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Existence results of positive solutions for boundary value problems of fractional differential equations

Abstract

In this paper, we are concerned with the following fractional equation:

D 0 + α C u(t)=f ( t , u ( t ) , u ( t ) ) ,t(0,1)

with the boundary value conditions

u(1)= u (1)=0,δ u (0)= u (1),γ u (0)= u (1),

where D 0 + α C is the standard Caputo derivative with 3<α4 and δ, γ are constants with δ>1, γ>1. By applying a new fixed point theorem on cone and Krasnoselskii’s fixed point theorem, some existence results of positive solution are obtained.

MSC: 34A08, 34B15, 34B18.

1 Introduction

In this paper, we are concerned with the existence of positive solutions for the fractional equation

D 0 + α C u(t)=f ( t , u ( t ) , u ( t ) ) ,t(0,1)
(1.1)

with the boundary value conditions

u(1)= u (1)=0,δ u (0)= u (1),γ u (0)= u (1),
(1.2)

where D 0 + α C is the standard Caputo derivative with 3<α4 and δ, γ are constants with δ>1, γ>1.

Differential equations of fractional order have recently proved to be valuable tools in the modeling of many phenomena in various fields of science and engineering. Indeed, we can find numerous applications in viscoelasticity, electrochemistry, control, porous media, electromagnetism, etc. (see [15]). There has been a significant development in the study of fractional differential equations and inclusions in recent years, see the monographs of Podlubny [5], Kilbas et al. [6], Lakshmikantham et al. [7], Samko et al. [8], Diethelm [9], and the survey by Agarwal et al. [10]. For some recent contributions on fractional differential equations, see [925] and the references therein.

On the other hand, it is well known that the fourth-order boundary value problem describes the deformations of an elastic beam in equilibrium state. Owing to its importance in physics, the existence of solutions to this problem has been studied by many authors; see, for example, [2630] and references therein. Recently, there have been a few papers dealing with the existence of solutions for fractional equations of order α(3,4].

In [14], Xu et al. discussed the problem

D 0 + α u(t)=f ( t , u ( t ) ) ,t(0,1),u(0)= u (0)=u(1)= u (1)=0,

where 3<α4 and fC([0,1]×(0,)) is nonnegative, D 0 + α is the Riemann-Liouville fractional derivative of order α. The existence results of positive solutions are obtained by applying the Leray-Schauder nonlinear alternative theorem.

In [15], Liang and Zhang studied the following nonlinear fractional boundary value problem:

D 0 + α u(t)=f ( t , u ( t ) ) ,t(0,1),u(0)= u (0)= u (0)= u (1)=0,

where 3<α4, f(t,u)C([0,1]×[0,),[0,)) is nondecreasing relative to u, D 0 + α is the Riemann-Liouville fractional derivative of order α. By means of the lower and upper solution method and fixed point theorems, some results on the existence of positive solutions were obtained.

In [16], Agarwal and Ahmad studied the solvability of the following anti-periodic boundary value problem for a nonlinear fractional differential equation:

{ D 0 + α u ( t ) = f ( t , u ( t ) ) , t ( 0 , T ) , u ( 0 ) + u ( T ) = 0 , u ( 0 ) + u ( T ) = 0 , u ( 0 ) + u ( T ) = 0 , u ( 0 ) + u ( T ) = 0 ,

where 3<α4. The existence results were obtained by the nonlinear alternative theorem.

Inspired by above work, the author will be concerned with the boundary value problem (BVP for short in the sequel) (1.1)-(1.2). To the best of our knowledge, no contribution exists concerning the existence of solutions for BVP (1.1)-(1.2). In the present paper, by applying a new fixed point theorem on cone and Krasnoselskii’s fixed point theorem, some existence results of positive solution for BVP (1.1)-(1.2) are obtained. It is worth to point out that the results in this paper are also new even for α=4 relative to the corresponding literature with regard to the fourth-order boundary value problem. In addition, the conditions imposed in this paper are easily verified.

The organization of this paper is as follows. In Section 2, we present some necessary definitions and preliminary results that will be used to prove our main results. In Section 3, we put forward and prove our main results. Finally, we give two examples to demonstrate our main results.

2 Preliminaries

In this section, we introduce some preliminary facts which are useful throughout this paper.

Let be the set of positive integers, be the set of real numbers, R + =[0,+), and R =(,0]. Let I=[0,1]. Denote by C 1 (I,R) the Banach space endowed with the norm u 1 = u 0 + u 0 , where u 0 = max t I |u(t)| for uC(I,R).

Definition 2.1 [6]

The Riemann-Liouville fractional integral of order α>0 of a function y:(a,b]R is given by

I a + α y(t)= 1 Γ ( α ) 0 t ( t s ) α 1 y(s)ds,t(a,b].

Definition 2.2 [6]

The Riemann-Liouville fractional derivative of order α>0 of a function y:(a,b]R is given by

D a + α y(t)= 1 Γ ( n α ) ( d d t ) n 0 t y ( s ) ( t s ) α n + 1 ds,t(a,b],

where n=[α]+1, [α] denotes the integer part of α.

Definition 2.3 [6]

The Caputo fractional derivative of order α>0 of a function y on (a,b] is defined via the above Riemann-Liouville derivatives by

( C D a + α y)(x)= ( D a + α [ y ( t ) k = 0 n 1 y ( k ) ( a ) k ! ( t a ) k ] ) (x),x(a,b].

Lemma 2.1 [6]

Let α>0 and yC[a,b]. Then

( C D a + α I a + α y)(x)=y(x)

holds on [a,b].

Lemma 2.2 [17]

Let nN with n2, α(n1,n]. If y C n 1 [a,b] and D a + α C yC(a,b), then

I a + α C D a + α y(t)=y(t) k = 0 n 1 y ( k ) ( a ) k ! ( t a ) k

holds on (a,b).

For convenience, we first list some hypotheses which will be used throughout this paper.

( H 1 ) fC(I× R + × R , R + ).

( H 2 ) 3<α4, γ>1, δ>1.

For hC[0,1], consider the following BVP:

D 0 + α C u(t)=h(t),t(0,1),
(2.1)
u(1)= u (1)=0,δ u (0)= u (1),γ u (0)= u (1).
(2.2)

We have the following lemma, which is important in this paper.

Lemma 2.3 Let ( H 2 ) hold. Then u C 3 [0,1] is a solution of BVP (2.1)-(2.2) iff uC[0,1] has the expression as follows:

u(t)= 0 1 G(t,s)h(s)ds,tI,
(2.3)

where

G(t,s)= { G 1 ( t , s ) , 0 s t < 1 , G 2 ( t , s ) , 0 t s < 1 ,
(2.4)

and

G 1 ( t , s ) = [ ( t s ) α 1 ( 1 s ) α 1 ] Γ ( α ) + ( 1 t ) ( 1 s ) α 2 Γ ( α 1 ) G 1 ( t , s ) = + ( 1 t ) 2 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] 6 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 ,
(2.5)
G 2 ( t , s ) = ( 1 s ) α 1 Γ ( α ) + ( 1 t ) ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) 2 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) G 2 ( t , s ) = + ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] 6 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 .
(2.6)

Proof Let u C 3 [0,1] be a solution of (2.1)-(2.2). Then by Lemma 2.2, we have

u(t)= c 0 + c 1 t+ c 2 t 2 + c 3 t 3 + I 0 + α h(t),tI,
(2.7)

and so

u ( t ) = c 1 + 2 c 2 t + 3 c 3 t 2 + I 0 + α 1 h ( t ) , t I , u ( t ) = 2 c 2 + 6 c 3 t + I 0 + α 2 h ( t ) , t I , u ( t ) = 6 c 3 + I 0 + α 3 h ( t ) , t I .

Thus, by the boundary value condition (2.2), we can obtain

c 0 + c 1 + c 2 + c 3 + I 0 + α h(1)=0,
(2.8)
c 1 +2 c 2 +3 c 3 + I 0 + α 1 h(1)=0,
(2.9)
2(1δ) c 2 +6 c 3 + I 0 + α 2 h(1)=0,
(2.10)
6(1γ) c 3 + I 0 + α 3 h(1)=0.
(2.11)

From (2.11), we have

c 3 = 1 6 ( γ 1 ) I 0 + α 3 h(1).
(2.12)

Substituting (2.12) into (2.10), we get

c 2 = 1 2 ( γ 1 ) ( δ 1 ) I 0 + α 3 h(1)+ 1 2 ( δ 1 ) I 0 + α 2 h(1).
(2.13)

So, by (2.13), (2.12), and (2.9), we have

c 1 = 1 + δ 2 ( γ 1 ) ( δ 1 ) I 0 + α 3 h(1) 1 δ 1 I 0 + α 2 h(1) I 0 + α 1 h(1).
(2.14)

Thus, from (2.8), we have

c 0 = 1 + 2 δ 6 ( γ 1 ) ( δ 1 ) I 0 + α 3 h(1)+ 1 2 ( δ 1 ) I 0 + α 2 h(1)+ I 0 + α 1 h(1) I 0 + α h(1).
(2.15)

Hence, from (2.7) together with (2.12)-(2.15), it follows that

u ( t ) = c 0 + c 1 t + c 2 t 2 + c 3 t 3 + I 0 + α h ( t ) = I 0 + α h ( 1 ) + ( 1 t ) I 0 + α 1 h ( 1 ) + 1 2 ( δ 1 ) ( 1 t ) 2 I 0 + α 2 h ( 1 ) + [ ( 2 δ + 1 ) 3 ( 1 + δ ) t + 3 t 2 + ( δ 1 ) t 3 ] 6 ( γ 1 ) ( δ 1 ) I 0 + α 3 h ( 1 ) + I 0 + α h ( t ) .
(2.16)

Noticing that

(2δ+1)3(1+δ)t+3 t 2 +(δ1) t 3 = ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] ,

by Definition 2.1, we have

u ( t ) = 0 t [ ( t s ) α 1 ( 1 s ) α 1 Γ ( α ) + ( 1 t ) ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) 2 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] 6 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 ] h ( s ) d s + t 1 [ ( 1 s ) α 1 Γ ( α ) + ( 1 t ) ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) 2 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] 6 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 ] h ( s ) d s = 0 1 G ( t , s ) h ( s ) d s , t I .

Conversely, if u has the expression (2.3), then from the fact that hC[0,1], we can easily verify that

u ( t ) = 0 t [ ( t s ) α 2 ( 1 s ) α 2 Γ ( α 1 ) + ( t 1 ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + ( t 1 ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ] h ( s ) d s u ( t ) = + t 1 [ ( 1 s ) α 2 Γ ( α 1 ) + ( t 1 ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + ( t 1 ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ] h ( s ) d s ,
(2.17)
u ( t ) = 0 t [ ( t s ) α 3 Γ ( α 2 ) + ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + 1 + ( δ 1 ) t ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ] h ( s ) d s u ( t ) = + t 1 [ ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + 1 + ( δ 1 ) t ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ] h ( s ) d s ,
(2.18)
u (t)= 0 t [ ( t s ) α 4 Γ ( α 3 ) + 1 ( γ 1 ) Γ ( α 3 ) ] h(s)ds+ t 1 1 ( γ 1 ) Γ ( α 3 ) h(s)ds
(2.19)

hold for tI, and u satisfies the boundary condition (2.2).

Again, from (2.16) and Lemma 2.1, we have that D 0 + α C x(t)=h(t), t(0,1). In addition, noting that hC[0,1], it is easy to see that x C 3 [0,1] from (2.19). □

For the forthcoming analysis, we need to introduce some new notations.

Let η 1 =min{ 2 α 5 3 ( α 1 ) , 4 ( 1 + 2 δ ) 27 δ }, and η 2 =min{ 2 ( α 2 ) 3 ( α + δ 3 ) , 1 + δ 3 δ }. Denote

w 1 ( s ) = ( 1 s ) α 2 Γ ( α 1 ) + ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) , s [ 0 , 1 ) , w 2 ( s ) = ( α + δ 3 ) ( 1 s ) α 3 ( α 2 ) ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) , s [ 0 , 1 ) .

It is easy to verify that η 1 , η 2 (0,1), and w 1 , w 2 C([0,1),(0,+)) noting that 3<α4, γ>1, δ>1.

We also need the following lemma, which will play an important role in obtaining our main results in Section 3.

Lemma 2.4 Under the assumption ( H 2 ), Green’s function G(t,s) has the following properties:

(1) G is continuous on [0,1)×[0,1);

(2) G(t,s)>0, t,s[0,1); G t (t,s)<0, t,s[0,1), st;

(3) G(t,s) w 1 (s), t,s[0,1); G(t,s) η 1 w 1 (s), t[ 1 6 , 1 3 ], s[0,1);

0< G t (t,s) w 2 (s), t,s[0,1), st; G t (t,s) η 2 w 2 (s), t[ 1 6 , 1 3 ], s[0,1), st.

Proof (1) Observing the expression of Green’s function given by (2.4)-(2.6), the conclusion (1) of Lemma 2.4 is obvious.

(2) We first show that G t (t,s)<0, t,s[0,1), st.

In fact, if 0s<t<1, then by (2.5) we have

G 1 t = [ ( t s ) α 2 ( 1 s ) α 2 ] Γ ( α 1 ) ( 1 t ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) ( 1 t ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 .
(2.20)

Owing to the fact that 3<α4 and 0s<t<1, we have that ( t s ) α 2 < ( 1 s ) α 2 . Thus, we immediately obtain that G 1 t <0 for 0s<t<1 from (2.20) together with the condition δ>1, γ>1.

Similarly, we can deduce that

G 2 t = ( 1 s ) α 2 Γ ( α 1 ) ( 1 t ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) ( 1 t ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4
(2.21)

for 0t<s<1, and so G 2 t <0 for 0t<s<1.

To summarize, G t <0 for all s,t[0,1) with st.

Now, since G(1,s)= G 1 (1,s)=0 for 0s<1, and G t <0 for t,s[0,1) with ts, it follows that G(t,s)>0 for all t,s[0,1).

(3) The proof is divided into four steps.

Step 1. We show that G(t,s) w 1 (s) for t,s[0,1).

(i) If 0st<1, then by (2.5) and the assumption that 3<α4, γ>1, and δ>1, we have

G 1 ( t , s ) ( 1 t ) ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) 2 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] 6 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 < ( 1 s ) α 2 Γ ( α 1 ) + ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) = Δ w 1 ( s ) .
(2.22)

(ii) If 0ts<1, then by an argument similar to (2.22), we have

G 2 (t,s) w 1 (s).

Summing up the above analysis (i)-(ii), we obtain

G(t,s) w 1 (s)for t,s[0,1).

Step 2. We show that G(t,s) η 1 w 1 (s) for t[ 1 6 , 1 3 ] and s[0,1).

In fact, if 0st and t[ 1 6 , 1 3 ], then by (2.5) combined with the assumption that 3<α4, γ>1, δ>1, we have

G 1 ( t , s ) ( 1 s ) α 1 Γ ( α ) + ( 1 t ) ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) 2 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) 2 [ 1 + 2 δ + ( δ 1 ) t ] 6 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 ( 1 s ) α 2 Γ ( α ) + 2 ( 1 s ) α 2 3 Γ ( α 1 ) + 2 ( 1 s ) α 3 9 ( δ 1 ) Γ ( α 2 ) + 2 ( 1 + 2 δ ) ( 1 s ) α 4 27 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) = ( 2 α 5 ) 3 ( α 1 ) ( 1 s ) α 2 Γ ( α 1 ) + 4 9 ( 1 s ) α 3 2 ( δ 1 ) Γ ( α 2 ) + 4 ( 1 + 2 δ ) 27 δ δ ( 1 s ) α 4 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) η 1 w 1 ( s ) ,
(2.23)

where η 1 =min{ 2 α 5 3 ( α 1 ) , 4 9 , 4 ( 1 + 2 δ ) 27 δ }=min{ 2 α 5 3 ( α 1 ) , 4 ( 1 + 2 δ ) 27 δ }, because 2 α 5 3 ( α 1 ) < 4 9 .

If t[ 1 6 , 1 3 ] with ts<1, then by an argument similar to (2.23), we have

G 2 (t,s) η 1 w 1 (s).
(2.24)

So, by (2.23)-(2.24), we have

G(t,s) η 1 w 1 (s) for s[0,1), and t[ 1 6 , 1 3 ].

Step 3. Now, we show that

0< G ( t , s ) t w 2 (s)for s,t[0,1),st.

(i) If 0s<t<1, then by (2.20) and keeping in mind that 3<α4, γ>1, δ>1, it follows that

G 1 t = ( t s ) α 2 Γ ( α 1 ) + ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 ( 1 s ) α 2 Γ ( α 1 ) + ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 3 Γ ( α 1 ) + ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) = ( α + δ 3 ) ( 1 s ) α 3 ( α 2 ) ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) = Δ w 2 ( s ) .
(2.25)

(ii) If 0t<s<1, then by an argument similar to (2.25), from (2.21), we have

G 2 ( t , s ) t = ( 1 s ) α 2 Γ ( α 1 ) + ( 1 t ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 w 2 ( s ) .

Summing up the above analysis (i)-(ii), and noting Step 2 of the proof as before, it follows that

0< G ( t , s ) t w 2 (s)for s,t[0,1),st.

Step 4. It remains to show that

G ( t , s ) t η 2 w 2 (s)for t [ 1 6 , 1 3 ] ,s[0,1) with st.

(i) If 0s<t<1, then by (2.20) and the fact that ( 1 s ) α 2 > ( t s ) α 2 , we know that the relations

G 1 t > ( 1 t ) ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + ( 1 t ) [ 1 + δ + ( δ 1 ) t ] 2 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ( 1 s ) α 4 2 3 ( 1 s ) α 3 ( δ 1 ) Γ ( α 2 ) + ( 1 + δ ) ( 1 s ) α 4 3 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) = 2 ( α 2 ) 3 ( α + δ 3 ) ( α + δ 3 ) ( 1 s ) α 3 ( α 2 ) ( δ 1 ) Γ ( α 2 ) + 1 + δ 3 δ δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) η 2 w 2 ( s )

hold for t[ 1 6 , 1 3 ], s[0,1) with s<t, where η 2 =min{ 2 ( α 2 ) 3 ( α + δ 3 ) , 1 + δ 3 δ }, and

w 2 (s)= ( α + δ 3 ) ( 1 s ) α 3 ( α 2 ) ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ,s[0,1).

Similarly, we can obtain that

G 2 t η 2 w 2 (s)for t [ 1 6 , 1 3 ]  with t<s<1.

The proof is complete. □

Now, we introduce a cone as follows:

P = { u C 1 [ I , R ] : u ( t ) 0 , u ( t ) 0 , t I ; u ( 1 ) = 0 ; u ( t ) η 1 u 0 , u ( t ) η 2 u 0 , t [ 1 6 , 1 3 ] } .

It is easy to check that the above set P is a cone in the space C 1 [I,R], which will be used in the sequel.

We define an operator T on P as follows:

Tu= 0 1 G(t,s)f ( s , u ( s ) , u ( s ) ) ds,uP.
(2.26)

Obviously, under the assumption ( H 1 )-( H 2 ), the operator T is well defined. Moreover,

( T u ) (t)= 0 1 G t (t,s)f ( s , u ( s ) , u ( s ) ) ds,tI,uP,
(2.27)

where G t (t,s)= t G 1 (t,s), 0s<t<1, G t (t,s)= t G 2 (t,s), 0t<s<1, and t G 1 (t,s), t G 2 (t,s) are given by (2.20)-(2.21), respectively.

A function u C 3 [0,1] is a positive solution of BVP (1.1)-(1.2) if u(t)0, tI, u0, and u satisfies BVP (1.1)-(1.2).

By Lemma 2.3, it is easy to know that a function u C 3 [0,1] is a positive solution of BVP (1.1)-(1.2) iff uP is a nonzero fixed point of T. So, we can focus on seeking the existence of a nonzero fixed point of T in P.

Finally, for the remainder of this section, we give the following two theorems, which are fundamental in the proof of our main results.

Let X be a Banach space, and let PX be a cone. Suppose that the functions α, β satisfy the following condition:

(D) α,β:X R + are continuous convex functionals satisfying α(λu)=|λ|α(u), β(λu)=|λ|(u) for uX, λR; ukmax{α(u),β(u)} for uX, and α( u 1 )α( u 2 ) for u 1 , u 2 P with u 1 u 2 , where k>0 is a constant.

Lemma 2.5 [31]

Assume that r 1 , r 2 , L are constants with r 2 > r 1 >0, L>0, and

Ω i = { u X : α ( u ) < r i , β ( u ) < L } ,i=1,2 are two bounded open sets in X.

Set D i ={uX:α(u)= r i }. Suppose that T:PP is a completely continuous operator satisfying

( C 1 ) α(Tu)< r 1 , u D 1 P; α(Tu)> r 2 , u D 2 P;

( C 2 ) β(Tu)<L, uP;

( C 3 ) there is a p( Ω 2 P){0} such that α(p)0 and α(u+λp)αu for all uP and λ0.

Then T has at least one fixed point in ( Ω 2 Ω ¯ 1 )P.

Lemma 2.6 [32]

Assume that Ω 1 , Ω 2 are two open subsets of X with 0 Ω 1 Ω ¯ 1 Ω 2 , and let T:PP be a completely continuous operator such that either

(i) Tuu, uP Ω 1 ; Tuu, uP Ω 2 , or

(ii) Tuu, uP Ω 1 ; Tuu, uP Ω 2 .

Then T has a fixed point in P( Ω ¯ 1 Ω 1 ).

3 Main results

We first prove the following lemma to obtain our main results.

Lemma 3.1 Suppose that ( H 1 )-( H 2 ) hold. Then the operator T defined by (2.26) maps P into P, and T is completely continuous.

Proof It is well known that the norms u 1 = u 0 + u 0 and u 2 =max{ u 0 , u 0 } are equivalent on C 1 [0,1]. So, we can consider that the Banach space C 1 [0,1] is equipped with the norm u 2 =max{ u 0 , u 0 } in the following proof.

For any uP, in view of the conclusion (1)-(2) of Lemma 2.4 and the hypotheses ( H 1 )-( H 2 ), it is easy to see that Tu C 1 (I,R), (Tu)(t)0, tI, and ( T u ) (t)0, tI observing (2.26)-(2.27). Moreover, the conclusion (3) of Lemma 2.4 implies that

( T u ) ( t ) = 0 1 G ( t , s ) f ( s , u ( s ) , u ( s ) ) d s 0 1 w 1 ( s ) f ( s , u ( s ) , u ( s ) ) d s , t I ,
(3.1)

and

( T u ) ( t ) = 0 1 G ( t , s ) f ( s , u ( s ) , u ( s ) ) d s η 1 0 1 w 1 ( s ) f ( s , u ( s ) , u ( s ) ) d s
(3.2)

for t[ 1 6 , 1 3 ].

From (3.1)-(3.2), it follows that (Tu)(t) η 1 (Tu)(τ), t[ 1 6 , 1 3 ], τI. Thus,

(Tu)(t) η 1 T u 0 ,t [ 1 6 , 1 3 ] .

Similarly, we can obtain

( T u ) (t) η 2 ( T u ) ,t [ 1 6 , 1 3 ] .

In addition, (Tu)(1)=0. Thus, T:PP.

Now, we show that the operator T is compact on P.

In fact, let U be an arbitrary bounded set in P. Then there exists a positive number L such that u 2 L for all uU, and so M>0 such that 0f(t,u(s), u (s))M, tI for all uU.

In terms of Lemma 2.4, it follows from (2.26)-(2.27) that

0 ( T u ) ( t ) = 0 1 G ( t , s ) f ( s , u ( s ) , u ( s ) ) d s M 0 1 w 1 ( s ) d s , t I ,
(3.3)
0 ( T u ) ( t ) = 0 1 ( G t ( t , s ) f ( s , u ( s ) , u ( s ) ) d s M 0 1 w 2 ( s ) d s , t I .
(3.4)

Because the functions w 1 and w 2 are integrable on I, the formulae (3.3)-(3.4) yield that T u 0 M 0 , ( T u ) 0 M 0 , where M 0 =Mmax{ 0 1 w 1 (s)ds, 0 1 w 2 (s)ds}. So, T u 1 M 0 . That is, TU is uniformly bounded.

On the other hand, for any t 1 , t 2 I with t 1 < t 2 , by setting h=f(t,u, u ), the formula (2.26) implies that

| ( T u ) ( t 2 ) ( T u ) ( t 1 ) | = | 0 t 1 ( G 1 ( t 2 , s ) G 1 ( t 1 , s ) ) h ( s ) d s + t 1 t 2 ( G 1 ( t 2 , s ) G 2 ( t 1 , s ) ) h ( s ) d s + t 2 1 ( G 2 ( t 2 , s ) G 2 ( t 1 , s ) ) h ( s ) d s | M 0 t 1 | G 1 ( t 2 , s ) G 1 ( t 1 , s ) | d s + 2 M t 1 t 2 w 1 ( s ) d s + M t 2 1 | G 2 ( t 2 , s ) G 2 ( t 1 , s ) | d s .
(3.5)

According to (2.4)-(2.5) and by applying the mean value theorem, we have

| G 1 ( t 2 , s ) G 1 ( t 1 , s ) | [ 2 Γ ( α 1 ) + 1 ( δ 1 ) Γ ( α 2 ) + δ ( 1 s ) α 4 ( γ 1 ) ( δ 1 ) Γ ( α 3 ) ] | t 2 t 1 |,

and so

0 t 1 | G 1 ( t 2 , s ) G 1 ( t 1 , s ) | ds N 1 | t 2 t 1 |,
(3.6)

where N 1 = 2 Γ ( α 1 ) + 1 ( δ 1 ) Γ ( α 2 ) + δ ( γ 1 ) ( δ 1 ) Γ ( α 2 ) .

Similarly, there is another constant N 2 such that

t 2 1 | G 2 ( t 2 , s ) G 2 ( t 1 , s ) | ds N 2 | t 1 t 2 |.
(3.7)

Again, because the function w 1 is integrable on I, the absolute continuity of integral of w 1 on [ t 1 , t 2 ] ensures that there exists a constant N 3 such that

t 1 t 2 w 1 (s)ds< N 3 ( t 2 t 1 ).
(3.8)

So, (3.5) together with (3.6)-(3.8) implies that there exists a constant N such that the inequality

| ( T u ) ( t 2 ) ( T u ) ( t 1 ) | N( t 2 t 1 )

holds for any uU and t 1 , t 2 I with t 1 < t 2 . That is, the set TU is equicontinuous.

Similarly, we can deduce that the set { ( T u ) |uU} is also equicontinuous in terms of (2.27).

So, as a consequence of the Arzelà-Ascoli theorem, we have that TU is a compact set.

Now, we come to prove the operator T is continuous on P.

Let { u n } be an arbitrary sequence in P with u n u 0 P. Then there exists an L>0 such that

u n (t)[0,L], u n (t)[L,0],tI,n=0,1,2,.

According to the uniform continuity of f on I×[0,L]×[L,0], for an arbitrary number ε>0, there is a number N1 such that

| f ( t , u n ( t ) , u n ( t ) ) f ( t , u 0 ( t ) , u 0 ( t ) ) | <ε
(3.9)

for all tI, whenever nN.

Thus, in view of Lemma 2.4, from (2.26)-(2.27) and (3.9), it follows that

| ( T u n ) ( t ) ( T u 0 ) ( t ) | ε 0 1 w 1 (s)ds,tI,

and

| ( T u n ) ( t ) ( T u ) ( t ) | ε 0 1 w 2 (s)ds,tI,

whenever nN. That is, T is continuous on P. □

We are now in a position to state and prove the first theorem in the article. Let constants k 1 , k 2 satisfy k 1 (0, ( 0 1 w 2 ( s ) d s ) 1 ), k 2 > ( η 2 1 6 1 3 w 2 ( s ) d s ) 1 .

Theorem 3.1 Suppose that ( H 1 )-( H 2 ) hold. In addition, there are two constants r 1 , r 2 with 1 6 η 1 η 2 r 2 > r 1 >0 such that f satisfies the following condition:

( H 3 ) f(t,x,y) k 1 r 1 , for (t,x,y)I×[0, r 1 ]×[ r 1 ,0];

f(t,x,y) k 2 r 2 , for (t,x,y)I×[ 1 6 η 1 η 2 r 2 , r 2 ]×[ r 2 , η 2 r 2 ].

Then BVP (1.1)-(1.2) has at least one positive solution u satisfying r 1 < max t I | u (t)|< r 2 and max t I |u(t)|< r 2 .

Proof We already know that T:PP is completely continuous by Lemma 3.1.

Let α(u)= max t I | u (t)|, β(u)= max t I |u(t)| for uP. It is easy to verify that the functions α, β satisfy the condition (D).

Choose a constant L large enough so that L>max{M 0 1 w 1 (s)ds, r 2 }, where M= max ( t , x , y ) I × J × Δ f(t,x,y), and J=[0, r 2 ], Δ=[ r 2 ,0]. Set D i ={u C 1 (I,R):α(u)= r i }, Ω i ={u C 1 (I,R):α(u)< r i ,β(u)<L}, i=1,2. Define the function f ¯ on I× R + × R as f ¯ (t,x,y)=f(t,ϕ(x),φ(y)), (t,x,y)I× R + × R , where ϕ(x)=min{x, r 2 }, φ(y)=max{y, r 2 }.

Consider the following ancillary BVP:

{ D 0 + α C x ( t ) = f ¯ ( t , x ( t ) , x ( t ) ) , t ( 0.1 ) , x ( 1 ) = x ( 1 ) = 0 , δ x ( 0 ) = x ( 1 ) , γ x ( 0 ) = x ( 1 ) .
(3.10)

Obviously, the function f ¯ is continuous on I× R + × R according to the continuity of f. Thus, by an argument similar to that in Lemma 3.1, the operator T ¯ given by T ¯ u= 0 1 G(t,s) f ¯ (s,u(s), u (s))ds is also completely continuous on P and maps P into P.

We will prove that T has at least one nonzero fixed point in P by applying Lemma 2.5. The approach is divided into four steps.

Step 1. We first show that

u 0 u 0 ,u(t) 1 6 η 1 η 2 u 0 ,t [ 1 6 , 1 3 ] for any uP.
(3.11)

In fact, for any uP, owing to the condition u(1)=0, we have that u(t)= t 1 u (s)ds, tI, and so u 0 u 0 .

On the other hand, applying the mean value theorem, for any uP, we have that u 0 |u( 1 3 )u( 1 6 )|= 1 6 | u (ξ)| for some ξ( 1 6 , 1 3 ). Therefore, we have that u 0 1 6 η 2 u 0 from the fact that u (ξ) η 2 u 0 , ξ[ 1 6 , 1 3 ] because uP. So,

u(t) η 1 u 0 1 6 η 1 η 2 u 0 ,t [ 1 6 , 1 3 ] ,

keeping in mind that u(t) η 1 u 0 , t[ 1 6 , 1 3 ] for uP.

Step 2. Now, we come to verify that the conditions corresponding to ( C 1 ) in Lemma 2.5 hold.

For any uP with α(u)= r 1 , we have that u(t)0, u (t)0, tI, and u 0 = r 1 . Thus, in view of (3.11), we have that 0u(t) r 1 , r 1 u (t)0, tI. So, according to ( H 3 ), we have

f ¯ ( t , u ( t ) , u ( t ) ) =f ( t , u ( t ) , u ( t ) ) k 1 r 1 ,tI.

Thus, from (2.27) and Lemma 2.4, it follows that

( T ¯ u ) ( t ) = 0 1 G t ( t , s ) f ( s , u ( s ) , u ( s ) ) d s k 1 r 1 0 1 ( G t ( t , s ) ) d s k 1 r 1 0 1 w 2 ( s ) d s , t I .

Thus, max t I | ( T ¯ u ) (t)| k 1 r 1 0 1 w 2 (s)ds< r 1 , noting that the assumption k 1 < ( 0 1 w 2 ( s ) d s ) 1 . That is, α(Tu)< r 1 .

For any uP with α(u)= r 2 , then u(t)0, u (t)0, tI, and max t I | u (t)|= r 2 . Thus, from (3.11), we obtain

1 6 η 1 η 2 r 2 u(t) r 2 , r 2 u (t) η 2 r 2 ,t [ 1 6 , 1 3 ] ,

and so

f ¯ ( t , u ( t ) , u ( t ) ) =f ( t , u ( t ) , u ( t ) ) k 2 r 2 ,t [ 1 6 , 1 3 ] ,

from the condition ( H 3 ). Therefore, in view of Lemma 2.4, we have

( T ¯ u ) ( t ) = 0 1 G t ( t , s ) f ( s , u ( s ) , u ( s ) ) d s 1 6 1 3 G t ( t , s ) f ( s , u ( s ) , u ( s ) ) d s k 2 r 2 1 6 1 3 ( G t ( t , s ) ) d s k 2 r 2 η 2 1 6 1 3 w 2 ( s ) d s , t I .

Thus, max t I | T u(t)| k 2 η 2 r 2 1 6 1 3 w 2 (s)ds> r 2 , noting that k 2 > ( η 2 1 6 1 3 w 2 ( s ) d s ) 1 . That is, α(Tu)> r 2 .

Step 3. We verify that the conditions corresponding to ( C 2 ) in Lemma 2.5 hold.

For any uP, owing to the fact that 0ϕ(u(t)) r 2 , r 2 φ( u (t))0, from the meaning of M, we have immediately that

f ¯ ( t , u ( t ) , u ( t ) ) =f ( t , ϕ ( u ( t ) ) , φ ( u ( t ) ) ) M,tI.

Thus,

( T ¯ u ) ( t ) = 0 1 G ( t , s ) f ¯ ( s , u ( s ) , u ( s ) ) d s M 0 1 G ( t , s ) d s M 0 1 w 1 ( s ) d s , t I .

Hence, ( T ¯ u ) 0 M 0 1 w 1 (s)ds, and so ( T ¯ u ) 0 <L from the choice of L. Thus, β( T ¯ u)<L.

Step 4. Finally, take p=σ 0 1 G(t,s)ds with 0<σ< r 2 ( 0 1 w 2 ( s ) d s ) 1 . Then, by an argument similar to that in Lemma 3.1, we can know that pP. Moreover, 0 p (t)=σ 0 1 ( G t (t,s))dsσ 0 1 w 2 (s)ds< r 2 , tI, and 0p(t)< r 2 , tI from (3.11). Thus, p( Ω 2 P){0}, α(p)0. Again,

α ( u + λ p ) = max t I | u + λ p ( t ) | = max ( u ( t ) + λ ( p ( t ) ) λ max ( u ( t ) ) = λ α ( u )

for any uP, λ0.

So, the conditions corresponding to ( C 3 ) in Lemma 2.5 hold.

Summing up the above steps 1-4 and applying Lemma 2.5, we obtain that BVP (3.10) has at least one positive solution u( Ω 2 Ω ¯ 1 )P. That is, r 1 < u 0 < r 2 . u 0 <L, and so u 0 < r 2 from the fact that r 2 <L and u 0 u 0 by (3.13). Thus, 0u(t)< r 2 , tI, 0 u (t)< r 2 , tI, and u 0. Hence, f ¯ (t,u(t), u (t))=f(t,u(t), u (t)), tI, and so u is a positive solution of BVP (1.1)-(1.2). The proof is complete. □

Now, we state another theorem in this paper. Let us begin with introducing some notations.

Let B= R + × R . Denote f = lim inf x + | y | min t I f ( t , x , y ) x + | y | with (x,y)B, and f 0 = lim sup x + | y | 0 max t I f ( t , x , y ) x + | y | with (x,y)B. Put λ 1 = ( η 0 μ 1 ) 1 , λ 2 = μ 2 1 , where μ 1 = 1 6 1 3 [G(0,s) G t (0,s)]ds, μ 2 = 0 1 ( w 1 (s)+ w 2 (s))ds, η 0 =min{ η 1 , η 2 }, and η i (i=1,2) are given in Lemma 2.4.

Theorem 3.2 Assume that ( H 1 )-( H 2 ) hold. If f > λ 1 , f 0 < λ 2 , then BVP (1.1)-(1.2) has at least one positive solution.

Proof As described in the proof of Theorem 3.1, T:PP is completely continuous. Again, from f > λ 1 , it follows that there exists an R 1 >0 such that

f(t,x,y)> λ 1 ( x + | y | ) ,tI
(3.12)

holds when x+|y| R 1 with x0, y0.

Take R η 0 1 R 1 . Set Ω R ={u C 1 [0,1]: u 1 <R}. Now, we show that the following relation holds:

T u 1 u 1 ,u Ω R P.
(3.13)

In fact, for any u Ω R P, we have that uP with u 1 =R. Then

u ( t ) 0 , u ( t ) 0 , t I ; u ( t ) η 1 u 0 , u ( t ) η 2 u 0 , t [ 1 6 , 1 3 ] .

Thus,

u ( t ) + | u ( t ) | η 1 u 0 + η 2 u 0 η 0 ( u 0 + u 0 ) = η 0 R R 1 , for  t [ 1 6 , 1 3 ] .
(3.14)

Thus, from (3.12), (3.14), it follows that

f ( t , u ( t ) , u ( t ) ) > λ 1 η 0 R,t [ 1 6 , 1 3 ] .
(3.15)

Hence, (2.26) together with (3.15) implies that

( T u ) ( t ) = 0 1 G ( t , s ) f ( s , u ( s ) , u ( s ) ) d s 1 6 1 3 G ( t , s ) f ( s , u ( s ) , u ( s ) ) d s λ 1 η 0 R 1 6 1 3 G ( t , s ) d s , t I .

So,

T u 0 (Tu)(0) λ 1 η 0 R 1 6 1 3 G(0,s)ds.
(3.16)

Similarly, we can obtain

( T u ) 0 ( T u ) (0) λ 1 η 0 R 1 6 1 3 [ G t ( 0 , s ) ] ds.
(3.17)

Therefore, noting that λ 1 = ( η 0 μ 1 ) 1 , from (3.16)-(3.17), we have

T u 1 = T u 0 + ( T u ) 0 λ 1 η 0 R 1 6 1 3 [ G ( 0 , s ) G t ( 0 , s ) ] d s = λ 1 η 0 μ 1 R = R = u 1 .

So, the relation (3.13) holds.

Now, from f 0 < λ 2 , it follows that there exists an r 2 >0 such that

f(t,x,y)< λ 2 ( x + | y | ) ,tI,
(3.18)

whenever x+|y| r 2 with x0, y0.

Take 0<r<min{ r 2 ,R}. Set Ω r ={u C 1 [0,1]: u 1 <r}. We prove the following relation holds:

T u 1 u 1 ,u Ω r P.
(3.19)

In fact, for any u Ω r P, we have uP and u 1 =r. Thus, u(t)0, u (t)0, tI, and u(t)+| u (t)|r, tI. So, by (3.18), it follows that

f ( t , u ( t ) , u ( t ) ) < λ 2 ( u ( t ) + | u ( t ) | ) λ 2 r.

Therefore, from (2.26) and in view of Lemma 2.4, we have

( T u ) ( t ) = 0 1 G ( t , s ) f ( s , u ( s ) , u ( s ) ) d s λ 2 r 0 1 G ( t , s ) d s λ 2 r 0 1 w 1 ( s ) d s , t I .
(3.20)

So,

T u 0 λ 2 r 0 1 w 1 (s)ds.
(3.21)

Similarly, we can obtain

( T u ) 0 λ 2 r 0 1 w 2 (s)ds.
(3.22)

Consequently, noting that λ 2 = μ 2 1 , from (3.21)-(3.22), it follows that

T u 1 = T u 0 + ( T u ) 0 λ 2 r 0 1 ( w 1 ( s ) + w 2 ( s ) ) d s = r λ 2 μ 2 = r = u 1 .

So, the relation (3.19) holds.

Summing up (3.13) and (3.19), applying Lemma 2.6, the operator T has at least one fixed point u( Ω ¯ 2 Ω 1 )P. Thus u is a positive solution of BVP (1.1)-(1.2). The proof is complete. □

Example 3.1 Consider the following BVP:

{ D 0 + α C x ( t ) = f ( t , x ( t ) , x ( t ) ) , t ( 0 , 1 ) , x ( 1 ) = x ( 1 ) = 0 , δ x ( 0 ) = x ( 1 ) , γ x ( 0 ) = x ( 1 ) ,
(3.23)

where 3<α4, γ>1, δ>1, and f is given by

f(t,x,y)= e t [ a 1 ( sin x ) 6 + a 2 ( y ) 4 ] ,(t,x,y)I× R + × R ,

where constants a 1 , a 2 are two positive numbers. Then BVP (3.23) has at least one positive solution.

In fact, assume that the notations k 1 , k 2 , η 1 , and η 2 are described in Theorem 3.1. Take 0< r 1 <min{1, k 1 e ( a 1 + a 2 ) }, r 2 >max{ k 2 a 2 η 2 2 , 6 η 1 η 2 }. Then the inequality

f(t,x,y)e [ a 1 x 3 + a 2 y 2 ] e[ a 1 + a 2 ] r 1 2 k 1 r 1

holds for (t,x,y)I×[0, r 1 ]×[ r 1 ,0], and the inequality

f(t,x,y) a 2 y 2 a 2 η 2 2 r 2 2 k 2 r 2

holds for (t,x,y)I×[0,+)×[ r 2 , η 2 r 2 ].

So, by Theorem 3.1, BVP (3.23) has at least one positive solution.

Example 3.2 Consider the following BVP:

{ D 0 + α C x ( t ) = f ( t , x ( t ) , x ( t ) ) , t ( 0 , 1 ) , x ( 1 ) = x ( 1 ) = 0 , δ x ( 0 ) = x ( 1 ) , γ x ( 0 ) = x ( 1 ) ,
(3.24)

where 3<α4, γ>1, δ>1, and f is given by

f(t,x,y)= e t [ a 1 ( x + | y | ) β + a 2 ( sin x y ) 2 ] ,(t,x,y)I× R + × R ,

where constants a 1 , a 2 are two positive numbers and a constant β>1. Then BVP (3.24) has at least one positive solution.

In fact, observing that f =+, f 0 =0, the conclusion follows from Theorem 3.2.

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Acknowledgements

The author sincerely thanks the anonymous referees for their valuable suggestions and comments which have greatly helped improve this article. Article is supported by the Natural Science Foundation of Hubei Provincial Education Department (D20102502).

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Chai, G. Existence results of positive solutions for boundary value problems of fractional differential equations. Bound Value Probl 2013, 109 (2013). https://doi.org/10.1186/1687-2770-2013-109

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