Growth on two limiting essential resources in a self-cycling fermentor
DOI10.3934/mbe.2019004zbMath1497.92164arXiv1809.02550OpenAlexW2891946908WikidataQ91183812 ScholiaQ91183812MaRDI QIDQ2160549
Ting-Hao Hsu, Tyler Meadows, Lin Wang, Gail S. K. Wolkowicz
Publication date: 3 August 2022
Published in: Mathematical Biosciences and Engineering (Search for Journal in Brave)
Full work available at URL: https://arxiv.org/abs/1809.02550
global attractivityimpulsive differential equationshybrid systemwastewater treatmentstate dependent impulseswater purificationcomplementary resourcesoptimal yieldemptying/refilling fractionnutrient driven processself-cycling fermentation
Ordinary differential equations with impulses (34A37) Population dynamics (general) (92D25) Biotechnology (92C75)
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- Exploitative competition in a chemostat for two complementary, and possibly inhibitory, resources
- Analysis of a model of nutrient driven self-cycling fermentation allowing unimodal response functions
- Global Asymptotic Behavior of a Chemostat Model with Two Perfectly Complementary Resources and Distributed Delay
- A Mathematical Model of Competition for Two Essential Resources in the Unstirred Chemostat
- Stability analysis of a self‐cycling fermentation model with state‐dependent impulse times
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