The subject of the invention is a method for monitoring DC link capacitance in power converters which is useful in condition monitoring of electronic equipment.
Many of converters applications are being considered as critical for plant production process. Offering enhanced functionality in modern power converters is a way to gain a competitive advantage in worldwide market. One of the values to the customers comes from low cost condition monitoring of critical equipment and from optimized maintenance costs. DC link is one of the elements of power converters circuits. Although the designers pay a lot of attention when designing DC link, breakdowns and failures of the DC link can still happen. Unfortunately this means that the whole converter must be shutdown in emergency mode to be repaired. Nowadays, monitoring of the DC link is becoming one of the desired features from customer side, as well as from the converter manufacturer.
The ever-increasing demands for greater efficiency and reliability of power converters, force the introduction of novel methods for improving their performance. One of the ways is to provide a detailed condition monitoring features for the elements of the converter, ensuring tracking of entire device status. Assuring proper monitoring of the DC link capacitance level is one of the solutions for converter status determination. The capacitor deterioration usually manifests by an increase in ESR and decrease in an effective capacitance. Earlier detection of the ESR increase allows for preventive mitigation actions i.e. scheduling shutdown and repairs. Moreover it also helps with evaluation of the expected operational time until failure may happen. Preventing the growth of ESR values over a specified level provides maintaining the quality of converted power and protects the converter from DC-link failure.
There is known from patent US 2010/0295554 A1 a method and system for monitoring the condition of the capacitor arrangement of the DC-voltage intermediate circuit of a power electronics appliance, such as of a frequency converter, at the place of usage, in which method the discharge voltage over the capacitor arrangement as a function of time is measured, and in which method the intermediate circuit is pre-charged With a pre-determined DC voltage, the pre-charging is removed from the intermediate circuit, the voltage of the intermediate circuit is measured by sampling at regular intervals, the voltage drop as a function of time is determined on the basis of the measured voltage of the intermediate circuit, the capacitance or the relative change in it is determined on the basis of the voltage drop, the value of the determined capacitance or of the relative change in it is compared to a pre-determined limit value on the basis of the voltage drop, and the necessary condition monitoring procedure is performed when the value determined with the measurement reaches the pre-determined limit value or is close to it. The disadvantage of the method is the need for performing initial measurement of the discharge curve and performing the measurements each time before starting the converter, thus it cannot be used online continuously.
There is known from patent U.S. Pat. No. 6,381,158B1 a system and method for monitoring DC link capacitance in three level inverters where a signal is injected into a neutral point regulator of an inverter drive and the response to that injected signal is monitored as an indication of the capacitance of the inverter drive. The disadvantage of the method is the need of additional passive elements used for additional device which is responsible for signal injecting.
The presented invention provides a diagnostic method for monitoring DC link in power converters according to claim 1.
The presented invention is advantageous relative to the previously described existing methods as it allows for monitoring of the DC link using less measurement devices inside the power converter, namely only DC link voltage measuring device is used. Moreover in the method according to the invention the calculation process is simplified and thus does not required a significant calculation power. Also by using synchronization with inverter switching signal further simplification in software by reducing algorithm complexity and in hardware by reducing number of elements is achieved, so the inventive method allows for saving time during monitoring DC link capacitance.
A power converter system comprises a power converter circuit 1 having a rectifying unit 2, a DC link unit 3, an inverter unit 4, and the power converter circuit 1 is connected with a converter control unit 5 and a DC link monitoring unit 6. The converter control unit 5 and the DC link monitoring unit 6 may be combined in single unit what is not presented in the drawing. The power converter circuit 1, the control unit 5 and DC link monitoring unit 6 are powered by three phase power supply lines a, b, c. The rectifying unit 2 has at least two solid state switches 2a, 2b, 2c, forming an inverter switching leg for each phase a, b, c, for converting the AC input voltage into DC output voltage. The solid-state switches of the rectifying unit 2 is one of the possible known kinds e.g. diodes, transistors, thyristors, etc. The DC link unit 3 includes at least one DC link circuit 7 and a DC link voltage measuring device 8. DC link circuit 7 comprises capacitor and an equivalent of series resistance ESR presented in
The converter control unit 5 is a computer device, having a data acquisition module 9 for receiving and processing input signals such as: current Ia, Ib, Ic, measured by the sensors 10 mounted on power supply lines a, b, c, and a voltage UDC of DC link unit 3, connected to the circuit 7. The converter control unit 5 is also equipped with an output module 11 for generating switching signals for solid switches 2a, 2b, 2c of the rectifying unit 2 and for solid switches 3a, 3b, 3c of the inverting unit 3. The converter control unit 5 is also equipped with an alarm generating module 12, for comparing the initial capacitance Cint and total capacitance C, and for generating alarm if certain condition is met. The DC link monitoring unit 6 is a computer device, having processing unit 13 for receiving and processing input signals such as: current Ia, Ib, Ic and a voltage UDC of DC link unit 3, and signals from switches 2a, 2b, 2c, 3a, 3b, 3c, The DC link monitoring unit 6 is equipped with the calculation module 14 for calculating an indicator of ESR (Equivalent Series Resistance) and for calculation a total capacitance C of the DC link unit 3.
The inventive method is implemented according to the following steps 20-28 presented in
Step 20
Checking if there is Cinit value provided by the user.
Measuring a DC link voltage UDC by the DC link voltage measuring device 8 and measuring current Ia, Ib, Ic of three phase power supply lines a, b, c, by the sensors 10.
Step 21
Calculation inverter switching signals SaINV, SbINV, ScINV of the inverter unit 3 and rectifier switching signals SaREC, SbREC, ScREC of the rectifier unit 2 in the converter control unit 5, using known control methods for such calculation e.g. field oriented control method, scalar control method, direct torque control method, and sending calculated data to the rectifier unit 2, the inverter unit 3 and DC link monitoring unit 6. The calculation is realized in the converter control unit 5. The switching signals can take the following values, according to the formulae's:
Step 22
Generating a trigger signal STRIG by comparison each individual switching signal with all remaining switching signals and when SaINV==SbINV==ScINV then the trigger signal STRIG has a value equal to 1.
Determination of triggered time duration t for the trigger signal STRIG and indicate measured current Ia, Ib, Ic in the time t as Ia(t), Ib(t), Ic(t), where triggered time duration t is defined as the time between start Ton and stop Toff of the trigger signal STRIG, where k-n are consecutive number of triggered time duration t, what is presented in the
T
on(k)<t<Toff(k) . . . Ton(k+n)<t<Toff(k+n) (2)
Step 23
Determination switching signals SaREC, SbREC, ScREC of the rectifying unit 2 from the converter control unit 5 at the triggered time t as SaREC(t), SbREC(t), ScREC(t) and determination of the DC link voltage Udc and current Ia, Ib, Ic of three phase power supply lines a, b, c at the triggered time t as Udc(t), Ia(t), Ib(t), Ic(t).
Step 24
Reconstructing the DC link current by multiplying phase current Ia(t), Ib(t), Ic(t) at the triggered time t by corresponding rectify switching signal SaREC(t), SbREC(t), ScREC(t) at the triggered time t and making a sum of all results what is presented in
I
DC(t)=SaREC(t)·Ia(t)+SbREC(t)·Ib(t)+ScREC(t)·Ic(t) (3)
Step 25
Calculating an indicator of an Equivalent Series Resistance (ESR) in monitoring unit 6, which requires the DC link voltage UDC measured voltage and IDC current obtained using equation 3 and is initial DC link capacitance provided by the user, according to the formula:
Step 26
Calculating the total DC link capacitance C (in percent's), which requires using IDC current obtained using equation 3, ESR indicator obtained using equation 4 and measured DC link voltage, according to the formulae:
Step 27
Comparing the initial capacitance Cinit with the calculated total capacitance C in alarm generating module 12, according to the formulae:
C[%]<kp·Cinit [%] (6)
Where the value of k is a threshold value given by user depended on a nominal power of the converter, for example for the converter of 1 MW power the value of kp is preferably 0.7.
Step 28
Generating an alarm if the threshold value is exceeded and sending a command from alarm generating module 12 to the output module 11 where rectify switching signals SaREC, SbREC, ScREC of rectifying unit 2 and inverter switching signals SaINV, SbINV, ScINV of inverter unit 4, are set to 0, which signals automatically switched off the converter circuit 1. In all other situations steps 22-27 are repeated.
Number | Date | Country | Kind |
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14460024.4 | Apr 2014 | EP | regional |
Number | Date | Country | |
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Parent | PCT/EP2015/000814 | Apr 2015 | US |
Child | 15296751 | US |