This case scales microwave power to dielectric unit volumes, improving cooking consistency across varying load quantities.
Microwave magnetic induction replaces discharge-prone electric-field heating for rapid treatment of thin conductive films and wires.
A grooved inner conductor reshapes the microwave field, improving aerosol generation while reducing energy dispersion and scorching.
An insertion hole accommodates thermal gaps between conductors, maintaining microwave transmission in aerosol-generating devices.
This case shows how forward and reflected RF power reveal food context for closed-loop, precise heating in a solid-state oven.
This case uses incident/reflected-wave phase differences to rapidly tune frequency and sustain resonance as heated objects change.
Delay lines synchronize master-slave RF generators for controllable, phase-coherent microwave power.
This heating cooker uses a display switch to select Sabbath mode, balancing religious restrictions with convenient warming of cooked dishes.
Microwave heating replaces open flames for precise glass container temperature control.
This case combines conductive oxide or fine-metal coatings with glass panes to shield microwaves without obstructing oven-door visibility.
A resistive coating on a microwave-transmissive glass-ceramic plate supports even heating and browning without blocking penetration.
A segmented fill and heating chamber uses molten regolith as a force medium for controlled lunar construction extrusion.
This case monitors angle-dependent microwave leakage fluctuations to detect antenna standstill and prevent overheating from motor failure.
This case uses monomode applicators to position workpieces precisely, improve microwave absorption, and limit crosstalk.
A toroidal chamber uses transparent windows and segmented waveguide sections to distribute microwaves and reduce heating uncertainty.
Microwave and hot-air heating cut nut-drying energy use by 44%.
This heater assembly uses a resonant microwave field to improve power transfer and heat aerosol materials rapidly and uniformly.
A stacked oscillating and resonating unit uses a coupler to transmit microwaves, supporting compact dielectric heating and heat dissipation.
A processor moves the greatest electric-field absorption region during microwave resonance to improve heating uniformity and power use.
Reflected-power feedback tunes microwave resonance for rapid, uniform aerosol heating.
A segmented resonating unit distributes microwave energy to reduce surface-current loss and improve aerosol heating efficiency.
An insulating resonance structure supports compact aerosol heating while limiting droplet accumulation and preserving resonance efficiency.
Ferromagnetic nanowires and ferritic carbon nanotubes convert microwave and magnetic-field energy into rapid, uniform plate heating.