Inertial and geometrical effects of self-propelled elliptical Brownian particles

被引:0
|
作者
Montana F. [1 ,5 ]
Camporeale C. [2 ]
Porporato A. [3 ]
Rondoni L. [1 ,4 ,5 ]
机构
[1] Department of Mathematical Sciences, Politecnico di Torino, Turin
[2] Department of Environmental Land and Infrastructure Engineering, Politecnico di Torino, Turin
[3] Department of Civil and Environmental Engineering, Princeton University, Princeton, NJ
[4] High Meadows Environmental Institute, Princeton University, Princeton, NJ
[5] INFN, Sezione di Torino, Turin
关键词
D O I
10.1103/PhysRevE.107.054607
中图分类号
学科分类号
摘要
Active particles that self-propel by transforming energy into mechanical motion represent a growing area of research in mathematics, physics, and chemistry. Here we investigate the dynamics of nonspherical inertial active particles moving in a harmonic potential, introducing geometric parameters which take into account the role of eccentricity for nonspherical particles. A comparison between the overdamped and underdamped models for elliptical particles is performed. The model of overdamped active Brownian motion has been used to describe most of the basic aspects of micrometer-sized particles moving in a liquid ("microswimmers"). We consider active particles by extending the active Brownian motion model to incorporate translation and rotation inertia and account for the role of eccentricity. We show how the overdamped and the underdamped models behave in the same way for small values of activity (Brownian case) if eccentricity is equal to zero, but increasing eccentricity leads the two dynamics to substantially depart from each other - in particular, the action of a torque induced by external forces, induced a marked difference close to the walls of the domain if eccentricity is high. Effects induced by inertia include an inertial delay time of the self-propulsion direction from the particle velocity, and the differences between the overdamped and underdamped systems are particularly evident in the first and second moments of the particle velocities. Comparison with the experimental results of vibrated granular particles shows good agreement and corroborates the notion that self-propelling massive particles moving in gaseous media are dominated by inertial effects. © 2023 American Physical Society.
引用
收藏
相关论文
共 50 条
  • [21] Geometrical model of a self-propelled broken interface
    Matsuo, Miki Y.
    Sano, Masaki
    JOURNAL OF PHYSICS A-MATHEMATICAL AND THEORETICAL, 2011, 44 (28)
  • [22] Statistical physics of self-propelled particles
    Hauser, M. J. B.
    Schimansky-Geier, L.
    EUROPEAN PHYSICAL JOURNAL-SPECIAL TOPICS, 2015, 224 (07): : 1147 - 1150
  • [23] Recent progress in self-propelled particles
    Zhen-yu Ouyang
    Jian-zhong Lin
    Journal of Hydrodynamics, 2024, 36 : 61 - 77
  • [24] Mathematical models of self-propelled particles
    Bellomo, N.
    Brezzi, F.
    MATHEMATICAL MODELS & METHODS IN APPLIED SCIENCES, 2017, 27 (06): : 997 - 1004
  • [25] Recent advances in self-propelled particles
    Pan, Qi
    He, Yan
    SCIENCE CHINA-CHEMISTRY, 2017, 60 (10) : 1293 - 1304
  • [26] Depinning transition of self-propelled particles
    Straube, Arthur, V
    Hoeling, Felix
    PHYSICAL REVIEW E, 2024, 110 (06)
  • [27] Recent progress in self-propelled particles
    Ouyang, Zhen-yu
    Lin, Jian-zhong
    JOURNAL OF HYDRODYNAMICS, 2024, 36 (01) : 61 - 77
  • [28] The collective dynamics of self-propelled particles
    Mehandia, Vishwajeet
    Nott, Prabhu R.
    JOURNAL OF FLUID MECHANICS, 2008, 595 : 239 - 264
  • [29] Anomalous diffusion of self-propelled particles
    Sevilla, Francisco
    Chacon-Acosta, Guillermo
    Sandev, Trifce
    JOURNAL OF PHYSICS A-MATHEMATICAL AND THEORETICAL, 2024, 57 (33)
  • [30] Recent advances in self-propelled particles
    Qi Pan
    Yan He
    Science China(Chemistry), 2017, 60 (10) : 1293 - 1304