Controller for grid tied inverter system
09793823 · 2017-10-17
Assignee
Inventors
Cpc classification
H02M7/537
ELECTRICITY
H02M3/156
ELECTRICITY
International classification
H02M7/537
ELECTRICITY
H02M7/48
ELECTRICITY
Abstract
The present invention relates to a controller for a grid tied inverter system with an improved control configuration for increasing response speed of an output current according to specific electric power required. The controller comprises a first control circuit section to output a direct current (DC)-DC converter control signal, and a second control circuit section to output an inverter control signal, wherein the first control circuit section and the second control circuit section are independent of each other without a link for signal input and output therebetween.
Claims
1. A controller for a grid tied inverter system, the inverter system comprising a direct current (DC) DC-DC converter connected to an output of a DC energy supply source, and an inverter connected to an output of the DC-DC converter and configured to invert a DC voltage applied from the DC energy supply source into an alternating current (AC) grid voltage and supply the inverted AC grid voltage to a grid, the controller comprising: a first control circuit section configured to output a DC-DC converter control signal for controlling the DC-DC converter; and a second control circuit section configured to output an inverter control signal for controlling the inverter, wherein the first control circuit section and the second control circuit section are independent of each other due to a non-link of signal input and output therebetween, wherein the second control circuit section comprises: an input voltage control circuit section configured to generate an output current command by proportional integrating a difference between an input voltage command from the input voltage control circuit section and an input voltage from the DC energy source; and an output current control circuit section configured to generate the inverter control signal based only on proportional integrating a difference between the output current command and an input current from the DC energy source and to output the generated inverter control signal directly to the inverter.
2. The controller of claim 1, wherein the first control circuit section comprises: a DC link voltage control circuit section configured to generate an input current command by proportional integrating a difference between a DC link voltage command from the DC link voltage control circuit section and a DC link voltage from a DC link condenser; and an input current control circuit section configured to generate the DC-DC converter control signal by proportional integrating a difference between the input current command from the input current control circuit section and an input current from the DC energy source.
3. The controller of claim 1, wherein the first control circuit section is configured to generate the DC-DC converter control signal by proportional integrating a difference between a DC link voltage command from the first control circuit section and a DC link voltage from a DC link condenser.
4. The controller of claim 1, wherein the second control circuit section is configured to control an output current by the output current command, set according to desired electric power, to output the inverter control signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are included to provide a further understanding of the disclosure and are incorporated in and constitute a part of this specification, illustrate exemplary embodiments and together with the description serve to explain the principles of the disclosure.
(2) In the drawings:
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DETAILED DESCRIPTION OF THE DISCLOSURE
(8) Description will now be given in detail of technical features of the present invention, with command to the accompanying drawings.
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(10) The DC-DC converter 10 is a component which stabilizes DC voltages generated by various types of DC energy supply sources and boosts or converts the stabilized DC voltages into appropriate levels of voltages.
(11) With regard to the DC-DC converter 10 of
(12) The inverter 20 is connected to an output of the DC-DC converter 10 and inverts the DC link voltage Vdc, which is output from the DC-DC converter 10, into an AC voltage which is equal to a grid voltage, by switching operations of switching elements S1 to S4 in accordance with an inverter PWM control signal (INV PWM) provided by the controller 40.
(13) The filter unit 30 is a circuit for removing harmonic components mixed with the AC electric source inverted by the inverter 20. The filter unit 30 comprises a reactor L2 and a condenser C3.
(14) The controller 40 comprises a first control circuit section 41 and a second control circuit section 42, so as to output to the corresponding control circuit sections an input voltage command Vin ref, an input current command lin ref, a DC link voltage command Vdc ref and an output current command linv ref for controlling an input voltage Vin applied to the condenser C1, the input current lin flowing along the reactor L1, the DC link voltage Vdc applied to the condenser C2, and the output current linv flowing along the reactor L2, respectively. The controller 40 outputs the DC-DC converter PWM control signal DC-DC PWM and the inverter PWM control signal INV PWM for controlling the operations of the DC-DC converter 10 and the inverter 20, respectively.
(15) The controller 40 generally generates such various control signals according to a maximum power point tracking (MPPT) algorithm such that the inverter system according to the present invention can produce maximum electric power from a specific voltage and a specific current according to grid load variation. Also, the controller 40 continuously changes a command value for searching for a maximum electric power point, such that output electric power of the inverter system according to the present invention can track the maximum electric power point.
(16) The first control circuit section 41 is configured to output the DC-DC converter PWM control signal DC-DC PWM. The second control circuit section 42 is configured to output the inverter PWM control signal INV PWM.
(17) In view of a control configuration of a controller for an inverter system according to a related art, as illustrated in
(18) That is, the input voltage control circuit section 1 controls an input voltage Vin by the input voltage command Vin ref to output an input current command lin ref. The input current control circuit section 2 controls an input current lin by the input current command lin ref to output a DC-DC converter PWM control signal DC-DC PWM, thereby controlling the DC-DC converter 10.
(19) When the DC link voltage Vdc is generated by controlling the DC-DC converter 10, the DC link voltage control circuit section 3 controls the DC link voltage Vdc by the DC link voltage command Vdc ref, thereby outputting an output current command linv ref of the inverter 20.
(20) The output current control circuit section 4 controls the output current linv by the output current command linv ref to output the inverter PWM control signal INV PWM, thereby controlling operation of the inverter 20.
(21) That is, the related art controller for the inverter has a sequential configuration of operating the DC-DC converter 10 in a manner that the input voltage control circuit section 1 generates the input current command lin ref to track (or control) the input voltage Vin, and the input current control circuit section 2 operates and generates the DC-DC converter PWM control signal DC-DC PWM for the flow of a desired input current.
(22) The DC link voltage Vdc varies according to an operating state of the DC-DC converter 10. The DC link voltage control circuit section 3 outputs the output current command linv ref to maintain a desired DC link voltage Vdc. The output current control circuit section 4 operates and generates the inverter PWM control signal INV PWM for the flow of a desired output current linv, thereby operating the inverter 20.
(23) In such a manner, the controller for the inverter system according to the prior art has the configuration that the plurality of control circuit sections are unified with one another. This causes increases in interdependence among the control circuit sections and a slow response time of the output current linv.
(24) The responding process will be explained in detail. The output current command linv ref of the output current control circuit section 4 has to change in order to change the output current linv. To this end, an output of the DC link voltage control circuit section 3 has to change.
(25) However, since the DC link voltage Vdc has to be uniformly maintained, an input of the input current control circuit section 2 has to change. To this end, an output of the input current control circuit section 2 has to change. Also, an input of the input voltage control circuit section 1 has to change in order to change an output of the input voltage control circuit section 1.
(26) Therefore, in order to change the output current linv, the input of the frontmost input voltage control circuit section 1 in the sequential control configuration has to change, such that the plurality of control circuit sections can react in a sequential manner to obtain a desired control result.
(27) In
(28) The present invention roughly divides the related art configuration, in which the plurality of control circuit sections actually operate as an unified sequential configuration due to the linked structure among them, into two parts, namely, a first control circuit section 41 and a second control circuit section 42, so as to remove the interdependence and obtain a fast response speed for an output current control.
(29) The first control circuit section 41 and the second control circuit section 42 have configurations independent of each other. The DC-DC converter 10 operates in response to the DC-DC converter PWM control signal DC-DC PWM which is output from the first control circuit 41, but the operation of the DC-DC converter 10 does not affect an input signal of the second control circuit section 42. The second control circuit section 42, irrespective of the first control circuit section 41, generates the input voltage command Vin ref and/or the output current command linv ref, and outputs the inverter PWM control signal INV PWM as an output signal.
(30) This indicates that the DC-DC converter 10 is free from the control for the inverter. This allows the DC link voltage Vdc to be constant on the inverter system circuit and also enables a fast immediate control for the output current linv.
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(34) Under a situation of requiring for power lower than a maximum electric power point, in order to allow for an immediate control of the output current linv, only the output current control circuit section 402 can independently operate by disconnecting the link between the input voltage control circuit section 401 and the output current control circuit section 402, so as to change the input voltage Vin by the control of the output current linv.
(35) In other words, because of P (electric power)=V (voltage)×I (current), when the output current linv is controlled, desired electric power can be immediately controlled. Accordingly, when operating the output current control circuit section 402 by setting the output current command linv ref according to electric power required, a desired output current linv can immediately be obtained, irrespective of an output signal of the input voltage control circuit section 401.
(36) In this manner, the present invention has the technical feature in that the controller for the inverter system is configured by dividing into the first control circuit section 41 and the second control circuit section 42 so as to derive a fast reaction with respect to a desired electric power level and thus maximize response speed, and to provide a detailed control configuration therefor.
(37) As described above, in the present invention, since the sequential control configuration of the controller for the inverter system in which the control circuit sections are linked into an integral form has been improved in a dividing manner, a direct control for an output current can be achieved, and an output current corresponding to desired electric power can immediately be provided.
(38) As the present features may be embodied in several forms without departing from the characteristics thereof, it should also be understood that the above-described embodiments are not limited by any of the details of the foregoing description, unless otherwise specified, but rather should be construed broadly within its scope as defined in the appended claims, and therefore all changes and modifications that fall within the metes and bounds of the claims, or equivalents of such metes and bounds are therefore intended to be embraced by the appended claims.