Maximum, anti-maximum principles and monotone methods for boundary value problems for Riemann-Liouville fractional differential equations in neighborhoods of simple eigenvalues

IF 0.6 Q3 MATHEMATICS Cubo Pub Date : 2023-08-07 DOI:10.56754/0719-0646.2502.251
P. Eloe, Jeffrey T. Neugebauer
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Abstract

It has been shown that, under suitable hypotheses, boundary value problems of the form, $Ly+\lambda y=f,$ $BC y =0$ where $L$ is a linear ordinary or partial differential operator and $BC$ denotes a linear boundary operator, then there exists $\Lambda >0$ such that $f\ge 0$ implies $\lambda y \ge 0$ for $\lambda\in [-\Lambda ,\Lambda ]\setminus\{0\},$ where $y$ is the unique solution of $Ly+\lambda y=f,$ $BC y =0$. So, the boundary value problem satisfies a maximum principle for $\lambda\in [-\Lambda ,0)$ and the boundary value problem satisfies an anti-maximum principle for $\lambda\in (0, \Lambda ]$. In an abstract result, we shall provide suitable hypotheses such that boundary value problems of the form, $D_{0}^{\alpha}y+\beta D_{0}^{\alpha -1}y=f,$ $BC y =0$ where $D_{0}^{\alpha}$ is a Riemann-Liouville fractional differentiable operator of order $\alpha$, $1<\alpha \le 2$, and $BC$ denotes a linear boundary operator, then there exists $\mathcal{B} >0$ such that $f\ge 0$ implies $\beta D_{0}^{\alpha -1}y \ge 0$ for $\beta \in [-\mathcal{B} ,\mathcal{B} ]\setminus\{0\},$ where $y$ is the unique solution of $D_{0}^{\alpha}y+\beta D_{0}^{\alpha -1}y =f,$ $BC y =0$. Two examples are provided in which the hypotheses of the abstract theorem are satisfied to obtain the sign property of $\beta D_{0}^{\alpha -1}y.$ The boundary conditions are chosen so that with further analysis a sign property of $\beta y$ is also obtained. One application of monotone methods is developed to illustrate the utility of the abstract result.
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黎曼-刘维尔分数阶微分方程边值问题的极大值、反极大值原理和单调方法
已经证明,在适当的假设下, $Ly+\lambda y=f,$ $BC y =0$ 在哪里 $L$ 线性常微分算子还是偏微分算子 $BC$ 表示线性边界算子,则存在 $\Lambda >0$ 这样 $f\ge 0$ 暗示 $\lambda y \ge 0$ 为了 $\lambda\in [-\Lambda ,\Lambda ]\setminus\{0\},$ 在哪里 $y$ 的唯一解是 $Ly+\lambda y=f,$ $BC y =0$。因此,边值问题满足极大值原则 $\lambda\in [-\Lambda ,0)$ 且边值问题满足反极大值原则 $\lambda\in (0, \Lambda ]$。在一个抽象的结果中,我们将提供合适的假设,使得, $D_{0}^{\alpha}y+\beta D_{0}^{\alpha -1}y=f,$ $BC y =0$ 在哪里 $D_{0}^{\alpha}$ Riemann-Liouville分数可微算子是阶的吗 $\alpha$, $10$ 这样 $f\ge 0$ 暗示 $\beta D_{0}^{\alpha -1}y \ge 0$ 为了 $\beta \in [-\mathcal{B} ,\mathcal{B} ]\setminus\{0\},$ 在哪里 $y$ 的唯一解是 $D_{0}^{\alpha}y+\beta D_{0}^{\alpha -1}y =f,$ $BC y =0$。给出了两个满足抽象定理假设的例子,得到了的符号性质 $\beta D_{0}^{\alpha -1}y.$ 选择边界条件,以便进一步分析得到的符号性质 $\beta y$ 也是得到的。本文给出了单调方法的一个应用,以说明抽象结果的实用性。
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来源期刊
Cubo
Cubo Mathematics-Logic
CiteScore
1.20
自引率
0.00%
发文量
22
审稿时长
20 weeks
期刊最新文献
On generalized Hardy spaces associated with singular partial differential operators Stability of ternary antiderivation in ternary Banach algebras via fixed point theorem Maximum, anti-maximum principles and monotone methods for boundary value problems for Riemann-Liouville fractional differential equations in neighborhoods of simple eigenvalues Existence and controllability of integrodifferential equations with non-instantaneous impulses in Fréchet spaces On stability of nonlocal neutral stochastic integro differential equations with random impulses and Poisson jumps
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