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Article

Multiple Solutions for Partial Discrete Dirichlet Problems Involving the p-Laplacian

1
School of Mathematics and Information Science, Guangzhou University, Guangzhou 510006, China
2
Center for Applied Mathematics, Guangzhou University, Guangzhou 510006, China
*
Author to whom correspondence should be addressed.
Mathematics 2020, 8(11), 2030; https://doi.org/10.3390/math8112030
Submission received: 18 October 2020 / Revised: 7 November 2020 / Accepted: 12 November 2020 / Published: 14 November 2020
(This article belongs to the Special Issue Advances in Nonlinear Spectral Theory)

Abstract

:
Due to the applications in many fields, there is great interest in studying partial difference equations involving functions with two or more discrete variables. In this paper, we deal with the existence of infinitely many solutions for a partial discrete Dirichlet boundary value problem with the p-Laplacian by using critical point theory. Moreover, under appropriate assumptions on the nonlinear term, we determine open intervals of the parameter such that at least two positive solutions and an unbounded sequence of positive solutions are obtained by using the maximum principle. We also show two examples to illustrate our results.

1. Introduction

Let Z , R , N denote all integers, real numbers and positive integers, respectively. Define Z ( a , b ) = { a , a + 1 , , b } for any a , b Z with a b .
In this paper, we consider the following problem, namely ( S λ f )
Δ 1 ( ϕ p ( Δ 1 x ( i 1 , j ) ) ) + Δ 2 ( ϕ p ( Δ 2 x ( i , j 1 ) ) ) + λ f ( ( i , j ) , x ( i , j ) ) = 0 , ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) ,
with boundary conditions
x ( i , 0 ) = x ( i , n + 1 ) = 0 , i Z ( 0 , m + 1 ) ,
x ( 0 , j ) = x ( m + 1 , j ) = 0 , j Z ( 0 , n + 1 ) ,
where m and n are given positive integers, λ is a positive real parameter, Δ 1 and Δ 2 are forward difference operators, respectively defined by Δ 1 x ( i , j ) = x ( i + 1 , j ) x ( i , j ) and Δ 2 x ( i , j ) = x ( i , j + 1 ) x ( i , j ) , Δ 1 2 x ( i , j ) = Δ 1 ( Δ 1 x ( i , j ) ) and Δ 2 2 x ( i , j ) = Δ 2 ( Δ 2 x ( i , j ) ) , ϕ p is the p-Laplacian operator given by ϕ p ( s ) = | s | p 2 s , 1 < p < + and f ( ( i , j ) , · ) C ( R , R ) for all ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) .
The study of difference equations has captured special attention, which is due to the fact that difference equations are widely used as mathematical models in discrete optimization, physics, population genetics, etc. [1,2,3,4]. Many researchers have done in-depth study on the difference equation and use critical point theory to acquire some wonderful conclusions. For example, some results on homoclinic solutions [5,6,7,8,9,10,11,12,13], periodic solutions [14,15,16], ground state solutions [17,18] and solutions for boundary value problems [19,20,21,22,23,24,25,26,27,28,29] have been achieved. Especially, in recent years, owing to more and more applications of partial difference equation mathematical models in many fields, such as economy, computer science and control systems, there has aroused a great deal of interest in studying partial difference equations involving functions with two or more discrete variables. With the increase of research, many results have been obtained [30,31,32].
In [30], Shapour Heidarkhani and Maurizio Imbesi considered the following partial discrete Dirichlet problem ( E λ f )
Δ 1 2 u ( i 1 , j ) + Δ 2 2 u ( i , j 1 ) + λ f ( ( i , j ) , u ( i , j ) ) = 0 , ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) ,
with boundary conditions
u ( i , 0 ) = u ( i , n + 1 ) = 0 , i Z ( 1 , m ) ,
u ( 0 , j ) = u ( m + 1 , j ) = 0 , j Z ( 1 , n ) .
The authors transformed the matrix form into the one-dimensional vector form, and obtained the existence of at least three solutions for problem ( E λ f ) by utilizing two critical point theorems.
In [31], Marek Galewski and Aleksandra Orpel obtained some existence results of ( E λ f ) in light of variational methods and some monotonicity results.
Maurizio Imbesi and Giovanni Molica Bisci [32] determined unbounded intervals of parameters such that ( E λ f ) admitted either an unbounded sequence of solutions or a pairwise distinct sequence of solutions by the critical point theory.
However, until now, there is very little research on the partial difference equations with the p-Laplacian. For this reason, this paper is to study the existence of multiple solutions for partial discrete Dirichlet problems involving the p-Laplacian. In this paper, in the framework of variational methods, we consider the two-dimensional discrete problem ( S λ f ) by using critical point theory and we come up with more specific sets of parameters such that the existence of infinitely many solutions for problem ( S λ f ) can be obtained. Under some proper assumptions, we deal with the existence of multiple solutions of problem ( S λ f ) by applying Theorem 3.3 of [33] in Theorem 2. Furthermore, we show that problem ( S λ f ) admits at least two positive solutions in Theorem 3. In addition, we obtain that problem ( S λ f ) admits an unbounded sequence of solutions by utilizing Theorem 2.1 of [34] in Theorem 4.
The structure of the rest of this paper is as follows. In Section 2, some basic lemmas and propositions are showed. In Section 3, we give our main results. In Section 4, two examples are presented to explicate our results. We conclude our results in the last section.

2. Preliminaries

Let E denote a finite dimensional real Banach space and let I λ : E R be a function satisfying the following structure hypothesis:
( A ) I λ ( x ) : = Φ ( x ) λ Ψ ( x ) for all x E , where Φ , Ψ : E R are two functions of class C 1 on E with Φ coercive, i.e., lim x Φ ( x ) = + , and λ is a real positive parameter.
The following lemma comes from Theorem 2.2 of [30].
Lemma 1.
Assume that the condition ( A ) holds. We have
( B )   Φ is convex and inf E Φ = Φ ( 0 ) = Ψ ( 0 ) = 0 ;
( C ) for each λ > 0 and for every x 1 , x 2 E which are local minima for the functional I λ : = Φ λ Ψ and such that Ψ ( x 1 ) 0 and Ψ ( x 2 ) 0 , one has inf 0 t 1 Ψ ( t x 1 + ( 1 t ) x 2 ) 0 .
Further, assume that there are two positive constants ρ 1 , ρ 2 and u E , with 2 ρ 1 < Φ ( u ) < ρ 2 2 , such that
( a 1 )
sup x Φ 1 ( , ρ 1 ) Ψ ( x ) ρ 1 < 2 3 · Ψ ( u ) Φ ( u ) ;
( a 2 )
sup x Φ 1 ( , ρ 2 ) Ψ ( x ) ρ 2 < 1 3 · Ψ ( u ) Φ ( u ) .
Then, for each λ 3 2 · Φ ( u ) Ψ ( u ) , min ρ 1 sup x Φ 1 ( , ρ 1 ) Ψ ( x ) , ρ 2 / 2 sup x Φ 1 ( , ρ 2 ) Ψ ( x ) , the functional I λ has at least three distinct critical points which lie in Φ 1 ( , ρ 2 ) .
The following lemma comes from Corollary 3.1 of [33].
Lemma 2.
Assume that the condition ( A ) holds. We have
( D )   Φ is convex and inf E Φ = Φ ( 0 ) = Ψ ( 0 ) = 0 ;
( E ) for each λ > 0 and for every x 1 , x 2 E which are local minima for the functional I λ : = Φ λ Ψ and such that Ψ ( x 1 ) 0 and Ψ ( x 2 ) 0 , one has inf 0 t 1 Ψ ( t x 1 + ( 1 t ) x 2 ) 0 .
Further, assume that there are two positive constants ρ 1 , ρ 2 and u E , with ρ 1 < Φ ( u ) < ρ 2 2 , such that
( a 3 )
sup x Φ 1 ( , ρ 1 ) Ψ ( x ) ρ 1 < 1 2 · Ψ ( u ) Φ ( u ) ;
( a 4 )
sup x Φ 1 ( , ρ 2 ) Ψ ( x ) ρ 2 < 1 4 · Ψ ( u ) Φ ( u ) .
Then, for each λ 2 Φ ( u ) Ψ ( u ) , min ρ 1 sup x Φ 1 ( , ρ 1 ) Ψ ( x ) , ρ 2 / 2 sup x Φ 1 ( , ρ 2 ) Ψ ( x ) , the functional I λ has at least three distinct critical points which lie in Φ 1 ( , ρ 2 ) .
Let t , t 1 , t 2 > inf E Φ with t 2 > t 1 and t 3 > 0 such that
φ ( t ) = inf x Φ 1 ( , t ) sup x Φ 1 ( , t ) Ψ ( x ) Ψ ( x ) t Φ ( x ) , β ( t 1 , t 2 ) = inf x Φ 1 ( , t 1 ) sup y Φ 1 [ t 1 , t 2 ) Ψ ( y ) Ψ ( x ) Φ ( y ) Φ ( x ) , γ ( t 2 , t 3 ) = sup x Φ 1 ( , t 2 + t 3 ) Ψ ( x ) t 3 , α ( t 1 , t 2 , t 3 ) = max φ ( t 1 ) , φ ( t 2 ) , γ ( t 2 , t 3 ) .
The following lemma comes from Theorem 3.3 of [33].
Lemma 3.
Assume that the condition ( A ) holds. We have
( F )   Φ is convex and inf E Φ = Φ ( 0 ) = Ψ ( 0 ) = 0 ;
( G ) for each λ > 0 and for every x 1 , x 2 E which are local minima for the functional I λ : = Φ λ Ψ and such that Ψ ( x 1 ) 0 and Ψ ( x 2 ) 0 , one has inf 0 s 1 Ψ ( s x 1 + ( 1 s ) x 2 ) 0 .
Further, assume that there are three positive constants ρ 1 , ρ 2 , ρ 3 with ρ 1 < ρ 2 , such that
  • ( a 5 ) φ ( ρ 1 ) < β ( ρ 1 , ρ 2 ) ;
  • ( a 6 ) φ ( ρ 2 ) < β ( ρ 1 , ρ 2 ) ;
  • ( a 7 ) γ ( ρ 2 , ρ 3 ) < β ( ρ 1 , ρ 2 ) .
Then, for each λ 1 β ( ρ 1 , ρ 2 ) , 1 α ( ρ 1 , ρ 2 , ρ 3 ) , the functional I λ has three distinct critical points.
Let
γ = lim inf t + φ ( t ) , δ = lim inf t inf E Φ + φ ( t ) .
Clearly, γ 0 and δ 0 . When γ = 0 (or δ = 0 ), in the sequel, we agree to read 1 γ (or 1 δ ) as + .
The following lemma comes from Theorem 2.1 of [34].
Lemma 4.
Assume that the condition (A) holds, one has
( i ) If γ < + then, for each λ ( 0 , 1 γ ) , the following alternative holds: either
( i 1 ) I λ possesses a global minimum, or
( i 2 ) there is a sequence { x k } of critical points (local minima) of I λ such that lim k + Φ ( x k ) = + .
( j ) If δ < + then, for each λ ( 0 , 1 δ ) , the following alternative holds: either
( j 1 ) there is a global minimum of Φ which is a local minimum of I λ , or
( j 2 ) there is a sequence { x k } of pairwise distinct critical points (local minima) of I λ , with lim k + Φ ( x k ) = inf E Φ , which weakly converges to a global minimum of Φ .
Now we consider the m n -dimensional Banach space
S = { x : Z ( 0 , m + 1 ) × Z ( 0 , n + 1 ) R such that x ( i , 0 ) = x ( i , n + 1 ) = 0 , i Z ( 0 , m + 1 ) and x ( 0 , j ) = x ( m + 1 , j ) = 0 , j Z ( 0 , n + 1 ) } ,
endowed with the norm
x = j = 1 n i = 1 m + 1 | Δ 1 x ( i 1 , j ) | p + i = 1 m j = 1 n + 1 | Δ 2 x ( i , j 1 ) | p 1 p , x S .
For each x S , let
Φ ( x ) = j = 1 n i = 1 m + 1 1 p | Δ 1 x ( i 1 , j ) | p + i = 1 m j = 1 n + 1 1 p | Δ 2 x ( i , j 1 ) | p ,
Ψ ( x ) = j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) ,
where F ( ( i , j ) , x ) = 0 x f ( ( i , j ) , ξ ) d ξ for every ( ( i , j ) , x ) Z ( 1 , m ) × Z ( 1 , n ) × R .
Define
I λ ( x ) = Φ ( x ) λ Ψ ( x ) ,
for any x S . It is clear that I λ C 1 ( S , R ) with
Φ ( x ) ( z ) = lim t 0 Φ ( x + t z ) Φ ( x ) t = j = 1 n i = 1 m + 1 ϕ p Δ 1 x ( i 1 , j ) Δ 1 z ( i 1 , j ) + i = 1 m j = 1 n + 1 ϕ p Δ 2 x ( i , j 1 ) Δ 2 z ( i , j 1 ) = j = 1 n i = 1 m ϕ p Δ 1 x ( i 1 , j ) Δ 1 z ( i 1 , j ) j = 1 n ϕ p Δ 1 x ( m , j ) z ( m , j ) + i = 1 m j = 1 n ϕ p Δ 2 x ( i , j 1 ) Δ 2 z ( i , j 1 ) i = 1 m ϕ p Δ 2 x ( i , n ) z ( i , n ) = j = 1 n i = 1 m Δ 1 ϕ p Δ 1 x ( i 1 , j ) z ( i , j ) i = 1 m j = 1 n Δ 2 ϕ p Δ 2 x ( i , j 1 ) z ( i , j ) ,
and
Ψ ( x ) ( z ) = lim t 0 Ψ ( x + t z ) Ψ ( x ) t = j = 1 n i = 1 m f ( i , j ) , x ( i , j ) z ( i , j ) ,
for all x , z S .
Now
[ Φ ( x ) λ Ψ ( x ) ] ( z ) = j = 1 n i = 1 m [ Δ 1 ϕ p Δ 1 x ( i 1 , j ) + Δ 2 ϕ p Δ 2 x ( i , j 1 ) + λ f ( i , j ) , x ( i , j ) ] z ( i , j ) .
Consequently, the critical points of I λ in S are exactly the solutions of problem ( S λ f ) .
Proposition 1.
For every x S , the relation
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 x
holds.
Proof. 
For any given x S , there exist s Z ( 1 , m ) and τ Z ( 1 , n ) such that
| x ( s , τ ) | = max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | .
Since x ( i , 0 ) = x ( i , n + 1 ) = 0 , i Z ( 0 , m + 1 ) and x ( 0 , j ) = x ( m + 1 , j ) = 0 , j Z ( 0 , n + 1 ) , we can obtain
x ( s , τ ) = 1 2 | i = 1 s Δ 1 x ( i 1 , τ ) + j = 1 τ Δ 2 x ( s , j 1 ) | 1 2 i = 1 s | Δ 1 x ( i 1 , τ ) | + 1 2 j = 1 τ | Δ 2 x ( s , j 1 ) | 1 2 · ( s + τ ) 1 q i = 1 s | Δ 1 x ( i 1 , τ ) | p + j = 1 τ | Δ 2 x ( s , j 1 ) | p 1 p
and
x ( s , τ ) = 1 2 | i = s + 1 m + 1 Δ 1 x ( i 1 , τ ) + j = τ + 1 n + 1 Δ 2 x ( s , j 1 ) | 1 2 i = s + 1 m + 1 | Δ 1 x ( i 1 , τ ) | + 1 2 j = τ + 1 n + 1 | Δ 2 x ( s , j 1 ) | 1 2 · ( m + n s τ + 2 ) 1 q · i = s + 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + j = τ + 1 n + 1 | Δ 2 x ( s , j 1 ) | p 1 p ,
where q is the conjugative number of p, that is, 1 p + 1 q = 1 . If
i = 1 s | Δ 1 x ( i 1 , τ ) | p + j = 1 τ | Δ 2 x ( s , j 1 ) | p ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 · i = 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 · j = 1 n + 1 | Δ 2 x ( s , j 1 ) | p ,
then we can get
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 i = 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + j = 1 n + 1 | Δ 2 x ( s , j 1 ) | p 1 p .
So, we obtain the required relation (1). If, on the contrary,
i = 1 s | Δ 1 x ( i 1 , τ ) | p + j = 1 τ | Δ 2 x ( s , j 1 ) | p > ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 · i = 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 · j = 1 n + 1 | Δ 2 x ( s , j 1 ) | p ,
then we have
i = s + 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + j = τ + 1 n + 1 | Δ 2 x ( s , j 1 ) | p = i = 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + j = 1 n + 1 | Δ 2 x ( s , j 1 ) | p i = 1 s Δ 1 x ( i 1 , τ ) p + j = 1 τ Δ 2 x ( s , j 1 ) p < 1 ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 · i = 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + 1 ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 · j = 1 n + 1 | Δ 2 x ( s , j 1 ) | p .
Moreover, we have
| x ( s , τ ) | < 1 2 · ( m + n s τ + 2 ) 1 q · 1 ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 1 p · i = 1 m + 1 | Δ 1 x ( i 1 , τ ) | p + j = 1 n + 1 | Δ 2 x ( s , j 1 ) | p 1 p .
We claim that inequality
1 2 · ( m + n s τ + 2 ) 1 q · 1 ( m + n + 2 ) p 1 2 p · ( s + τ ) p 1 1 p ( m + n + 2 ) 1 q 4
holds. In fact, we define a function g : ( 0 , m + n + 2 ) R by
g ( t ) = 1 ( m + n t + 2 ) p 1 + 1 t p 1 .
The function g can attain its minimum 2 p ( m + n + 2 ) p 1 at t = m + n + 2 2 . Since s Z ( 1 , m ) , τ Z ( 1 , n ) , we can get g ( s + τ ) 2 p ( m + n + 2 ) p 1 , that is,
1 ( m + n s τ + 2 ) p 1 + 1 ( s + τ ) p 1 2 p ( m + n + 2 ) p 1 .
This implies assertion (2) and we can obtain the required inequality (1). The proof is complete.  □
Remark 1.
Obviously, when m = 1 and n = 1 , then x = 4 1 p | x ( 1 , 1 ) | and the inequality in (1) holds.
Now we establish the strong maximum principle for problem ( S λ f ) .
Proposition 2.
Assume that there exists x ¯ : Z ( 0 , m + 1 ) × Z ( 0 , n + 1 ) R such that
Δ 1 ϕ p ( Δ 1 x ¯ ( i 1 , j ) ) + Δ 2 ϕ p ( Δ 2 x ¯ ( i , j 1 ) ) 0 ,
for every ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) and
x ¯ ( i , 0 ) = x ¯ ( i , n + 1 ) = 0 , i Z ( 0 , m + 1 ) , x ¯ ( 0 , j ) = x ¯ ( m + 1 , j ) = 0 , j Z ( 0 , n + 1 ) ,
then, either x ¯ is the identically zero function or x ¯ ( i , j ) > 0 for every ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) .
Note that when f : Z ( 1 , m ) × Z ( 1 , n ) × R R is a non-negative function, the above proposition ensures that every solution of problem ( S λ f ) is either zero or positive.
Proof. 
Let θ Z ( 1 , m ) , ω Z ( 1 , n ) and
x ¯ ( θ , ω ) = min x ¯ ( i , j ) : i Z ( 1 , m ) , j Z ( 1 , n ) .
If x ¯ ( θ , ω ) > 0 , then it is clear that x ¯ ( i , j ) > 0 for all i Z ( 1 , m ) , j Z ( 1 , n ) and the proof is complete.
If x ¯ ( θ , ω ) 0 , then x ¯ ( θ , ω ) = min x ¯ ( i , j ) : i Z ( 0 , m + 1 ) , j Z ( 0 , n + 1 ) , since Δ 1 x ¯ ( θ 1 , ω ) = x ¯ ( θ , ω ) x ¯ ( θ 1 , ω ) 0 , Δ 2 x ¯ ( θ , ω 1 ) = x ¯ ( θ , ω ) x ¯ ( θ , ω 1 ) 0 , and Δ 1 x ¯ ( θ , ω ) = x ¯ ( θ + 1 , ω ) x ¯ ( θ , ω ) 0 , Δ 2 x ¯ ( θ , ω ) = x ¯ ( θ , ω + 1 ) x ¯ ( θ , ω ) 0 , ϕ p ( η ) is increasing in η , and ϕ p ( 0 ) = 0 , we obtain
ϕ p Δ 1 x ¯ ( θ , ω ) 0 ϕ p Δ 1 x ¯ ( θ 1 , ω ) .
Similarly,
ϕ p Δ 2 x ¯ ( θ , ω ) 0 ϕ p Δ 2 x ¯ ( θ , ω 1 ) .
We get
Δ 1 ϕ p ( Δ 1 x ¯ ( θ 1 , ω ) ) + Δ 2 ϕ p ( Δ 2 x ¯ ( θ , ω 1 ) ) 0 .
Thus, we have
ϕ p Δ 1 x ¯ ( θ , ω ) = ϕ p Δ 1 x ¯ ( θ 1 , ω ) = 0 .
That is x ¯ ( θ + 1 , ω ) = x ¯ ( θ , ω ) = x ¯ ( θ 1 , ω ) . If θ + 1 = m + 1 , we get x ¯ ( θ , ω ) = 0 . Otherwise, ( θ + 1 ) Z ( 1 , m ) . Replacing θ by θ + 1 , we obtain x ¯ ( θ + 2 , ω ) = x ¯ ( θ + 1 , ω ) . Continuing this process ( m + 1 θ ) times, we have x ¯ ( θ , ω ) = x ¯ ( θ + 1 , ω ) = x ¯ ( θ + 2 , ω ) = = x ¯ ( m + 1 , ω ) = 0 . Similarly, we get x ¯ ( θ , ω ) = x ¯ ( θ 1 , ω ) = x ¯ ( θ 2 , ω ) = = x ¯ ( 0 , ω ) = 0 . Therefore, x ¯ ( i , ω ) = 0 for i Z ( 1 , m ) . In the same way, we can show that x ¯ 0 and the proof is complete.  □

3. Main Results

For each positive constant h, put
τ ( h ) = j = 1 n i = 1 m F ( i , j ) , h h p .
Theorem 1.
For every ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , let f ( i , j ) , · : R R be a non-negative continuous function. Assume that there exist three positive constants b 1 , b 2 and l with
4 b 1 ( n + m ) 1 p · ( m + n + 2 ) p 1 p < l < 4 n + m + 2 p 1 p · b 2 ( n + m ) 1 p
such that
( g 1 )  
max τ ( b 1 ) , 2 τ ( b 2 ) < 4 p 3 n + 3 m · τ ( l ) ( m + n + 2 ) p 1 .
Then, for each λ 3 n + 3 m p τ ( l ) , 4 p p ( m + n + 2 ) p 1 · max τ ( b 1 ) , 2 τ ( b 2 ) , problem ( S λ f ) admits at least two positive solutions x k , k = 1 , 2 .
Proof. 
Fix λ as in the conclusion, and put Φ , Ψ , I λ as defined in Section 2 for all x S . Let us employ Lemma 1 to our problem. Clearly, Φ and Ψ satisfy assumptions ( A ) and ( B ) of Lemma 1. Now, let x 1 and x 2 be two local minima for I λ . Then x 1 and x 2 are critical points for I λ , so, x 1 and x 2 are solutions of problem ( S λ f ) . Owing to Proposition 2, one has x 1 ( i , j ) 0 and x 2 ( i , j ) 0 for all ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) . It follows that t x 1 ( i , j ) + ( 1 t ) x 2 ( i , j ) 0 for every ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) and for every 0 t 1 . Hence, Ψ ( t x 1 + ( 1 t ) x 2 ) 0 for all 0 t 1 and ( C ) is verified. Moreover, put
ρ 1 = ( 4 b 1 ) p p ( m + n + 2 ) p 1 and ρ 2 = ( 4 b 2 ) p p ( m + n + 2 ) p 1 .
For all x S , we have
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · x .
We obtain
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · ( p ρ 1 ) 1 p = b 1 ,
for every x S such that x ( p ρ 1 ) 1 p , and
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · ( p ρ 2 ) 1 p = b 2 ,
for all x S such that x ( p ρ 2 ) 1 p . It follows that
sup x Φ 1 ( , ρ 1 ) Ψ ( x ) ρ 1 = sup x < ( p ρ 1 ) 1 p j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) ρ 1 j = 1 n i = 1 m F ( ( i , j ) , b 1 ) ρ 1 = p ( m + n + 2 ) p 1 4 p τ ( b 1 ) ,
and
sup x Φ 1 ( , ρ 2 ) Ψ ( x ) ρ 2 = sup x < ( p ρ 2 ) 1 p j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) ρ 2 j = 1 n i = 1 m F ( ( i , j ) , b 2 ) ρ 2 = p ( m + n + 2 ) p 1 4 p τ ( b 2 ) .
Let v S be defined by
v ( i , j ) = l , i f ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , 0 , i f i = 0 , j Z ( 0 , n + 1 ) o r i = m + 1 , j Z ( 0 , n + 1 ) , 0 , i f j = 0 , i Z ( 0 , m + 1 ) o r j = n + 1 , i Z ( 0 , m + 1 ) .
Clearly, we have Φ ( v ) = ( 2 n + 2 m ) p · l p . Hence, from 4 b 1 ( n + m ) 1 p ( m + n + 2 ) p 1 p < l , we get 2 ρ 1 < Φ ( v ) and from l < 4 n + m + 2 p 1 p · b 2 ( m + n ) 1 p , we obtain Φ ( v ) < ρ 2 2 . Moreover,
Ψ ( v ) Φ ( v ) = p · j = 1 n i = 1 m F ( ( i , j ) , l ) ( 2 n + 2 m ) · l p = p τ ( l ) 2 n + 2 m .
Therefore, owing to ( g 1 ) , we can get assumptions ( a 1 ) and ( a 2 ) of Lemma 1. Further, one has that
λ 3 n + 3 m p τ ( l ) , 4 p p ( m + n + 2 ) p 1 · max τ ( b 1 ) , 2 τ ( b 2 ) .
Thus, we see from Lemma 1 that problem ( S λ f ) admits at least two positive solutions x k , k = 1 , 2 .  □
Remark 2.
Clearly, problem ( E λ f ) in [30] can be regarded as the special case p = 2 of problem ( S λ f ) . In such a case, we get the set of λ in Theorem 1 which is similar to ([30] Theorem 3.2) such that problem ( S λ f ) admits at least two positive solutions. In Theorem 1, we get the set of λ that is more specific than the set of λ in ([30] Theorem 3.2), where λ 1 in the set of λ is just known to be an eigenvalue but not given a definite expression. Compared with that, in this paper, the set of λ we put forward can be calculated to any given number, so it is possible to get the full set of λ. Moreover, we obtain the existence of infinitely many solutions for problem ( S λ f ) when 1 < p < + , which extends the case of p = 2 , discussed in [30].
Now, we mark the discrete problem ( S λ f ) as ( S λ y , β ) when f ( ( i , j ) , x ( i , j ) ) = β ( i , j ) y ( x ( i , j ) ) , that is
Δ 1 ( ϕ p ( Δ 1 x ( i 1 , j ) ) ) + Δ 2 ( ϕ p ( Δ 2 x ( i , j 1 ) ) ) + λ β ( i , j ) y ( x ( i , j ) ) = 0 , ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) ,
with boundary conditions
x ( i , 0 ) = x ( i , n + 1 ) = 0 , i Z ( 0 , m + 1 ) ,
x ( 0 , j ) = x ( m + 1 , j ) = 0 , j Z ( 0 , n + 1 ) ,
where β : Z ( 1 , m ) × Z ( 1 , n ) R is a non-negative and non-zero function and y : [ 0 , + ) R is a continuous function such that y ( 0 ) = 0 .
Corollary 1.
Assume that there exist three positive constants b 1 , b 2 and l with
4 b 1 ( n + m ) 1 p · ( m + n + 2 ) p 1 p < l < 4 n + m + 2 p 1 p · b 2 ( n + m ) 1 p
such that
( g 2 )  
max 0 b 1 y ( ξ ) d ξ b 1 p , 2 0 b 2 y ( ξ ) d ξ b 2 p < 4 p 0 l y ( ξ ) d ξ ( 3 n + 3 m ) l p · ( m + n + 2 ) p 1 .
Then, for every
λ ( 3 n + 3 m ) · l p p · j = 1 n i = 1 m 0 l β ( i , j ) y ( ξ ) d ξ , = 4 p p ( m + n + 2 ) p 1 · max j = 1 n i = 1 m 0 b 1 β ( i , j ) y ( ξ ) d ξ b 1 p , 2 j = 1 n i = 1 m 0 b 2 β ( i , j ) y ( ξ ) d ξ b 2 p ,
problem ( S λ y , β ) admits at least two positive solutions.
Proof. 
Put
f ( ( i , j ) , r ) = β ( i , j ) y ( r ) , i f r 0 , 0 , i f r < 0 ,
for all ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) and r R . By Theorem 1 and ( g 2 ) , we obtain the conclusion.  □
Theorem 2.
For every ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , let f ( i , j ) , · : R R be a non-negative continuous function. Assume that there exist three positive constants b 1 , b 2 , and l with
4 b 1 ( m + n + 2 ) p 1 p · 1 2 n + 2 m 1 p < l < b 2 ( n + m ) 1 p · 4 m + n + 2 p 1 p
such that
( g 3 )  
max τ ( b 1 ) , 2 τ ( b 2 ) < 4 n + m + 2 p 1 · τ ( l ) ( n + m ) .
Then, for all λ 4 n + 4 m p τ ( l ) , 4 p p ( m + n + 2 ) p 1 · max τ ( b 1 ) , 2 τ ( b 2 ) , problem ( S λ f ) admits at least two positive solutions.
Proof. 
Let
ρ 1 = ( 4 b 1 ) p p ( m + n + 2 ) p 1 and ρ 2 = ( 4 b 2 ) p p ( m + n + 2 ) p 1 .
We have
sup x Φ 1 ( , ρ 1 ) Ψ ( x ) ρ 1 p ( m + n + 2 ) p 1 4 p · τ ( b 1 )
and
sup x Φ 1 ( , ρ 2 ) Ψ ( x ) ρ 2 p ( m + n + 2 ) p 1 4 p · τ ( b 2 ) .
For v S defined as
v ( i , j ) = l , i f ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , 0 , i f i = 0 , j Z ( 0 , n + 1 ) o r i = m + 1 , j Z ( 0 , n + 1 ) , 0 , i f j = 0 , i Z ( 0 , m + 1 ) o r j = n + 1 , i Z ( 0 , m + 1 ) ,
we obtain Φ ( v ) = ( 2 n + 2 m ) p · l p . From 4 b 1 ( m + n + 2 ) p 1 p · 1 2 n + 2 m 1 p < l , we have ρ 1 < Φ ( v ) and from l < b 2 ( n + m ) 1 p · 4 m + n + 2 p 1 p , we get Φ ( v ) < ρ 2 2 . It is clear that,
Ψ ( v ) Φ ( v ) = p τ ( l ) 2 n + 2 m .
Owing to ( g 3 ) , problem ( S λ f ) admits at least two positive solutions.  □
Theorem 3.
For every ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , let f ( i , j ) , · : R R be a non-negative continuous function. Assume that there are positive constants e 1 , e 2 , e 3 and d with
4 e 1 ( m + n + 2 ) p 1 p · 1 2 n + 2 m 1 p < d < 4 e 2 ( m + n + 2 ) p 1 p · 1 2 n + 2 m 1 p a n d e 2 < e 3 ,
such that
( g 4 )  
max τ ( e 1 ) , τ ( e 2 ) , j = 1 n i = 1 m F ( ( i , j ) , e 3 ) e 3 p e 2 p < 4 p 1 τ ( d ) ( n + m ) · ( m + n + 2 ) p 1 .
Then, for all
λ ( 2 n + 2 m ) · 4 p 4 p · τ ( d ) p ( 2 n + 2 m ) · p τ ( e 1 ) · ( m + n + 2 ) p 1 , = 4 p p · ( m + n + 2 ) p 1 max τ ( e 1 ) , τ ( e 2 ) , j = 1 n i = 1 m F ( ( i , j ) , e 3 ) e 3 p e 2 p ,
problem ( S λ f ) admits at least two positive solutions x k , k = 1 , 2 .
Proof. 
Let
t 1 = ( 4 e 1 ) p p ( m + n + 2 ) p 1 ,
t 2 = ( 4 e 2 ) p p ( m + n + 2 ) p 1 ,
t 3 = ( 4 e 3 ) p ( 4 e 2 ) p p ( m + n + 2 ) p 1 .
By (1), we have
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · p t 1 1 p = e 1 ,
for all x S such that x p t 1 1 p , and
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · p t 2 1 p = e 2 ,
for each x S such that x p t 2 1 p , and
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · p t 2 + p t 3 1 p = e 3 ,
for all x S such that x p t 2 + p t 3 1 p . One has
φ ( t 1 ) = inf x Φ 1 ( , t 1 ) sup x Φ 1 ( , t 1 ) Ψ ( x ) Ψ ( x ) t 1 Φ ( x ) sup x Φ 1 ( , t 1 ) Ψ ( x ) t 1 = sup x < p t 1 1 p j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) t 1 j = 1 n i = 1 m F ( ( i , j ) , e 1 ) t 1 = p τ ( e 1 ) · ( m + n + 2 ) p 1 4 p ,
φ ( t 2 ) = inf x Φ 1 ( , t 2 ) sup x Φ 1 ( , t 2 ) Ψ ( x ) Ψ ( x ) t 2 Φ ( x ) sup x Φ 1 ( , t 2 ) Ψ ( x ) t 2 = sup x < p t 2 1 p j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) t 2 j = 1 n i = 1 m F ( ( i , j ) , e 2 ) t 2 = p τ ( e 2 ) · ( m + n + 2 ) p 1 4 p ,
and
γ ( t 2 , t 3 ) = sup x Φ 1 ( , t 2 + t 3 ) Ψ ( x ) t 3 = sup x < p t 2 + p t 3 1 p Ψ ( x ) t 3 = sup x < p t 2 + p t 3 1 p j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) t 3 j = 1 n i = 1 m F ( ( i , j ) , e 3 ) t 3 = p j = 1 n i = 1 m F ( ( i , j ) , e 3 ) · ( m + n + 2 ) p 1 ( 4 e 3 ) p ( 4 e 2 ) p .
Let u S be defined by
u ( i , j ) = d , i f ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , 0 , i f i = 0 , j Z ( 0 , n + 1 ) o r i = m + 1 , j Z ( 0 , n + 1 ) , 0 , i f j = 0 , i Z ( 0 , m + 1 ) o r j = n + 1 , i Z ( 0 , m + 1 ) .
Then we have
β ( t 1 , t 2 ) = inf x Φ 1 ( , t 1 ) sup y Φ 1 [ t 1 , t 2 ) Ψ ( y ) Ψ ( x ) Φ ( y ) Φ ( x ) inf x Φ 1 ( , t 1 ) Ψ ( u ) Ψ ( x ) Φ ( u ) Φ ( x ) inf x Φ 1 ( , t 1 ) Ψ ( u ) Ψ ( x ) Φ ( u ) Ψ ( u ) Φ ( u ) sup x Φ 1 ( , t 1 ) Ψ ( x ) t 1 = j = 1 n i = 1 m F ( ( i , j ) , d ) ( 2 n + 2 m ) · d p p sup x < p t 1 1 p j = 1 n i = 1 m F ( ( i , j ) , x ( i , j ) ) t 1 p j = 1 n i = 1 m F ( ( i , j ) , d ) ( 2 n + 2 m ) d p j = 1 n i = 1 m F ( ( i , j ) , e 1 ) t 1 = p τ ( d ) 2 n + 2 m p τ ( e 1 ) · ( m + n + 2 ) p 1 4 p .
Hence, from 4 e 1 ( m + n + 2 ) p 1 p · 1 2 n + 2 m 1 p < d < 4 e 2 ( m + n + 2 ) p 1 p · 1 2 n + 2 m 1 p , e 2 < e 3 and ( g 4 ) , we obtain φ ( t 1 ) < β ( t 1 , t 2 ) , φ ( t 2 ) < β ( t 1 , t 2 ) and γ ( t 2 , t 3 ) < β ( t 1 , t 2 ) . Then it is clear that for all
λ ( 2 n + 2 m ) · 4 p 4 p · τ ( d ) p ( 2 n + 2 m ) · p τ ( e 1 ) · ( m + n + 2 ) p 1 , = 4 p p · ( m + n + 2 ) p 1 max τ ( e 1 ) , τ ( e 2 ) , j = 1 n i = 1 m F ( ( i , j ) , e 3 ) e 3 p e 2 p ,
problem ( S λ f ) admits at least two positive solutions x k , k = 1 , 2 .  □
Let
B = lim sup x + j = 1 n i = 1 m F ( ( i , j ) , x ) x p .
When B = + , we agree to read 1 B = 0 .
Theorem 4.
Assume that there exist two real sequences { α t } and { β t } , with lim t + β t = + , such that
0 α t < 4 β t ( 2 n + 2 m ) 1 p · ( m + n + 2 ) p 1 p , f o r a l l t N ,
and
Q = lim t + j = 1 n i = 1 m max | x | β t F ( ( i , j ) , x ) j = 1 n i = 1 m F ( ( i , j ) , α t ) ( 4 β t ) p ( 2 n + 2 m ) ( α t ) p ( m + n + 2 ) p 1 < B ( 2 n + 2 m ) · ( m + n + 2 ) p 1 .
Then, for every λ 2 n + 2 m p · 1 B , 1 p ( m + n + 2 ) p 1 · 1 Q , problem ( S λ f ) admits an unbounded sequence of solutions.
Proof. 
Fix λ 2 n + 2 m p · 1 B , 1 p ( m + n + 2 ) p 1 · 1 Q and put
γ t = ( 4 β t ) p p ( m + n + 2 ) p 1 , f o r e a c h t N .
From (1), we have
max i Z ( 1 , m ) j Z ( 1 , n ) | x ( i , j ) | ( m + n + 2 ) p 1 p 4 · p γ t 1 p = β t , f o r e v e r y x S ,
such that x p γ t 1 p for each t N , and we obtain
φ ( γ t ) inf x Φ 1 ( , γ t ) j = 1 n i = 1 m max | x | β t F ( ( i , j ) , x ) j = 1 n i = 1 m F ( ( i , j ) , x ) ( 4 β t ) p p ( m + n + 2 ) p 1 x p p .
Now, we choose η t S , defined by
η t ( i , j ) = α t , i f ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , 0 , i f i = 0 , j Z ( 0 , n + 1 ) o r i = m + 1 , j Z ( 0 , n + 1 ) , 0 , i f j = 0 , i Z ( 0 , m + 1 ) o r j = n + 1 , i Z ( 0 , m + 1 ) .
Clearly, we get Φ ( η t ) = 2 n + 2 m p α t p and η t p < p γ t . One has
φ ( γ t ) j = 1 n i = 1 m max | x | β t F ( ( i , j ) , x ) j = 1 n i = 1 m F ( ( i , j ) , α t ) · p ( m + n + 2 ) p 1 ( 4 β t ) p ( 2 n + 2 m ) α t p · ( m + n + 2 ) p 1 .
Therefore,
γ lim t + φ ( γ t ) p Q · ( m + n + 2 ) p 1 < + .
Now, we need to prove that I λ is unbounded from below. To this end, we first assume that B = + . Fix M such that M > 2 n + 2 m p λ and let { e t } be a sequence of positive numbers, with lim t + e t = + , such that j = 1 n i = 1 m F ( ( i , j ) , e t ) > M e t p , t N . Define a sequence { d t } in S with
d t ( i , j ) = e t , i f ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) , 0 , i f i = 0 , j Z ( 0 , n + 1 ) o r i = m + 1 , j Z ( 0 , n + 1 ) , 0 , i f j = 0 , i Z ( 0 , m + 1 ) o r j = n + 1 , i Z ( 0 , m + 1 ) .
It is clear that
I λ ( d t ) = 2 n + 2 m p e t p λ j = 1 n i = 1 m F ( ( i , j ) , e t ) < 2 n + 2 m p e t p λ M e t p ,
which implies that lim t + I λ ( d t ) = . Next, we assume that B < + and take ε > 0 such that ε < B 2 n + 2 m p λ . Then we have the sequence of positive numbers { e t } such that lim t + e t = + and
( B ε ) e t p < j = 1 n i = 1 m F ( ( i , j ) , e t ) < ( B + ε ) e t p , t N .
It is easy to see that
I λ ( d t ) < 2 n + 2 m p λ B + λ ε · e t p .
So, lim t + I λ ( d t ) = and I λ is unbounded from below. The proof is complete.  □
Remark 3.
When B = + , according to Theorem 4, we have that for every λ 0 , 1 p ( m + n + 2 ) p 1 · 1 Q , problem ( S λ f ) admits an unbounded sequence of solutions.
Set
D = lim inf x + j = 1 n i = 1 m max | ξ | x F ( ( i , j ) , ξ ) x p .
When D = 0 , we agree to read 1 D = + .
Theorem 5.
Assume that D < 4 p B ( 2 n + 2 m ) ( m + n + 2 ) p 1 . Then, for all
λ 2 n + 2 m p · 1 B , 4 p p ( m + n + 2 ) p 1 · 1 D ,
problem ( S λ f ) admits an unbounded sequence of solutions.
Proof. 
Let { β t } be a sequence of positive numbers with lim t + β t = + and
lim t + j = 1 n i = 1 m max | x | β t F ( ( i , j ) , x ) ( β t ) p = D .
Setting α t = 0 for each t N , we can reach the conclusion by Theorem 4.  □
Remark 4.
When B = + , according to the Theorem 5, we have that for every λ 0 , 4 p p ( m + n + 2 ) p 1 · 1 D , problem ( S λ f ) admits an unbounded sequence of solutions. When D = 0 , according to the Theorem 5, we have that for every λ 2 n + 2 m p · 1 B , + , problem ( S λ f ) admits an unbounded sequence of solutions. When B = + and D = 0 , according to the Theorem 5, we have that for every λ > 0 , problem ( S λ f ) admits an unbounded sequence of solutions.
Now, we mark the problem ( S λ f ) as ( S λ g , α ) when f ( ( i , j ) , x ( i , j ) ) = α ( i , j ) g ( x ( i , j ) ) , that is
Δ 1 ( ϕ p ( Δ 1 x ( i 1 , j ) ) ) + Δ 2 ( ϕ p ( Δ 2 x ( i , j 1 ) ) ) + λ α ( i , j ) g ( x ( i , j ) ) = 0 , ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) ,
with boundary conditions
x ( i , 0 ) = x ( i , n + 1 ) = 0 , i Z ( 0 , m + 1 ) ,
x ( 0 , j ) = x ( m + 1 , j ) = 0 , j Z ( 0 , n + 1 ) ,
where α : Z ( 1 , m ) × Z ( 1 , n ) R is a non-negative and non-zero function and g : [ 0 , + ) R is a non-negative continuous function such that g ( 0 ) = 0 .
Corollary 2.
Assume that
lim inf x + 0 x g ( s ) d s x p < 4 p ( 2 n + 2 m ) ( m + n + 2 ) p 1 lim sup x + 0 x g ( s ) d s x p .
Then, for every
λ 2 n + 2 m p lim sup x + j = 1 n i = 1 m 0 x α ( i , j ) g ( s ) d s x p , = 4 p p ( m + n + 2 ) p 1 · lim inf x + j = 1 n i = 1 m 0 x α ( i , j ) g ( s ) d s x p ,
problem ( S λ g , α ) admits an unbounded sequence of positive solutions.
Proof. 
Set
f ( ( i , j ) , x ) = α ( i , j ) g ( x ) , x 0 , 0 , x < 0 ,
for each ( i , j ) Z ( 1 , m ) × Z ( 1 , n ) and x R . Taking Proposition 2 into account, our goal can be obtained owing to Theorem 5.  □

4. Examples

We give two examples to illustrate our results.
Example 1.
Put p = 3 , b 1 = 1 , b 2 = 14 , l = 2 , m = 2 and n = 3 . Let β : Z ( 1 , 2 ) × Z ( 1 , 3 ) R be a positive function and set A = j = 1 3 i = 1 2 β ( i , j ) . Make y : [ 0 , + ) R be the function defined as follows
y ( r ) = r 14 , 0 r < 2 , ( 4 r ) 14 , 2 r < 3 , 1 , 3 r .
One has
0 1 y ( ξ ) d ξ = 0 1 r 14 d r = 1 15 ,
2 14 3 · 0 14 y ( ξ ) d ξ = 2 14 3 · [ 0 2 r 14 d r + 2 3 ( 4 r ) 14 d r + 3 14 1 d r ] = 1095 343 ,
and
4 3 ( 3 × 2 + 3 × 3 ) ( 2 3 × ( 3 + 2 + 2 ) 2 ) 0 2 y ( ξ ) d ξ = 4 3 ( 3 × 2 + 3 × 3 ) ( 2 3 × ( 3 + 2 + 2 ) 2 ) 0 2 r 14 d r = 262 , 144 11 , 025 .
We get
max 0 1 y ( ξ ) d ξ , 2 14 3 · 0 14 y ( ξ ) d ξ < 4 3 ( 3 × 2 + 3 × 3 ) × ( 2 3 × ( 3 + 2 + 2 ) 2 ) × 0 2 y ( ξ ) d ξ ,
and
4 × 1 ( 2 + 3 ) 1 3 · ( 2 + 3 + 2 ) 2 3 < 2 < 4 2 + 3 + 2 2 3 × 14 ( 2 + 3 ) 1 3 .
Applying to Corollary 1, for each λ ( 75 4096 A , 448 3285 A ) , the following problem
Δ 1 ( ϕ 3 ( Δ 1 x ( i 1 , j ) ) ) + Δ 2 ( ϕ 3 ( Δ 2 x ( i , j 1 ) ) ) + λ β ( i , j ) y ( x ( i , j ) ) = 0 , ( i , j ) Z ( 1 , 2 ) × Z ( 1 , 3 ) ,
with boundary conditions
x ( i , 0 ) = x ( i , 4 ) = 0 , i Z ( 0 , 3 ) ,
x ( 0 , j ) = x ( 3 , j ) = 0 , j Z ( 0 , 4 ) ,
admits at least two positive solutions.
Example 2.
Put m = 2 , n = 2 and p = 2 . Set α ( i , j ) = 1 , for ( i , j ) Z ( 1 , 2 ) × Z ( 1 , 2 ) and let g : [ 0 , + ) R be the function defined as follows
g ( x ) = 18 5 x + x cos ( ln ( x ) ) + 2 x sin ( ln ( x ) ) , x > 0 , 0 , x = 0 .
We have
lim inf x + 0 x g ( s ) d s x 2 = lim inf x + 9 5 x 2 + x 2 sin ( ln ( x ) ) x 2 = 4 5 ,
and
lim sup x + 0 x g ( s ) d s x 2 = lim sup x + 9 5 x 2 + x 2 sin ( ln ( x ) ) x 2 = 14 5 .
Since
4 2 ( 2 × 2 + 2 × 2 ) × ( 2 + 2 + 2 ) 2 1 > 4 5 14 5 ,
one has
lim inf x + 0 x g ( s ) d s x 2 < 4 2 ( 2 × 2 + 2 × 2 ) × ( 2 + 2 + 2 ) 2 1 · lim sup x + 0 x g ( s ) d s x 2 .
By Corollary 2, for each λ ( 5 14 , 5 12 ) , the following problem
Δ 1 ϕ 2 Δ 1 x ( i 1 , j ) + Δ 2 ϕ 2 Δ 2 x ( i , j 1 ) + λ [ 18 5 x ( i , j ) + x ( i , j ) cos ( ln ( x ( i , j ) ) ) + 2 x ( i , j ) sin ( ln ( x ( i , j ) ) ) ] = 0 ,
for ( i , j ) Z ( 1 , 2 ) × Z ( 1 , 2 ) , with boundary conditions
x ( i , 0 ) = x ( i , 3 ) = 0 , i Z ( 0 , 3 ) ,
x ( 0 , j ) = x ( 3 , j ) = 0 , j Z ( 0 , 3 ) ,
admits an unbounded sequence of positive solutions.

5. Conclusions

In this paper, we consider the existence of multiple solutions for a partial discrete Dirichlet problem ( S λ f ) involving the p-Laplacian. For problem ( S λ f ) , in the framework of variational methods, we give that the set of λ can be more specific than that in the special case of p = 2 ([30] Theorem 3.2). Furthermore, with appropriate assumptions on the nonlinear term, we get that problem ( S λ f ) admits an unbounded sequence of solutions by using Theorem 2.1 of [34]. By the method of the critical point theory, we obtain sufficient conditions to guarantee the existence of multiple solutions for problem ( S λ f ) , which are different from these conditions in [30,33,34]. In the future, we will consider problem ( S λ f ) with fewer and looser constraints and we could consider the existence of partial difference equations with different boundary value conditions.

Author Contributions

All authors contributed equally and significantly in writing this paper. All authors have read and agreed to the published version of the manuscript.

Funding

This work is supported by the National Natural Science Foundation of China (Grant No. 11971126), the Program for Changjiang Scholars and Innovative Research Team in University (Grant No. IRT 16R16), the Innovation Research for the postgraduates of Guangzhou University (Grant No. 2019GDJC-D04), and Science and Technology Planning Project of Guangdong Province of China (Grant No. 2020A1414010106).

Conflicts of Interest

The authors declare that they have no conflict of interest.

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Du, S.; Zhou, Z. Multiple Solutions for Partial Discrete Dirichlet Problems Involving the p-Laplacian. Mathematics 2020, 8, 2030. https://doi.org/10.3390/math8112030

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Du S, Zhou Z. Multiple Solutions for Partial Discrete Dirichlet Problems Involving the p-Laplacian. Mathematics. 2020; 8(11):2030. https://doi.org/10.3390/math8112030

Chicago/Turabian Style

Du, Sijia, and Zhan Zhou. 2020. "Multiple Solutions for Partial Discrete Dirichlet Problems Involving the p-Laplacian" Mathematics 8, no. 11: 2030. https://doi.org/10.3390/math8112030

APA Style

Du, S., & Zhou, Z. (2020). Multiple Solutions for Partial Discrete Dirichlet Problems Involving the p-Laplacian. Mathematics, 8(11), 2030. https://doi.org/10.3390/math8112030

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