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Kinetic modelling and bifurcation analysis of chemomechanically miniaturized gels under mechanical load

机译:机械载荷下化学机械化凝胶的动力学建模和分叉分析

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摘要

Chemomechanically responsive gels, with great potential applications in the fields of smart structures and biomedicines, present autonomously oscillatory deformation driven by the Belousov-Zhabotinsky chemical reaction. The dynamic behavior of the responsive gels is obviously affected by the external mechanical load. This approach proposed a kinetic model with an ordinary differential equation to describe the oscillatory deformation of the gels under the mechanical load. Then the periodic solutions and phase diagrams of the oscillation are obtained using the improved Runge-Kutta and shooting methods. The results demonstrated that bifurcations are typically existent in the system and the characters of the oscillatory deformation regularly depend on the mechanical load as well as the concentration of reactants and the stoichiometric coefficient of chemical reaction. This development is supposed to promote the practical applications of the chemomechanically responsive gels.
机译:化学机械响应性凝胶在智能结构和生物医学领域具有巨大的潜在应用,目前表现出由Belousov-Zhabotinsky化学反应驱动的自主振荡变形。响应性凝胶的动态行为显然受到外部机械负荷的影响。该方法提出了一个具有常微分方程的动力学模型来描述凝胶在机械载荷下的振荡变形。然后使用改进的Runge-Kutta和射击方法获得振荡的周期解和相位图。结果表明,系统中通常存在分叉,并且振荡变形的特征有规律地取决于机械负荷,反应物的浓度和化学反应的化学计量系数。该发展被认为促进化学机械响应性凝胶的实际应用。

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