IP Library Granted Patent US 8,237,533
Granted Patent B2
US 8,237,533 · App. 12/657,376 · Granted Aug 7, 2012

Integrated or printed margarita shaped inductor

Assignee: Aristotle University Thessaloniki Research Committee
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Quick Facts
Patent No.
US 8,237,533
App. No.
12/657,376
Granted
Aug 7, 2012
Kind
B2
Abstract

An integrated printed inductor has a set of open petal loops, connected together in series. For a given inductance value higher quality factor and higher frequency value result using an equal chip surface area. With the same fabrication cost and equal occupied area, higher quality factor values at higher frequency can be achieved. The innovative shape is such that secondary mutual coupling effects occur and contribute to increases of overall inductance values. Small current loops arranged as petals corresponding to inductance value LO are connected in series for the inductance value to add up to a higher value. The loops are connected along a circular path to minimize the total chip area occupied. A secondary loop in the center of the inductor results in a stronger magnetic flux and a higher inductance value, due to both self inductance of the secondary loop and mutual inductance of it with the petals.

Claims (20)

1. An inductor, in particular of the integrated or printed type, comprising a plurality of open loops with a predetermined shape connected in series along a path around a geometrical centre, each loop having two ends with their respective open side located between both said ends, thereby facing said centre, wherein said open loops are mutually connected at their said ends belonging to adjacent loops, thereby facing said centre, wherein each said loop is mutually rotated over an angle respective to the adjacent loop around said geometrical centre.

2. An integrated or printed inductor, in particular according to claim 1 , wherein each open loop has a petal-like shape inductor the plurality of open loops comprising a set of petals, wherein the petals are connected in series along a path to form inductor turns and each petal is turned at an angle to each preceding petal and the open part of each of the petals faces the centre of the inductor.

3. The inductor according to claim 2 , wherein the number of petals is equal to or greater than two, wherein all said loops have a identical shapes.

4. The inductor according to claim 3 , wherein the number of petals is equal to or smaller than four.

5. The inductor according to claim 2 , wherein each said open loop has a substantially curved like shape around said centre, in particular with an elongated profile, at least slightly, wherein said junction portions have an inwardly curved profile facing said centre.

6. The inductor according to claim 5 , wherein each petal-like shape inductor has a combination of straight line segments connected by angles in a way to approximate a curve.

7. The inductor according to claim 6 , further comprising maximum angles and a small number of straight line segments.

8. The inductor according to claim 2 , wherein each said petal-like shape open loop has a substantially trapezoidal shape pointing at said centre with an elongated profile, wherein junction portions between open loops have inwardly curved profiles facing said centre.

9. The inductor according to claim 2 , whereby the inductor has a generally symmetrical overall shape with respect to said centre and said loops are arranged substantially in a plane.

10. The inductor according to claim 2 , wherein it the inductor comprises more than one layer, wherein the petals of each layer are connected in series and layers are connected to each other using vias, wherein the number of turns and petals of each layer are equal.

11. The inductor as defined in claim 10 , wherein said inductor is incorporated in a complete circuit such as an LNA or a GPS receiver or a transceiver.

12. The inductor according to claim 2 , whereby the inductor further comprises inductors connected together in series, in parallel or in combination thereof.

13. The inductor according to claim 2 , wherein the inductor is connected as a transformer.

14. The inductor as defined in claim 13 , wherein said inductor is incorporated in a complete circuit such as an LNA or a GPS receiver or a transceiver.

15. The inductor according to claim 2 , wherein the shaped inductor is fabricated in a process following the rules of each process.

16. The inductor according to claim 15 , wherein shaped inductor is fabricated in any metal layer and any type of metal offered by the process.

17. The inductor as defined in claim 2 , wherein said inductor is incorporated in a complete circuit such as an LNA or a GPS receiver or a transceiver.

18. The inductor according to claim 2 , wherein in said petal-like shapes, each of said open loops delimitates the petal-like shape perimeter that further comprises at least three parts, a peripheral part extending arcuately and two adjacent parts extending radially therefrom toward said virtual centre.

19. The inductor according to claim 2 , wherein the petal-like shape further comprises two substantially equal ray line segments forming an acute angle and a circular segment connecting two spaced outer ends of the ray line segment.

20. The inductor according to claim 2 , wherein the inductor comprises more than one layer, wherein one petal of any layer is connected to any other petal of a different layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 4, 2010
From: CHATZOPOULOS, ALKIVIADES; BONTZIOS, GIORGOS
To: ARISTOLTLE UNIVERSITY THESSALONIKI RESEARCH COMMITTEE
Reel/Frame 024331/0592 →
Priority Claims (1)
GR 20090100028 · Jan 16, 2009 · national
Continuity (1)
Related Publication 20100245011A1 · Sep 30, 2010