COIL WITH NON-UNIFORM TRACE
20230307166 ยท 2023-09-28
Inventors
Cpc classification
H05K2201/098
ELECTRICITY
H01F2017/0073
ELECTRICITY
H01F2017/004
ELECTRICITY
International classification
Abstract
A coil device includes a first conductor in a first layer and including a spiral shape and a second conductor in the first layer connected in parallel with the first conductor and extending adjacent to and parallel or substantially parallel to the first conductor. A cross-sectional area of the first conductor and a cross-sectional area of the second conductor are different.
Claims
1. A coil device comprising: a substrate; a first conductor in a first layer and including a spiral shape; a second conductor in the first layer connected in parallel with the first conductor and extending adjacent to and parallel or substantially parallel to the first conductor; a third conductor in a second layer connected in parallel with the first conductor and overlapping the first conductor in a plan view, the second layer is on an opposite side of the substrate as the first layer; and a fourth conductor in the second layer connected in parallel with the third conductor and overlapping the second conductor in the plan view and extending adjacent to and parallel or substantially parallel to the third conductor; wherein a cross-sectional area of the first conductor and a cross-sectional area of the second conductor are different.
2. The coil device according to claim 1, wherein the first conductor and the second conductor have a rectangular cross section.
3. The coil device according to claim 1, wherein the spiral shape is a circular spiral shape or a rectangular spiral shape.
4. The coil device according to claim 1, wherein a height of the first conductor is equal to or substantially equal to a height of the second conductor, and a width of the first conductor and a width of the second conductor are different.
5. The coil device according to claim 1, wherein a height-to-width ratio of the first conductor and a height-to-width ratio of the second conductor are different.
6. The coil device according to claim 1, wherein a cross-sectional area of the third conductor and a cross-sectional area of the fourth conductor are different.
7. The coil device according to claim 1, wherein height-to-width ratios of the first conductor and the third conductor are equal or substantially equal.
8. The coil device according to claim 1, wherein height-to-width ratios of the second conductor and the fourth conductor are equal or substantially equal.
9. The coil device according to claim 1, wherein height-to-width ratios of the first conductor and the third conductor and height-to-width ratios of the second conductor and the fourth conductor are different.
10. The coil device according to claim 1, wherein the substrate is a flexible printed circuit or a printed circuit board.
11. The coil device according to claim 1, further comprising: a fifth conductor in the first layer, including the spiral shape, and connected to ends of the first conductor and the second conductor; and a sixth conductor in the second layer, including the spiral shape, and connected to ends of the third conductor and the fourth conductor.
12. The coil device according to claim 1, further comprising: a fifth conductor in the first layer, including the spiral shape, and connected to an end of the first conductor; and a sixth conductor in the second layer, including the spiral shape, and connected to an end of the third conductor; wherein cross-sectional areas of the fifth and the sixth conductors are identical or substantially identical.
13. An electronic device comprising the coil device according to claim 1.
14. A coil device comprising: a substrate; a first conductor in a first layer on the substrate and including a spiral shape; and a second conductor in a second layer on an opposite side of the substrate as the first layer, connected in parallel with the first conductor, and overlapping or substantially overlapping all of the first conductor in a plan view, wherein a cross-sectional shape of the first conductor and a cross-sectional shape of the second conductor are identical or substantially identical.
15. The coil device according to claim 14, wherein the substrate is a flexible printed circuit or a printed circuit board that includes the first layer and the second layer.
16. The coil device according to claim 14, further comprising: a third conductor in the first layer connected in parallel with the first conductor and extending adjacent to and parallel or substantially parallel to the first conductor; and a fourth conductor in the second layer connected in parallel with the second conductor and extending adjacent to and parallel or substantially parallel to the second conductor, wherein the third conductor and the fourth conductor overlap or substantially overlap each other in the plan view.
17. The coil device according to claim 16, wherein a cross-sectional shape of the third conductor and a cross-sectional shape of the fourth conductor are identical or substantially identical, and the cross-sectional shape of the third conductor and the cross-sectional shape of the first conductor are different.
18. An electronic device comprising the coil device according to claim 14.
19. An electronic device comprising: a substrate; and a coil having a spiral shape and including: first and second traces on a first surface of the substrate; and third and fourth traces on a second surface of the substrate opposite to the first surface that are connected in parallel with the first and the second traces; wherein the first and the second traces are connected in parallel and have different cross-sectional shapes along at least a portion of a length of the coil; the first and the third traces have identical or substantially identical cross-sectional shapes; and the second and the fourth traces have identical or substantially identical cross-sectional shapes.
20. The electronic device of claim 19, wherein the coil further includes: a fifth trace on the first surface of the substrate that is connected in parallel with the first and the second traces; and a sixth trace on the second surface of the substrate that is connected in parallel with the third and the fourth traces; the first, the second, and the fifth traces have different cross-sectional shapes; and the third, the fourth, and the sixth traces have different cross-sectional shapes.
21. The electronic device of claim 20, wherein widths of the first, the second, and the fifth traces increase in a width direction of a cross section of the coil.
22. (canceled)
23. The electronic device of claim 19, wherein a number of traces in the coil changes over the length of the coil and/or cross-sectional areas of the first and second traces changes over the length of the coil.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0027] A coil on a substrate, such as a flexible printed circuit (FPC), a printed circuit board (PCB), or silicon wafer significantly reduces or minimizes required space and achieves significantly increased maximum efficiency in small-electronic-device applications, such as cell phones, tablets, etc. In an FPC coil, the conventional round insulated copper wire is replaced by traces or conductors with rectangular cross-sections that can be more simply fabricated. The traces can be formed in either circular shapes as shown in
[0028] Additionally, patterning a trace into smaller traces with non-uniform widths can lower the electro-magnetic force between the traces, which in turn leads to a lower AC resistance and hence a reduction in the amount of generated heat with increased efficiency. For example, heat can be decreased by up to 5% and efficiency can be increased up to 5%. Often, coils with a single trace having a single consistent width along the entire length of the trace generate more heat around the center loops between the inner and outer loops, and conventional designs often need additional layers such as graphite to dissipate the heat concentrated in those areas. Splitting a trace into multiple traces with non-uniform widths can be more effective in reducing the coil resistance, which is the direct result of EMF reduction between different traces, than patterning traces with uniform widths. For example, splitting a trace into multiple traces can result in an up to 7% reduction in coil resistance compared to a coil with a single uniform trace width. Splitting a trace into multiple traces is shown in
[0029]
[0030] Similarly, splitting the height of a single sided trace into a double-sided trace can also reduce the electro-magnetic forces between the traces, and therefore lower the AC resistance of the coil.
[0031]
[0032] The traces 410, 430, 450 can include copper, but other conductive metals and alloys can be included. The substrates 420, 440, 460 can be a FPC, a PCB, a silicon wafer, a ceramic substrate, a dielectric substrate, or can include any other suitable material or materials. The coils can be included, for example, within a FPC or a PCB or on a dielectric substrate within an IC chip. Within an IC chip, circuit components, such as inductors, capacitors, transistors, etc., can be implemented with several metal layers, e.g., copper, and several dielectric layers, e.g., silicon oxide, deposited on top of each other to create a multilayer structure. Within the IC chip, a coil can be implemented with a dielectric substrate surrounded by metal layers on top and/or bottom of the dielectric substrate that define the traces of the coil.
[0033] Using the present techniques, the performance of wireless charging coils on both transmitter and receiver sides can be improved by patterning the conductive material into two or more traces connected in parallel and with non-uniform widths as shown in
[0034] The exact number of traces depends on the application and geometry of coils. The ratio between the trace widths portions can be a function of coil geometry such as number of traces, height, and original trace width. For example, a 2:1 ratio can be used in which, in adjacent inner and outer traces, the outer trace can have a width of half or substantially half within manufacturing tolerances of the inner trace.
[0035] It should be understood that the foregoing description is only illustrative of the present invention. Various alternatives and modifications can be devised by those skilled in the art without departing from the present invention. Accordingly, the present invention is intended to embrace all such alternatives, modifications, and variances that fall within the scope of the appended claims.