Claims
- 1. An apparatus for providing an isothermal current shunt, said isothermal current shunt comprising:
- a current transformer having a primary and a secondary;
- separate first and second solid conductive bars of equal length, said first and second bars being electrically and thermally coupled at a first or current input node and at a second or current output node; and
- a separate third round solid conductive bar electrically and thermally coupled to said first bar at a first hole at a third node and to said second bar at a second hole at a fourth node to form the primary of said current transformer, said third bar being constructed of the same material as said first and second bars,
- the length between said input current node and said third node being different than the length between said input current node and said fourth node, and
- the length between said output current node and said third node being equal to the length between said input current node and said fourth node, and
- wherein said current transformer comprises a core formed of a toroid mounted around said third bar and between said first bar and said second bar;
- thereby to form an unbalanced bridge with a current transformer at the shunt.
- 2. The apparatus according to claim 1 further including an electronic amplifying means comprising a first operational amplifier and a first impedance means in a negative feedback loop for said first operational amplifier wherein amplification of said amplifying means is substantially equal to the ratio of the impedance value of said first impedance means and the impedance value of winding resistance of said secondary.
- 3. The apparatus according to claim 1 wherein said burden load impedance is formed by a series connection of said secondary, a first electronic amplifying means and a second electronic amplifying means, said first electronic amplifying means having an amplification factor at least in part determined by the value of winding resistance of said secondary.
- 4. The apparatus according to claim 3 wherein said secondary has a first terminal and a second terminal and wherein said first electronic amplifying means is coupled to present as a load to said secondary at said first terminal a high impedance at a first input terminal of said first electronic amplifying means, and further wherein said first electronic amplifying means is coupled in series with a second input terminal of said second electronic amplifying means, the output terminal of said second electronic amplifying means being coupled to said second terminal, said second electronic amplifying means having an amplification factor equal to the complement of the amplification factor of said first electronic amplifying means, thereby to present a negative impedance to said secondary removing effects of said secondary winding resistance.
- 5. The apparatus according to claim 4 wherein said second electronic amplifying means comprises a second operational amplifier and a second impedance means in a negative feedback loop for said second operational amplifier, said second impedance means being formed of a material having a temperature to resistance coefficient equal to said secondary winding and is disposed in isothermal relationship to said secondary winding thereby to minimize heat-induced differences in resistance between said secondary winding resistance and said second impedance.
- 6. The apparatus according to claim 4 wherein said current transformer further comprises a core formed of a material having high initial permeability.
- 7. An apparatus for providing an osothermal current shunt, said isothermal current shunt comprising:
- a current transformer having a primary and a secondary;
- first and second solid conductive bars of equal length, said first and second bars being electrically and thermally coupled t a first or current input node and at a second or current output node; and
- a third round solid conductive bar electrically and thermally coupled to said first bar at a first hole at a third node and to said second bar at a second hole at a fourth node to form the primary of said current transformer, said third bar being constructed of the same material as said first and second bars,
- the length between said input current node and said third node being different than the length between said input current node and said fourth node, and
- the length between said output current node and said third node being equal to the length between said input current node and said fourth node, and
- wherein said current transformer comprises a core formed of a toroid mounted around said third bar and between said first bar and said second bar;
- wherein a burden load impedance is formed by a series connection of said secondary, a first electronic amplifying means and a second electronic amplifying means, said first electronic amplifying means having an amplification factor at least in part determined by the value of winding resistance of said secondary;
- thereby to form an unbalanced bridge with a current transformer at the shunt; and
- wherein said secondary has a first terminal and a second terminal and wherein said first electronic amplifying means is coupled to present as a load to said secondary at said first terminal a high impedance at a first input terminal of said first electronic amplifying means, and further wherein said first electronic amplifying means is coupled in series with a second input terminal of said second electronic amplifying means, the output terminal of said second electronic amplifying means being coupled to said second terminal, said second electronic amplifying means having an amplification factor equal to the complement of the amplification factor of said first electronic amplifying means, thereby to present a negative impedance to said secondary removing effects of said secondary winding resistance.
- 8. The apparatus according to claim 7, wherein said second electronic amplifying means comprises a second operational amplifier and a second impedance means in a negative feedback loop for said second operational amplifier, said second impedance means being formed of a material having a temperature to resistance coefficient equal to said secondary winding and is disposed in isothermal relationship to said secondary winding thereby to minimize heat-induced differences in resistance between said secondary winding resistance and said second impedance.
- 9. The apparatus according to claim 7, wherein said current transformer further comprises a core formed of a material having high initial permeability.
Parent Case Info
This is a division of application Ser. No. 07/088,931 filed Aug. 24, 1987, now Pat. No. 4,835,463.
US Referenced Citations (18)
Divisions (1)
|
Number |
Date |
Country |
| Parent |
88931 |
Aug 1987 |
|