Claims
- 1. A method for operating a transformer from a drivable voltage source, in which the voltage source is driven by means of drive signals (Sa) and produces an output voltage (uA) for feeding active power and/or a reactive component via the transformer into an electrical AC voltage supply network, with an output current (iA) from the voltage source being monitored for a maximum permissible value (iAmax), wherein a transformer voltage (uT) which is applied to the transformer is determined continuously, in that the magnetic flux (φ) of the transformer is determined continuously, in that, when the maximum permissible value (iAmax) of the output current (iA) is exceeded, the voltage source is driven such that the voltage source is disconnected from the transformer,in that, in response to a start signal (SS), an output voltage (uA) is formed as a function of a transformer voltage (uTX), which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, and as a function of a first magnetic flux (φ1), which was determined most recently before the maximum permissible value (iAmax)o the output current (iA) was exceeded, and of a second magnetic flux (φ2) determined at the time of the start signal (SS), and in that the voltage source is driven such that the output voltage (uA) is applied to the transformer for an adjustable time period (T0) after an adjustable switching time (t0).
- 2. The method as claimed in claim 1, wherein the magnetic flux (φ) is determined from the transformer voltage (uT), with the first magnetic flux (φ1) being formed from the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, and the second magnetic flux (φ2) is formed from a transformer voltage (uTS) determined at the time of the start signal (SS).
- 3. The method as claimed in claim 1, wherein a phase angle (ψ1) of the first magnetic flux (φ1) and a phase angle (ψ2) of the second magnetic flux (φ2) are determined,in that a difference phase angle (ψD) is formed from the phase angle (ψ1) of the first magnetic flux (φ1) and from the phase angle (ψ2) of the second magnetic flux (φ2), and in that, if the amplitude value (|φ2|) of the second magnetic flux (φ2) is essentially greater than zero and if the difference phase angle (ψD) is essentially in the interval 0°˜<ψD<180°, the adjustable switching time (t0) is chosen to be the time at which the difference phase angle (ψD) essentially reaches 180°.
- 4. The method as claimed in claim 3, wherein the output voltage (uA) is formed using the formula uA=uTX·1-&LeftBracketingBar;Φ2&RightBracketingBar;&LeftBracketingBar;Φ1&RightBracketingBar;2.
- 5. The method as claimed in claim 3, wherein, if the difference phase angle (ψD) is essentially in the interval −180°<ψD<0°, the adjustable switching time (t0) is chosen to be the time at which the difference phase angle (ψD) essentially reaches 0°.
- 6. The method as claimed in claim 5, wherein the output voltage (uA) is formed using the formula uA=uTX·1-&LeftBracketingBar;φ2&RightBracketingBar;&LeftBracketingBar;φ1&RightBracketingBar;2.
- 7. The method as claimed in claim 1, wherein, if the amplitude value (|φ2| of the second magnetic flux (φ2) is essentially equal to zero, the adjustable switching time (t0) is chosen to be the time at which the start signal (SS) occurs.
- 8. The method as claimed in claim 7, wherein the output voltage (uA) is formed using the formula uA=uTX·12.
- 9. The method as claimed in claim 1, wherein half of the period, duration (TN) of a network AC voltage (uN) of the electrical AC voltage supply network is essentially chosen as the adjustable time period (T0).
- 10. The method as claimed in claim 1, wherein, once the adjustable time period (T0) has elapsed, the voltage source is driven such that the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded is applied as the output voltage (uA) to the transformer.
- 11. An apparatus for carrying out a method for operating a transformer from a drivable voltage source having a drive device which is used for driving the voltage source, with the voltage source producing an output voltage (uA), in accordance with the drive, for feeding active power and/or a reactive component via the transformer into an electrical AC voltage supply network, wherein a first monitoring device is provided for monitoring an output current (iA) from the voltage source for a maximum permissible value (iAmax) and is connected on the input side to the drive device, in that first means are provided for continuously determining a transformer voltage (uT) which is applied to the transformer,in that a reference signal generator is provided, which has second means for continuously determining the magnetic flux (φ) of the transformer and which is connected on the input side to the first means and on the output side to the drive device, with the reference signal generator being designed such that, in response to a start signal (SS) which is supplied to the reference signal generator, an output voltage reference signal (uAref) which corresponds to the output voltage (uA) is formed as a function of a transformer voltage (uTX), which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, and as a function of a first magnetic flux (φ1) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, and of a second magnetic flux (φ2) determined at the time of the start signal (SS), and in that the reference signal generator has an enable switching device, to which the output voltage reference signal (uAref), an adjustable switching time (t0) and an adjustable time period (T0) are supplied in order to enable the output voltage reference signal (uAref) at the output of the reference signal generator.
- 12. The apparatus as claimed in claim 11, wherein the second means are supplied with the transformer voltage (uT), with the second means being designed such that the first magnetic flux (φ1) is formed from the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, and the second magnetic flux (φ2) is formed from a transformer voltage (uTS) determined at the time of the start signal (SS).
- 13. The apparatus as claimed in claim 11, wherein the second means are designed such that a phase angle (ψ1) of the first magnetic flux (φ1), an amplitude value (|φ1|) of the first magnetic flux (φ1), a phase angle (ψ2) of the second magnetic flux (φ2), an amplitude value (|φ2|) of the second magnetic flux (φ2) and the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded are formed and are produced at its output, in that a subtractor is provided in order to form a difference phase angle (ψD) from the phase angle (ψ1) of the first magnetic flux (φ1) and from the phase angle (ψ2) of the second magnetic flux (φ2), andin that a second monitoring device is provided for monitoring the amplitude value (|φ2|) of the second magnetic flux (φ2) for a value which is essentially greater than zero.
- 14. The apparatus as claimed in claim 13, wherein the second monitoring device and the subtractor are connected to the input of a third monitoring device, with the third monitoring device being used for monitoring the difference phase angle (ψD) essentially in the interval 0°<ψ<180°, and the adjustable switching time (t0) is chosen to be the time at which the difference phase angle (ψD) essentially reaches 180°.
- 15. The apparatus as claimed in claim 14, wherein a first calculation unit, which is connected on the input side to the enable switching device, is provided in order to form the output voltage reference signal (UAref), to which the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, the amplitude value (|φ1|) of the first magnetic flux (φ1) and the amplitude value (|φ2|) of the second magnetic flux (φ2) are supplied on the input side, with the first calculation unit calculating the output voltage reference signal (UAref) such that the output voltage (uA) is formed using the formula uA=uTX·1-&LeftBracketingBar;φ2&RightBracketingBar;&LeftBracketingBar;φ1&RightBracketingBar;2.
- 16. The apparatus as claimed in claim 13, wherein the second monitoring device and the subtractor are connected to the input of a fourth monitoring device, with the fourth monitoring device being used for monitoring the difference phase angle (ψD) essentially in the interval −180°<ψD<0°, and the adjustable switching time (t0) being chosen to be the time at which the difference phase angle (ψD) essentially reaches 0°.
- 17. The apparatus as claimed in claim 16, wherein a second calculation unit, which is connected on the input side to the enable switching device, is provided in order to form the output voltage reference signal (uAref), to which the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, the amplitude value (|φ1|) of the first magnetic flux (φ1) and the amplitude value (|φ2|) of the second magnetic flux (φ2) are supplied on the input side, with the second calculation unit calculating the output voltage reference signal (uAref) such that the output voltage (uA) is formed using the formula uA=uTX·1+&LeftBracketingBar;φ2&RightBracketingBar;&LeftBracketingBar;φ1&RightBracketingBar;2.
- 18. The apparatus as claimed in claim 13, wherein a fifth monitoring device is provided for monitoring the amplitude value (|φ2|) of the second magnetic flux (φ2) for a value which is essentially equal to zero, with the fifth monitoring device choosing the adjustable switching time (t0) to be the time at which the start signal (SS) occurs, when the amplitude value (|φ2|) of the second magnetic flux (φ2) is essentially equal to zero.
- 19. The apparatus as claimed in claim 18, wherein a third calculation unit, which is connected on the input side to the enable switching device, is provided in order to form the output voltage reference signal (UAref), to which the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded is supplied, with the third calculation unit calculating the output voltage reference signal (uAref) such that the output voltage (uA) is formed using the formula uA=uTX·12.
- 20. The apparatus as claimed in claim 11, wherein half of the period duration (TN) of a network AC voltage (uN) of the electrical AC voltage supply network is essentially chosen as the adjustable time period (T0).
- 21. The apparatus as claimed in claim 11, wherein the enable switching device is supplied with the transformer voltage (uTX) which was determined most recently before the maximum permissible value (iAmax) of the output current (iA) was exceeded, with the enable switching device being designed such that the transformer voltage (uTX) which is supplied is produced as the output voltage reference signal (uAref) at the output once the adjustable time period (T0) has elapsed.
- 22. The apparatus as claimed in claim 11, wherein the reference signal generator is implemented in a digital microprocessor.
Priority Claims (1)
Number |
Date |
Country |
Kind |
02405208 |
Mar 2002 |
EP |
|
Parent Case Info
This application claims priority under 35 U.S.C. §§ 119 and/or 365 to Appln No 02405208.6 filed in Europe on Mar. 18, 2002; the entire content of which is hereby incorporated by reference.
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