| Heavy-Copper Multilayer PCB | AC/DC rectifier stages, high-power DC/DC converters, input and output bus distribution | 3–12 oz copper on selected power layers; lighter copper may be used for signal layers | Commonly designed for 400–1,000 V DC systems, depending on insulation and spacing design | Suitable for high-current paths from tens to several hundred amperes when copper area, vias, connectors, and cooling are properly engineered | Thick copper planes, large plated vias, parallel current paths, reinforced terminals, and controlled creepage and clearance | Higher copper weight increases etching difficulty, board thickness, thermal stress, and manufacturing cost; current sharing must be verified |
| High-Tg FR-4 Power PCB | Modular power-conversion boards, gate-driver sections, control power supplies, and charger communication assemblies | Typically 1–4 oz copper, with heavier copper added in localized power regions | Suitable for low-voltage control circuits and medium-to-high-voltage power sections when the laminate system is correctly specified | Good electrical insulation and dimensional stability; thermal performance depends strongly on copper spreading, vias, and heatsinking | High glass-transition-temperature laminate, multilayer stack-up, embedded reference planes, and reinforced plated through-holes | Requires careful dielectric selection, field control, thermal relief design, and protection against delamination during repeated thermal cycling |
| Metal-Core PCB | Power semiconductor mounting, auxiliary converters, cooling plates, and compact thermal-management assemblies | Usually 1–6 oz copper over a dielectric layer and metal base, commonly aluminum or copper | Often used in isolated or non-isolated power assemblies; working voltage depends on dielectric thickness and isolation requirements | Provides a short thermal path to a chassis or heatsink; practical current capacity is determined by copper geometry and component temperature limits | Metal heat-spreading core, thermally conductive dielectric, insulated copper circuit layer, and direct mechanical attachment to cooling hardware | Electrical isolation, coefficient-of-thermal-expansion mismatch, mounting flatness, and dielectric thermal resistance require validation |
| Insulated Metal Substrate for Power Modules | Compact switch assemblies using silicon, silicon-carbide, or gallium-nitride power devices | Thick copper circuit layer bonded to a ceramic-filled dielectric and a metal heat-spreader | Used in high-voltage switching sections when dielectric breakdown strength and creepage requirements are satisfied | Supports high power density by reducing thermal resistance between semiconductor packages and the heatsink | Low-inductance layout, closely coupled power loops, thermally conductive dielectric, and mechanically rigid baseplate | Parasitic inductance, partial discharge, thermal cycling, solder-joint fatigue, and isolation coordination are critical |
| Ceramic Power Substrate | High-frequency switching modules, high-temperature power stages, and compact converter inverter sections | Metalized copper on ceramic dielectric, commonly using direct-bonded or active-metal-brazed construction | Appropriate for high-voltage power modules when insulation thickness, edge distance, and module design meet the required rating | High thermal conductivity and low parasitic inductance support fast switching and high power density | Alumina, aluminum nitride, or other ceramic insulation with bonded copper conductors | Excellent thermal and electrical performance but higher brittleness, specialized processing, and greater cost than conventional FR-4 |
| High-Voltage Multilayer PCB | High-voltage DC bus monitoring, isolation interfaces, insulation monitoring, and energy-management control | Typically 1–3 oz copper with dedicated guard, shielding, and reference layers | Commonly designed for 400–1,000 V DC charger architectures; exact rating depends on pollution degree, material group, and spacing | Optimized for insulation reliability and signal integrity rather than maximum conductor current | Controlled creepage and clearance, slots or cutouts, conformal-coating compatibility, isolated domains, and guarded traces | Safety spacing must account for working voltage, transient overvoltage, altitude, contamination, humidity, and manufacturing tolerances |
| Low-Inductance Laminated Busbar PCB | DC-link distribution, capacitor-to-switch connections, and high-current paths between parallel power modules | Thick copper or laminated copper layers arranged as closely coupled positive and negative conductors | Frequently used in 400–1,000 V DC links, subject to insulation system and mechanical construction | Supports high pulse current while reducing loop inductance, voltage overshoot, and electromagnetic emissions | Compact conductor spacing, controlled impedance of the power loop, integrated insulation, and high-current terminal interfaces | Requires accurate mechanical tolerances, robust dielectric insulation, low-resistance joints, and careful creepage at edges and terminals |
| Rigid-Flex Power and Control PCB | Compact charger modules, moving or space-constrained assemblies, display interfaces, and auxiliary control interconnects | Usually 1–3 oz copper in rigid sections; flex sections generally use thinner copper for bend reliability | Primarily suited to control, sensing, and auxiliary power circuits rather than the highest-current DC output path | Improves packaging flexibility; current capability is limited by flex geometry, bend radius, temperature rise, and connector design | Rigid multilayer zones joined by flexible polyimide sections, strain relief, bend-limit zones, and plated transition vias | Keep high-current and high-heat components in rigid areas; control bend cycles, dynamic flexing, impedance, and thermal expansion |
| Thermally Enhanced Power-Control PCB | Gate drivers, current sensing, cooling-fan control, contactor control, protection circuits, and charger energy management | Typically 1–2 oz copper with thermal vias, copper pours, and localized heat-spreading regions | Commonly supports low-voltage control rails and isolated interfaces associated with high-voltage charger systems | Designed for stable operation across outdoor temperature ranges; thermal performance depends on component losses and enclosure airflow | Thermal-via arrays, copper heat spreaders, separated analog and power grounds, isolation barriers, and EMI filtering | Signal integrity, sensor accuracy, galvanic isolation, creepage, conducted emissions, and firmware-related safety functions must be coordinated |