power compensation is provided from a power compensation device to a utility power network carrying a nominal voltage. The power compensation device has a steady-state power delivery characteristic. The power compensation is providing by detecting a change of a predetermined magnitude in the nominal voltage on the utility power network and controlling the power compensation device to deliver, for a first period of time and in response to the detected change in the nominal voltage, reactive power to the utility power network. The power compensation device is controlled to deliver, for a second period of time following the first period of time, reactive power to the utility power network at a level that is a factor N(N>1) greater than the steady-state power delivery characteristic of the power compensation device.

Patent
   RE41170
Priority
Nov 24 1999
Filed
Jan 19 2007
Issued
Mar 30 2010
Expiry
Nov 22 2020
Assg.orig
Entity
Large
8
34
all paid
0. 45. A method for controlling a system connected to a utility power network, the method comprising:
controlling a power compensation device to deliver power to the utility power network at a first overload level greater than a maximum non-overload, steady-state power capability characteristic, and
controlling the power compensation device to continuously decrease from the first overload level the power to a second level less than the first overload level,
a time period of the continuously decreasing power being determined on the basis of a transient thermal capacity characteristic of the power compensation device.
0. 17. A system for providing power to a utility power network, the system comprising:
a power compensation device having a maximum non-overload steady-state power capability characteristic; and
a controller which controls the power compensation device to deliver power to the utility power network at a first overload level greater than the maximum non-overload steady-state power capability characteristic and then to continuously decrease the power from the first overload level to a second level lower than the first overload level,
the controller determining a time period of the continuously decreasing power on the basis of a transient thermal capacity characteristic of the power compensation device.
0. 73. A system for providing power to a utility power network, the system comprising:
a power compensation device having a maximum non-overload steady-state power capability characteristic; and
a controller which controls the power compensation device to deliver power to the utility power network at a first overload level greater than the maximum non-overload steady-state power capability characteristic, calculates at least one rate of continuous decrease of power from the first overload level to a second level lower than the first overload level on the basis of a transient thermal capacity characteristic of the power compensation device, and then controls the power compensation device to continuously decrease power from the first overload level to the second level according to one of said calculated rates.
0. 1. A system for use with a reactive power compensation device connected to a utility power network carrying a nominal voltage, the system comprising:
a controller which controls the reactive power compensation device to deliver, for a first period of time and in response to a detected change in the nominal voltage, reactive power, real power, or both real and reactive power to the utility power network;
wherein, in a second period of time following the first period of time, the controller controls the reactive power compensation device to provide reactive power to the utility power network at a level that is a factor N (N>1) greater than a maximum power capability characteristic of the reactive power compensation device.
0. 2. The system of claim 1, wherein, during the second period of time, the relative power compensation device provides real power to the utility power network.
0. 3. The system of claim 2, wherein the controller controls the reactive power compensation device to non-discontinuously decrease the reactive power to a steady-state power delivery characteristic after the second period of time.
0. 4. The system of claim 3, wherein a slope of the non-discontinuously decreasing reactive power is determined on the basis of a characteristic impedance of the utility power network.
0. 5. The system of claim 1, wherein the factor N is determined on the basis of a transient thermal capacity characteristic of the reactive power compensation device.
0. 6. The system of claim 5, wherein the transient thermal capacity characteristic is represented by an I2t rating of the reactive power compensation device.
0. 7. The system of claim 1, wherein a sum of the first period of time and the second period of time is determined on the basis of the ability of the reactive power compensation device to absorb thermal energy.
0. 8. A method of providing power compensation from a power compensation device to a utility power network carrying a nominal voltage, the power compensation device having a steady-state power delivery characteristic, the method comprising:
detecting a change of a predetermined magnitude in the nominal voltage on the utility power network;
controlling the power compensation device to deliver, for a first period of time and in response to the detected change in the nominal voltage, reactive power, real power, or both real and reactive power to the utility power network; and
controlling the power compensation device to deliver, for a second period of time following the first period of time, reactive power to the utility power network at a level that is a factor N (N>1) greater than the steady-state power delivery characteristic of the power compensation device.
0. 9. The method of claim 8, wherein, during the second period of time the power compensation device provides real power to the utility power network.
0. 10. The method of claim 9, further comprising, after the second period of time, non-discontinuously decreasing the reactive power from the power compensation device to the steady-state power delivery characteristic.
0. 11. The method of claim 10, further comprising determining a slope of the nondiscontinuously decreasing reactive power on the basis of a characteristic impedance of the utility power network.
0. 12. The method of claim 11, wherein the characteristic impedance of the utility power network is determined on the basis of known characteristics of the utility power network.
0. 13. The method of claim 11, further comprising determining the characteristic impedance of the utility power network by applying a stimulus to the network and measuring a response to the stimulus.
0. 14. The method of claim 8, wherein the factor N is determined on the basis of a transient thermal capacity characteristic of the power compensation device.
0. 15. The method of claim 14, wherein the transient thermal capacity characteristic is represented by an I2t rating of the power compensation device.
0. 16. The method of claim 8, wherein the second period of time is determined on the basis of the ability of the power compensation device to absorb thermal energy.
0. 18. The system of claim 17 wherein the second level is less than or approximately equal to the maximum non-overload steady-state power capability characteristic.
0. 19. The system of claim 17 wherein the power compensation device has a maximum overload power delivery characteristic greater than the maximum non-overload steady-state power capability characteristic and the controller is configured to control the power compensation device to deliver power at the maximum overload power level to the utility power network prior to continuously decreasing the power to the second level.
0. 20. The system of claim 19 wherein the controller determines the maximum overload power delivery characteristic using a transient thermal capacity characteristic of the power compensation device.
0. 21. The system of claim 19 wherein the controller determines the maximum overload power delivery characteristic using the maximum current characteristic of the power compensation device.
0. 22. The system of claim 17 wherein the controller is configured to determine an accumulation of energy dissipated in the power compensation device during a first period of time, and to determine a starting time for starting to decrease the delivery of power from the power compensation device based on the accumulation of energy dissipated in the power compensation device.
0. 23. The system of claim 22 wherein the controller is configured to determine the starting time based on a transient thermal capacity characteristic of the power compensation device.
0. 24. The system of claim 23 wherein the controller uses the accumulation of energy dissipated in the power compensation device to estimate when the transient thermal capacity characteristic of the power compensation device will be exhausted.
0. 25. The system of claim 22 wherein the controller repeatedly calculates the accumulation of energy dissipated in the power compensation device.
0. 26. The system of claim 25 wherein the controller calculates the accumulation of energy dissipated in the power compensation device once every line cycle.
0. 27. The system of claim 17 wherein a rate of decrease of the continuously decreasing power is computed by the controller on the basis of a characteristic impedance of the utility power network.
0. 28. The system of claim 17 wherein the controller is configured to decrease the power as a linear function of time.
0. 29. The system of claim 23 wherein the transient thermal capacity characteristic is an I2t rating of the power compensation device.
0. 30. The system of claim 17 wherein the controller determines a slope and a time period of the continuously decreasing power on the basis of the ability of the power compensation device to absorb thermal energy.
0. 31. The system of claim 17 wherein the controller controls the power compensation device to deliver power to the utility power network at a level greater than the maximum non-overload steady-state power capability characteristic in response to a change in the condition of the utility power network.
0. 32. The system of claim 31 wherein the change in the condition of the utility power network comprises a change in a nominal voltage carried on the utility power network.
0. 33. The system of claim 17 wherein the power compensation device is configured to deliver reactive power, real power or a combination of reactive power and real power.
0. 34. The system of claim 17 wherein the power compensation device comprises a reactive power compensation device and the controller is configured to control the reactive power compensation device to deliver reactive power to the utility power network.
0. 35. The system of claim 34 wherein the power compensation device comprises a real power compensation device and the controller is configured to control the real power compensation device to deliver real power to the utility power network.
0. 36. The system of claim 17 wherein the power compensation device comprises a real power compensation device and the controller is configured to control the real power compensation device.
0. 37. The system of claim 36 wherein the controller is configured to control the real power compensation device to initially deliver a maximum level of real power to the utility power network.
0. 38. The system of claim 36 wherein the real power compensation device comprises a superconducting magnetic energy storage device (SMES).
0. 39. The system of claim 38 wherein the real power compensation device comprises a distributed SMES (D-SMES).
0. 40. The system of claim 37 wherein the real power compensation device comprises a capacitor bank.
0. 41. The system of claim 17 wherein the controller controls the power compensation device to deliver power to the utility power network at a level greater than the maximum non-overload steady-state power capability characteristic during a first time period, and to continuously decrease the power to the second level during a second time period.
0. 42. The system of claim 41 wherein the second time period follows the first time period.
0. 43. The system of claim 17 wherein power compensation device comprises one or more inverters.
0. 44. The system of claim 17 wherein the controller controls the power compensation device to immediately deliver, in response to a detected change in the nominal voltage, power to the utility power network at a level greater than the maximum non-overload steady-state power capability characteristic.
0. 46. The method of claim 45 wherein the second level is less than or approximately equal to the maximum non-overload steady-state power capability characteristic.
0. 47. The method of claim 45 wherein the power compensation device has a maximum overload power delivery characteristic greater than the maximum non-overload steady-state power capability characteristic, the method further comprising controlling the power compensation device to deliver the power at the maximum overload power level to the utility power network prior to continuously decreasing the power to the second level.
0. 48. The method of claim 47 further comprising determining the maximum overload power delivery characteristic as a function of a transient thermal capacity characteristic of the power compensation device.
0. 49. The method of claim 47 further comprising determining the maximum overload power delivery characteristic as a function of a maximum current characteristic of the power compensation device.
0. 50. The method of claim 45 further comprising determining an accumulation of energy dissipated in the power compensation device during a first period of time, and determining a starting time for decreasing the delivery of power from the power compensation device on the basis of the accumulation of energy dissipated by the power compensation device.
0. 51. The method of claim 50 further comprising determining the starting time on the basis of a transient thermal capacity characteristic of the power compensation device.
0. 52. The method of claim 45 further comprising determining the starting time based on an estimate of the accumulation of energy dissipated by the power compensation device.
0. 53. The method of claim 50 further comprising using the accumulation of energy to estimate when the transient thermal capacity characteristic of the power compensation device will be exhausted.
0. 54. The method of claim 50 further comprising repeatedly determining the accumulation of energy.
0. 55. The method of claim 54 further comprising determining the accumulation of energy once every line cycle.
0. 56. The method of claim 45 further comprising determining a rate of decrease of the continuously decreasing power on the basis of a characteristic impedance of the utility power network.
0. 57. The method of claim 45 further comprising decreasing the power as a linear function of time.
0. 58. The method of claim 51 wherein the transient thermal capacity characteristic is an I2t rating of the power compensation device.
0. 59. The method of claim 45 further comprising determining a slope and a time period of the continuously decreasing power on the basis of the ability of the power compensation device to absorb thermal energy.
0. 60. The method of claim 45 comprising controlling the system to deliver power to the utility power network at a level greater than the maximum non-overload steady-state power capability characteristic in response to a change in the condition of the utility power network.
0. 61. The method of claim 60 wherein the change in the condition of the utility power network comprises a change in a nominal voltage carried on the utility power network.
0. 62. The method of claim 46 wherein the power comprises reactive power, real power or a combination of real and reactive power.
0. 63. The method of claim 45 wherein the system comprises a reactive power compensation device and the controller is configured to control the reactive power compensation device to deliver reactive power to the utility power network.
0. 64. The method of claim 62 wherein the system comprises a real power compensation device and the controller is configured to control the real power compensation device to deliver real power to the utility power network.
0. 65. The method of claim 45 wherein the system comprises a real power compensation device, the method further comprising controlling the real power compensation device to initially deliver a maximum level of real power to the utility power network.
0. 66. The method of claim 65 wherein the real power compensation device comprises a superconducting magnetic energy storage device (SMES).
0. 67. The method of claim 66 wherein the real power compensation device comprises a distributed SMES (D-SMES).
0. 68. The method of claim 65 wherein the real power compensation device comprises a capacitor bank.
0. 69. The method of claim 46 wherein the power compensation device comprises one or more inverters.
0. 70. The method of claim 46 further comprising immediately delivering power to the utility power network at a level greater than the maximum non-overload steady-state power capability characteristic during the first time period.
0. 71. The method of claim 46 comprising controlling the power compensation device to deliver power to the utility power networks at a level greater than the maximum non-overload steady-state power capability characteristic during a first time period, and to continuously decrease the power to the second level during a second time period.
0. 72. The method of claim 71 wherein the second time period follows the first time period.
0. 74. The system of claim 73 wherein the power compensation device comprises an inverter and the controller controls the inverter to continuously decrease the power from the first overload level to a second level lower than the first overload level according to the at least one of said calculated rates.
0. 75. The system of claim 73 wherein the second level is lower than the maximum non-overload steady-state power capability characteristic.

6 kV 24.9 kv. A second transformer 22b steps-down the 6 kV 24.9 kv voltage to a voltage suitable for a load 24, here 480 V.

Power compensation system 30 includes an energy storage unit 32, an inverter system 44, and a controller 60. Energy storage unit 32 may be a part of a D-SMES (Distributed SMES) module which, together with inverter system 44, is capable of delivering both real and reactive power, separately or in combination, to distribution line 20. In this embodiment, the DSMES module is sized a 3.0 MVA and is capable of delivering an average of 2 MWatts for periods as long as 400 milliseconds, 7.5 MVA for a full second, and 3.0 MVAR of reactive power for an indefinite period of time. As described below, inverter 44, under the intelligent control of controller 60, transfers reactive power to and from the utility power network.

Referring to FIG. 2, inverter 44 converts DC voltage from energy storage unit 32 to AC voltage and, in this embodiment, includes four inverter units 46. Inverter 44 can act as a source for leading and lagging reactive power. In general, inverter 44 can only source real power from energy storage unit 32 for as long as real power is available. However, inverter 44 can source reactive power indefinitely assuming it is operating at its nominally rated capacity. Thus, inverter 44 can provide reactive power without utilizing power from energy storage unit 32. One example of an inverter that may be used in conjunction with the processes described herein may be obtained from Integrated Electronics, a division of American Superconductor Corp. (Part No. A0016701CH). However, the invention is not limited to use with this type of inverter and any other type of inverter may instead be used. Further details regarding the arrangement and operation of the D-SMES module and inverter 44 can be found in co-pending U.S. patent application Ser. No. 09/449,435, which was incorporated herein by reference above.

Each of the four inverter units 46 is capable of providing 750 KVA continuously and 1.875 MVA in overload mode for one second. The outputs of each inverter unit 46 are combined on the medium-voltage side of the power transformers to yield system ratings in accordance with the following table.

Power Flow Value Duration
MVA delivered, leading or 3.0 Continuously
lagging
MVA delivered, leading or 7.5 1-2 seconds in event of
lagging, overload condition transmission or distribution fault
detection
Average MW delivered to utility 2.0 0.4 seconds in event of
(for an exemplary D-SMES transmission or distribution fault
module). detection

Each inverter unit 46 includes three parallel inverter modules (not shown). Because inverter units 46 are modular in form, a degree of versatility is provided to accommodate other system ratings with standard, field-proven inverter modules. A level of fault tolerance is also possible with this modular approach, although system capability may be reduced. Each inverter module 46 is equipped with a local slave controller (not shown) that manages local functions, such as device protection, current regulation, thermal protection, power balance among modules, and diagnostics, among others. The inverter units and modules are mounted in racks with integral power distribution and cooling systems.

Inverter 44 is coupled to distribution line 20 through one or more step-down power transformers 50 and one or more switchgear units 52 (see also FIG. 1). Each power transformer 50 is a 24.9 kV/480 V three-phase oil-filled pad mount transformer having a nominal impedance of 5.75% on its own base rating. The power transformers are mounted outdoors adjacent to the system enclosure with power cabling protected within an enclosed conduit (not shown). As is shown in FIG. 1, a fuse 53 is connected between step-down power transformer 50 and distribution line 20.

Referring back to FIG. 2, each switchgear unit 52 provides over-current protection between power transformers 50 and inverter units 46. Each of the four main inverter outputs feeds a circuit breaker rated at 480 V, 900 A RMS continuous per phase with 45 kA interruption capacity. Switchgear units 52 also serve as the primary disconnect means for safety and maintenance purposes. The switchgear units are generally mounted adjacent to the inverter unit enclosures.

Referring again to FIG. 1, system controller 60 is a multiprocessor-driven system, which utilizes adaptive control processes. System controller 60 operates as a multi-state machine for processing inputs from distribution line 20 via line 42 and inverter units 46 of inverter system 44. System controller 60, as a function of unit inputs and predetermined internal control rules, dynamically determines the phase and magnitude of inverter units 46 as well as the real power output of D-SMES module 30. System controller 60, in operation, passes real-time voltage and current waveform data to the data acquisition system for processing and transmission to monitoring sites. System controller 60 also supports local user interfaces and safety interlocks. Controller 60 necessarily has a response time sufficient to ensure that the transfer of power to or from energy storage unit 32 occurs at a speed to address a fault or contingency on the utility system.

With reference to FIGS. 3 and 4, the operation of controller 60 and inverter 44 is described in conjunction with an exemplary contingency occurring on the utility power network. At the outset, the nominal voltage of the utility power network is monitored. For example, the nominal voltage on distribution line 20 is sensed either directly or from a remote device. When the nominal voltage has dropped below a predetermined threshold value (e.g., 90%), a request is made to operate inverter 44 in overload mode (200) and, in response, controller 60 transmits a trigger signal to cause inverter 44 to increase its output current above its steady-state rating (202). This steady-state rating is referred to in the figures as InvtrIRefMax/Imax InvtrIRefMax(Imax).

Referring to FIG. 4, inverter system 44 is activated to provide capacitive reactive power and real power from energy storage unit 32. In the example depicted in FIG. 4, the energy storage unit delivers 3 MWatts of real power and about 6.8 MVARs of capacitive reactive power. After inverter 44 is activated, the real power is decreased in a period 70, here the decrease is linear, to about 2 MWatts as the magnet discharges. During period 70 (e.g., 600 milliseconds) in which the real power is decreased, the capacitive reactive power is increased from 6.8 MVARs to about 7.2 MVARs. When energy storage unit 32 reaches its cut-off current level, controller 60 provides a signal to inverter 44 to stop delivery of real power. The cut-off current level of the energy storage unit 32 represents a power level of the energy storage unit that should be maintained for reasons relating to the reliability of the energy storage unit. That is, the energy storage unit 32 is generally not allowed to drop below this cut-off current level. At this point (point 72 of FIG. 4), capacitive reactive power is increased to comprise the entire maximum overload value for a period 74 (e.g., 400 milliseconds).

Referring to FIG. 5, the thermal heat capacity of inverter 44 is shown as a function of time. The inverter's ability to dissipate energy is referred to in the figures as InvtrCapacityLimit, which, if exceeded, will lead to destruction of the inverter. At point 80 (FIG. 4), controller 60 controls inverter 44 to begin decreasing its output current, since the inverter has reached its maximum thermal heat capacity.

As can be seen from FIGS. 4 and 5, although the output current of the inverter rises sharply from the non-overloaded, steady-state mode to the overload mode, the heat energy rises gradually over a period 76 (FIG. 5). Thus, this period of time can be used to provide a substantially greater amount of power to the utility power network than is normally available in the steady-state mode. During this time period, controller 60 controls inverter 44 so that the thermal limit of the inverter is not exceeded.

Referring again to FIG. 4, to ensure precise control of inverter 44, upon increasing the output current level of inverter 44, controller 60 begins to compute the accumulation of energy being dissipated in inverter 44 (204). This calculation is performed once every line cycle. To calculate the accumulation of energy dissipation (i.e., power dissipation per unit time) in the inverter, it is recognized that dominant loss mechanisms are proportional to I2 (inverter current squared). To obtain the accumulated energy, the power being dissipated over time is integrated over all samples. The sampled data equivalent of a continuous time system is a summation of samples of the power quantity, which is multiplied by the sample time interval as follows: 1 f s · n I n · I n ,
where 1/f,=tS, the sample period and In is the sampled instantaneous inverter current.

To obtain a value that is proportional to the energy that is dissipated above the rated, steady-state dissipation capability of the inverter (i.e., a value related to the transient thermal capacity limit), a ratio of the instantaneous inverter current (In) to the steady state limit (Imax=InvtrIRefMax) is obtained as follows: 1 f s · n ( I n I max ) · ( I n I max ) = 1 f s · n ( I n I max ) 2 ( 1 )

This expression represents the accumulated thermal energy of the inverter, a static variable that is updated every AC line cycle. Calculation of the accumulation of energy continues, as shown by the dotted line of FIG. 3.

Referring again to FIG. 4, once the period of time 74 has expired, the capacitive reactive power is decreased in ramp-like fashion—here, linearly—to a steady-state value (e.g., 3 MVARs). The capacitive reactive power is decreased in this manner to avoid an abrupt, step-like change in the reactive power transfer to the utility power network. A step-like abrupt change in the inverter current from, for example, 2.5 times the steady-state maximum to the steady-state maximum, can generate undesirable transients (e.g., ringing oscillations) on the utility power network, which can cause false switching and possible damage to equipment on the utility power network. Thus, the current is steadily decreased in accordance with the ramp-like profile (210). The ramp-down process is initiated at a time that ensures that when the inverter current reaches the steady-state maximum value (InvtrIRefMax), the thermal capacity limit of the inverter is exhausted. Selecting the ramp-down profile in this manner provides maximum power delivery to the load and reduces the probability of line voltage collapse, while also guarding against initiating undesirable transients on the network.

The ramp-down profile is typically a function of the characteristic impedance of the utility network to which it is connected. However, the characteristic impedance of a network changes unpredictably over time. In one approach, a suitable characteristic impedance value of the network can be derived from knowledge of the types of loads, conductors, reactive devices and transformers connected to the network. Alternatively, the characteristic impedance of the network can be determined by periodically applying a stimulus (e.g., a step function load) to the network and measuring the response of the network. In particular, inverter 44 can be used to apply the step function load, while controller 60 measures the response. Of course, the step function load would be of sufficiently low magnitude to prevent stimulation of undesirable oscillations. The characteristic impedance is then used to determine the ramp-down profile.

The summation of each cycle of inverter heat energy being accumulated must be calculated for each AC line cycle beginning with the initiation of the overload current above the steady-state maximum value. This summation is mathematically simple. But, the accumulation must also be dynamically estimated for each remaining cycle of the ramp-down process in order to be able to determine when to initiate the processes, as well as to ensure that ramp-down is proceeding such that the inverter's heat capacity limit will not be exceeded. Because the value of inverter current is controlled and predictable for each cycle of the process, a conceptually straightforward summation of each of the heat contributions during each of these cycles can be performed, but not without significant mathematical overhead, in practice. However, this mathematically intensive calculation can be simplified dramatically using the closed form approach described below. Simplifying this calculation permits the use of a less costly controller and/or significantly conserves the controller's bandwidth for other tasks.

Referring to FIG. 6, parabolic curve 100 represents the I2 value of inverter 44, as a function of time. The area under parabolic curve 100 bounded by points abcga represents the energy dissipated as the inverter current ramps from the value of I to zero along ramp profile 102. However, of interest is the area bounded by points abega, which represents the energy dissipated as the inverter current decreases from the value of I to Imax. To obtain the area bounded by points abega, the area bounded by points gecg is first obtained by recognizing that this area is exactly ⅓ the area of rectangle bounded by the points gecfg. The area bounded by the points abega is then obtained by subtracting the area bounded by points gecg from the area bounded by the points abcga. The closed form expression is represented as: 1 3 · 1 f s · 1 AmpsPerCycle · ( I 3 InvtrlRefMax 3 - InvtrlRefMax ) ( 2 )
where I is the inverter current, InvtrIRefMax(=Imax) is as defined above, and AmpsPerCycle is the slope of the ramp-down of the current. The foregoing expression represents the thermal capacity predictor for determining when the inverter must begin or continue the ramp-down of overcurrent toward the maximum steady-state value.

The final expression for limiting the overcurrent period of inverter 44 is the sum of equations (1) and (2), as follows: 1 f s · [ n [ ( I n InvtrlRefMax ) 2 ] ] + 1 3 · f s · ( I - InvtrlRefMax ) AmpsPerCycle · I 2 InvtrlRefMax

Note that the slope of the thermal energy content (heat content) of the inverter gradually declines during the ramp-down period in which the capacitive reactance from inverter 44 is reduced, and the slope becomes negative only after the inverter current reaches its maximum steady-state rating.

At this point, the process has computed the accumulation of energy being dissipated in the inverter through regions 74 and 82. Region 74 refers to that part that has actually accumulated, while region 82 represents the estimated accumulation that will occur from the current sample until the inverter current reaches the steady-state level. Samples are accumulated once per cycle for both regions 74 and 82, although the accumulation in region 82 is for estimation purposes. Moreover, inverter 44 generally cannot dissipate its heat at the same rate that the power delivered to the utility network is reduced. Thus, controller 60 must have sufficient intelligence to recognize that, in the event of a subsequent contingency, the thermal energy content of the inverter may not have decreased back to a level corresponding to the steady-state current level.

When the inverter current declines to the InvtrIRefMax level (212) (FIG. 3), the inverter will begin to cool. To reflect the cooling process, the accumulation procedure must be modified. In particular, although accumulation of heat energy is still computed, what is accumulated is a recovered capacity rather than an extended capacity. To do this, controller 60 begins the process by selecting (214) an incrementally higher value of estimated inverter current than the level of InvtrIRefMax (the maximum steady-state value) and using this value as if it were the actual inverter current. By using this value in the heat accumulation estimation process described above, controller 60 can verify whether the estimated current can be successfully reduced to InvtrIRefMax quickly enough so as not to exceed the thermal capacity limit of the inverter (in the event that a subsequent request for an over-current is required). In particular, controller 60 determines whether the inverter thermal capacity limit will be exceeded if the ramp-down process were to be initiated at the incrementally-larger estimated current level previously mentioned. If it is not exceeded, a constant value is subtracted from the accumulation of heat energy (216) and the value of the current is incremented by the value depicting the slope of the ramp-down process, called AmpsPerCycle. The estimate is again performed at the next sample period. The constant value represents the inverter's thermal recovery increment, a value that essentially gauges the state of recovery of the inverter from the overload. If the estimated current results in a prediction that exceeds the inverter's heat capacity limit, the thermal recovery increment is still decremented by the constant value, provided that the inverter current is actually at or below InvtrIRefMax, but the inverter current estimate remains unchanged, as it is used to constrain the peak current if a new overload current is requested. The process continues and, eventually, the full overload thermal capability of the inverter is restored and the overload current reaches its limit of N times the steady-state rating.

Thus, controller 60 controls inverter 44 to provide a maximum amount of inverter current should another contingency occur. Controller 60 does so without exceeding the capability the inverter and by providing a ramping-down to the steady state InvtrIRefMax level, while ensuring that the thermal capacity of the inverter is not exceeded by the time that the current declines to the InvtrIRefMax level.

For example, as shown in FIG. 4, a second follow-on contingency (point 86) may occur while the thermal capacity is still elevated. In this case, when inverter 44 is controlled to provide additional reactive power to the utility power network, the inverter current cannot be increased to the previous 750 MVAR level because the pre-established slope of the ramp down would result in the thermal capacity of the inverter being exceeded before reaching InvtrIRefMax. Thus, the inverter current is limited to, in this example, approximately 600 MVARs (point 86). At this peak inverter current, the inverter current can still decrease at the ramp down rate to InvtrIRefMax without, as shown in FIG. 5, exceeding the thermal limit of the inverter.

Other embodiments not explicitly described herein are also within the scope of the claims. For example, in the embodiment described above in conjunction with FIG. 1, an energy storage unit 32 was used to provide real power during period 70. However, in certain applications, inverter 44 may be used without an energy storage unit in order to solely provide reactive power compensation.

Folts, Douglas C., Buckles, Warren Elliott, Hubert, Thomas Gregory

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Patent Priority Assignee Title
3968422, Mar 27 1974 Siemens Aktiengesellschaft Method and apparatus for the static compensation of reactive power
4013937, Jul 22 1974 Westinghouse Electric Corporation Naturally commutated cycloconverter with controlled input displacement power factor
4962354, Jul 25 1989 Superconductivity, Inc. Superconductive voltage stabilizer
5134356, Jun 22 1990 BOARD OF REGENTS OF THE UNIVERSITY OF WASHINGTON A PUBLIC INSTITUTION OF HIGHER EDUCATION Reactive power compensator
5138247, Sep 18 1990 Kabushiki Kaisha Toshiba Reactive power compensating apparatus with higher harmonic suppressing function
5198746, Sep 16 1991 SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC Transmission line dynamic impedance compensation system
5202583, Dec 13 1991 Electric Power Research Institute Thyristor controlled series capacitor vernier control system
5343139, Jan 31 1992 SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC Generalized fast, power flow controller
5355076, Apr 25 1991 General Electric Company Phase controlled capacitor for series compensation of a high voltage transmission line
5384528, May 20 1992 Siemens Aktiengessellschaft Method and apparatus for recognizing defects in a triggering system of a controlled series compensator
5422561, Nov 23 1992 Southern California Edison Company Automated voltage and VAR control in power transmission and distribution networks
5424627, Dec 13 1991 Electric Power Research Institute Modular thyristor controlled series capacitor control system
5489838, May 18 1992 Siemens Aktiengesellschaft Method and apparatus for generating a synchronizing signal for a controlled series compensator
5519312, Nov 29 1993 Alfred University Hybrid system of fuel cell and superconducting magnetic energy storage device
5610501, Feb 01 1995 SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC Dynamic power and voltage regulator for an ac transmission line
5621305, Apr 13 1993 Electric Power Research Institute, Inc Overload management system
5642007, Dec 30 1994 SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC Series compensator inserting real and reactive impedance into electric power system for damping power oscillations
5644218, Feb 01 1995 BALLARD POWER SYSTEMS INC ; SUPERCONDUCTIVITY, INC Protection device for a superconducting coil of a superconducting voltage stabilizer
5670864, May 26 1995 Thomas & Betts International LLC Adaptive automatic power capacitor for controlling controller a capacitor bank of a power distribution system
5694308, Jul 03 1995 SHENZHEN XINGUODU TECHNOLOGY CO , LTD Method and apparatus for regulated low voltage charge pump
5698969, Nov 29 1995 SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC Apparatus and method for interline power flow control
5734257, Jul 22 1994 Electric Power Research Institute, Inc. Transmission line power controller with a continuously controllable voltage source responsive to a real power demand and a reactive power demand
5808452, Sep 15 1997 SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC Power flow controller with dc-to-dc converter linking shunt and series connected inverters
5814975, Jun 05 1995 Siemens Power Transmission & Distribution, LLC Inverter controlled series compensator
5942880, Jan 20 1998 Mitsubishi Denki Kabushiki Kaisha Compensation control device for a power system
5952816, Apr 21 1995 General Electric Co.; General Electric Company Compensation for power transfer systems using variable rotary transformer
6172488, Apr 10 1998 Kabushiki Kaisha Toshiba AC transmission system with reactance compensation
6900619, Nov 24 1999 American Superconductor Corporation Reactive power compensation to minimize step voltage changes and transients
EP181575,
JP1019929,
JP5268727,
JP59052809,
JP5921870,
WO31925,
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May 09 2001FOLTS, DOUGLAS C American Superconductor CorporationASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS 0200220373 pdf
May 10 2001HUBERT, THOMAS GREGORYAmerican Superconductor CorporationASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS 0200220373 pdf
May 14 2001BUCKLES, WARRENT ELLIOTTAmerican Superconductor CorporationASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS 0200220373 pdf
Jan 19 2007American Superconductor Corporation(assignment on the face of the patent)
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