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Rectifier
The Rectifier
represents the performance of a generic AC-to-DC converter. This component is intended to run with an InverterRectifierMap
subelement plugged into its S_map
socket that represents its losses.
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The input design parameters that must be specified by the modeler when creating an instance of this
Rectifier
component are mass specific power (SpecificPower
) and design efficiency (eff
). This component will transfer power from input to output, with losses according to its design efficiency. ONDESIGN, it calculates its mass (Mass
) by dividing its ONDESIGN input power by its specific power. -
This component transforms power, from AC power at its input port, to DC output power. Because this component represents a transformation of power, it includes a node. Being a component including a node, its voltage is an indepedent variable. It also features a dependent that ensures that the electrical power at the input port, is sufficient to produce the output power demanded, plus the losses in this component (EP_I.S.r * eff == Pdemand).
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Also being a transformation component that involves AC power, this component features multiple independents and dependents. The independents,
ind_Vreal
andind_Vimag
give the solver the ability to vary the input voltage, such that the input/output power relationship,dep_Power
is met (Pout_real == Pin_real * eff), a well as the input phase relationship,dep_phase
is met (Vin_phase == Iin_phase, which means the input power factor == unity) -
Note that, as a component that contains a node and has its voltage known at the beginning of the
solverSequence[]
, it uses its prePass() method to call the electrical port update function to pass this voltage information to electrical components that it is connected to. Note that in the current implementation of the NPSS Power System Library, these components containing nodes do not know what currents are going through their ports at the beginning of an iteration. Because of this, they must be connected to power transmission components (cables and breakers), and these transmission components must be run before node-bearing transformation components like this one, as the transmission components will calculate and populate these current values. Note that this design is intended to be analogous to a common approach taken in fluid networks within NPSS rocket models. -
This component, like other power system components in the NPSS Power System Library, can optionally include thermal models. An optional thermal model is enabled by setting
switchThermPort
toTRUE
, and plugging anEThermalMass
subelement into theS_eThermMass
socket. Doing these will add a temperature state (existing within EThermalMass) and a thermal port to the model. The thermal port is intended to connect this component to a second component that represents the mechanism by which heat is extracted from this component. This second component could represent a heat exchanger, cold plate, or just model heat transfer from the first component to the surrounding environment. For more information see EThermalMass.
This wiki page is intended to serve as documentation for the NPSS Power System Library (PSL). The PSL is maintained by NASA at the NASA Glenn Research Center, and funded by the Revolutionary Vertical Lift Technology (RVLT) project. A detailed table of contents for this page can be found in the Home page.
- Home
- Library Structure
-
Fundamental Classes and Components
- Electric Port
- Electric Node (Bus)
- Complex Number
- Inverter & Rectifier Map
- Motor & Generator Map
- E-Thermal Mass
- Interpreted Port
- Electric Element
- Electric Assembly
- Interpreted Assembly
- Modeling Components
-
Examples
- baseline
- baseline 1to2Bus
- baseline 2to1Bus
- baseline all_elec
- baseline all_elecMDP
- baseline turboelectric
- baseline turboelectricMDP
- cable_and_duct thermal_test
- cable_test
- cable thermal_test
- power propagation
- run_3phase example
- run_RLC example
- run_R_dc example
- thermal baseline
- thermal test
- transient baseline