\documentclass[reqno]{amsart}
\usepackage{hyperref}

\AtBeginDocument{{\noindent\small
\emph{Electronic Journal of Differential Equations},
Vol. 2015 (2015), No. 295, pp. 1--7.\newline
ISSN: 1072-6691. URL: http://ejde.math.txstate.edu or http://ejde.math.unt.edu
\newline ftp ejde.math.txstate.edu}
\thanks{\copyright 2015 Texas State University.}
\vspace{9mm}}

\begin{document}
\title[\hfilneg EJDE-2015/295\hfil Existence and asymptotic behavior]
{Existence and asymptotic behavior of positive solutions for
a second-order boundary-value problem}

\author[R. S. Alsaedi \hfil EJDE-2015/295\hfilneg]
{Ramzi S. Alsaedi}

\address{Ramzi S. Alsaedi \newline
Department of Mathematics, Faculty of Sciences,
King Abdulaziz University, P.O. Box 80203,
Jeddah 21589, Saudi Arabia}
\email{ramzialsaedi@yahoo.co.uk}

\thanks{Submitted September 20, 2015. Published November 30, 2015.}
\subjclass[2010]{34B09, 34B15, 34B18, 34B27, 34B40}
\keywords{Boundary value problem; positive solution; fixed point; 
\hfill\break\indent Green function}

\begin{abstract}
 We study the boundary-value problem
 \begin{gather*}
 \frac{1}{A(t)}(A(t)u'(t))'=\lambda  f(t,u(t))\quad t\in (0,\infty),\\
 \lim_{t\to 0^+}A(t)u'(t)=-a\leq 0, \quad \lim_{t\to \infty}u(t)=b>0,
 \end{gather*}
 where $\lambda\geq0$ and $f$ is nonnegative continuous and nondecreasing
 with respect to the second variable. Under some assumptions on the 
 nonlinearity $f$, we prove the existence of a positive solution for 
 $\lambda$ sufficiently small.  Our approach is based on the Schauder 
 fixed point theorem.
\end{abstract}

\maketitle
\numberwithin{equation}{section}
\newtheorem{theorem}{Theorem}[section]
\newtheorem{lemma}[theorem]{Lemma}
\newtheorem{proposition}[theorem]{Proposition}
\newtheorem{remark}[theorem]{Remark}
\newtheorem{example}[theorem]{Example}
\allowdisplaybreaks

\section{Introduction}

The second-order differential equation
\begin{equation}\label{equ1}
\frac{1}{A(t)}(A(t)u'(t))'=g(t,u(t)),\quad t \in (a,b)
\end{equation}
has been extensively studied on both bounded and unbounded intervals 
with different boundary values (see for example
\cite{AgOr, BZ1, Maag, MM, OReg1, OReg2, Pr1, XuYang} 
and the reference therein).
Many results of existence and uniqueness of positive bounded solutions or 
unbounded ones have been obtained in the literature.
Most of these results treat the case where the nonlinearity $g$ is negative 
and $A(t)=1$ or $A(t)=t^{n-1}$ with $n\geq 3$. 
Boundary-value problems for differential equations of  type \eqref{equ1} 
play a very important role in both theory and applications. 
They are used to describe a large number of physical, biological and 
chemical phenomena.

Recently in \cite{KKLW}, the authors considered the density profile equation
\begin{gather*}
\psi''(r)+\frac{n-1}{r}\psi'(r)=4\lambda (\psi(r)+1)\psi(r)(\psi(r)-\xi ), \quad
 r \in (0,\infty), \\
\psi'(0)=0\,,\quad  \psi(\infty)=\xi\,,
\end{gather*}
where $\psi(r)$ stands for the density of a fluid. This equation has the
origins in the Cahn-Hillard theory which is used in hydrodynamics to study 
the behavior of nonhomogeneous fluids. Analytical aspects concerning this 
equation, i.e, the existence and uniqueness of strictly increasing solutions, 
their asymptotic behavior at infinity, as well as a various
numerical solutions were thoroughly carried out in  \cite{KLMS, KLM, LKCS}.

In this article, we  study the existence of positive solutions 
for the  boundary-value problem
\begin{equation} \label{main problem}
\begin{gathered}
\frac{1}{A(t)}(A(t)u'(t))'=\lambda f(t,u) \quad t\in  (0,\infty), \\
Au'(0)=\lim_{t\to 0}A(t)u'(t)=-a\,,\quad  u(\infty)=\lim_{t\to \infty}u(t)=b\,,
\end{gathered}
\end{equation}
where $\lambda\geq 0$, $a\geq 0$, $b>0$ and the function $f$ is  nonnegative, 
continuous and nondecreasing with respect to the second variable and satisfies 
some integrability condition.
Throughout this article, the function $A$ is assumed to satisfy the following 
condition:
\begin{itemize}
\item[(A1)]  $A$ is a continuous function on $[0,\infty)$,
differentiable and positive on $(0,\infty )$ such that
\[
\int_{1}^{\infty }\frac{dt}{A(t)}<\infty  .
\]
\end{itemize}
For a function $A$ satisfying (A1), the Green's function of the operator 
$Lu=\frac{1}{A}(Au')'$ on $(0,\infty)$
with Dirichlet boundary conditions $Au'(0)=0\,,\;u(\infty)=0$ is 
\begin{gather*}
G(x,t)=A(t)\int_{x\vee t}^{\infty}\frac{1}{A(s)}\,ds\,,
\quad \text{for }x,t\in ((0,\infty))^2\,,
\end{gather*}
where $x\vee t=\max(x,t)$.

To state our main result, we adopt the following notation. 
We denote by $B((0,\infty ))$ the set of Borel measurable functions on 
$(0,\infty )$ and by $B^{+}((0,\infty ))$ the set of nonnegative ones.
 Also we refer to  $C([0,\infty ])$ the collection of all continuous functions
 $u$ in $[0,\infty )$ such that $\lim_{x\to \infty}u(x)$ exists and
$C_0([0,\infty ))$ the subclass of $C([0,\infty] )$ consisting of
functions which vanish continuously at $ \infty $.

We refer to the Green potential of a function $h \in B^+((0,\infty))$ by
\[
V h(x)=\int_{0}^{\infty}G(x,t)h(t)dt
=\int_x^{\infty}\frac{1}{A(t)}\Big(\int_0^tA(s)h(s)ds\Big)dt.
\]
We denote by ${\mathcal{K}}$ the set of functions defined by
\[
\mathcal{K}=\big\{\varphi\in B^+(0,\infty): 
 V\varphi(0)=\int_0^{\infty}G(0,t)\varphi(t)dt<\infty\big\}.
\]
Finally, we denote by  $\omega(x)=a \int_x^{\infty}\frac{1}{A(t)}\,dt+b$.
Taking into account these notations, we assume that the function $f$ 
satisfies the following assumptions:
\begin{itemize}
\item[(A2)] $f:(0,\infty)\times [0,\infty) \to [0,\infty)$ is continuous
and nondecreasing with respect to the second variable.

\item[(A3)]  The function  $t\mapsto q(t)=\frac{f(t,\omega(t))}{\omega(t)}$
is nontrivial nonnegative and
belongs to the class $\mathcal{K}$.
\end{itemize}
Our main result is the following.

\begin{theorem}\label{main result}
Assume that {\rm (A1)--(A3)} are satisfied. Then there exists $\lambda_0>0$ 
such that for each $\lambda \in [0,\lambda_0)$,
problem \eqref{main problem} has a positive solution $u\in C^2((0,\infty))$ 
satisfying
\[
\big(1-\frac{\lambda_0}{\lambda}\big)\omega(x)\leq u(x)\leq \omega(x),\quad
\text{for } x\in (0,\infty).
\]
\end{theorem}

\begin{remark} \label{rmk1.2} \rm
When $a=0$ the solution given in the previous theorem is bounded,
while this solution is unbounded near $0$ when $a>0$ and 
$\int_0^1\frac{dt}{A(t)}$ diverges.
\end{remark}

Our paper is organized as follows. In section 2, we give some properties 
related to the Green{'}s function $G(x,y)$.
Section 3 is devoted to the proof of Theorem \ref{main result} 
and to the study of an example that illustrates our result.

\section{Preliminary results}

 In this section we give some inequalities 
on the Green function $G(x,y)$ and establish some technical results that 
will play a crucial role in the proof of our main result.
Let $A$ satisfy assumption (A1).

\begin{proposition}\label{prop1}
\begin{itemize}
\item[(i)] For each $x,t,s\in (0,\infty)$, we have
\[
\frac{G(x,t) G(t,s)}{G(x,s)}\leq G(0,t).
\]
\item[(ii)] For each $x,t\in (0,\infty)$, we have
\[
\frac{G(x,t) \omega(t)}{\omega(x)}\leq G(0,t).
\]
\end{itemize}
\end{proposition}

\begin{proof}
(i) For $x,t,s \in (0,\infty)$, we have
\begin{align*}
\frac{G(x,t)G(t,s)}{G(x,s)}
&= \frac{A(t)\Big(\int_{x\vee t}^{\infty}\frac{1}{A(r)}\,dr\Big)
\Big(\int_{t\vee s}^{\infty}\frac{1}{A(r)}\,dr\Big)}
{\int_{x\vee s}^{\infty}\frac{1}{A(r)}\,dr}\\
&\leq  \frac{A(t)\Big(\int_{x\vee s}^{\infty}\frac{1}{A(r)}\,dr\Big)
\Big(\int_{t}^{\infty}\frac{1}{A(r)}\,dr\Big)}
{\int_{x\vee s}^{\infty}\frac{1}{A(r)}\,dr}=G(0,t).
\end{align*}

(ii) Let $h(t)=\int_t^{\infty}\frac{1}{A(r)}\,dr$ for $t>0$. 
Since $h$ is non-increasing on $(0,\infty)$, it follows that
\[
h(x\vee t)\left(ah(t)+b\right)= a\,h(x\vee t)h(t)+b\,h(x\vee t)
\leq h(t)\left(ah(x)+b\right).
\]
This proves that for each $x,t\in (0,\infty)$, we have
\[
\frac{G(x,t)\omega(t)}{\omega(x)}
=\frac{A(t)h(x\vee t)\left(ah(t)+b\right)}{ah(x)+b}\leq A(t)h(t)= G(0,t).
\]
\end{proof}

\begin{proposition}\label{prop2}
Let $q$ be a nonnegative function in  ${\mathcal{K}}$ and let
\[
\alpha_q=\sup_{x,s\in (0,\infty)}\int_0^{\infty}\frac{G(x,t)G(t,s)}{G(x,s)}\,q(t)dt.
\]
Then we have
\begin{itemize}
\item[(i)] $\alpha_q=\|Vq\|_{\infty}=Vq(0)$.
\item[(ii)] $V(q\omega)(x)\leq \alpha_q \omega(x)$  for each $x\in (0,\infty)$.
\end{itemize}
\end{proposition}

\begin{proof} 
(i) Using  Proposition \ref{prop1} (i), we obtain
\[
\int_0^{\infty}\frac{G(x,t)G(t,s)}{G(x,s)}\,q(t)dt
\leq \int_0^{\infty}G(0,t)q(t)dt.
\]
Hence
\begin{equation}\label{ineq1-alpha q}
\alpha_q\leq Vq(0)=\|Vq\|_{\infty}.
\end{equation}
On the other hand, since for each $x,t\in (0,\infty)$ we have 
$\lim_{s\to \infty}\frac{G(t,s)}{G(x,s)}=1$,
Using Fatou's lemma, we have
\begin{align*}
Vq(x)
&=\int_0^{\infty}G(x,t)q(t)dt\\
&= \int_0^{\infty}\lim_{s\to \infty}\frac{G(x,t)G(t,s)}{G(x,s)}\,q(t)dt\\
&\leq  \liminf_{s\to \infty}\int_0^{\infty}\frac{G(x,t)G(t,s)}{G(x,s)}\,q(t)dt
\leq \alpha_{q}.
\end{align*}
This shows that
\begin{equation}\label{ineq2-alpha q}
Vq(0)=\|Vq\|_{\infty}\leq \alpha_{q}.
\end{equation}
Combining \eqref{ineq1-alpha q} and \eqref{ineq2-alpha q}, we obtain  that 
$\alpha_q=\|Vq\|_{\infty}=Vq(0)$.

(ii) Using assertion (i) and  Proposition \ref{prop1} (ii), we obtain
\[
\int_0^{\infty}\frac{G(x,t)\omega(t)}{\omega(x)}\,q(t)dt
\leq \int_0^{\infty}G(0,t)q(t)dt=Vq(0)=\alpha_q.
\]
Hence $V(q\omega)(x)\leq \alpha_q\,\omega(x)$.
\end{proof}

 The following continuity result will be used in the proof of 
Theorem \ref{main result}.

\begin{proposition}\label{prop3}
Let $q$ be a nonnegative function in ${\mathcal{K}}$. Then the family of functions
\[
S_q=\big\{x\mapsto \frac{1}{\omega(x)}\int_0^{\infty}G(x,t)\varphi(t)\omega(t)dt :
 \varphi \in B((0,\infty))\text{ and } |\varphi|\leq q  \big\}
\]
is relatively compact in $C_0([0,\infty))$.
\end{proposition}

\begin{proof} 
Since $b>0$, then for each $x,t\in (0,\infty)$ we have 
$\frac{G(x,t)}{\omega(t)}\leq \frac{G(0,t)}{b}$.
Hence
\[
\big|\frac{1}{\omega(x)}V(\varphi\,\omega)(x)\big|\leq\frac{1}{b}Vq(0).
\]
This shows that $S_q$ is uniformly bounded. Next, we consider 
$x,x'\in [0,\infty)$. Then we have
\[
\big|\frac{1}{\omega(x)}V(\varphi\,\omega)(x)
 -\frac{1}{\omega(x')}V(\varphi\,\omega)(x')\big|
\leq \int_0^{\infty}\big|\frac{G(x,t)\omega(t)}{\omega(x)}
-\frac{G(x',t)\omega(t)}{\omega(x')}\big|q(t)dt.
\]
Using the continuity of the function
$x\mapsto \frac{G(x,t)}{\omega(x)}$ on $[0,\infty)$ for each $t\in [0,\infty)$, 
 Proposition \ref{prop1} (ii) and the fact that $q\in {\mathcal{K}}$, 
 we deduce from the dominated convergence theorem,
the equicontinuity of $S_q$ on $[0,\infty)$. 
Moreover, since $b>0$ and $A$ satisfies (A1), we have
\[
\lim_{x\to \infty} \frac{G(x,t)}{\omega(x)}
=\lim_{x\to \infty}\frac{A(t)\int_{x\vee t}^{\infty}\frac{1}{A(s)}\,ds}
{b+a\int_x^{\infty}\frac{1}{A(s)}\,ds}=0.
\]
This and Proposition \ref{prop1} (ii) shows that
\[
\lim_{x\to \infty}\big|\frac{1}{\omega(x)}V(\varphi\,\omega)(x)\big|=0\,,\quad
\text{uniformly in } \varphi.
\]
Then by Ascoli's theorem, we deduce that  $S_q$ is relatively 
compact in $C_0([0,\infty))$.
\end{proof}

\section{Proof of main result}

\begin{lemma}\label{lem3-1}
If $f$ satisfies (A3), then
\[
\lambda_0:=\inf_{x\in (0,\infty)}\frac{\omega(x)}{V(f(.,\omega))(x)}>0.
\]
\end{lemma}

\begin{proof} 
Since $f$ satisfies (A3),  the function $q=\frac{f(.,\omega)}{\omega}$ belongs to
$\mathcal{K}$. It follows from Proposition \ref{prop2} that
\begin{gather*}
V(f(.,\omega))(x)
=V\Big(\frac{f(.,\omega)}{\omega}\,\omega\Big)(x)\leq \alpha_q\,\omega(x).
\end{gather*}
Or equivalently 
\[
\frac{\omega(x)}{V(f(.,\omega))(x)}\geq \frac{1}{\alpha_q}.
\]
 This shows that $\lambda_0\geq \frac{1}{\alpha_q}>0$.
\end{proof}

\begin{proof}[Proof of Theorem \ref{main result}]
 Let $\lambda_0$ be the positive constant given in Lemma \ref{lem3-1}. 
For $\lambda\in [0,\lambda_0)$, we consider
the nonempty closed convex set
\[
\Lambda=\big\{v\in C([0,\infty]): (1-\frac{\lambda}{\lambda_0})\leq v\leq 1\big\}
\]
and  define the operator $T$  on $\Lambda$ by
\begin{gather*}
Tv(x)=1-\frac{\lambda}{\omega(x)}\,\int_0^{\infty}G(x,t)f(t,\omega(t)v(t))dt
=1-\frac{\lambda}{\omega(x)}V(f(.,\omega))(x).
\end{gather*}
Since $f$ is non-decreasing with respect to the second variable, then for 
each $v\in \Lambda$ and $x>0$, we have
\begin{gather*}
0\leq \frac{1}{\omega(x)}V(f(.,\omega\,v))(x)
\leq \frac{1}{\omega(x)}V(f(.,\omega))(x)\leq \frac{1}{\lambda_0}.
\end{gather*}
This shows that $(1-\frac{\lambda}{\lambda_0})\leq Tv\leq 1$ for each 
$v\in \Lambda$. On the other hand since
$\frac{f(.,\omega)}{\omega}\in {\mathcal{K}}$,  it follows from
 Proposition \ref{prop3} that the family
$\{\frac{1}{\omega}V(f(.,\omega\,v)): v \in \Lambda \}$ is relatively 
compact in $C_0([0,\infty))$. Hence
$T\Lambda \subset \Lambda$ and $T\Lambda$ is relatively compact in 
$C([0,\infty])$.

Next, we prove the continuity of the operator $T$ in $\Lambda$ in the 
supremum  norm. Let $(v_k)_k$ be a sequence
in $\Lambda$ which converges uniformly to a function $v\in \Lambda$. 
Then we have
\begin{align*}
|Tv_k(x)-Tv(x)|
&\leq  \frac{\lambda}{\omega(x)}|V(f(.,\omega\,v_k))(x)-V(f(.,\omega\,v))(x)|\\
&\leq  \frac{\lambda}{\omega(x)} 
\int_0^{\infty}G(x,t)|f(t,\omega(t)v_k(t))-f(t,\omega(t)v(t))|\,dt.
\end{align*}
From the  monotonicity of $f$ with respect to the
second variable, we have
\begin{gather*}
|f(t,\omega(t)v_k(t))-f(t,\omega(t)v(t))|\leq 2f(t,\omega(t)).
\end{gather*}
Since by Proposition \ref{prop3} and  (A3), the function 
$V(f(.,\omega))/\omega \in C_0([0,\infty))$,
 using the continuity of $f$ with respect to the second variable and 
the dominated convergence theorem, we conclude that
\[
Tv_k(x) \to Tv(x)\quad \text{as } k \to \infty.
\]
Consequently, as $T\Lambda$ is relatively compact in $C([0,\infty])$, 
we deduce that pointwise convergence implies uniform convergence,
namely 
$$
\|Tv_k-Tv\|_{\infty}\to 0\quad \text{as } k \to \infty\,.
$$ 
Therefore $T$ is a continuous mapping from $\Lambda$
to itself. Since $T\Lambda$ is relatively compact in $C([0,\infty])$, 
it follows that $T$ is a compact mapping on $\Lambda$.
Finally, the Schauder fixed point theorem implies the existence 
of $v\in \Lambda$ such that
\[
v(x)=1-\frac{\lambda}{\omega(x)}\int_0^{\infty}G(x,t)f(t,\omega(t)v(t))dt.
\]
Put $u(x)=\omega(x)v(x)$ for $x \in (0,\infty)$. 
Then $u\in C((0,\infty))$ and
\[
(1-\frac{\lambda}{\lambda_0})\omega(x)\leq u(x)\leq \omega(x)\quad \text{for } 
x \in (0,\infty).
\]
Moreover $u$ satisfies the integral equation
\begin{equation}\label{integ-equa}
\begin{aligned}
u(x)&=\omega(x)-\lambda V(f(.,u))(x)\\
&=\omega(x)-\lambda \int_x^{\infty}\frac{1}{A(t)}
\Big(\int_0^tA(s)f(s,u(s))ds\Big)dt.
\end{aligned}
\end{equation}
Now, since $0\leq u\leq \omega$, 
\[
\lim_{x \to \infty}\frac{1}{\omega(x)}\int_0^{\infty}G(x,t)f(t,u(t))dt=0.
\]
This limit implies $\lim_{x\to \infty}\int_0^{\infty}G(x,t)f(t,u(t))dt=0$; 
consequently $\lim_{x\to \infty }u(x)=\lim_{x\to \infty }\omega(x)=b$.
On the other hand, using \eqref{integ-equa}, we obtain 
\[
A(x)u'(x)=-a+\int_0^xA(s)f(s,u(s))ds.
\]
This and $\lim_{x\to 0}\int_0^xA(s)f(s,u(s))ds=0$ 
imply that $\lim_{x\to 0}A(x)u'(x)=0$.
\end{proof}

\begin{example} \label{examp3.1} \rm
Let $\alpha>1$, $\sigma\geq 0$ and $p:(0,\infty) \to [0,\infty)$ be a 
nontrivial nonnegative continuous function satisfying
\[
\int_0^1t^{1-(\alpha-1)(\sigma-1)}p(t)dt+\int_1^{\infty}t p(t)dt<\infty.
\]
Then there exists $\lambda_0>0$ such that for each $\lambda \in [0,\lambda_0)$, 
the  problem
\begin{gather*}
u''+\frac{\alpha}{x}u'=\lambda p(x)u^{\sigma}(x) \,, \quad x\in (0,\infty) \\
\lim_{x\to 0},x^{\alpha}u'(x)=-a<0\,, \quad  \lim_{x\to \infty}u(x)=b>0\,,
\end{gather*}
has a positive solution $u\in C^2((0,\infty))$ satisfying
\[
\big(1-\frac{\lambda}{\lambda_0}\big)\Big(\frac{a}{(\alpha-1)x^{\alpha-1}}+b\Big)
\leq u(x)
\leq \Big(\frac{a}{(\alpha-1)x^{\alpha-1}}+b\Big)\,, 
\]
 for $ x\in (0,\infty)$.
\end{example}

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\end{document}