Boost PFC Converter
Purpose
Rectifier with boost converter for power factor correction, optimized for Real-Time Simulations on the RT Box.
Library
Electrical / Nanostep
Description
This component implements a single-phase diode rectifier with a boost converter for power factor correction (PFC).
Both sides of the converter have current source behavior. The DC side must be connected directly to a capacitor or a voltage source.
The component offers two configurations:
Nanostep / SwitchedThe power semiconductors are modelled as ideal switches controlled by instantaneous logical gate signals. A switch is turned on when the corresponding gate signal is
true.In
Nanostep / Switchedconfiguration, C code generated from this component is suitable for real-time simulations on the RT Box, where it is executed on a Nanostep solver. In this case, connect the gate inputs to PWM Capture blocks from the RT Box component library.The Nanostep implementation requires the DC and AC sides to be galvanically isolated. Any electrical connection between the two sides outside the component would therefore not reflect the actual current and voltage situation and should be avoided.
Sub-cycle averageEach gate input is controlled by a floating-point number with values between \(0\) and \(1\), representing the relative on-time of the corresponding semiconductor over one simulation step, as described in Sub-cycle Averaging.
In
Sub-cycle averageconfiguration, C code generated from this component is suitable for real-time simulations on the RT Box, where it is executed on the CPU or FlexArray solver. In this case, connect the gate inputs to PWM Capture blocks from the RT Box component library.
Note
This component has a Nanostep solver weight of \(1\), indicating that it occupies \(\frac{1}{3}\) of a Nanostep solver for Real-time Simulations on the RT Box.
Note
DC voltage clamping through diodes is not permitted. Therefore, ensure that DC voltages across diodes are not negative.
Parameters
Certain parameters are associated with specific components. The corresponding component labels such as \(\mathrm{L}\), \(\mathrm{C}\), etc., are shown in Fig. 260.
- Configuration
Selects the component configuration. See the descriptions of
Nanostep / SwitchedandSub-cycle averageabove.- Switch model (CPU code generation)
If the Configuration is set to
Sub-cycle average, this parameter selects the switch model when CPU code is generated.- Semiconductor symbol
Use this setting to choose between
IGBTandMOSFETfor the symbol of the active semiconductor switches. This setting only affects the schematic representation and does not change the electrical behavior of the component.- Inductance
A non-zero scalar specifying the inductance \(\mathrm{L}\), in henries \((\mathrm{H})\).
- Winding resistance
A scalar specifying the winding resistance \(\mathrm{R_L}\), in ohms \((\Omega)\).
Probe Signals
See Fig. 260 for the probe signal positions.
- Inductor current
The current through the inductor \(\mathrm{L}\), in amperes \((\mathrm{A})\), defined positive in the direction of the arrow.
Nanostep Probe Signals
- Inductor current
The current through the inductor \(\mathrm{L}\), in amperes \((\mathrm{A})\), defined positive in the direction of the arrow.
- Input current
The current at the primary-side converter terminals, in amperes \((\mathrm{A})\), defined positive in the direction of the arrow.
- Output current
The current at the secondary-side converter terminals, in amperes \((\mathrm{A})\), defined positive in the direction of the arrow.
- Gate signal
The gate signal applied to the active semiconductor switch.
Fig. 260 Probes for the Boost PFC Converter
↳ Added in PLECS 4.9.