Insulating layers and edge-spaced connection portions control electrode spread in small coil components and remove the need for burr cleanup.
A semiconductive housing layer and grounded shield flatten transformer electric fields to curb partial discharge without added size or oil filling.
An asymmetric metal shield layer expands inductor shielding coverage, cuts magnetic radiation, and keeps input-output isolation stable.
An insulating layer between overlapping coil conductors boosts magnetic coupling while preventing short circuits and supporting reliable heat dissipation.
A wall-and-cover noise removal unit boosts capacitive coupling to ground, helping compact coil components discharge EMI more effectively.
A rounded barrier between the winding shield and tank bulge splits the oil passage to cut field peaks and prevent flashover.
Support elements pre-compress the tap changer housing to limit bending and fatigue under horizontal acceleration and seismic oscillation.
An insulating layer between the conductor post and magnetic resin body improves insulation and prevents peeling from thermal expansion mismatch.
By integrating resonant inductors into the transformer, this OBC module cuts PCB space and mounting time while improving efficiency and heat handling.
Parallel-plane inductor windings and matched magnetic portions boost inductance acquisition efficiency while limiting resistance in buck converters.
A linear terminal protrusion improves mold alignment, limits resin spread onto the mounting surface, and stabilizes substrate contact.
Amorphous or nanocrystalline magnetic powders with low-softening glass cut iron loss and enable multilayer inductor sintering below 470°C.
By eliminating one dicing direction, this coil structure improves alignment accuracy, reduces separation defects, and boosts production efficiency.
A ceramic protective film shields the wire-wound coil coating from magnetic powder damage, preventing short-circuits during body formation.
Smaller magnetic particles in the raised covering portion mechanically lock to the flange surface, reducing core peeling in coil components.
By embedding a ring core in an insulation matrix and routing windings through it, this case cuts transformer height while preserving isolation and power density.
A magnetizable filler layer replaces air gaps between the core and coil, improving flux conduction while reducing electrical steel use and cost.
A resin layer encapsulates the ferrite body and coil conductor to suppress particle diffusion while preserving high inductance and thinness.