WINDING ARRANGEMENT FOR USE IN MAGNETIC DEVICES
20210118607 ยท 2021-04-22
Inventors
Cpc classification
H01F27/006
ELECTRICITY
H01F27/34
ELECTRICITY
International classification
Abstract
A coil of electrically conductive material includes first and second sections, the first section including a first plurality of turns and the second section including a second plurality of turns. Both the first plurality of turns and the second plurality of turns are arranged around a winding axis of the coil. The first plurality of turns are smaller than the second plurality of turns such that when viewed along the winding axis of the coil, the first plurality of turns fit within the second plurality of turns. When viewed perpendicular to the winding axis of the coil, the first and second sections are adjacent.
Claims
1. An electrical transformer comprising: a winding arrangement arranged around a transformer core, the winding arrangement including: a first coil and a second coil of electrically conductive material, each of the first coil and the second coil including a winding axis, each of the first coil and the second coil including: a first section including a first plurality of turns arranged around the winding axis of the coil; and a second section including a second plurality of turns arranged around the winding axis of the coil, the second plurality of turns being integral with the first plurality of turns; wherein an outer periphery of the first plurality of turns fits within an inner periphery of the second plurality of turns when viewed along the winding axis of the coil, and the first and second sections being adjacent when viewed perpendicular to the winding axis of the coil; the first coil and second coil are arranged coaxially such that the first section of the first coil is disposed within the second section of the second coil, and the first section of the second coil is disposed within the second section of the first coil; and the first coil is coupled to an input of the electrical transformer and the second coil is coupled to an output of the electrical transformer.
2. The electrical transformer of claim 1, wherein the first plurality of turns and the second plurality of turns of each of the first coil and the second coil have a width in a direction perpendicular to the winding axis, defining the inner and outer periphery with respect to the winding axis of the coil.
3. The electrical transformer of claim 2, wherein the electrically conductive material of the first coil and the second coil includes a flat wire.
4. The electrical transformer of claim 3, wherein a thickness of the flat wire of the first coil and the second coil in a direction of the winding axis is less than about 1.5 mm and a width of the flat wire in a direction perpendicular to the winding axis of the coil is less than about 20 mm.
5. The electrical transformer of claim 1, wherein the first plurality of turns of the first coil and the second coil enclose a first area, and the second plurality of turns of a same one of the first coil and the second coil enclose a second area, the second area overlapping the first area and being larger than the first area.
6. The electrical transformer of claim 1, wherein each turn in the first plurality of turns of the first coil and the second coil is identical to each of other turns of the plurality of the first turns of a respective one of the first coil and the second coil, and each turn in the second plurality of turns of the first coil and the second coil is identical to each of other turns of the plurality of second turns of a respective one of the first coil and the second coil.
7. The electrical transformer of claim 1, wherein a shape defined by the inner periphery of the first plurality of turns of the first coil and the second coil is the same as a shape defined by the inner periphery of the second plurality of turns of the same coil.
8. The electrical transformer of claim 1, wherein the first plurality of turns of the first coil and the second coil is arranged helically around the winding axis of a respective one of the first coil and the second coil, and the second plurality of turns of the first coil and the second coil is arranged helically around the winding axis of the respective one of the first coil and the second coil.
9. The electrical transformer of claim 1, wherein the first plurality of turns and the second plurality of turns of each of the first coil and the second coil are concentric about the winding axis of a respective one of the first coil and the second coil.
10. The electrical transformer of claim 1, wherein a number of turns in the first plurality of turns of the first coil and the second coil is equal to a number of turns in the second plurality of turns of a respective one of the first coil and the second coil.
11. The electrical transformer of claim 1, wherein a shape of an area enclosed by the first plurality of turns of the first coil and the second coil and/or a shape of an area enclosed by the second plurality of turns of a respective one of the first coil and the second coil is rectangular, square, or circular.
12. The electrical transformer of claim 1, wherein a number of turns in the first plurality of turns of the first coil is equal to a number of turns in the second plurality of turns in the second coil, and a number of turns in the first plurality of turns of the second coil is equal to a number of turns in the second plurality of turns of the first coil.
13. The electrical transformer of claim 1, wherein a shape defined by the outer periphery of the first plurality of turns of the first coil is the same as a shape defined by the inner periphery of the second plurality of turns of the second coil, and a shape defined by the outer periphery of the first plurality of turns of the second coil is the same as a shape defined by the inner periphery of the second plurality of turns of the first coil.
14. The electrical transformer of claim 1, wherein the first plurality of turns of the first coil fit within the second plurality of turns of the second coil, and the first plurality of turns of the second coil fit within the second plurality of turns of the first coil.
15. The electrical transformer of claim 1, wherein the outer periphery of the first plurality of turns of the first coil is substantially the same distance from the winding axis of the coil as the inner periphery of the second plurality of turns of the second coil, and the outer periphery of the first plurality of turns of the second coil is substantially the same distance from the winding axis of the coil as the inner periphery of the second plurality of turns of the first axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0032]
[0033] In
[0034] The first 103 and second plurality of turns 105 are each arranged around the winding axis of the coil. In the example coil 101 of
[0035] Returning to the example of
[0036] The second plurality of turns 105 has an inner periphery, the inner periphery being the periphery along the edge of the electrically conductive material closest to the axis. In other words, along the edge of the electrically conductive material opposite to the edge facing away from the axis.
[0037] The size of the first plurality of turns 103 is smaller than the size of the second plurality of turns 105. The size difference is such that the inner periphery of the second plurality of turns 105 is larger than the outer periphery of the first plurality of turns 103, such that when viewed along the axis of the coil, as in
[0038] A first area is enclosed by the first plurality of turns 103 and a second area is enclosed by the second plurality of turns 105. The second area is larger than the first area due to the size of the second plurality of turns 105 being larger than the size of the first plurality of turns 103. The second enclosed area overlaps the first enclosed area when viewed down the axis.
[0039] The shape of the first area may be the same as the shape of the second area, though a different size. In the present example, the shape of the areas enclosed by the turns of both the first 103 and second plurality of turns 105 can be seen to be a square, with rounded corners. That is, the shape defined by the inner peripheries of the first 103 and second plurality of turns 105, when viewed along the axis of the coil, is a square, with rounded corners. However, other shapes could be used. For example, the shape of the turns may be rectangular, or circular, and may or may not have rounded corners.
[0040]
[0041] As can be seen in these figures, the first plurality of turns 103 are grouped together, as are the second plurality of turns 105. That is, the first section has a first plurality of turns 103 and the second section has a second plurality of turns 103, and the first section is adjacent to the second section, in particular when viewed perpendicular to the winding axis of the coil.
[0042] It can also be seen that there are an equal number of turns in the first plurality of turns 103 and the second plurality of turns 105. In the present example, the first plurality of turns 103 includes two complete turns, and the second plurality of turns 105 also includes two complete turns, though this is not limiting and more or fewer windings could be used. Alternatively, an unequal number of turns may be used. For example, there may be more turns in the first plurality of turns 103 than in the second plurality of turns 105, or vice versa.
[0043] In the present example, each turn in the first plurality of turns 103 is identical to each of the other turns in the first plurality of turns 103, and each turn in the second plurality of turns 105 is identical to each of the other turns in the second plurality of turns 105.
[0044] The electrically conductive material in the present example includes a flat wire, though other electrically conductive materials could be used. It can be seen that the flat wire has a small thickness relative to its width, where the thickness of the wire is measured in the direction parallel to the axis of the coil, and the width is measured in a direction perpendicular to the axis of the coil. The electrically conductive material is flat enameled copper wire, and has a thickness of less than about 1.5 mm and a width of less than about 20 mm, for example. Alternatively, other electrically conductive materials, such as aluminum, may be used, along with conductive materials with other cross sections and dimensions.
[0045] A winding arrangement 111 including two coils 101a, 101b, as described above, will now be discussed with reference to
[0046] The winding arrangement includes a first coil 101a and a second coil 101b. The first coil 101a includes a first plurality of turns 103a and a second plurality of turns 105a. These are connected by a cross-over portion 107a, and the ends of the coil terminate with connection portions 109a. The second coil 101b includes a first plurality of turns 103b and a second plurality of turns 105b. These are connected by a cross-over portion 107b, not shown, and the ends of the coil terminate with connection portions 109b. The first coil 101a and the second coil 101b may be electrically isolated from one another. That is to say, an electric current cannot flow from one coil to the other coil. The first coil 101a and the second coil 101b may be magnetically coupled to each other, even if they are electrically isolated.
[0047] In the present preferred embodiment, both the first coil 101a and the second coil 101b have an equal number of turns in the first plurality of turns 103a, 103b and in the second plurality of turns 105a, 105b, namely two complete turns. However, more or fewer turns could be used.
[0048] Additionally, the number of turns in the first plurality of turns 103a, 103b and in the second plurality of turns 105a, 105b does not have to be equal. For example, the first coil 101a could have three turns in the first plurality of turns 103a and five turns in the second plurality of turns 105a, while the second coil 101b could have five turns in the first plurality of turns 103b and three turns in the second plurality of turns 105b. Advantageously, the first coil 101a has the same number of turns in the first plurality of turns 103a as the second coil 101b has in the second plurality of turns 105b, and the first coil 101a has the same number of turns in the second plurality of turns 105a as the second coil 101b has in the first plurality of turns 103b.
[0049] The first coil 101a and the second coil 101b are both arranged coaxially, with the axis of each coil 101a, 101b aligning along the axis of the winding arrangement 111. However, the first coil 101a is arranged the other way around relative to the second coil 101b. That is, the first plurality of turns of the first coil 103a is located at the same end of the winding arrangement 111 as the second plurality of turns of the second coil 105b, while the second plurality of turns of the first coil 105a is located at the same end of the winding arrangement 111 as the first plurality of turns of the second coil 103b.
[0050] In such a way, the coils 101a, 101b are arranged such that the first plurality of turns of the first coil 103a is disposed within the second plurality of turns of the second coil 105b, and the first plurality of turns of the second coil 103a is disposed within the second plurality of turns of the first coil 103a.
[0051] In preferred embodiments of the present invention, the first plurality of turns of the first coil 103a fit snugly within the second plurality of turns of the second coil 105b, and the first plurality of turns of the second coil 103b fit snugly in the second plurality of turns of the first coil 105a. That is, there is little space between the turns of the two coils 101a, 101b. In other words, the outer periphery of the first plurality of turns of the first coil 103a is substantially the same distance from the winding axis of the coil as the inner periphery of the second plurality of turns of the second coil 105b, and the outer periphery of the first plurality of turns of the second coil 103b is substantially the same distance from the winding axis of the coil as the inner periphery of the second plurality of turns of the first axis 105a.
[0052] The first coil 101a and the second coil 101b cross each other to allow the coils 101a, 101b to be arranged in the manner described above to provide the winding arrangement 111.
[0053]
[0054] As shown in
[0055]
[0056] In another preferred embodiment of the present invention, the winding arrangement, for example that discussed in relation to
[0057] The transformer 115 includes a transformer core 113. In the case of the present example, the core 113 is a cylindrical iron core. However, other core materials or designs may be used. In one example, the core may be an air core. Alternatively, in another example the core could be a laminated E-I type ferrous core. Such cores may improve the performance of the transformer 115. A specific core may be chosen depending upon the requirements that the transformer 115 must fulfill.
[0058] Additionally, the transformer 115 may be used individually or as a bank of connected or unconnected transformers.
[0059] In one preferred embodiment, the transformer 115 of
[0060] Alternatively, such a transformer 115 could be used in power generation equipment, particularly in renewable energy systems. For example, it could be used to convert an output voltage from a wind turbine. In this example, the voltage source 117 may be an electrical generator powered by the rotation of the wind turbine rotors, and the load 119 may be an electrical power distribution grid. In other preferred embodiments, instead of a wind turbine, the voltage source 117 may be a wave energy converter, or a hydropower turbine.
[0061] Further applications of the present winding arrangement and transformer 115 are also contemplated. For example, the transformer 115 of
[0062] Yet further applications of the present flat wire coil design are also contemplated. For example in a preferred example, a transformer or bank of connected or unconnected transformers may incorporate multiple flat wire coils. As a further example, the flat wire coils of two or more transformers may be inter-connected so that a resultant phase of the output or outputs of each transformer is different to the input phase.
[0063] The above and other elements, features, steps, characteristics and advantages of the present invention will become more apparent from the following detailed description of the preferred embodiments with reference to the attached drawings.