The invention relates to control of grid connected converter, and particularly to a vector control with improved properties.
Voltage-source converters are widely used in power systems to connect renewable energy sources to the utility grid. The utility grid becomes weak or even very weak when the converters are connected with long transmission lines. The strength of a grid can be defined by its short-circuit ratio (SCR). SCR is the reciprocal of the grid impedance. The grids with SCR<2 are considered to be very weak. The converters introduce instability problem due to the wide variation of the grid impedance. Thus, the control of the converters becomes very difficult using conventional techniques.
A vector-control scheme is extensively used to control a voltage-source converter. A fast inner current controller is used to realize the current references generated from power equations and power references. The grid voltage at the point of common coupling (PCC) is measured and its angle is tracked using the phase-locked loop (PLL). The synchronous reference frame follows this angle obtained from the PLL. In addition, there is strong coupling between the active and the reactive power in weak grid conditions due to the PCC voltage dependency on the grid current. Therefore, the system may become unstable.
Various control methods have been introduced in the literature in order to improve the operation of voltage source converters in weak grid conditions. Re-tuning of the PLL and outer loop controllers are the typical solutions. However, re-tuning of the controllers requires the information of the grid impedance which is typically unknown and time-varying. In addition, the control schemes should be robust to the grid strength, i.e., the same controller tuning can be used irrespective of the grid strength.
An object of the present invention is to provide a method and an apparatus for implementing the method so as to overcome the above problems. The objects of the invention are achieved by a method and an apparatus which are characterized by what is stated in the independent claims. The preferred embodiments of the invention are disclosed in the dependent claims.
The invention is based on the idea of modifying the current reference using feedback from the output voltage of the converter. Preferably, the current reference is modified by modifying the active power reference or the active power reference together with the reactive power reference. Alternatively, the feedback from the output voltage may be used to modify directly the current reference.
The output voltage of the converter is preferably the output voltage reference. The output voltage is high-pass filtered, and the high-pass filtered output voltage is used for modifying the components affecting reference value for current.
An advantage of the method and apparatus of the invention is that information on the grid impedance is not required in the control. Further, a robust control method is obtained without need for re-tuning the controllers or the phase-locked loop.
In the following the invention will be described in greater detail by means of preferred embodiments with reference to the attached [accompanying] drawings, in which
Further in
The measured phase currents are also transferred to two-phase components in block 16 using the estimate of the grid voltage angle, and the obtained output current vector ic is fed as a feedback value to a current controller. The current reference vector ic,ref is originated in the example of
Thus in a typical vector control scheme reference values for active power P and reactive power Q are used for producing current references or a current reference vector. As shown in example of
The current reference vector ic,ref is inputted in a current controller which produces a voltage reference vector for the converter. As shown in
According to an embodiment of the invention, a current reference ic,ref for the converter is formed from an active power reference and from a reactive power reference. The current reference is fed to a current controller for producing a voltage reference uc,ref for the converter. In the example of
The method further comprises high-pass filtering the output voltage of the converter. As the output voltage that is formed corresponds to the reference, the formed voltage reference uc,ref can preferably be used instead of measured voltage. In the method the current reference is further modified with the high-pass filtered output voltage. Preferably, the current reference is modified with the high-pass filtered voltage reference.
In the embodiment shown in
The high-pass filter can be presented mathematically as
In which K is gain of the filter and αh is the bandwidth of the filter. The modified power reference can thus be written as
P′
ref
=P
ref
−H(s)|uc,ref|
According to another embodiment, the low-pass filtered magnitude of the output voltage vector (or the voltage reference uc,ref vector) can be subtracted from the d-component of the current reference vector ic,ref. The direct component of the current reference vector is also the active power producing component.
Further, in the embodiment, the high-pass filtered imaginary component of the voltage reference is added to the reactive power reference Qref to obtain a modified reactive power reference Q′ref. The modified active power reference P′ref and the modified reactive power reference Q′ref are fed to block 34 which calculates the converter output current reference ic,ref vector. Thus the output voltage or reference of the output voltage is high-pass filtered, and the current reference is modified using the high-pass filtered output voltage or output voltage reference.
In the embodiment of
P′
ref
=P
ref
−H(s)ucd,ref−H(s)ucq,ref
and
Q′
ref
=Q
ref
+H(s)ucq,ref
According to another embodiment, the high-pass filtered real and imaginary components of the output voltage vector are used for modifying the current reference directly. The high-pass filtered real component of the output voltage vector is preferably subtracted from the direct component of the current reference, i.e. from the real component of the current reference vector ic,ref. Correspondingly, the filtered imaginary component of the output voltage vector is subtracted from the quadrature component of the current reference vector. Once the high-pass filtered components are subtracted from or added to the components of the current reference vector, the current reference vector is modified. In a further embodiment, also the high-pass filtered imaginary component of the output voltage is subtracted from the real component of the current reference.
According to further embodiments both the active power reference and the reactive power reference are modified by feeding back the real component of the voltage reference. Further, another alternative is to modify the active power reference by feeding back the real component of the converter reference voltage only.
In the above, the operation of control is described to be based on active power reference and reactive power reference. The active power reference and the reactive power reference can be substituted with active current reference and reactive current reference. When the references are changed, the operation is still as described above.
The active power or active current reference is preferably obtained from a DC voltage controller or it may be a power reference.
All the above-mentioned implementations can be modified as the active power producing current reference icd,ref instead of the active-power reference Pref and reactive power producing current reference icq,ref instead of the reactive-power reference Qref. When current references are used instead of power references, the implementation can be seen as a modified current controller.
It has been found out in simulations, that the modified vector control damps the oscillations in the power flow effectively. The control method of the invention provides an improved response also in the rectification mode, i.e. when the power flow is from the grid to the converter.
The converter of the invention comprises means for forming a current reference for the converter from an active power reference and a reactive power reference and means for feeding the current reference to a current controller for producing a voltage reference for the converter.
Further, the converter comprises means for high-pass filtering the produced voltage reference or measured output voltage of the converter, and means for modifying the current reference with the high-pass filtered voltage reference or measured output voltage of the converter. Typically, the vector control is implemented in a processor of the converter. The processor is capable of running a control program and obtaining the required feedback from the surrounding process, if required.
It should also be noted, that in the above description the operation of the control system is described in connection with vector control. However, the invention can be implemented in any other control system or reference frame. The idea of the invention is to high-pass filter the magnitude of the output voltage of the converter or the converter voltage reference, and to modify the current reference with a high-pass filtered component of the output voltage or voltage reference.
It will be obvious to a person skilled in the art that the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the examples described above but may vary within the scope of the claims.
Number | Date | Country | Kind |
---|---|---|---|
18171822.2 | May 2018 | EP | regional |