| name | dc-dc-converters |
| description | Use when working on Simulink or Simscape Electrical DC-DC converter models, including buck, boost, buck-boost, flyback, forward, resonant, bidirectional converters, MPPT front ends, duty-cycle control, and regulation diagnostics. |
DC-DC Converters
Status
Developing subskill. Use this file to recognize DC-DC converter scope and choose evidence to collect. Apply the root workflow; do not reuse inverter waveform-balance rules for regulation or ripple problems.
Read references/inspection.md for corpus-derived inspection notes before diagnosing DC-DC examples. Treat those notes as developing guidance, not a complete methodology.
For generated or repaired Simscape Electrical schematics, also read
../../references/simscape-layout.md. DC-DC converters are sensitive to
schematic readability because the return node, switch node, and output node are
high-degree physical networks that generic automatic layout often routes poorly.
Scope
- buck, boost, buck-boost, flyback, forward, and isolated DC-DC converters
- resonant and soft-switching DC-DC converters
- bidirectional converters for batteries, storage, and DC buses
- duty-cycle, current-mode, voltage-mode, and MPPT-linked control paths
Evidence To Collect
- topology, operating mode, switching frequency, input/output voltage, load, and duty range
- inductor current, capacitor voltage, switch stress, and controller saturation signals
- startup, load-step, line-step, or MPPT transient window used for validation
- continuous/discontinuous conduction assumptions and sensor polarity
- visual node map for generated component-level models: input positive,
switching node, output positive, and return rail
Generated Layout Workflow
When asked to generate or clean up a DC-DC Simscape model:
- Select the visual family:
- simple converter pipeline for buck/boost/buck-boost/SEPIC/Cuk
- bridge/symmetric layout for full-bridge or bidirectional converters
- resonant pipeline for LLC/series/parallel resonant converters
- subsystem-level converter block when the purpose is control/regulation
- Name the electrical nodes before drawing:
VIN_POS
SW or commutation midpoint
VOUT_POS
RETURN
- Place the physical power stage before control or scopes:
- source on the left
- switching device and freewheel path in the middle-left
- energy storage/output filter in the middle-right
- load on the right
- return rail as a bottom local rail
- Place PWM/control below or above the switch, and place measurement/scopes at
the measured node or at the right edge.
- Reject layouts where the return/common node routes to a remote canvas edge or
wraps around unrelated blocks.
Current Corpus-Derived Boundary
The current corpus contains many DC-DC library/helper candidates and fewer compiled runnable examples than motor drives. Use this subskill confidently for classification and evidence planning, but require a compiled, simulated, or measured state before promoting regulation/ripple rules.
For copied or downloaded DC-DC examples, prefer whole example folders or dependency closures. A single .slx often opens but does not provide enough initialization context for simulation-backed conclusions.
Promote When
Promote only after adding representative topologies, control-loop validation standards, transient/load-step checks, and scripts or model tests for regulation and device stress.