Analysis of a hybrid numerical method – decomposing leaf hydraulic conductance

Q3 Mathematics Letters in Biomathematics Pub Date : 2018-04-30 DOI:10.1080/23737867.2018.1463183
Frank H. Lynch, G. North, B. S. Page, Cullen J. Faulwell
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Abstract

Abstract We describe a hybrid numerical method to solve a boundary value problem where an unknown parameter of the model is chosen to satisfy an additional boundary condition. After the solution of the differential equation is approximated using a one-step method, a secant method is used to update the value of the unknown parameter. The model is a generalization of a model first used to describe water flow through roots, which was later used to describe water flow through the tank bromeliad Guzmania lingulata. In both cases, identification of the unknown parameter represents the decomposition of overall plant conductance into components in the radial and axial directions. We describe convergence of the one-step and secant portions of the method in a base case corresponding to previous applications of the model and in an intermediate case corresponding to a first approximation of the geometry of the leaf. We demonstrate that in the more general case, which better represents the geometry of G. lingulata, the one-step method also converges as expected. Finally, we discuss the implications of including a better description of the geometry of the leaf in context of radial conductance and show that our modeling of the leaf geometry increases the component of the overall leaf conductance in the radial direction by as much as 25%.
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叶片水力导度分解的混合数值方法分析
摘要本文描述了一种求解边值问题的混合数值方法,其中选取模型的一个未知参数来满足附加的边界条件。在用一步法逼近微分方程的解后,用割线法更新未知参数的值。该模型是对最初用于描述根部水流模型的推广,该模型后来用于描述槽凤梨(Guzmania lingulata)的水流。在这两种情况下,未知参数的识别代表将整个植物电导分解为径向和轴向分量。我们描述了该方法的一步和割线部分的收敛性,在基本情况下对应于模型的先前应用,在中间情况下对应于叶的几何形状的第一近似。我们证明了在更一般的情况下,它更好地代表了G. lingulata的几何形状,一步法也像预期的那样收敛。最后,我们讨论了在径向电导的背景下更好地描述叶片几何形状的含义,并表明我们对叶片几何形状的建模使叶片在径向方向上的总电导分量增加了25%。
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来源期刊
Letters in Biomathematics
Letters in Biomathematics Mathematics-Statistics and Probability
CiteScore
2.00
自引率
0.00%
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0
审稿时长
14 weeks
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