that is to be arranged in the inductor core 1 has, in this embodiment, four first sections 3 where the inductor winding 2 or endless channel extends in a direction perpendicular to the first axis A and four second sections 4 where the inductor winding or endless channel extends at least partly along the first axis A. It is however evident that differing embodiments may be suggested within the scope of the invention, e.g. where the inductor winding or the endless channel has more than four sections of the first and/or second kind, and that it is possible to design inductors having first and second sections with e.g. different lengths in order to obtain inductors with different inductance characteristics.
(9) In this relation
(10) The first and the second inductor core part each comprises an outer core member 7 formed as a square shaped cup and has an inner core member 6 extending along the first axis A from the bottom of the outer core member 7. The outer core member 7 and the inner core member 6 has a number of first abutment surfaces 9 that extend substantially parallel to the first axis A, and allowing that the inductor winding 2 as shown in
(11) Thereby the two inductor core parts 5 and 15 are, except from e.g. the taps that may extend from the inductor winding 2 and through the outer core member, completely enclose the inductor core winding 2, and the complete assembly 1 as shown in
(12) It will be appreciated that other embodiments of an inductor core may comprise two or more inductor core components of different shapes. For example, only one of the core parts may comprise an inner core member section which then may be sufficiently long so as to axially extend all the way to the bottom of the other inductor core part in the assembled inductor core 1. Alternatively or additionally, the projections of the two components may have different shapes and sizes.
(13) The two inductor core parts 5 and 15 are adapted to be assembled axially aligned and with their respective inner core members facing each other and such that the projections extend into the gaps formed by the projections of the other component.
(14) The inner core members may touch each other with their respective abutments surfaces 12 in the assembled indictor core so as to form an inner core member extending all the way between the two inductor core parts 5 and 15 respectively. In some embodiments, however, the inner core members may define an axial flux barrier, e.g. in the form of an axially extending gap between them and/or in the form of a part of one or both inner core member sections comprising a material of lower permeability.
(15) The inductor core parts may each be made of compacted magnetic powder material. The material may be soft magnetic powder. The material may be ferrite powder. The material may be surface-insulated soft magnetic powder, e.g. comprising iron particles provided with an electrically insulating coating. The resistivity of the material may be such that eddy currents are substantially suppressed. As a more specific example, the material may be a soft magnetic powder, e.g. from the product family Somaloy (e.g. Somaloy(R) 110i, Somaloy(R) 130i or Somaly(R) 700HR) from Hoeganaes AB, S-263 83 Hoeganaes, Sweden.
(16) The soft magnetic powder may be filled into a die and compacted. The material may then be heat treated, e.g. by sintering (for powder materials such as ferrite powder) or at a relatively low temperature so as not to destroy an insulating layer between the powder particles (for soft magnetic composites). During the compaction process a pressure may be applied in a direction corresponding to the axial direction of the respective member. In the radial and circumferential directions the dimension of the components are defined by the cavity walls of the mold. Each component may thus be manufactured using uniaxial compaction with a tighter tolerance in the radial and circumferential directions than in the axial direction.
(17) Alternatively, the inductor core components may be made from a different material of a sufficiently high permeability, higher than the permeability of air, and/or assembled from a plurality of individual pieces rather than formed in a single piece.
(18) Although some embodiments have been described and shown in detail, the invention is not restricted to them, but may also be embodied in other ways within the scope of the subject matter defined in the following claims. In particular, it is to be understood that other embodiments may be utilized, and that structural and functional modifications may be made without departing from the scope of the present invention. For example, in the above, inductor cores presenting a square cross section perpendicular to the first axis have been disclosed. However, the inventive concept is not limited to this geometry. For example, the inductor core and/or inductor winding may present an oval, triangular, square or polygonal cross section. Even though the inductor winding disclosed above and in the drawings is having only four sections extending at least partly along the first axis, then it is evident that it is possible within the scope of the invention to suggest inductor windings having more such sections.
(19) In device claims specifying several means, several of these means can be embodied by one and the same structural component. The mere fact that certain measures are recited in mutually different dependent claims or described in different embodiments does not indicate that a combination of these measures cannot be used to advantage.
(20) It should be emphasized that the term comprises/comprising when used in this specification is taken to specify the presence of stated features, integers, steps or components but does not preclude the presence or addition of one or more other features, integers, steps, components or groups thereof.