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Positive solutions of fractional differential equations at resonance on the half-line

Abstract

This article deals with the differential equations of fractional order on the half-line. By the recent Leggett-Williams norm-type theorem due to O’Regan and Zima, we present some new results on the existence of positive solutions for the fractional boundary value problems at resonance on unbounded domains.

MSC:26A33, 34A08, 34A34.

1 Introduction

In this article, we are concerned with the fractional differential equation

{ D 0 + α u ( t ) = f ( t , u ( t ) ) , t [ 0 , + ) , u ( 0 ) = u ( 0 ) = u ( 0 ) = 0 , D 0 + α 1 u ( 0 ) = lim t + D 0 + α 1 u ( t ) ,
(1.1)

where D 0 + α is the Riemann-Liouville fractional derivative, 3<α<4, and f:[0,+)×RR satisfies the following condition: (H) = f:[0,+)×RR is continuous and for each l>0, there exists ϕ l C[0,+) L 1 [0,+) satisfying sup t 0 | ϕ l (t)|<+ and ϕ l (t)>0, t>0 such that

|u|<limplies | f ( t , ( 1 + t α 1 ) u ) | ϕ l (t),a.e.t0.

.

The problem (1.1) happens to be at resonance in the sense that the kernel of the linear operator D 0 + α is not less than one-dimensional under the boundary value conditions.

Fractional calculus is a generalization of the ordinary differentiation and integration. It has played a significant role in science, engineering, economy, and other fields. Some books on fractional calculus and fractional differential equations have appeared recently (see [13]); furthermore, today there is a large number of articles dealing with the fractional differential equations (see [415]) due to their various applications.

In [8], the researchers dealt with the existence of solutions for boundary value problems of fractional order of the form

where 1<α2 and f:[0,+)×RR is continuous. The results are based on the fixed point theorem of Schauder combined with the diagonalization method.

In [9], Su and Zhang studied the following fractional differential equations on the half-line using Schauder’s fixed point theorem

Employing the Leray-Schauder alternative theorem, in [12], Zhao and Ge considered the fractional boundary value problem

However, the articles on the existence of solutions of fractional differential equations on the half-line are still few, and most of them deal with the problems under nonresonance conditions. And as far as we know, recent articles, such as [4, 6, 7], investigating resonant problems are on the finite interval.

Motivated by the articles [1620], in this article we study the differential equations (1.1) under resonance conditions on the unbounded domains. Moreover, we have successfully established the existence theorem by the recent Leggett-Williams norm-type theorem due to O’Regan and Zima. To our best knowledge, there is no article dealing with the resonant problems of fractional order on unbounded domains by the theorem.

The rest of the article is organized as follows. In Section 2, we give the definitions of the fractional integral and fractional derivative, some results about fractional differential equations, and the abstract existence theorem. In Section 3, we obtain the existence result of the solution for the problem (1.1) by the recent Leggett-Williams norm-type theorem. Then, an example is given in Section 4 to demonstrate the application of our result.

2 Preliminaries

First of all, we present some fundamental facts on the fractional calculus theory which we will use in the next section.

Definition 2.1 ([13])

The Riemann-Liouville fractional integral of order ν>0 of a function h:(0,)R is given by

I 0 + ν h(t)= D 0 + ν h(t)= 1 Γ ( ν ) 0 t ( t s ) ν 1 h(s)ds,
(2.1)

provided that the right-hand side is pointwise defined on (0,).

Definition 2.2 ([13])

The Riemann-Liouville fractional derivative of order ν>0 of a continuous function h:(0,)R is given by

D 0 + ν h(t)= 1 Γ ( n ν ) ( d d t ) n 0 t ( t s ) n ν 1 h(s)ds,
(2.2)

where n=[ν]+1, provided that the right-hand side is pointwise defined on (0,).

Lemma 2.1 ([1, 9])

Assume thath(t) L 1 (0,+). If ν 1 , ν 2 ,ν>0, then

I 0 + ν 1 I 0 + ν 2 h(t)= I 0 + ν 1 + ν 2 h(t), D 0 + ν I 0 + ν h(t)=h(t).
(2.3)

Lemma 2.2 ([9])

Assume that D 0 + ν h(t) L 1 (0,+), ν>0. Then we have

I 0 + ν D 0 + ν h(t)=h(t)+ C 1 t ν 1 + C 2 t ν 2 ++ C N t ν N ,t>0,
(2.4)

for some C i R, i=1,2,,N, where N is the smallest integer greater than or equal to ν.

Now, let us recall some standard facts and the fixed point theorem due to O’Regan and Zima, and these can be found in [16, 17, 2123].

Let X, Z be real Banach spaces. Consider an operation equation

Lu=Nu,

where L:domLXZ is a linear operator, N:XZ is a nonlinear operator. If dimKerL=codimImL<+ and ImL is closed in Z, then L is called a Fredholm mapping of index zero. And if L is a Fredholm mapping of index zero, there exist linear continuous projectors P:XX and Q:ZZ such that KerL=ImP, ImL=KerQ and X=KerLKerP, Z=ImLImQ. Then it follows that L P =L | dom L Ker P :domLKerPImL is invertible. We denote the inverse of this map by K P . For ImQ is isomorphic to KerL, there exists an isomorphism J:ImQKerL.

It is known that the coincidence equation Lu=Nu is equivalent to

u=(P+JQN)u+ K P (IQ)Nu.

A nonempty convex closed set CX is called a cone if

  1. (i)

    κxC for all xC and κ0;

  2. (ii)

    x,xC implies x=0.

Note that C induces a partial order in X by

xyif and only ifyxC.

The following lemma is valid for every cone in a Banach space.

Lemma 2.3 ([17, 23])

Let C be a cone in the Banach space X. Then for everyuC{0}, there exists a positive numberσ(u)such that

x+uσ(u)x,

for allxC.

Let γ:XC be a retraction, i.e., a continuous mapping such that γ(x)=x for all xC. Denote

Ψ:=P+JQN+ K P (IQ)N,

and

Ψ γ :=Ψγ.

Theorem 2.1 ([16, 17])

Let C be a cone in X and let Ω 1 , Ω 2 be open bounded subsets of X with Ω ¯ 1 Ω 2 andC( Ω ¯ 2 Ω 1 ). Assume that: 1 = L is a Fredholm operator of index zero;; 2 = QN:XZis continuous and bounded and K P (IQ)N:XXis compact on every bounded subset of X;; 3 = LuλNufor alluC Ω 2 domLandλ(0,1);; 4 = γ maps subsets of Ω ¯ 2 into bounded subsets of C;; 5 = d B ([I(P+JQN)γ] | Ker L ,KerL Ω 2 ,0)0, where d B stands for the Brouwer degree;; 6 = there exists u 0 C{0}such thatuσ( u 0 )ΨuforuC( u 0 ) Ω 1 , whereC( u 0 )={uC:μ u 0 ufor someμ>0}andσ( u 0 )is such thatu+ u 0 σ( u 0 )ufor everyuC;; 7 = (P+JQN)γ( Ω 2 )C;; 8 = Ψ γ ( Ω ¯ 2 Ω 1 )C..Then the equationLx=Nxhas a solution in the setC( Ω ¯ 2 Ω 1 ).

Let

X= { x | x C [ 0 , + ) , lim t + x ( t ) 1 + t α 1 exists }

with the norm

and

Z= { z | z C [ 0 , + ) L 1 [ 0 , + ) , sup t 0 | z ( t ) | < + } ,

equipped with the norm

Remark 2.1 It is easy for us to prove that and are Banach spaces.

Set

dom L = { u X | D 0 + α u ( t ) C [ 0 , + ) L 1 [ 0 , + ) , u ( 0 ) = u ( 0 ) = u ( 0 ) = 0 , D 0 + α 1 u ( 0 ) = lim t + D 0 + α 1 u ( t ) } .

Define

L:domLZ,u D 0 + α u(t),
(2.5)

and

N:XZ,uf ( t , u ( t ) ) .
(2.6)

Then the multi-point boundary value problem (1.1) can be written by

Lu=Nu,udomL.

Definition 2.3uX is called a solution of the problem (1.1) if udomL and u satisfied Equation (1.1).

Next, similar to the compactness criterion in [12, 24], we establish the following criterion, and it can be proved in a similar way.

Lemma 2.4Uis a relatively compact set in X if and only if the following conditions are satisfied:

  1. (a)

    U is uniformly bounded, that is, there exists a constant R>0 such that for each uU, .

  2. (b)

    The functions from U are equicontinuous on any compact subinterval of [0,+), that is, let J be a compact subinterval of [0,+), then ε>0, there exists δ=δ(ε)>0 such that for t 1 , t 2 J, | t 1 t 2 |<δ,

    | u ( t 1 ) 1 + t 1 α 1 u ( t 2 ) 1 + t 2 α 1 |<ε,uU.
  3. (c)

    The functions from U are equiconvergent, that is, given ε>0, there exists T=T(ε)>0 such that

    | u ( s 1 ) 1 + s 1 α 1 u ( s 2 ) 1 + s 2 α 1 |<ε,

for s 1 , s 2 >T, uU.

3 Main results

In this section, we will present the existence theorem for the fractional differential equation on the half-line. In order to prove our main result, we need the following lemmas.

Lemma 3.1 LetgZ. ThenuXis the solution of the following fractional differential equation:

{ D 0 + α u ( t ) = g ( t ) , t [ 0 , + ) , u ( 0 ) = u ( 0 ) = u ( 0 ) = 0 , D 0 + α 1 u ( 0 ) = lim t + D 0 + α 1 u ( t ) ,

if and only if

u(t)=c t α 1 + 1 Γ ( α ) 0 t ( t s ) α 1 g(s)ds,cR,

and

0 + g(t)dt=0.

Proof In view of Lemmas 2.1 and 2.2, we can certify the conclusion easily, so we omit the details here. □

Lemma 3.2 The operator L is a Fredholm mapping of index zero. Moreover,

KerL= { u | u = c t α 1 , t 0 , c R } X,
(3.1)

and

ImL= { g Z | 0 + g ( t ) d t = 0 } Z.
(3.2)

Proof It is obvious that Lemma 3.1 implies (3.1) and (3.2). Now, let us focus our minds on proving that L is a Fredholm mapping of index zero.

Define Q:ZZ

(Qg)(t)= e t 0 + g(s)ds,t0,
(3.3)

where gZ. Evidently, KerQ=ImL, ImQ={g|g=c e t ,t0,cR}, and Q:ZZ is a continuous linear projector. In fact, for an arbitrary gZ, we have

Q 2 g=Q(Qg)=Q ( e t 0 + g ( s ) d s ) =Q ( e t ) 0 + g(s)ds= e t 0 + g(s)ds=Qg,

that is to say, Q:ZZ is idempotent.

Let g=gQg+Qg=(IQ)g+Qg, where gZ is an arbitrary element. Since QgImQ and (IQ)gKerQ, we obtain that Z=ImQ+KerQ. Take z 0 ImQKerQ, then z 0 can be written as z 0 =c e t , cR , for z 0 ImQ. Since z 0 KerQ=ImL, by (3.2), we get that Q( z 0 )=Q(c e t )=cQ( e t )=c e t =0, which implies that c=0, and then z 0 =0. Therefore, ImQKerQ={0}, thus, Z=ImQKerQ=ImQImL.

Now, dimKerL=1=dimImQ=codimKerQ=codimImL<+, and observing that ImL is closed in Z, so L is a Fredholm mapping of index zero. □

Let P:XX be defined by

(Pu)(t)= ( 1 Γ ( α ) 0 + e s u ( s ) d s ) t α 1 ,t0,uX.
(3.4)

It is clear that P:XX is a linear continuous projector and

ImP= { u | u = c t α 1 , t 0 , c R } =KerL.

Also, proceeding with the proof of Lemma 3.2, we can show that X=ImPKerP=KerLKerP.

Consider the mapping K P :ImLdomLKerP

( K P g)(t)= ( 1 Γ ( α ) 0 + e s g ( s ) d s ) t α 1 + 1 Γ ( α ) 0 t ( t s ) α 1 g(s)ds,gImL.

Note that

( K P L)u= K P (Lu)=u,udomLKerP,

and

(L K P )g=L( K P g)=g,gImL.

Thus, K P = ( L P ) 1 , where L P =L | dom L Ker P :domLKerPImP.

Define the linear isomorphism J:ImQKerL as

J ( c e t ) =c t α 1 ,t0,cR.

Thus, JQN+ K P (IQ)N:XX is given by

[ J Q N + K P ( I Q ) N ] u(t)= t α 1 Γ ( α ) 0 + G(t,s)f ( s , u ( s ) ) ds,t0,
(3.5)

where

G(t,s)={ 0 , t = 0 ; Γ ( α ) + 1 2 e s 0 t ( t τ ) α 1 t α 1 e τ d τ + ( t s ) α 1 t α 1 , t 0 and 0 s t < + ; Γ ( α ) + 1 2 e s 0 t ( t τ ) α 1 t α 1 e τ d τ , 0 < t s < + .

Then, it is easy to verify that

0<Γ(α) 1 2 G(t,s)Γ(α)+ 3 2 .
(3.6)

Now, we state the main result on the existence of the positive solutions to the problem (1.1) in the following.

Theorem 3.1 Letf:[0,+)×RRsatisfy the condition (H). Assume that there exist six nonnegative functions α i (t) (i=1,2,3), β j (t) (j=1,2) andμ(t)such that

f(t,u) α 1 (t)|f(t,u)|+ α 2 (t) u 1 + t α 1 + α 3 (t),t0,
(3.7)

and

μ(t) u 1 + t α 1 f(t,u) β 1 (t) u 1 + t α 1 + β 2 (t),t0,
(3.8)

where0 u 1 + t α 1 R, R> R 0 , and R 0 is defined by (3.12), α 1 (t)is bounded on[0,+), β 1 (t)>0, t0, α 2 (t), α 3 (t), β 1 (t), β 2 (t) L 1 [0,+),

(3.9)
(3.10)

and

0 + μ(t)dt< Γ ( α ) + 1 2 ( Γ ( α ) + 1 / 2 ) ( Γ ( α ) + 3 / 2 ) , e t μ(t)< 1 + t α 1 Γ ( α ) + 3 / 2 .
(3.11)

Then the problem (1.1) has at least one positive solution in domL.

Proof For the simplicity of notation, we denote

ε 1 := Γ ( α ) Γ ( α ) + 1 / 2 + Γ ( α ) + 3 / 2 Γ ( α ) + 1 0 + μ(s)ds<1, β 0 := 0 + s α 1 β 1 ( s ) 1 + s α 1 ds,

and

R 0 :=max { Γ 0 Γ ( α ) 0 + β 2 ( s ) d s + 2 α 0 Γ ( α ) 0 + α 3 ( s ) d s , 1 β 0 0 + β 2 ( s ) d s } .
(3.12)

Consider the cone

C={u|uX,u(t)0,t0}.

Set

where R 2 ( R 0 ,R), R 1 (0, R 2 ), ε 0 ( ε 1 ,1). Clearly, Ω 1 and Ω 2 are an open bounded set of X.

Step 1: In view of Lemma 3.2, the condition 1 of Theorem 2.1 is fulfilled.

Step 2: By virtue of Lemma 2.4, we can get that QN:XZ is continuous and bounded and K P (IQ)N:XX is compact on every bounded subset of X, which ensures that the assumption 2 of Theorem 2.1 holds.

Step 3: Suppose that there exist u C Ω 2 domL and λ (0,1) such that L u = λ N u .

Since

u =(IP) u +P u = K P L(IP) u +P u = K P L u +P u ,

we have

u ( t ) 1 + t α 1 = 1 Γ ( α ) 0 + e s D 0 + α u ( s ) d s t α 1 1 + t α 1 + 1 Γ ( α ) 0 t ( t s ) α 1 1 + t α 1 D 0 + α u ( s ) d s + 1 Γ ( α ) 0 + e s u ( s ) d s t α 1 1 + t α 1 < 2 Γ ( α ) 0 + | D 0 + α u ( s ) | d s + 1 Γ ( α ) 0 + e s u ( s ) d s .
(3.13)

From (3.7) and (3.8), we get that

D 0 + α u ( t ) = λ f ( t , u ( t ) ) λ α 1 ( t ) | f ( t , u ( t ) ) | + λ α 2 ( t ) u ( t ) 1 + t α 1 + λ α 3 ( t ) α 1 ( t ) | D 0 + α u ( t ) | + α 2 ( t ) u ( t ) 1 + t α 1 + α 3 ( t ) ,
(3.14)

and

D 0 + α u (t)= λ f ( t , u ( t ) ) λ β 1 (t) u ( t ) 1 + t α 1 + λ β 2 (t).
(3.15)

On account of the fact that

0 + D 0 + α u (s)ds= 0 + D ( D 0 + α 1 u ( s ) ) ds= lim t + D 0 + α 1 u (t) D 0 + α 1 u (0)=0,

and considering (3.14) and (3.15), we have

0 = 0 + D 0 + α u ( s ) d s 0 + α 1 ( s ) | D 0 + α u ( s ) | d s + 0 + α 2 ( s ) u ( s ) 1 + s α 1 d s + 0 + α 3 ( s ) d s ,

and

0= 0 + D 0 + α u (s)ds 0 + λ β 1 (s) u ( s ) 1 + s α 1 ds+ 0 + λ β 2 (s)ds.

Thus,

0 + | D 0 + α u (s)|ds 1 α 0 0 + α 2 (s) u ( s ) 1 + s α 1 ds+ 1 α 0 0 + α 3 (s)ds,

and

0 + β 1 (s) u ( s ) 1 + s α 1 ds 0 + β 2 (s)ds.

By (3.9), (3.10) and (3.13), we obtain that

which is a contradiction to u C Ω 2 domL. Therefore, 3 is satisfied.

Step 4: Let (γu)(t)=|u(t)|, then we can verify that γ:XC is a retraction and 4 holds.

Step 5: Let uKerL Ω ¯ 2 , then u(t)=c t α 1 t0cR. Inspired by Aijun and Wang [5], we set

H ( c t α 1 , ρ ) = [ I ρ ( P + J Q N ) γ ] ( c t α 1 ) = ( c ρ | c | ρ 0 + f ( s , | c | s α 1 ) d s ) t α 1 ,

where c[ R 2 , R 2 ] and ρ[0,1].

Define homeomorphism J 1 :KerL Ω ¯ 2 R by J 1 (c t α 1 )=c, then

d B ( H ( c t α 1 , ρ ) , Ker L Ω 2 , 0 ) = d B ( J 1 H ( J 1 1 c , ρ ) , J 1 ( Ker L Ω 2 ) , J 1 ( 0 ) ) = d B ( J 1 H ( J 1 1 c , ρ ) , J 1 ( Ker L Ω 2 ) , 0 ) .

It is obvious that J 1 H( J 1 1 c,ρ)=0 implies that c0 by (3.8) and (3.11).

Take c 0 J 1 (KerL Ω 2 ), then | c 0 |= R 2 . Suppose that J 1 H( J 1 1 c,ρ)=0, ρ(0,1], then we have that c 0 = R 2 . Also, in view of (3.8),

R 2 = ρ ( R 2 0 + f ( s , R 2 s α 1 ) d s ) ρ ( R 2 + R 2 0 + β 1 ( s ) s α 1 1 + s α 1 d s + 0 + β 2 ( s ) d s ) < ρ R 2 R 2 .

It is a contradiction. Besides, if ρ=0, then R 2 =0, which is impossible. Hence, for c J 1 (KerL Ω 2 ), J 1 H( J 1 1 c,ρ)0, ρ[0,1].

Therefore,

d B ( [ I ( P + J Q N ) γ ] | Ker L , Ker L Ω 2 , 0 ) = d B ( H ( , 1 ) , Ker L Ω 2 , 0 ) = d B ( J 1 H ( J 1 1 c , 1 ) , J 1 ( Ker L Ω 2 ) , 0 ) = d B ( J 1 H ( J 1 1 c , 0 ) , J 1 ( Ker L Ω 2 ) , 0 ) = d B ( I , J 1 ( Ker L Ω 2 ) , 0 ) = 1 0 ,

which shows that 5 is true.

Step 6: Let u 0 =1+ t α 1 C{0}, then we have

C( u 0 )= { u C | inf t 0 u ( t ) 1 + t α 1 > 0 } .

And we can take σ( u 0 )=1.

Let t 0 >0 such that

t 0 α 1 1 + t 0 α 1 > Γ ( α ) + 1 / 2 Γ ( α ) + 1 .

For uC( u 0 ) Ω 1 , we have that

Therefore, combining (3.6), (3.8) and (3.11), we get that

Thus, for all uC( u 0 ) Ω 1 . So, 6 holds.

Step 7: For u Ω 2 , from (3.8) and (3.11), we have

( P + J Q N ) ( γ u ) ( t ) = ( 1 Γ ( α ) 0 + e s | u ( s ) | d s + 0 + f ( s , | u ( s ) | ) d s ) t α 1 t α 1 Γ ( α ) 0 + [ e s ( 1 + s α 1 ) μ ( s ) ] | u ( s ) | 1 + s α 1 d s 0 ,

which implies that (P+JQN)γ( Ω 2 )C. Hence, 7 holds.

Step 8: For u Ω ¯ 2 Ω 1 , by (3.6), (3.8) and (3.11), we obtain that

Ψ γ u ( t ) = [ P + J Q N + K P ( I Q ) N ] | u ( t ) | = ( 1 Γ ( α ) 0 + e s | u ( s ) | d s + 1 Γ ( α ) 0 + G ( t , s ) f ( s , | u ( s ) | ) d s ) t α 1 t α 1 Γ ( α ) ( 0 + [ e s ( 1 + s α 1 ) G ( t , s ) μ ( s ) ] | u ( s ) | 1 + s α 1 d s ) t α 1 Γ ( α ) ( 0 + [ e s ( 1 + s α 1 ) ( Γ ( α ) + 3 2 ) μ ( s ) ] | u ( s ) | 1 + s α 1 d s ) 0 .

Thus, Ψ γ ( Ω ¯ 2 Ω 1 )C, that is, 8 is satisfied.

Hence, applying Theorem 2.1, the problem (1.1) has a positive solution in the set C( Ω ¯ 2 Ω 1 ). □

4 Examples

To illustrate our main result, we will present an example.

Example 4.1

{ D 0 + α u ( t ) = f ( t , u ( t ) ) , t [ 0 , + ) , u ( 0 ) = u ( 0 ) = u ( 0 ) = 0 , D 0 + α 1 u ( 0 ) = lim t + D 0 + α 1 u ( t ) ,
(4.1)

where α=3.5, and for (t,u) R 2 ,

f(t,u)= β 1 (t) u 1 + t α 1 + β 2 (t),

and

β 1 (t)= 1 40 e t ( 1 + t α 1 ) , β 2 (t)= 1 1 + t 2 .

It is easy for us to certify that f satisfies the condition (H).

Noting that

f(t,u) α 1 (t)|f(t,u)|+ α 2 (t) u 1 + t α 1 + α 3 (t),t0,

and

μ(t) u 1 + t α 1 f(t,u) β 1 (t) u 1 + t α 1 + β 2 (t),t0,

for u0, where

α 1 (t)=2, α 2 (t)= β 1 (t), α 3 (t)=3 β 2 (t),μ(t)= β 1 (t).

Evidently, μ(t) satisfies (3.11).

Meanwhile, by simple computation we can get that

α 0 =2, 0 + α 3 (t)dt= 3 π 2 , 0 + β 2 (t)dt= π 2 , Γ 0 =41.

Thus, to sum up the points which we have just indicated, by Theorem 3.1, we can conclude that the problem (4.1) has at least one positive solution.

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Acknowledgement

This project is supported by the Hunan Provincial Innovation Foundation For Postgraduate (NO. CX2011B079) and the National Natural Science Foundation of China (NO. 11171351).

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Chen, Y., Tang, X. Positive solutions of fractional differential equations at resonance on the half-line. Bound Value Probl 2012, 64 (2012). https://doi.org/10.1186/1687-2770-2012-64

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