研究目的
Improving the beam-wave interaction efficiency by changing the coupling slot configuration in extended interaction oscillators (EIOs).
研究成果
The single-slot-type EIO achieves the best beam-wave interaction efficiency with a maximum output power of 2.8 kW and efficiency of 18% at 31 kV and 0.5 A. All four EIOs have output powers not less than 1.7 kW. The coupling slot configuration significantly influences dispersion characteristics, operating frequency, voltage, and pass-band, enabling better adaptation to engineering requirements.
研究不足
Only four typical coupling slot configurations are investigated, not all possible layouts. The study relies on simulations; experimental validation is mentioned as future work. Mode competition and instability issues are noted for some configurations.
1:Experimental Design and Method Selection:
The study uses a combination of equivalent circuit analysis and computer simulation technology (CST) to investigate dispersion characteristics, coupling coefficients, and interaction impedances for different coupling slot configurations. Four types of coupled cavity structures (Hughes-type, single-slot type, Chodorow-type, Chodorow-based-type) are compared.
2:Sample Selection and Data Sources:
Four nine-gap EIOs are designed based on coupled cavity structures with different coupling slot layouts. Dimensions such as cavity height (
3:3 mm), cavity width (2 mm), period length (5 mm), and gap length (1 mm) are kept constant. List of Experimental Equipment and Materials:
Simulation software CST is used; no physical equipment is mentioned.
4:Experimental Procedures and Operational Workflow:
Simulations are performed with beam voltages ranging from 27 to 33 kV, electric current of
5:5 A, and parameters like Rb (electron beam radius) and ds (coupling slot width) are varied. Particle in cell (PIC) simulations are conducted to analyze stability and output power. Data Analysis Methods:
Dispersion curves, interaction impedance curves, coupling coefficient curves, and output power vs. voltage, Rb, and ds are analyzed using CST simulations.
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