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Can I read Heat-Driven Synchronization in Coupled Liquid Crystal Elastomer Spring Self-Oscillators on EtoBox?

Heat-Driven Synchronization in Coupled Liquid Crystal Elastomer Spring Self-Oscillators by Kai Li; Haiyang Wu; Biao Zhang; Yuntong Dai; Yong Yu is a Materials Science article available to read on EtoBox.

What is Heat-Driven Synchronization in Coupled Liquid Crystal Elastomer Spring Self-Oscillators about?

Self-oscillating coupled machines are capable of absorbing energy from the external environment to maintain their own motion and have the advantages of autonomy and portability, which also contribute to the exploration of the field of synchronization and clustering. Based on a thermally responsive liquid crystal elastomer (LCE) spring self-oscillator in a linear temperature field, this paper constructs a coupling and synchronization model of two self-oscillators connected by springs. Based on the existing dynamic LCE model, this paper theoretically reveals the self-oscillation mechanism and synchronization mechanism of two self-oscillators. The results show that adjusting the initial conditions and system parameters causes the coupled system to exhibit two synchronization modes: in-phase mode and anti-phase mode. The work conducted by the driving force compensates for the damping dissipation of the system, thus maintaining self-oscillation. The phase diagrams of different system parameters are drawn to illuminate the self-oscillation and synchronization mechanism. For weak interaction, changing the initial conditions may obtain the modes of in-phase and anti-phase. Under conditions

Who reads Heat-Driven Synchronization in Coupled Liquid Crystal Elastomer Spring Self-Oscillators?

It is typically read by researchers, students, and practitioners in Materials Science.

Author
Kai Li; Haiyang Wu; Biao Zhang; Yuntong Dai; Yong Yu
Publisher
MDPI AG
Published
2023
Language
EN
Field
Materials Science (Physical Sciences)