Claims
- 1. A signal conditioning circuit, comprising:
at least one line-side node; at least one device-side node; a plurality of coupled inductive elements; and a plurality of capacitive elements; wherein said inductive and capacitive elements are disposed substantially within said circuit in at least one signal path between said at least line-side node and said at least one device-side node.
- 2. The circuit of claim 1, wherein at least a portion of said plurality of coupled inductive elements comprise toroidal core devices.
- 3. The circuit of claim 2, wherein said toroidal core devices comprise gapped toroids formed from a substantially ferrous material.
- 4. The circuit of claim 2, wherein said toroidal core devices each comprise:
a toroidal core, at least a portion of said core comprising a magnetically permeable material; a first conductive winding having a plurality of turns, at least a portion of said first winding being disposed around said core; at least one layer of insulating material formed atop at least a portion of said first winding; and a second conductive winding having a plurality of turns, at least a portion of said second winding being disposed around said core and atop said at least one layer of insulating material.
- 5. The circuit of claim 4, wherein said first conductive winding comprises a conductor having at least one film coating disposed on at least a portion of its surface.
- 6. The circuit of claim 5, wherein said insulating material comprises Parylene.
- 7. The circuit of claim 1, wherein said at least one line-side and device-side nodes comprise first and second line-side nodes and first and second device-side nodes, respectively, and said plurality of coupled inductive elements comprise at least three two-winding elements arranged in series along said signal path, the first of said two windings of each element being disposed between said first line-side node and said first device-side node, the second of said two windings of each element being disposed between said second line-side node and said second device-side node, the at least second and third of said coupled inductive elements having at least one of said plurality of capacitive elements in electrical parallel with each of the windings thereof.
- 8. The circuit of claim 7, wherein at least some of said plurality of capacitive elements are disposed so as to electrically couple said first and second of said two windings of at least one of said coupled inductive elements.
- 9. The circuit of claim 8, further comprising a common-mode choke coil disposed in said signal path between said first and second line-side nodes and the first of said coupled inductive elements.
- 10. The circuit of claim 1, wherein said at least one line-side and device-side nodes comprise first and second line-side nodes and first and second device-side nodes, respectively, and said plurality of coupled inductive elements comprise at least two two-winding elements arranged in series along said signal path, the first of said two windings of each element being disposed between said first line-side node and said first device-side node, the second of said two windings of each element being disposed between said second line-side node and said second device-side node, the at least second of said coupled inductive elements having at least one of said plurality of capacitive elements in electrical parallel with each of the windings thereof.
- 11. A method of generating the design of a signal conditioning circuit having a plurality of electrical components, comprising:
selecting a plurality of parameters relating to the performance of said circuit; modeling at least one external device electrically coupled to said circuit as a complex impedance; selecting a first value for at least one of said plurality of electrical components; running a first simulation based on said selected value and said modeled complex impedance; and evaluating the sufficiency of said design against said selected parameters.
- 12. The method of claim 11, further comprising varying at least one of said first values and running a second simulation based thereon when said step of evaluating the sufficiency indicates that at least one of said selected parameters are not satisfied.
- 13. The method of claim 11, wherein said act of modeling comprises:
generating at least one schematic for said circuit and said at least one external device; generating a plurality of nodes based on said at least one schematic; generating a coding of said nodes; and running said coding on a computer.
- 14. The method of claim 13, wherein said act of generating at least one schematic comprises:
generating a first schematic of said circuit; and generating a second schematic of said at least one external device, said second schematic having at least one reactive component therein.
- 15. The method of claim 14, wherein said act of generating a coding comprises generating a software configuration file including descriptions of said nodes.
- 16. The method of claim 11, wherein said parameters comprise (i) voice-band attenuation; (ii) impedance; and (iii) high band attenuation.
- 17. A filter circuit, comprising:
at least first and second signal paths formed between respective ones of first and second line-side and device-side terminals, respectively; at least first, second, and third coupled inductive elements each having first and second windings, said first windings of said at least first, second and third inductive elements being disposed in electrical series in said first signal path, said second windings of said at least first, second and third inductive elements being disposed in electrical series in said second signal path; at least two pairs of capacitive elements, the first of each pair of capacitive elements disposed in electrical parallel with said first winding of said at least second and third coupled inductive elements, respectively, the second of each pair of capacitive elements disposed in electrical parallel with said second winding of said at least second and third coupled inductive elements, respectively; and at least three capacitive elements disposed between said at least first and second signal paths.
- 18. The filter circuit of claim 17, wherein at least one of said coupled inductive elements comprises an inductor having:
a substantially toroidal core with at least one gap formed therein; a first conductive winding having a plurality of turns, at least a portion of said first winding being disposed around said core; at least one layer of insulating material formed atop at least a portion of said first winding; and a second conductive winding having a plurality of turns, at least a portion of said second winding being disposed around said core and atop said at least one layer of insulating material.
- 19. The filter circuit of claim 17, wherein said at least first, second, and third inductive elements are disposed in that order between said line-side and device-side terminals.
- 20. The filter circuit of claim 19, wherein said at least first inductive element has an inductance in the range of 25 to 30 mH, said at least second inductive element has an inductance in the range of 10 to 15 mH, and said at least third inductive element has an inductance in the range of 1 to 5 mH.
- 21. A filter circuit, comprising:
at least first and second signal paths formed between respective ones of first and second line-side and device-side terminals, respectively; at least first, second, and third coupled inductive elements each having first and second windings, said first windings of said at least first, second and third inductive elements being coupled in electrical series in said first signal path, said second windings of said at least first, second and third inductive elements being coupled in electrical series in said second signal path; at least two pairs of capacitive elements, the first of each pair of capacitive elements disposed in electrical parallel with said first winding of said at least second and third coupled inductive elements, respectively, the second of each pair of capacitive elements disposed in electrical parallel with said second winding of said at least second and third coupled inductive elements, respectively; and at least three capacitive elements disposed between said at least first and second signal paths; wherein at least one of said coupled inductive elements comprises an inductor having:
a substantially toroidal core with at least one gap formed therein; said first conductive winding having a plurality of turns, at least a portion of said first winding being disposed around said core; at least one layer of insulating material formed atop at least a portion of said first winding; and said second conductive winding having a plurality of turns, at least a portion of said second winding being disposed around said core and atop said at least one layer of insulating material.
- 22. A filter circuit, comprising:
at least first and second signal paths formed between respective ones of first and second line-side and device-side terminals, respectively; at least first, second, and third coupled inductive elements each having first and second windings, said first windings of said at least first, second and third inductive elements being coupled in electrical series in said first signal path, said second windings of said at least first, second and third inductive elements being coupled in electrical series in said second signal path, said at least first inductive element having an inductance in the range of 25 to 30 mH, said at least second inductive element having an inductance in the range of 10 to 15 mH, said at least third inductive element having an inductance in the range of 1 to 5 mH; at least two pairs of capacitive elements, the first of each pair of capacitive elements disposed in electrical parallel with said first winding of said at least first, second, and third coupled inductive elements, respectively, the second of each pair of capacitive elements disposed in electrical parallel with said second winding of said at least first, second, and third coupled inductive elements, respectively, said capacitive elements in said at least first pair having a capacitance in the range of 2 to 5 nF, said capacitive elements in said at least second pair having a capacitance in the range of 27 to 40 nF; and at least three capacitive elements disposed between said at least first and second signal paths, said at least three capacitive elements each having a capacitance in the range of 5-40 nf.
- 23. A digital subscriber line filter circuit having a plurality of electrical components, the design of said circuit being generated by the method comprising:
selecting a plurality of parameters relating to (i) the attenuation in both the voice and DSL bands and (ii) the impedance, of said circuit; generating at least one schematic for said circuit and said at least one external device, said external device being modeled as a complex impedance; generating a plurality of nodes based on said at least one schematic; generating a coding of said nodes; and running a first simulation based on said nodes and said coding; and evaluating the sufficiency of said design against said selected parameters.
- 24. An in-line DSL filter apparatus, comprising:
a filter circuit having:
a plurality of terminations at least first and second signal paths disposed between said plurality of terminations; at least two coupled inductive elements each having first and second windings and a common core, said first windings each being disposed in said first signal path, said second windings each being disposed in said second signal path; and at least first and second capacitors disposed in electrical parallel with respective ones of said first and second windings of at least one of said coupled inductive elements; a substrate, at least a portion of said filter circuit being disposed thereon; and a housing having a first element and second element, said first and second elements forming a recess, said substrate being captured within said recess.
- 25. The apparatus of claim 24, wherein said cores each comprise micro-gapped toroids, said first winding being disposed at least partly around said core, at least one layer of insulating material formed atop said at least a portion of said first winding, said second winding being at least disposed around said core and atop said at least one layer of insulating material.
PRIORITY AND RELATED APPLICATIONS
[0001] This application claims priority benefit to U.S. provisional patent application Ser. No. 60/275,069 filed Mar. 12, 2001 entitled “Advanced Electronic Signal Conditioning Assembly And Method Of Manufacturing” which is incorporated herein by reference in its entirety. This application is also related to (i) U.S. design Pat. application Ser. No. 29/141,570 filed May 9, 2001 and entitled “Electronics Housing Elements”; and (ii) U.S. utility patent application Ser. No. 09/661,628 filed Sep. 13, 2000, and entitled “Advanced Electronic Miniature Coil and Method of Manufacturing”, both also owned by the Assignee hereof and incorporated herein by reference in their entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60275069 |
Mar 2001 |
US |