Energy saving mechanisms, collective behavior and the variation range hypothesis in biological systems: A review
Abstract
Energy saving mechanisms are ubiquitous in nature. Aerodynamic and hydrodynamic drafting, vortice uplift, Bernoulli suction, thermoregulatory coupling, path following, physical hooks, synchronization, and cooperation are only some of the better-known examples. While drafting mechanisms also appear in non-biological systems such as sedimentation and particle vortices, the broad spectrum of these mechanisms appears more diversely in biological systems including bacteria, spermatozoa, various aquatic species, birds, land animals, semi-fluid dwellers like turtle hatchlings, as well as human systems. We present the thermodynamic framework for energy saving mechanisms, and we review evidence in favor of the variation range hypothesis. This hypothesis posits that, as an evolutionary process, the variation range between strongest and weakest group members converges on the equivalent energy saving quantity that is generated by the energy saving mechanism. We also review self-organized structures that emerge due to energy saving mechanisms, including convective processes that can be observed in many systems over both short and long time scales, as well as high collective output processes in which a form of collective position locking occurs.
Keywords
Cite
@article{arxiv.1606.08969,
title = {Energy saving mechanisms, collective behavior and the variation range hypothesis in biological systems: A review},
author = {Hugh Trenchard and Matjaz Perc},
journal= {arXiv preprint arXiv:1606.08969},
year = {2016}
}
Comments
69 pages, 14 figures, 6 tables; pre-print of article in press