Claims
- 1. An inductive device, comprising:
a magnetically permeable core; and a controlled saturation element cooperating with said core to provide said inductive device with a desired inductance characteristic.
- 2. The inductive device of claim 1, wherein said magnetically permeable core comprises a pot core having first and second core elements, and said controlled saturation element comprises a variable geometry gap formed between respective portions of said first and second core elements.
- 3. The inductive device of claim 2, wherein said variable geometry gap comprises at least a first region having a first gap width and a second region having a second gap width.
- 4. The inductive device of claim 2, wherein said first region and said second region are contained within a central region of the core.
- 5. The inductive device of claim 4, wherein said first region comprises approximately ninety-percent (90%) of the cross-sectional area of said central region, and said second region comprises approximately ten-percent (10%) of said cross-sectional area.
- 6. The inductive device of claim 3, wherein said first region is disposed concentrically with said second region.
- 7. The inductive device of claim 3, wherein said variable geometry gap further comprising a third region having a third gap width associated therewith, said third gap width being not equal to said first or second gap widths.
- 8. The inductive device of claim 1, wherein said core comprises a substantially drum-shaped core having at least one spool region and at least first and second end elements adjacent said spool region.
- 9. The inductive device of claim 8, wherein said controlled saturation element comprises a strip of alloy disposed at least partly between said first and second end elements of said core.
- 10. The inductive device of claim 8, wherein said controlled saturation element comprises a strip of alloy disposed at least partly between said first and second end elements of said core.
- 11. The inductive device of claim 10, wherein said strip of alloy comprises at least iron and nickel.
- 12. The inductive device of claim 10, wherein the thickness of said strip is selected so as to create one or more artifacts within the inductance-current characteristic of said device.
- 13. The inductive device of claim 8, wherein said controlled saturation element comprises a plurality of strips of alloy each disposed at least partly between said first and second end elements of said core and at different locations around the periphery of said first and second end elements.
- 14. The inductive device of claim 8, wherein said controlled saturation element comprises a substantially continuous sheet of alloy disposed at least partly around the peripheries of both said first and second end elements.
- 15. The inductive device of claim 14, further comprising at least one shroud disposed around at least a portion of said sheet, said at least one shroud adapted to maintain said sheet and said core in substantially fixed relationship.
- 16. The inductive device of claim 15, wherein said at least one shroud comprises heat-shrink tubing.
- 17. The inductive device of claim 8, wherein said core comprises first and second spool regions disposed longitudinally along said device between said first and second end elements, and a central element disposed between said first and second spool regions.
- 18. The inductive device of claim 1, wherein said desired inductance characteristic comprises at least a first region having a first substantially constant inductance at a first current, and a second region having a second substantially constant inductance at a second current, said first inductance being substantially higher than said second inductance.
- 19. The inductive device of claim 18, wherein said first and second inductance regions are separated by a third region characterized by a large decrease in inductance with a comparatively small increase in current.
- 20. Signal conditioning apparatus, comprising:
at least one inductive device comprising a magnetically permeable core and a controlled saturation element cooperating with said core to provide said inductive device with a desired inductance characteristic; and a signal conditioning circuit incorporating said at least one inductive device, said circuit adapted to condition at least one signal input to said circuit using at least in part said at least one inductive device.
- 21. The apparatus of claim 20, wherein said desired inductance characteristic comprises at least two regions having substantially constant yet different inductance values, separated by a region having a large negative change in inductance with increasing dc current.
- 22. The apparatus of claim 20, wherein said controlled saturation element is adapted to allow saturation of at least part of said core at higher current values.
- 23. The apparatus of claim 20, wherein said signal conditioning circuit comprises a DSL filter circuit.
- 24. The apparatus of claim 23, wherein said desired inductance characteristic of said inductive device produces a higher inductance during an on-hook state and a lower inductance during an off-hook state.
- 25. The apparatus of claims 23, wherein said filter circuit comprises a dynamically switched filter circuit adapted to reduce shunt capacitance when combined with other filter circuits on the same telecommunications line.
- 26. A method of providing controlled induction using an inductive device, comprising:
providing a magnetically permeable core with windings disposed thereon; selecting the parameters of a controlled saturation element to provide:
(i) higher inductance during no-current conditions, and (ii) comparatively lower inductance during non-zero current conditions above a given current threshold; providing a controlled saturation element according to said selected parameters, said saturation element being coupled to said core; and operating the device within a circuit capable of generating no-current and non-zero current conditions through the device.
- 27. The method of claim 26, wherein said act of selecting comprises selecting the material, thickness, and geometry of said controlled saturation element so as to control the magnetic saturation thereof during said act of operating.
- 28. A method of manufacturing an inductive component, comprising:
providing a first core element and a second core element adapted for mating to each other; configuring a first portion of a gap formed between the first and second elements to a first width; configuring a second portion of the gap to a second width; winding the core with conductors; and assembling the first and second elements.
- 29. The method of claim 28, wherein said acts of configuring comprise configuring a central post region of said first and second core elements.
- 30. The method of claim 28, wherein said act of configuring a first portion of a gap comprises mechanically removing material from said first core element.
- 31. The method of claim 30, wherein said act of assembling comprises mating the first and second core elements using a blind-hole alignment apparatus.
- 32. A method of manufacturing an inductive component, comprising:
providing a substantially drum-shaped core having at least first and second end elements and at least one spool region; winding at least one conductor on the at least one spool region; and bridging the at least first and second end elements using at least one controlled saturation element.
- 33. The method of claim 32, wherein said act of bridging comprises:
fabricating a sheet of thin alloy material; cutting said at least one controlled saturation element therefrom; and adhesively bonding said at least one controlled saturation element to each of said first and second end elements along their periphery.
- 34. The method of claim 32, wherein said act of bridging comprises:
fabricating a sheet of thin alloy material; and adhesively bonding said sheet to each of said first and second end elements along their periphery.
- 35. The method of claim 32, wherein said act of bridging comprises:
fabricating a sheet of thin alloy material; and mating said sheet with each of said first and second end elements along their periphery using at least one section of heat-shrink tubing.
- 36. A DSL filter circuit, comprising:
an inductive device having a magnetically permeable core and a controlled saturation element cooperating with said core to provide a high impedance at one current and a lower impedance at a greater current; and a dynamic filter circuit having a low capacitance; wherein said inductive device and said filter circuit cooperate to provide high on-hook impedance, low off-hook impedance, and a stable cutoff frequency.
- 37. An inductive device for use in a filter circuit, comprising:
at least one magnetically permeable core; at least one winding disposed proximate to said core; and at least one controlled saturation element cooperating with said core to provide said inductive device with a substantially stepped inductance characteristic.
- 38. The inductive device of claim 37, wherein said at least one core comprises first and second ends, and said at least one controlled saturation element comprises at least one substantially metallic strip disposed between said first and second ends.
- 39. The inductive device of claim 38, wherein said at least one strip is formed form at least nickel (Ni).
- 40. The inductive device of claim 37, wherein said at least one core comprises first and second core elements each having a substantially central portion, and said at least one controlled saturation element comprises at least two regions of different elevation within said substantially central portion of at least one of said first and second core elements.
- 41. The inductive device of claim 40, wherein said at least two regions of different elevation comprise a first region having a first elevation which is substantially concentric with a second region having a second elevation.
- 42. The inductive device of claim 40, wherein said at least two regions of different elevation comprise a first region having a first elevation which is circumferentially punctuated with at least one second region having a second elevation.
- 43. An inductive device for use in a filter circuit, comprising:
at least one permeable core means; at least one means for conducting electrical current disposed proximate to said core means; and at least one means for controlling saturation of said core means, said means for controlling cooperating with said core means to provide said inductive device with a substantially stepped inductance characteristic.
- 44. A controlled inductance device for use in an electrical circuit, comprising:
a magnetically permeable core element; at least one winding disposed on said core element; a cap element disposed substantially around the majority of said at least one winding; and an inductance control element disposed proximate said cap, core element, and said at least one winding.
- 45. The controlled inductance device of claim 44, wherein said magnetically permeable core element is substantially drum-shaped.
- 46. The controlled inductance device of claim 45, wherein said substantially drum-shaped core element has first and second flanges, the first flange being larger in diameter than the second flange.
- 47. The controlled inductance device of claim 46, wherein said cap element is substantially cylindrical in shape.
- 48. The controlled inductance device of claim 46, wherein said inductance control element comprises an alloy strip disposed substantially within an interior volume formed by said cap element and said first flange.
- 49. The controlled inductance device of claim 44, wherein said magnetically permeable core element and cap element are formed of substantially identical material.
- 50. The controlled inductance device of claim 44, wherein said inductance control element comprises a metallic strip disposed substantially within an interior volume formed by said cap element and said core element.
- 51. The device of claim 44, wherein said at least one core element, cap, winding, and controlled inductance element cooperate to provide said device with a plurality of distinct notch frequencies.
- 52. In an inductive device having a magnetically permeable core and at least one winding disposed on said core, a method of controlling the inductance of the device under at least first and second operational conditions, comprising:
selectively configuring at least a portion of said core based at least in part on the desired inductance of said device in said first and second conditions; and operating said device within a circuit in at least said first and second conditions, said at least portion of said core controlling the inductance of said device during said conditions in order to produce the desired values.
- 53. A method of manufacturing a controlled inductance device, comprising:
providing a magnetically permeable core element; providing a shield element adapted to mate with said core element; disposing at least one winding on said core element; and disposing at least one controlled inductance element proximate to said core element and shield element, said at least one controlled inductance element being substantially contained within the volume of said shield element.
- 54. The method of claim 53, wherein said act of disposing at least one winding comprises winding at least one bifilar winding in substantially concentric fashion on said core element.
- 55. The method of claim 53, wherein said act of disposing at least one controlled inductance element comprises disposing at least one substantially planar strip in substantially symmetric fashion across the top of said core element, and deforming at least first and second distal portions of said at least one strip toward said at least one winding.
- 56. The method of claim 55, further comprising sliding said shield element longitudinally along and over said core element, including said at least one controlled inductance element.
- 57. The method of claim 56, further comprising capturing said first and second distal portions between said shield element and said core element.
- 58. A controlled inductance device for use in an electrical circuit, comprising:
magnetically permeable core means; at least one winding means for conducting current disposed on said core means; shielding means disposed substantially around the majority of said at least one winding means; and means for controlling inductance disposed proximate said shielding means, core means, and said at least one winding means.
- 59. A DSL filter circuit adapted for on-hook and off-hook conditions, comprising at least one shielded inductive device having a core, at least one winding, a shield cap, and at least one inductance control element, wherein said device provides at least first and second inductances corresponding to first and second notch frequencies.
Parent Case Info
[0001] This application claims priority benefit of PCT Application PCT/US02/29480 filed Sep. 17, 2002 and entitled “Controlled Inductance Device and Method”, which is incorporated herein by reference in its entirety.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/29480 |
9/17/2002 |
WO |
|