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Sign-changing solution for a third-order boundary-value problem in ordered Banach space with lattice structure

Abstract

In this paper, the sign-changing solution of a third-order two-point boundary-value problem is considered. By calculating the eigenvalues and the algebraic multiplicity of the linear problem and using a new fixed point theorem in an ordered Banach space with lattice structure, we give some conditions to guarantee the existence for a sign-changing solution.

1 Introduction

In this paper, we consider the following nonlinear third-order two-point boundary-value problem

{ u ( t ) = f ( t , u ( t ) ) , t [ 0 , 1 ] , u ( 0 ) = u ( 0 ) = u ( 1 ) = 0 ,
(1.1)

where fC([0,1]×R,R).

The study on the existence of the sign-changing solutions for the boundary-value problem is very useful and interesting both in theory and in application. Recently, there has been much attention focused on the problem, especially to the two-point or multi-point boundary-value problem. For the second-order two-point or multi-point boundary-value problem, many beautiful results have been given on the existence and multiplicity of the sign-changing solutions (see [15] and the references therein). For example, Xu and Sun [1] obtained an existence result of the sign-changing solutions for the second-order three-point boundary-value problem

{ u ( t ) = f ( u ) , t [ 0 , 1 ] , u ( 0 ) = 0 , α u ( η ) = u ( 1 ) ,

where 0<α<1, 0<η<1, fC(R,R). Xu [2] considered the sign-changing solutions for the second-order multi-point boundary-value problem

{ u ( t ) = f ( u ) , t [ 0 , 1 ] , u ( 0 ) = 0 , u ( 1 ) = i = 1 m 2 α i u ( η i ) ,

where α i >0, i=1,2,,m2, 0< η 1 << η m 2 <1, fC(R,R). In [4], Zhang and Sun obtained the existence and multiplicity of the sign-changing solutions for the integral boundary-value problem

{ u ( t ) = f ( u ) , t [ 0 , 1 ] , u ( 0 ) = 0 , u ( 1 ) = 0 1 a ( s ) u ( s ) d s ,
(1.2)

where fC(R,R), aL(0,1) is nonnegative with 0 1 a 2 (s)ds<1. For the integral boundary-value problem (1.2), Li and Liu [5] also obtained the existence and multiplicity of the sign-changing solutions in ordered Banach space with the lattice structure.

For the third-order boundary-value problem, the existence and multiplicity of solutions have also been discussed in many papers (see [611] and the references therein). However, the research on the sign-changing solutions has been proceeded slowly. For the problem (1.1), Yao and Feng [10, 11] established several existence results for the solutions including the positive solutions using the lower and upper solutions and a maximum principle, respectively. To our knowledge, however, there are fewer papers considered the sign-changing solutions of the problem (1.1). Motivated by the work mentioned above, using the eigenvalues of linear operator, we give an existence result for the sign-changing solutions of the problem (1.1).

The main contribution of this paper are as follows: (a) for the sign-changing solutions of the problem (1.1), to our knowledge, there is no result using the eigenvalues of the linear operator until now; (b) we obtain the eigenvalues and the algebraic multiplicity of the linear problem corresponding the problem (1.1), which is one of the key points that we can use to prove our main result; (c) some conditions are given to guarantee the existence for a sign-changing solution of the problem (1.1).

2 Notations and preliminaries

The following results will be used throughout the paper.

Let E=C[0,1], u= max t [ 0 , 1 ] |u(t)|. Then E is a real Banach space with the norm . Let P={uE:u(t)0,t[0,1]}, and P is a normal solid cone of E, {uE:u(t)>0,t(0,1]} P ={xP|x is an interior point of P}.

Let the operators K, F, A be defined by

(Ku)(t)= 0 1 G(t,s)u(s)ds,(Fu)(t)=f ( t , u ( t ) ) ,for t[0,1],uE,
(2.1)

and A=KF, respectively, where

G(t,s)= 1 2 { 2 t s s 2 t 2 s , 0 s t 1 , t 2 ( 1 s ) , 0 t s 1 .
(2.2)

Remark 1 (1) A,K:EE are completely continuous. (2) G(t,s)0, t,s[0,1]. In fact, since it is obvious in the other case, we only need to prove the case 0st1. Now we suppose that 0st1. Then

G(t,s)= 1 2 ( 2 t s s 2 t 2 s ) = 1 2 s ( ( t t 2 ) + ( t s ) ) 0.

Definition 2.1 [12]

We call E a lattice under the partial ordering ≤, if sup{x,y} and inf{x,y} exist for arbitrary x,yE.

Remark 2 E=C[0,1] is a lattice under the partial ordering ≤ that is deduced by the cone P={uE:u(t)0,t[0,1]} of E.

Definition 2.2 [12]

Let E be a Banach space with a cone P,A:EE be a nonlinear operator. We call that A is a unilaterally asymptotically linear operator along P w ={xE:xw,wE}, if there exists a bounded linear operator L such that

lim x P w , x A x L x x =0.

L is said to be the derived operator of A along P w and will be denoted by A P w . Similarly, we can also define a unilaterally asymptotically linear operator along P w ={xE:xw,wE}. Specially, if w=θ, We call that A is a unilaterally asymptotically linear operator along P and −P.

Definition 2.3 [12]

Let DE and A:DE be a nonlinear operator. A is said to be quasi-additive on lattice, if there exists v E such that

Ax=A x + +A x + v ,xD,

where x + = x + =sup{x,θ}, x = x =sup{x,θ}.

Remark 3 It is easy to see that the operators F and A=KF defined by (2.1) are both quasi-additive on the lattice E=C[0,1].

Let us list some conditions and preliminary lemmas to be used in this paper.

(H1) fC([0,1]×R,R) is strictly increasing in u, and f(t,u)u>0 for all t[0,1], uR{0}.

(H2) lim | u | + f ( t , u ) u = β 1 uniformly on [0,1]. There exists a positive integer n 1 such that

λ 2 n 1 3 < β 1 < λ 2 n 1 + 1 3 ,

where 0< λ 1 < λ 2 << λ n < are the positive solutions of the equation

1 2 e 3 2 λ =cos ( 3 2 λ + 2 π 3 ) .
(2.3)

(H3) lim u 0 f ( t , u ) u = β 0 uniformly on [0,1], and 0< β 0 < λ 1 3 .

Lemma 2.1 For any fC[0,1], u C 3 [0,1] is a solution of the following problem:

{ u ( t ) = f ( t ) , t [ 0 , 1 ] , u ( 0 ) = u ( 0 ) = u ( 1 ) = 0

if and only if u(t) is a solution of the integral equation

u(t)= 0 1 G(t,s)f(s)ds,

where G(t,s) is defined by (2.2).

Proof On the one hand, integrating the equation

u (t)=f(t),t[0,1]

over [0,t] for three times, we have

u(t)= 1 2 0 t ( t s ) 2 f(s)ds+ 1 2 u (0) t 2 + u (0)t+u(0).

Then

u (t)=t 0 t f(s)ds+ 0 t sf(s)ds+ u (0)t+ u (0).

Combining them with boundary condition u(0)= u (0)= u (1)=0, we conclude that

u (0)= 0 1 (1s)f(s)ds.

Therefore,

u ( t ) = 1 2 0 t ( t s ) 2 f ( s ) d s + 1 2 t 2 0 1 ( 1 s ) f ( s ) d s = 1 2 0 t [ ( t s ) 2 t 2 ( 1 s ) ] f ( s ) d s + 1 2 t 2 t 1 ( 1 s ) f ( s ) d s = 0 1 G ( t , s ) f ( s ) d s .

On the other hand, since

u(t)= 0 1 G(t,s)f(s)ds= 1 2 0 t ( 2 t s s 2 t 2 s ) f(s)ds+ 1 2 t 1 t 2 (1s)f(s)ds,

therefore,

u ( t ) = 0 t ( s t s ) f ( s ) d s + t 1 t ( 1 s ) f ( s ) d s , u ( t ) = 0 t s f ( s ) d s + t 1 ( 1 s ) f ( s ) d s ,

and

u (t)=tf(t)(1t)f(t)=f(t).

Moreover, we get u(0)= u (0)= u (1)=0. □

Remark 4 Considering Lemma 2.1, we find that u is a solution of the problem (1.1) if and only if u is a fixed point of the operator A=KF.

From the following lemma, we can obtain the eigenvalues and the algebraic multiplicity of the linear operator K.

Lemma 2.2 The eigenvalues of the linear operator K are

1 λ 1 3 > 1 λ 2 3 >> 1 λ n 3 >

and the algebraic multiplicity of each positive eigenvalue 1 λ n 3 is equal to 1, where 0< λ 1 < λ 2 << λ n < are the positive solutions of (2.3).

Proof Let λ ¯ be a positive eigenvalue of the linear operator K, and yE{θ} be an eigenfunction corresponding to eigenvalue λ ¯ . By Lemma 2.1, we have

{ y ( t ) = 1 λ ¯ y ( t ) , t ( 0 , 1 ) , y ( 0 ) = y ( 0 ) = y ( 1 ) = 0 .
(2.4)

The auxiliary equation of the differential equation (2.4) has roots −μ, 1 2 μ(1+ 3 i), 1 2 μ(1 3 i), where μ= 1 λ ¯ 3 . Thus the general solution of (2.4) is

y(t)= C 1 e μ t + C 2 e 1 2 μ t cos ( 3 2 μ t ) + C 3 e 1 2 μ t sin ( 3 2 μ t ) .

Then

y (t)= C 1 ( μ e μ t ) + C 2 μ e 1 2 μ t cos ( 3 2 μ t + π 3 ) + C 3 μ e 1 2 μ t sin ( 3 2 μ t + π 3 ) .

Applying the condition y(0)= y (0)=0, we obtain C 2 = C 1 , C 3 = 3 C 1 , where C 1 0.

Applying the second condition y (1)=0, that is,

e μ +2 e 1 2 μ cos ( 3 2 μ + 2 π 3 ) =0.
(2.5)

Considering (2.3), we see that μ is one of λ 1 , λ 2 ,, λ n , , that is,

1 λ 1 3 > 1 λ 2 3 >> 1 λ n 3 >

are eigenvalues of the linear operator K and the eigenfunction corresponding to the eigenvalue 1 λ n 3 is

y n (t)=C ( e λ n t e 1 2 λ n t cos ( 3 2 λ n t ) + 3 e 1 2 λ n t sin ( 3 2 λ n t ) ) ,
(2.6)

where C is a nonzero constant.

Next we prove that the algebraic multiplicity of the eigenvalue 1 λ n 3 is 1. From (2.6), any two eigenfunctions corresponding to the same eigenvalue 1 λ n 3 are merely nonzero constant multiples of each other, that is,

dimker ( 1 λ n 3 I K ) =dimker ( I λ n 3 K ) =1.

Now we show that

ker ( I λ n 3 K ) =ker ( I λ n 3 K ) 2 .

Obviously, we only need to show that

ker ( I λ n 3 K ) 2 ker ( I λ n 3 K ) .

In fact, for any yker ( I λ n 3 K ) 2 , (I λ n 3 K)y is an eigenfunction of linear operator K corresponding to the eigenvalue 1 λ n 3 if (I λ n 3 K)yθ. Considering (2.6), there exists a nonzero constant σ such that

( I λ n 3 K ) y(t)=σ ( e λ n t e 1 2 λ n t cos ( 3 2 λ n t ) + 3 e 1 2 λ n t sin ( 3 2 λ n t ) ) .

By direct computation, we have

{ y ( t ) + λ n 3 y ( t ) = σ λ n 3 ( e λ n t e 1 2 λ n t cos ( 3 2 λ n t ) + 3 e 1 2 λ n t sin ( 3 2 λ n t ) ) , t [ 0 , 1 ] , y ( 0 ) = y ( 0 ) = y ( 1 ) = 0 .
(2.7)

It is easy to see that the solution for the corresponding homogeneous equation of (2.7) is of the form

y 0 (t)= C 1 e λ n t + C 2 e 1 2 λ n t cos ( 3 2 λ n t ) + C 3 e 1 2 λ n t sin ( 3 2 λ n t ) .

Then, by an ordinary differential equation method, we see that the general solution of (2.7) is of the form

y(t)= y 0 (t)+ y 1 (t)+ y 2 (t),t[0,1],

where

y 1 (t)= 1 3 σ λ n t e λ n t

is the special solution of the equation

y (t)+ λ n 3 y(t)=σ λ n 3 e λ n t ,

and

y 2 ( t ) = 1 3 σ λ n t e 1 2 λ n t ( cos ( 3 2 λ n t ) + 3 sin ( 3 2 λ n t ) ) = 2 3 σ λ n t e 1 2 λ n t cos ( π 3 3 2 λ n t )

is the special solution of the equation

y (t)+ λ n 3 y(t)=σ λ n 3 e 1 2 λ n t ( cos ( 3 2 λ n t ) 3 sin ( 3 2 λ n t ) ) .

Then

( y 1 ) ( t ) = 1 3 σ λ n e λ n t + 1 3 σ λ n 2 t e λ n t , ( y 2 ) ( t ) = 2 3 σ λ n e 1 2 λ n t cos ( π 3 3 2 λ n t ) + 1 3 σ λ n 2 t e 1 2 λ n t cos ( π 3 3 2 λ n t ) + 3 3 σ λ n 2 t e 1 2 λ n t sin ( π 3 3 2 λ n t ) .

Applying the condition y(0)= y (0)=0, we obtain C 2 = C 1 , C 3 = 3 C 1 . From the condition y (1)=0, we obtain

( y 0 ) (1)+ ( y 1 ) (1)+ ( y 2 ) (1)=0.
(2.8)

From (2.5), we have ( y 0 ) (1)=0. Thus it follows from (2.8) that

e λ n + λ n e λ n + 2 e 1 2 λ n cos ( π 3 3 2 λ n ) + λ n e 1 2 λ n cos ( π 3 3 2 λ n ) + 3 λ n e 1 2 λ n sin ( π 3 3 2 λ n ) = 0 ,

which implies that

e λ n + e 1 2 λ n cos ( π 3 3 2 λ n ) + 3 e 1 2 λ n sin ( π 3 3 2 λ n ) =0.

That is

1 2 e 3 2 λ n =cos 3 2 λ n ,

which is a contradiction of

1 2 e 3 2 λ n =cos ( 3 2 λ n + 2 π 3 ) .

Therefore, the algebraic multiplicity of the eigenvalue 1 λ n 3 is 1. □

Lemma 2.3 Suppose that (H1) holds and yP{θ} is a solution of the (1.1), then y P . Similarly, if y(P){θ} is a solution of the (1.1), then y P .

Proof The proof is obvious. □

Lemma 2.4 Suppose that (H1)-(H3) hold. Then the operator A is Fréchet differentiable at θ and ∞, and A θ = β 0 K, A = β 1 K.

Proof Since (H3): lim u 0 f ( t , u ) u = β 0 uniformly on [0,1]. That is, for any ε>0, there exists δ>0 such that

| f ( t , u ) β 0 u | ε|u|,t[0,1],0<|u|<δ.

From (H1), it is easy to see that t[0,1], f(t,0)=0. Then, for any uE with u<δ, we have

| ( A u A θ β 0 K u ) ( t ) | = | K ( F u β 0 u ) ( t ) | K max s [ 0 , 1 ] | f ( s , u ( s ) ) β 0 u ( s ) | K u ε .

Then

AuAθ β 0 KuKuε,u<δ.

Thus,

lim u 0 A u A θ β 0 K u u =0,

which means A θ = β 0 K.

Since (H2): lim | u | + f ( t , u ) u = β 1 uniformly on [0,1]. That is, for any ε>0, there exists R>0 such that

| f ( t , u ) β 1 u | ε|u|,t[0,1],|u|>R.

Let M R = max 0 | u | R |f(t,u)|. Then

| ( F u ) ( t ) β 1 u ( t ) | = | f ( t , u ( t ) ) β 1 u ( t ) | M R + β 1 R+εu,t[0,1],uE.

Thus,

| ( A u β 1 K u ) ( t ) | = | K ( F u β 1 u ) ( t ) | K ( M R + β 1 R + ε u ) .

Then

lim u + A u β 1 K u u εK.

Therefore, A = β 1 K. □

Remark 5 Suppose (H2) holds. Similar to Lemma 2.4, we have

A P = A P = A = β 1 K.

Lemma 2.5 [13]

Suppose that E is an ordered Banach space with a lattice structure, P is a normal solid cone in E, and the nonlinear operator A is quasi-additive on the lattice. Assume that

  1. (i)

    A is strongly increasing on P andP;

  2. (ii)

    both A P and A P exist with r( A P )>1 and r( A P )>1; 1 is not an eigenvalue of A P or A P corresponding a positive eigenvector;

  3. (iii)

    Aθ=θ; the Fréchet derivative A θ of A at θ is strongly positive, and r( A θ )<1;

  4. (iv)

    the Fréchet derivative A of A atexists; 1 is not an eigenvalue of A ; the sum β of the algebraic multiplicities for all eigenvalues of A lying in the interval (1,) is an even number.

Then A has at least three nontrivial fixed points containing one sign-changing fixed point.

3 Main result

We state the main result of this paper.

Theorem 3.1 Suppose that (H1)-(H3) hold. Then the problem (1.1) has at least three solutions including a sign-changing solution.

We need only to prove that A=KF satisfies the four conditions of Lemma 2.5.

Proof Noticing

A θ = β 0 K, A P = A P = A = β 1 K.
  1. (i)

    A is strongly increasing on P and −P. In fact, from (H1) and K(P{θ}) P , we see that A is strongly increasing on P. Similarly, A is strongly increasing on −P.

  2. (ii)

    From A P = A P = β 1 K, λ 2 n 1 3 < β 1 < λ 2 n 1 + 1 3 and Lemma 2.2, we find that 1 is not an eigenvalue of A P or A P and r( A P )=r( A P )= β 1 λ 1 3 >1.

  3. (iii)

    From A θ = β 0 K, 0< β 0 < λ 1 3 , K(P{θ}) P , Lemma 2.2 and (H1), we have A θ is strongly positive, Aθ=θ and r( A θ )= β 0 λ 1 3 <1.

  4. (iv)

    Since A = β 1 K, λ 2 n 1 3 < β 1 < λ 2 n 1 + 1 3 and Lemma 2.2, the condition (iv) of Lemma 2.5 is satisfied.

Therefore, from Lemma 2.5, we see that A has at least three nontrivial fixed points including one sign-changing fixed point. Then, the problem (1.1) has at least three solutions, including one sign-changing solution. □

Example 3.1 Consider the following third-order boundary-value problem

{ u ( t ) = f ( t , u ( t ) ) , t [ 0 , 1 ] , u ( 0 ) = u ( 0 ) = u ( 1 ) = 0 ,
(3.1)

where

f(t,u)= { 300 ( u 1 ) + ( 1 + t ) u + 3 , t [ 0 , 1 ] , u ( 1 , + ) , ( 1 + t ) u 5 3 + 3 u , t [ 0 , 1 ] , u [ 1 , 1 ] , 300 ( u + 1 ) + ( 1 + t ) u 3 3 , t [ 0 , 1 ] , u ( , 1 ) .

By simple calculations, we have λ 1 3.0167, λ 2 6.6506, λ 3 10.2782, β 0 =3, β 1 =300. Then it is easy to see that f(t,u) satisfies the conditions (H1)-(H3). Therefore, the boundary-value problem (3.1) has at least three solutions, including one sign-changing solution.

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Acknowledgements

The authors are highly grateful for the referees’ careful reading and comments on this paper. The research is supported by Program for Scientific research innovation team in Colleges and universities of Shandong Province, the Doctoral Program Foundation of Education Ministry of China (20133705110003), the Natural Science Foundation of Shandong Province of China (ZR2011AM008, ZR2012AM010, ZR2012AQ024).

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Lin, X., Zhao, Z. Sign-changing solution for a third-order boundary-value problem in ordered Banach space with lattice structure. Bound Value Probl 2014, 132 (2014). https://doi.org/10.1186/1687-2770-2014-132

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