Fig. 1. Schematic of the proposed class E power oscillator
Fig. 2. Transient waveforms in the circuit simulation of theclass E power oscillator
Fig. 3. Schematic for EM circuit co-simulation of the classE power oscillator considering the effects of thelayout design on PCB
Fig. 4. Transient waveforms using EM circuit co-simulation in each node of the power oscillator. (a)At the gate node, (b) the drain node of the transistorand (c) the output port connected to the 50-Ωreference impedance
Fig. 5. Proposed class E power oscillator module. The overall size of the module is 35 mm (W)×65 mm(L)×30 mm (H) including a LDO regulator, a SMPS connector, a metal heat sink, a cooling fan, and interconnections to BLE module, which can be used to control the regulator operation
Fig. 6. Measured fundamental oscillation frequencies of thepower oscillator depending on the bias voltages,which are the VGS (an opened circle line) and theVDS (a closed box line)
Fig. 7. Measured power conversion efficiency andtransmitted power of the power oscillator dependingon the VDS at 2.4 V VGS
Fig. 8. Output power spectrum of the power oscillator with30 dB attenuator
Table 1. Comparison of the capacitances in the feedback loop designed to generate the 6.78-MHz oscillation frequency in both simulations
Table 2. Design parameters of the power oscillator in Fig. 1
Table 3. Comparisons of the class E oscillator in the MHz range
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