English

Analytical Models for Particle Diffusion and Flow in a Horizontal Cylinder with a Vertical Force

Computational Physics 2019-02-26 v3 Computational Engineering, Finance, and Science

Abstract

This paper considers particle propagation in a cylindrical molecular communication channel, e.g. a simplified model of a blood vessel. Emitted particles are influenced by diffusion, flow, and a vertical force induced e.g. by gravity or magnetism. The dynamics of the diffusion process are modeled by multi-dimensional transfer functions in a spatio-temporal frequency domain. Realistic boundary conditions are incorporated by the design of a feedback loop. The result is a discrete-time semi-analytical model for the particle concentration in the channel. The model is validated by comparison to particle-based simulations. These numerical experiments reveal that the particle concentration of the proposed semi-analytical model and the particle-based model are in excellent agreement. The analytical form of the proposed solution provides several benefits over purely numerical models, e.g. high flexibility, existence of low run-time algorithms, extendability to several kinds of boundary conditions, and analytical connection to parameters from communication theory.

Keywords

Cite

@article{arxiv.1803.10848,
  title  = {Analytical Models for Particle Diffusion and Flow in a Horizontal Cylinder with a Vertical Force},
  author = {Maximilian Schäfer and Wayan Wicke and Rudolf Rabenstein and Robert Schober},
  journal= {arXiv preprint arXiv:1803.10848},
  year   = {2019}
}

Comments

7 pages, 4 figures, 1 table, Accepted for publication at IEEE International Conference on Communications (ICC 2019)

R2 v1 2026-06-23T01:08:17.968Z