共 23 条
Passive concentration dynamics incorporated into the library IB2d, a two-dimensional implementation of the immersed boundary method
被引:4
|作者:
Santiago, Matea
[1
]
Battista, Nicholas A.
[2
]
Miller, Laura A.
[1
]
Khatri, Shilpa
[3
]
机构:
[1] Univ Arizona, Dept Math, POB 210089, Tucson, AZ 85721 USA
[2] Coll New Jersey, Dept Math & Stat, 2000 Pennington Rd, Ewing, NJ 08628 USA
[3] Univ Calif Merced, Dept Appl Math, 5200 North Lake Rd, Merced, CA 95343 USA
基金:
美国国家科学基金会;
关键词:
advection-diffusion;
immersed boundary method;
fluid-structure interaction;
mathematical biology;
biomechanics;
biofluids;
FLUID-STRUCTURE INTERACTION;
CONVECTION HEAT-TRANSFER;
MATHEMATICAL-MODEL;
FLOW;
CHEMOTAXIS;
TRANSPORT;
ADVECTION;
LEAF;
RECONFIGURATION;
PHOTOSYNTHESIS;
D O I:
10.1088/1748-3190/ac4afa
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
In this paper, we present an open-source software library that can be used to numerically simulate the advection and diffusion of a chemical concentration or heat density in a viscous fluid where a moving, elastic boundary drives the fluid and acts as a source or sink. The fully-coupled fluid-structure interaction problem of an elastic boundary in a viscous fluid is solved using Peskin's immersed boundary method. The addition or removal of the concentration or heat density from the boundary is solved using an immersed boundary-like approach in which the concentration is spread from the immersed boundary to the fluid using a regularized delta function. The concentration or density over time is then described by the advection-diffusion equation and numerically solved. This functionality has been added to our software library, IB2d, which provides an easy-to-use immersed boundary method in two dimensions with full implementations in MATLAB and Python. We provide four examples that illustrate the usefulness of the method. A simple rubber band that resists stretching and absorbs and releases a chemical concentration is simulated as a first example. Complete convergence results are presented for this benchmark case. Three more biological examples are presented: (1) an oscillating row of cylinders, representative of an idealized appendage used for filter-feeding or sniffing, (2) an oscillating plate in a background flow is considered to study the case of heat dissipation in a vibrating leaf, and (3) a simplified model of a pulsing soft coral where carbon dioxide is taken up and oxygen is released as a byproduct from the moving tentacles. This method is applicable to a broad range of problems in the life sciences, including chemical sensing by antennae, heat dissipation in plants and other structures, the advection-diffusion of morphogens during development, filter-feeding by marine organisms, and the release of waste products from organisms in flows.
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页数:22
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