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Constrained motion of self-propelling eccentric disks linked by a spring

Authors :
Xu, Tian-liang
Qin, Chao-ran
Tang, Bin
Gao, Jin-cheng
Zhou, Jiankang
Chen, Kang
Zhang, Tian Hui
Tian, Wen-de
Publication Year :
2024

Abstract

It has been supposed that the interplay of elasticity and activity plays a key role in triggering the non-equilibrium behaviors in biological systems. However, the experimental model system is missing to investigate the spatiotemporally dynamical phenomena. Here, a model system of an active chain, where active eccentric-disks are linked by a spring, is designed to study the interplay of activity, elasticity, and friction. Individual active chain exhibits longitudinal and transverse motion, however, it starts to self-rotate when pinning one end, and self-beats when clamping one end. Additionally, our eccentric-disk model can qualitatively reproduce such behaviors and explain the unusual self-rotation of the first disk around its geometric center. Further, the structure and dynamics of long chains were studied via simulations without steric interactions. It was found that hairpin conformation emerges in free motion, while in the constrained motions, the rotational and beating frequencies scale with the flexure number (the ratio of self-propelling force to bending rigidity), ~4/3. Scaling analysis suggests that it results from the balance between activity and energy dissipation. Our findings show that topological constraints play a vital role in non-equilibrium synergy behavior.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2407.20610
Document Type :
Working Paper