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Influence of Different Cogging Structure on Permanent Magnet Linear Synchronous Generator for Wave Power Generation

Dan Li

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Abstract

Wave generator with linear permanent magnet synchronous power system will cause serious vibration and lead to permanent magnet crack.Based on the theory of linear generator and permanent magnet generator,this paper analyzes the influence of two slot-types on electromagnetic force in linear permanent magnet synchronous generator.According to simulation results,the slotted structure of generator is optimized to minimize cogging force of linear permanent magnet synchronous generator for wave power generation.

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What this paper is about

Wave generator with linear permanent magnet synchronous power system will cause serious vibration and lead to permanent magnet crack.Based on the theory of linear generator and permanent magnet generator,this paper analyzes the influence of two slot-types on electromagnetic force in linear permanent magnet synchronous generator.According to simulation results,the slotted structure of generator is optimized to minimize cogging force of linear permanent magnet synchronous generator for wave power generation.

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Available abstract

Wave generator with linear permanent magnet synchronous power system will cause serious vibration and lead to permanent magnet crack.Based on the theory of linear generator and permanent magnet generator,this paper analyzes the influence of two slot-types on electromagnetic force in linear permanent magnet synchronous generator.According to simulation results,the slotted structure of generator is optimized to minimize cogging force of linear permanent magnet synchronous generator for wave power generation.

Key concepts: Permanent magnet synchronous generator, Linear congruential generator, Magnet, Shunt generator, Generator (circuit theory), Cogging torque, Power (physics), Electrical engineering

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Influence of Different Cogging Structure on Permanent Magnet Linear Synchronous Generator for Wave Power Generation — Research Paper | ScholarLens