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Time-map analysis to establish the exact number of positive solutions of one-dimensional prescribed mean curvature equations

Abstract

We investigate the one-dimensional prescribed mean curvature equation with concave-convex nonlinearities in the form of − ( u ′ 1 + u ′ 2 ) ′ =λ( u p + u q ), u(x)>0, 0<x<1, u(0)=u(1)=0, where λ>0 is a parameter and p, q satisfy −1<p<q<+∞, and we obtain new exact results of positive solutions. Our methods are based on a detailed analysis of time maps.

1 Introduction

Mean curvature equations arise in differential geometry, physics, and other applied subjects. For example, the negative solutions of prescribed mean curvature equations can describe pendent liquid drops in the equilibrium state (see [1]), or the corneal shape (see [2]). In recent years, increasing attention has been paid to the study of the prescribed mean curvature equations by different methods (see [3]–[31]).

A typical model of the prescribed mean curvature equation is

{ − div ( ∇ u 1 + ∥ ∇ u ∥ 2 ) = λ f ( t , u ) , t ∈ R + , u ∈ Ω , u = 0 on  ∂ Ω ,
(1.1)

where Ω is a bounded domain in R N and f: Ω ¯ × R + → R + is continuous.

It is well known that a solution u of (1.1) defines a Cartesian surface in R N + 1 whose mean curvature is prescribed by the right-hand side of the equation. Classical existence theorems for this problem (and in particular for the minimal surface problem) are presented in [15] with references to the original papers by Bombieri, Finn, Miranda, etc. (see e.g.[1], [14], [16] and the references therein). The existence theorems established in most of those papers are concerned with solutions of the prescribed mean curvature problem as global minimizers of the corresponding energy functionals. Some papers studied the prescribed mean curvature problems by using the sub-supersolution method (see [7], [17], [18], [28]), the time-map analysis method (see [8], [9], [13], [19], [29]–[31]) or Mawhin’s continuation theorem (see [20], [24]–[26]) and so on.

The one-dimensional version of (1.1) is

{ − ( u ′ 1 + u ′ 2 ) ′ = λ f ( t , u ) , a < t < b , u ( a ) = u ( b ) = 0 .
(1.2)

There are some papers considering the exact number of positive solutions of (1.2) in special case of f (see [6], [8], [9], [11]–[13], [19], [28]–[31]). The study derived from an open problem proposed by Ambrosetti et al. in [32], which concerned the exact number and the detailed property of solutions of the semilinear equation

{ − u ″ = λ ( u p + u q ) , u > 0  in  ( 0 , 1 ) , u ( 0 ) = u ( 1 ) = 0 ,

where 0<p<1<q<+∞. Since then, related problems have been studied by many authors; see [33]–[36] and the references cited therein.

Generally, it is difficult to obtain the exact multiplicity results for nonlinear boundary value problems. If the operator − u ″ is replaced by − ( u ′ 1 + u ′ 2 ) ′ , then the problems will become more complicated. In [6], Habets and Omari considered the nonlinear boundary value problem of the one-dimensional prescribed mean curvature equation with f(t,u)= u p , where p>0. By using an upper and lower solution method, the authors obtained the exactness results of positive solutions. In [8], Pan and Xing derived the exact numbers of positive solutions of (1.2) for the nonlinearities f(t,u)= ( 1 + u ) p (p>0), f(t,u)= e u −1, and f(t,u)= a u (a>0).

However, there are few articles dealing with the case involving negative exponent. We note that, in particular, Bonheure et al.[28] is the first paper where the problem with singularities has been considered. In [28], the authors considered a general class of f(t,u) involving a singularity, and they obtained the result that there exists a positive solution for a small parameter, and they pointed out f(t,u)= u − p , ( R − u ) − q , u − p ( R − u ) − q (where p,q>0) as the special case. In [30] and [12], the authors studied global bifurcation diagrams and the exact multiplicity of positive solutions for the cases f(t,u)= ( 1 − u ) − 2 and f(t,u)= ( 1 − u ) − p (p>0), respectively.

In [9], Li and Liu examined problem (1.2) for f(t,u)= u p + u q with 0<p<q<1 or 1<p<q<+∞. Very recently, the authors [19] studied the exact number of solutions of problem (1.2) for f(t,u)= u p + u q with 0<p<1<q<+∞. However, to the best of our knowledge, no paper has considered the exact number of solutions of problem (1.2) with −1<p<q<+∞ till now. In this paper, we will try to solve it.

Consider the following boundary value problem of the one-dimensional prescribed mean curvature equation:

{ − ( u ′ 1 + u ′ 2 ) ′ = λ ( u p + u q ) , u ( x ) > 0 , 0 < x < 1 , u ( 0 ) = u ( 1 ) = 0 ,
(1.3)

where −1<p<q<+∞ and λ>0 is a parameter. In this paper, a positive solution is a function u∈C[0,1]∩ C 2 (0,1) satisfying (1.3).

The rest of this paper is organized as follows. In Section 2, we introduce and analyze the time map which plays a key role in the paper. The main result will be stated and proved in Section 3.

2 Time maps

In this section, we will make a detailed analysis of the so-called time map of problem (1.3).

Let u(x) be a solution of problem (1.3). Then it is well known that u(x) takes its maximum at c= 1 2 , u(x) is symmetric with respect to c, u ′ (x)>0 for 0≤x<c and u ′ (x)<0 for c<x≤1. Hence problem (1.3) is equivalent to the following problem defined on [0,c]:

{ − ( u ′ 1 + u ′ 2 ) ′ = λ ( u p + u q ) , u ( x ) > 0 , 0 < x < c , u ( 0 ) = u ′ ( c ) = 0 .
(2.1)

Denote

f(u)= u p + u q , f λ (u)=λ ( u p + u q ) ,

and

F(u)= u p + 1 p + 1 + u q + 1 q + 1 , F λ (u)=λ ( u p + 1 p + 1 + u q + 1 q + 1 ) .

Let v= u ′ 1 + u ′ 2 . If u(x) is a solution of (2.1) with s=u(c), then (u,v) is a solution of the following problem defined on [0,c]:

u ′ = v 1 − v 2 , v ′ =− f λ (u),u(0)=0,u(c)=s,v(c)=0.

Since H(x)= 1 − v 2 ( x ) −1− F λ (u(x)) satisfies

d H ( x ) d x = − v ( x ) 1 − v 2 ( x ) ( v ′ ( x ) + f λ ( u ( x ) ) ) ≡0,

and H(c)=− F λ (s), we see that

F λ (s)− F λ (u)=1− 1 1 + u ′ 2 .
(2.2)

Therefore,

u ′ = ( F λ ( s ) − F λ ( u ) ) [ 2 − ( F λ ( s ) − F λ ( u ) ) ] 1 − ( F λ ( s ) − F λ ( u ) ) .

Then

1 − ( F λ ( s ) − F λ ( u ) ) ( F λ ( s ) − F λ ( u ) ) [ 2 − ( F λ ( s ) − F λ ( u ) ) ] du=dx.
(2.3)

Integrating (2.3) from 0 to c, it leads to

T(λ,s)= ∫ 0 s 1 − ( F λ ( s ) − F λ ( u ) ) ( F λ ( s ) − F λ ( u ) ) [ 2 − ( F λ ( s ) − F λ ( u ) ) ] du= 1 2 .
(2.4)

The function T(λ,s) is called the time map of f.

Choosing x=0 in (2.2), we see that F λ (s)<1 and

0<s<α(λ)= F λ − 1 (1).
(2.5)

Therefore, if u(x) is a solution of (2.1) with u( 1 2 )=s, then s satisfies (2.4) and (2.5). Conversely, for a given λ, if s satisfies (2.4) and (2.5), then (2.2) together with u(0)=0 defines a function u(x) on [0, 1 2 ] which satisfies u( 1 2 )=s and u ′ ( 1 2 )=0, and then it is easy to see that u(x) is a solution of (2.1) with u( 1 2 )=s. So the number of solutions of (2.1) is equal to the number of s satisfying (2.4) and (2.5). This leads us to investigate the shape of the graph of T(λ,s).

Let Σ={(λ,s):λ∈(0,+∞),s∈(0,α(λ)]}. From (2.4) and (2.5) we see that T is defined on Σ by

T(λ,s)= ∫ 0 s 1 − ( F λ ( s ) − F λ ( u ) ) ( F λ ( s ) − F λ ( u ) ) [ 2 − ( F λ ( s ) − F λ ( u ) ) ] du.
(2.6)

For simplicity, we write

ξ = ξ λ ( s , t ) = F λ ( s ) − F λ ( s t ) = λ [ s p + 1 p + 1 ( 1 − t p + 1 ) + s q + 1 q + 1 ( 1 − t q + 1 ) ] , Δ F = F λ ( s ) − F λ ( u ) , Δ f ¯ = s f λ ( s ) − u f λ ( u ) , Δ f ¯ ′ = s 2 f λ ′ ( s ) − u 2 f λ ′ ( u ) .

It follows that

T(λ,s)=s ∫ 0 1 1 − ξ ξ ( 2 − ξ ) dt.
(2.7)

The following lemmas give the properties of T(λ,s).

Lemma 2.1

([19])

T(λ,s)has continuous derivatives up to the second order on Σ with respect to s and

T s ( λ , s ) = ∫ 0 1 ξ ( 1 − ξ ) ( 2 − ξ ) − λ [ s p + 1 ( 1 − t p + 1 ) + s q + 1 ( 1 − t q + 1 ) ] [ ξ ( 2 − ξ ) ] 3 / 2 d t = 1 s ∫ 0 s Δ F ( 1 − Δ F ) ( 2 − Δ F ) − Δ f ¯ [ Δ F ( 2 − Δ F ) ] 3 / 2 d u ,
(2.8)
T s s ( λ , s ) = 3 s ∫ 0 1 ( 1 − ξ ) λ 2 [ s p + 1 ( 1 − t p + 1 ) + s q + 1 ( 1 − t q + 1 ) ] 2 [ ξ ( 2 − ξ ) ] 5 / 2 d t − ∫ 0 1 λ [ ( p + 2 ) s p ( 1 − t p + 1 ) + ( q + 2 ) s q ( 1 − t q + 1 ) ] [ ξ ( 2 − ξ ) ] 3 / 2 d t = 1 s 2 ∫ 0 s 3 ( 1 − Δ F ) Δ f ¯ 2 − ( Δ f ¯ ′ + 2 Δ f ¯ ) Δ F ( 2 − Δ F ) [ Δ F ( 2 − Δ F ) ] 5 / 2 d u .
(2.9)

Lemma 2.2

T(λ,s)is strictly decreasing on Σ with respect to λ.

Proof

By a direct calculation, we have

T λ (λ,s)=s ∫ 0 1 − ξ 2 ( 2 − ξ ) − ξ ( 1 − ξ ) 2 λ [ ξ ( 2 − ξ ) ] 3 / 2 dt<0,

which implies that T(λ,s) is strictly decreasing on Σ with respect to λ. □

Lemma 2.3

([19])

α(λ)is strictly decreasing on(0,+∞)with respect to λ, and

lim λ → 0 + α(λ)=+∞, lim λ → + ∞ α(λ)=0.

Lemma 2.4

  1. (1)

    For fixed λ 0 >0, T( λ 0 ,α( λ 0 ))>0.

  2. (2)

    For fixed λ 0 >0,

    lim s → 0 + T ( λ 0 , s ) = { 0 , − 1 < p < 1 , π 2 λ 0 , p = 1 , + ∞ , p > 1 , lim s → 0 + T s ( λ 0 , s ) = { + ∞ , − 1 < p < 1 , − ∞ , p = 1 , 1 < q < 2 , < 0 , p = 1 , q = 2 , = 0 , p = 1 , q > 2 , − ∞ , p > 1 .
  1. (3)

    Denote ω(λ)=sup{T(λ,s)|0<s≤α(λ)}. Then ω(λ) is continuous, strictly decreasing on (0,+∞), and

    lim λ → 0 + ω(λ)=+∞, lim λ → + ∞ ω(λ)=0.
  1. (4)

    Let η(λ)=T(λ,α(λ)). Then η(λ) is continuous and

    lim λ → 0 + T ( λ , α ( λ ) ) =+∞, lim λ → + ∞ T ( λ , α ( λ ) ) =0.

Furthermore, if T s (λ,s)≥0, then η ′ (λ)<0; if T s (λ,s)<0, then η ′ (λ)<0under the conditionq≤ 2 p + 1 2 + 2 p + 9 4 .

  1. (5)

    If −1<p<0, 1<q<+∞, then there exists λ ¯ >0 such that for fixed 0< λ 0 ≤ λ ¯ , T s ( λ 0 ,α( λ 0 ))<0.

  2. (6)

    If −1<p<0, 0<q≤1, then there exist 0< λ ˆ < λ ˜ <∞ such that for fixed 0< λ 0 ≤ λ ˆ , T s ( λ 0 ,α( λ 0 ))<0 and for fixed λ 0 ≥ λ ˜ , T s ( λ 0 ,α( λ 0 ))>0.

  3. (7)

    Assume that p<q=1. If p≥ π + 2 2 ln ( 2 + 1 ) + 2 −1≈0.2585, then for fixed λ 0 >0, T s ( λ 0 ,α( λ 0 ))<0.

Proof

For fixed λ 0 >0. It is clear that

T ( λ 0 , α ( λ 0 ) ) = ∫ 0 α ( λ 0 ) F λ 0 ( u ) 1 − F λ 0 2 ( u ) du>0.

On the other hand, by the uniformly convergent of integral a direct calculation, we obtain

lim s → 0 + T ( λ 0 , s ) = lim s → 0 + s 1 − p 2 ∫ 0 1 1 − ξ λ 0 [ 1 p + 1 ( 1 − t p + 1 ) + s q − p q + 1 ( 1 − t q + 1 ) ] ( 2 − ξ ) d t = { 0 , − 1 < p < 1 , π 2 λ 0 , p = 1 , + ∞ , p > 1 .

If p≠1,

lim s → 0 + T s ( λ 0 , s ) = lim s → 0 + s − 1 + p 2 ∫ 0 1 ( λ 0 [ 1 p + 1 ( 1 − t p + 1 ) + s q − p q + 1 ( 1 − t q + 1 ) ] ( 1 − ξ ) ( 2 − ξ ) − λ 0 [ ( 1 − t p + 1 ) + s q − p ( 1 − t q + 1 ) ] ) / [ λ 0 ( 1 p + 1 ( 1 − t p + 1 ) + s q − p q + 1 ( 1 − t q + 1 ) ) ( 2 − ξ ) ] 3 d t = lim s → 0 + s − 1 + p 2 ∫ 0 1 λ 0 1 − p p + 1 ( 1 − t p + 1 ) [ λ 0 2 p + 1 ( 1 − t p + 1 ) ] 3 2 d t = { + ∞ , − 1 < p < 1 , − ∞ , p > 1 .

If p=1, then by the L’Hopital rule we have

lim s → 0 + T s ( λ 0 , s ) = lim s → 0 + ∫ 0 1 λ 0 ( 1 − q ) s q ( 1 − t q + 1 ) 3 2 8 [ λ 0 ( s 2 2 ( 1 − t 2 ) + s q + 1 q + 1 ( 1 − t q + 1 ) ) ] 1 2 [ λ 0 ( s ( 1 − t 2 ) + s q ( 1 − t q + 1 ) ) ] d t = { − ∞ , 1 < q < 2 , < 0 , q = 2 , = 0 , q > 2 .

So the results (1) and (2) are proved.

The results of (3) can be proved in the same way as in Lemma 3.2 of [9].

Next to prove that the result (4) holds. By the chain rule of differentiation, we have

T ′ ( λ , α ( λ ) ) = ∂ T ∂ λ + ∂ T ∂ s α ′ (λ).

Since ∂ T ∂ λ <0, α ′ (λ)<0, we obtain T ′ (λ,α(λ))<0 in the case of ∂ T ∂ s ≥0.

If ∂ T ∂ s <0, by the fact that

T ( λ , α ( λ ) ) = ∫ 0 α F λ ( u ) 1 − F λ 2 ( u ) du= ∫ 0 1 s 1 − s 2 1 f λ ( F − 1 ( s λ ) ) ds,

we have

T ′ ( λ , α ( λ ) ) = ∫ 0 1 s 1 − s 2 [ 1 f λ ( F − 1 ( s λ ) ) ] ′ ds.

Let γ(λ)= 1 f λ ( F − 1 ( s λ ) ) = 1 λ f ( F − 1 ( s λ ) ) . Then

γ ′ ( λ ) = − f ( F − 1 ( s λ ) ) + λ f ′ ( F − 1 ( s λ ) ) 1 f ( F − 1 ( s λ ) ) ( − s λ 2 ) f λ 2 ( F − 1 ( s λ ) ) = − f 2 ( F − 1 ( s λ ) ) − f ′ ( F − 1 ( s λ ) ) F ( F − 1 ( s λ ) ) f λ 2 ( F − 1 ( s λ ) ) f ( F − 1 ( s λ ) ) .

Let F − 1 ( s λ )=v. Since

f 2 (v)− f ′ (v)F(v)= 1 p + 1 v 2 p + 1 q + 1 v 2 q + ( 2 − q p + 1 − p q + 1 ) v p + q ,

by q≤ 2 p + 1 2 + 2 p + 9 4 , we have f 2 (v)− f ′ (v)F(v)≥0. It follows that T ′ (λ,α(λ))<0.

Other parts are similar to the proof of Lemma 2.3 in [9]. So we omit them. Next we prove that the result (5) holds.

Let a ¯ = ( 1 − p q − 1 ) 1 q − p , then there exists λ ¯ >0 such that F λ ¯ ( a ¯ )= p + 2 3 , and F λ ¯ (u)< p + 2 3 for 0<u< a ¯ , F λ ¯ (u)> p + 2 3 for a ¯ <u≤α( λ ¯ ). For fixed 0< λ 0 ≤ λ ¯ , for simplicity, we denote α( λ 0 ) by α. It follows from (2.8) that

T s ( λ 0 ,α)= 1 α ∫ 0 α F λ 0 ( u ) − F λ 0 3 ( u ) − α f λ 0 ( α ) + u f λ 0 ( u ) [ 1 − F λ 0 2 ( u ) ] 3 / 2 du.
(2.10)

Let

G(u)= F λ 0 (u)− F λ 0 3 (u)−α f λ 0 (α)+u f λ 0 (u).
(2.11)

Then we can see that G(0)=−α f λ 0 (α)<0, G(α)=0, and

G ′ ( u ) = ( 2 − 3 F λ 0 2 ( u ) ) f λ 0 ( u ) + u f λ 0 ′ ( u ) = λ 0 [ ( 2 − 3 F λ 0 2 ( u ) ) ( u p + u q ) + p u p + q u q ] = λ 0 [ ( 2 + p − 3 F λ 0 2 ( u ) ) u p + ( 2 + q − 3 F λ 0 2 ( u ) ) u q ] .
(2.12)

It is obvious that G ′ (u)>0 for 0<u≤ a ¯ . If a ¯ <u<α, then u q >( 1 − p q − 1 ) u p , by (2.12) we have

G ′ ( u ) > λ 0 [ ( 2 + p − 3 F λ 0 2 ( u ) ) + ( 2 + q − 3 F λ 0 2 ( u ) ) ( 1 − p q − 1 ) ] u p > [ ( p − 1 ) + ( q − 1 ) ( 1 − p q − 1 ) ] u p = 0 .

It follows that G ′ (u)>0, ∀ a ¯ <u<α. Then G(u)<0, which implies that T s ( λ 0 ,α( λ 0 ))<0.

Then the result (5) is proved.

Now we prove that the result (6) holds.

By (2.6) we have

T(λ,s)= ∫ 0 F λ ( s ) 1 − y y ( 2 − y ) 1 f λ ( F λ − 1 ( F λ ( s ) − y ) ) dy.
(2.13)

Then

T s ( λ , s ) = ∫ 0 F λ ( s ) 1 − y y ( 2 − y ) − f λ ′ ( F λ − 1 ( F λ ( s ) − y ) ) 1 f λ ( F λ − 1 ( F λ ( s ) − y ) ) f λ ( s ) f λ 2 ( F λ − 1 ( F λ ( s ) − y ) ) d y + 1 − F λ ( s ) F λ ( s ) ( 2 − F λ ( s ) ) f λ ( s ) f λ ( F λ − 1 ( 0 ) ) .
(2.14)

It follows that

T s ( λ , α ( λ ) ) = ∫ 0 1 1 − y y ( 2 − y ) − f λ ′ ( F λ − 1 ( 1 − y ) ) 1 f λ ( F λ − 1 ( 1 − y ) ) f λ ( α ( λ ) ) f λ 2 ( F λ − 1 ( 1 − y ) ) d y = − ∫ 0 α F λ ( u ) 1 − F λ 2 ( u ) f λ ′ ( u ) f λ ( α ) f λ 2 ( u ) d u = − ∫ 0 1 F λ ( α t ) 1 − F λ 2 ( α t ) f λ ′ ( α t ) α f λ ( α ) f λ 2 ( α t ) d t ≤ − ∫ 0 1 t q + 1 1 − t 2 q + 2 f λ ′ ( α t ) α f λ ( α ) f λ 2 ( α t ) d t .
(2.15)

If there exists λ ˜ such that α( λ ˜ )= ( − p q ) 1 q − p , then from the third formula of (2.15) and the fact that f ′ (u)<0 for 0<u< ( − p q ) 1 q − p we have T s (λ,α(λ))>0 for λ≥ λ ˜ .

On the other hand, from (2.15), by a simple calculation we can see that lim λ → 0 + T s (λ,α(λ))<0. In fact, by the last formula of (2.15), we have

lim λ → 0 + ∫ 0 1 t q + 1 1 − t 2 q + 2 f λ ′ ( α t ) α f λ ( α ) f λ 2 ( α t ) dt= ∫ 0 1 t q + 1 1 − t 2 q + 2 lim λ → 0 + f λ ′ ( α t ) α f λ ( α ) f λ 2 ( α t ) dt,

where

lim λ → 0 + f λ ′ ( α t ) α f λ ( α ) f λ 2 ( α t ) = lim λ → 0 + p α 2 p t p − 1 + q α 2 q t q − 1 + ( p t p − 1 + q t q − 1 ) α p + q ( α t ) 2 p + 2 ( α t ) p + q + ( α t ) 2 q = lim λ → 0 + p α 2 ( p − q ) t p − 1 + q t q − 1 + ( p t p − 1 + q t q − 1 ) α p − q α 2 ( p − q ) t 2 p + 2 α p − q t p + q + t 2 q = q t − ( q + 1 ) .

Then

lim λ → 0 + ∫ 0 1 t q + 1 1 − t 2 q + 2 f λ ′ ( α t ) α f λ ( α ) f λ 2 ( α t ) dt= ∫ 0 1 q 1 − t 2 q + 2 dt>0.

It follows that lim λ → 0 + T s (λ,α(λ))<0. Then there exists λ ˆ >0 such that T s (λ,α(λ))<0 for 0<λ≤ λ ˆ . This proves (6).

Note that t q + 1 < t p + 1 for 0<t<1 and F λ (α)=1, it follows from (2.8) that

T s ( λ 0 , α ) = ∫ 0 1 λ 0 ( ( α t ) p + 1 p + 1 + ( α t ) q + 1 q + 1 ) [ 1 − λ 0 2 ( ( α t ) p + 1 p + 1 + ( α t ) q + 1 q + 1 ) 2 ] 1 / 2 d t − ∫ 0 1 λ 0 [ α p + 1 ( 1 − t p + 1 ) + α q + 1 ( 1 − t q + 1 ) ] [ 1 − λ 0 2 ( ( α t ) p + 1 p + 1 + ( α t ) q + 1 q + 1 ) 2 ] 3 / 2 d t < ∫ 0 1 t p + 1 ( 1 − t 2 p + 2 ) 1 / 2 d t − ∫ 0 1 ( p + 1 ) [ 1 − λ 0 ( ( α t ) p + 1 p + 1 + ( α t ) q + 1 q + 1 ) ] [ 1 − λ 0 2 ( ( α t ) p + 1 p + 1 + ( α t ) q + 1 q + 1 ) 2 ] 3 / 2 d t < ∫ 0 1 t p + 1 ( 1 − t 2 p + 2 ) 1 / 2 d t − ( p + 1 ) ∫ 0 1 d t ( 1 − t q + 1 ) 1 / 2 ( 1 + t p + 1 ) 3 / 2 .
(2.16)

The first integral in (2.16) can be estimated as

∫ 0 1 t p + 1 ( 1 − t 2 p + 2 ) 1 / 2 d t = 1 p + 1 ∫ 0 1 t d arcsin ( t p + 1 ) = π 2 ( p + 1 ) − 1 p + 1 ∫ 0 1 arcsin ( t p + 1 ) d t < π 2 ( p + 1 ) − 1 p + 1 ∫ 0 1 t arcsin ( t 2 ) d t = π + 2 4 ( p + 1 ) .
(2.17)

For the second integral in (2.16), we see that

∫ 0 1 d t ( 1 − t q + 1 ) 1 / 2 ( 1 + t p + 1 ) 3 / 2 > ∫ 0 1 d t ( 1 − t 2 ) 1 / 2 ( 1 + t ) 3 / 2 = 2 ∫ 0 1 1 ( 2 − v 2 ) 2 d v = 2 ln ( 2 + 1 ) + 2 4 .
(2.18)

Here the transformation v= ( 1 − t ) 1 / 2 has been used. Combining (2.16), (2.17) with (2.18) we can see if

p≥ π + 2 2 ln ( 2 + 1 ) + 2 −1,

then T s ( λ 0 ,α( λ 0 ))<0. This proves (7). □

Remark 2.1

It follows from the proof of (6) that if q>1 then the conclusion of (6) still holds.

Remark 2.2

From the proof of [9], one can see that the inequality

q≤ p − 2 + p 2 + 20 p + 20 2 ,1<p<q<+∞,
(2.19)

plays an important role in guaranteeing that T(λ,α(λ)) is decreasing on λ. In (4) of Lemma 2.4, we replace (2.19) by

q≤ 2 p + 1 2 + 2 p + 9 4 ,

and the method used to prove that T(λ,α(λ)) is decreasing on λ is completely different from that of [9].

Remark 2.3

It follows from the proof of [9] that the inequality

p≥ ( π + 2 2 ln ( 2 + 1 ) + 2 ) 1 / 2 −1,0<p<q<1,
(2.20)

guarantees that T s ′ (λ,α)<0. If p and q satisfy p=0, 0<q≤2; p=1, 1<q≤4; −1<p<0, 1<q<+∞, and −1<p<0, 0<q≤1, we can prove that T s ′ (λ,α)<0 without the inequality (2.20); see, for example, the proof of (5), (6) in Lemma 2.4.

The proofs of Lemmas 2.5 and 2.6 are similar to those of [37]. So we omit them.

Lemma 2.5

Fors∈(0,+∞), we have

sup 0 ≤ u < s Δ f ¯ Δ F = f λ ( s ) + s f λ ′ ( s ) f λ ( s ) =1+ p s p + q s q s p + s q .

Lemma 2.6

Fors∈(0,+∞), we have

min 0 ≤ u ≤ s Δ f ¯ ′ Δ f ¯ = Δ f ¯ ′ Δ f ¯ | u = 0 = s f λ ′ ( s ) f λ ( s ) = p s p + q s q s p + s q .

The proof of Lemma 2.7 is similar to Lemma 2.7 in [19]. For convenience of the reader, we prove it in the following.

Lemma 2.7

Suppose that− 1 3 ≤p<q<+∞. Let

M= sup 0 ≤ u < s Δ f ¯ Δ F ,m= min 0 ≤ u ≤ s Δ f ¯ ′ Δ f ¯ .

For fixed λ 0 ∈(0,+∞), we have

T s s ( λ 0 ,s)+ M 2 s T s ( λ 0 ,s)<0,s∈(0,α( λ 0 )].
(2.21)

Proof

From Lemma 2.5 and Lemma 2.6, we have M−m=1. We still use the symbols such as ΔF, Δ f ¯ , and Δ f ¯ ′ when λ is replaced by λ 0 , so we have

T s s ( λ 0 , s ) + M 2 s T s ( λ 0 , s ) = ∫ 0 s ( 3 ( 1 − Δ F ) Δ f ¯ 2 − ( Δ f ¯ ′ + 2 Δ f ¯ ) Δ F ( 2 − Δ F ) + M 2 Δ F ( 2 − Δ F ) [ Δ F ( 1 − Δ F ) ( 2 − Δ F ) − Δ f ¯ ] ) / ( s 2 [ Δ F ( 2 − Δ F ) ] 5 / 2 ) d u .

Let

Q = 3 ( 1 − Δ F ) Δ f ¯ 2 − ( Δ f ¯ ′ + 2 Δ f ¯ ) Δ F ( 2 − Δ F ) + M 2 Δ F ( 2 − Δ F ) [ Δ F ( 1 − Δ F ) ( 2 − Δ F ) − Δ f ¯ ] ,

and

μ= Δ f ¯ Δ F ,Γ(s)=s f λ (s)− 2 3 F λ (s).

Then for s∈(0,+∞), we have

Γ ′ ( s ) Σ = s f λ ′ ( s ) + 1 3 f λ ( s ) = λ s p [ ( p + 1 3 ) + ( q + 1 3 ) s q − p ] .

By the fact that p≥− 1 3 , we have Γ ′ (s)>0 for s∈(0,+∞).

It follows that

[ s f λ ( s ) − 2 3 F λ ( s ) ] − [ u f λ ( u ) − 2 3 F λ ( u ) ] >0,0<u<s<∞.

Therefore, for 0<u<s<∞ we have

s f λ ( s ) − u f λ ( u ) F λ ( s ) − F λ ( u ) > 2 3 ,

i.e.,

μ= Δ f ¯ Δ F > 2 3 .

Hence

Q = Δ F 2 ( 2 − Δ F ) [ 3 ( 1 − Δ F ) 2 − Δ F Δ f ¯ 2 Δ F 2 − ( Δ f ¯ ′ Δ F + 2 Δ f ¯ Δ F ) + M 2 [ ( 1 − Δ F ) ( 2 − Δ F ) − Δ f ¯ Δ F ] ] ≤ Δ F 2 ( 2 − Δ F ) [ 3 2 μ 2 − ( m + 2 + M 2 ) μ + M ] = 3 2 Δ F 2 ( 2 − Δ F ) [ μ 2 − ( M + 2 3 ) μ + 2 3 M ] = 3 2 Δ F 2 ( 2 − Δ F ) ( μ − M ) ( μ − 2 3 ) .

Since 2 3 <μ≤M, we have Q≤0 and then (2.21) follows. □

3 Main results

In this section, we apply the Lemmas 2.1-2.7 to establish the exact number of solutions for problem (1.3). We consider the following six cases: p=0, 0<q≤2; p=1, 1<q≤4; q=1, 0<p<1; −1<p<q≤0; − 1 3 ≤p<0, 1<q<+∞, and − 1 3 ≤p<0, 0<q≤1. Case p=0, 0<q≤2 is treated in the following theorem.

Theorem 3.1

Assume thatp=0, 0<q≤2. Then there exist0< λ ∗ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ∗ ), and no solution forλ∈( λ ∗ ,+∞).

Proof

For fixed λ 0 >0, by (2.15) and the fact that f ′ (u)>0 we have T s ( λ 0 ,α( λ 0 ))<0. Combining this with Lemma 2.7, for fixed λ 0 >0, T( λ 0 ,s) has only one critical point s 0 , which is a maximum point, and T s ( λ 0 ,s)>0 for 0<s< s 0 , T s ( λ 0 ,s)<0 for s 0 <s<α( λ 0 ). From p<q≤2 and (4) of Lemma 2.4, we know that T(λ,α(λ)) is strictly decreasing in (0,+∞). Selecting λ ∗ >0 such that T( λ ∗ ,α( λ ∗ ))= 1 2 , we obtain T(λ,α(λ))> 1 2 for 0<λ< λ ∗ . Combining this with the fact that lim s → 0 + T(λ,s)=0 and the continuity of T(λ,s) we see that there is only one s satisfying (2.4) for 0<λ< λ ∗ .

Choosing λ ∗ > λ ∗ such that max 0 < s < α ( λ ∗ ) T( λ ∗ ,s)= 1 2 , there is only one s satisfying (2.4) for λ= λ ∗ and no s satisfying (2.4) for λ> λ ∗ by (3) of Lemma 2.4.

When λ ∗ ≤λ< λ ∗ , by the fact that max 0 < s < α ( λ ) T(λ,s)> 1 2 and T(λ,α(λ))< 1 2 , it follows that there are two s satisfying (2.4). Theorem 3.1 is proved. □

The following theorem deals with the case p=1, 1<q≤4.

Theorem 3.2

Assume thatp=1, 1<q≤4. Then there exist0< λ ∗ < π 2 such that (1.3) has exactly one solution forλ∈[ λ ∗ , π 2 ]and no solution forλ∈(0, λ ∗ )∪( π 2 ,+∞).

Proof

From (2.8) we see that

( 1 − ξ ) ξ ( 2 − ξ ) − λ [ s 2 ( 1 − t 2 ) + s q + 1 ( 1 − t q + 1 ) ] ≤ 2 ξ − λ [ s 2 ( 1 − t 2 ) + s q + 1 ( 1 − t q + 1 ) ] = λ 1 − q q + 1 s q + 1 ( 1 − t q + 1 ) ≤ 0 ;

then T s (λ,s)<0, it follows that T(λ,s) is decreasing on s.

On the other hand, by (2) of Lemma 2.4, we know lim s → 0 + T(λ,s)= Ï€ 2 λ . Then for fixed λ∈(0,+∞), sup s ∈ ( 0 , α ( λ ) ] T(λ,s)= Ï€ 2 λ , min s ∈ ( 0 , α ( λ ) ] T(λ,s)=T(λ,α(λ)).

From p=1, 1<q≤4 and (4) of Lemma 2.4, we know that T(λ,α(λ)) is strictly decreasing in (0,+∞). Selecting λ ∗ >0 such that T( λ ∗ ,α( λ ∗ ))= 1 2 , we obtain T(λ,α(λ))> 1 2 for 0<λ< λ ∗ . Then there is no s satisfying (2.4) for 0<λ< λ ∗ .

If sup 0 < s < α ( λ ) T(λ,s)= 1 2 , then λ= π 2 and there is no s satisfying (2.4) for λ> π 2 . By the monotone property of T(λ,s) on s we see that there is only one s satisfying (2.4) for λ ∗ ≤λ≤ π 2 . This completes the proof. □

Case 3: q=1, 0<p<1.

Theorem 3.3

Assume that0<p<1, q=1. Then the following conclusions hold.

  1. (a)

    For any λ>0, (1.3) has at most two solutions.

  2. (b)

    There exist 0< λ 1 < λ 2 <+∞ such that (1.3) has exactly one solution for 0<λ< λ 1 and has no solution for λ> λ 2 .

  3. (c)

    If, in addition, p≥ π + 2 2 ln ( 2 + 1 ) + 2 −1≈0.2585, then there exist 0< λ ∗ < λ ∗ <+∞ such that (1.3) has exactly one solution for λ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions for λ∈[ λ ∗ , λ ∗ ), and no solution for λ∈( λ ∗ ,+∞).

Proof

By Lemma 2.7, for λ 0 ∈(0,+∞), T( λ 0 ,s) has at most one maximum point s 0 ∈(0,α( λ 0 )]. If s 0 =α( λ 0 ), then T s ( λ 0 ,s)>0 for 0<s<α( λ 0 ). In this case there is at most one s satisfying (2.4) for some λ 0 . If s 0 <α( λ 0 ), then T s ( λ 0 ,s)>0 for 0<s< s 0 and T s ( λ 0 ,s)<0 for s 0 <s<α( λ 0 ). Then there are at most two s satisfying (2.4) for some λ 0 . It follows that (1.3) has at most two solutions. This proves (a).

Let λ 2 >0 such that max 0 < s < α ( λ 2 ) T( λ 2 ,s)= 1 2 . By (3) of Lemma 2.4, we see that there is no s satisfying (2.4) for λ> λ 2 .

On the other hand, by lim λ → 0 + T(λ,α(λ))=+∞, there exists λ 1 >0 such that T(λ,α(λ))> 1 2 for 0<λ< λ 1 . Combining this with the proof of (a) we see that there is only one s satisfying (2.4) for 0<λ< λ 1 . This gives (b).

Considering (c), from 0<p<1, q=1, and (4) of Lemma 2.4, we know that T(λ,α(λ)) is strictly decreasing in (0,+∞). Selecting λ ∗ >0 such that T( λ ∗ ,α( λ ∗ ))= 1 2 , we obtain T(λ,α(λ))> 1 2 for 0<λ< λ ∗ . Then there is only one s satisfying (2.4) for 0<λ< λ ∗ .

By (7) of Lemma 2.4, for fixed λ 0 ∈(0,+∞), T s ( λ 0 ,α( λ 0 ))<0. Combining this with Lemma 2.7, T( λ 0 ,s) has only one critical point s 0 , which is a maximum point, and T s ( λ 0 ,s)>0 for 0<s< s 0 , T s ( λ 0 ,s)<0 for s 0 <s<α( λ 0 ).

Choosing λ ∗ > λ ∗ such that max 0 < s < α ( λ ∗ ) T( λ ∗ ,s)= 1 2 , there is one s satisfying (2.4) for λ= λ ∗ and no s satisfying (2.4) for λ> λ ∗ by (3) of Lemma 2.4.

When λ ∗ ≤λ< λ ∗ , by the fact that max 0 < s < α ( λ ) T(λ,s)> 1 2 and T(λ,α(λ))< 1 2 , it follows that there are two s satisfying (2.4). Theorem 3.3 is proved. □

Case 4: −1<p<q≤0.

Theorem 3.4

Assume that−1<p<q≤0. Then there exists λ ∗ >0such that (1.3) has exactly one solution forλ∈(0, λ ∗ ], and no solution forλ∈( λ ∗ ,+∞).

Proof

From Lemma 2.4 we know lim s → 0 + T(λ,s)=0 for fixed λ>0. By (2.14) and the fact that f ′ (u)<0 we have T s (λ,s)>0. Then for fixed λ>0, max s ∈ ( 0 , α ( λ ) ] T(λ,s)=T(λ,α(λ)). Combing this with (4) of Lemma 2.4, there exists λ ∗ >0 such that T( λ ∗ ,α( λ ∗ ))= 1 2 and T(λ,α(λ))> 1 2 for 0<λ< λ ∗ , T(λ,α(λ))< 1 2 for λ> λ ∗ . Then (1.3) has exactly one solution for λ∈(0, λ ∗ ], and no solution for λ∈( λ ∗ ,+∞). □

Case 5: − 1 3 ≤p<0, 1<q<+∞.

Theorem 3.5

Assume that− 1 3 ≤p<0, 1<q<+∞. Then the following conclusions hold.

  1. (a)

    For any λ>0, (1.3) has at most two solutions.

  2. (b)

    There exist 0< λ 1 < λ 2 <+∞ such that (1.3) has exactly one solution for 0<λ< λ 1 and has no solution for λ> λ 2 .

  3. (c)

    Furthermore, suppose that q≤ 2 p + 1 2 + 2 p + 9 4 holds. Let λ ¯ be defined in the same way as in (5) of Lemma  2.4.

  4. (i)

    If λ ¯ is such that max 0 < s < α ( λ ¯ ) T( λ ¯ ,s)≤ 1 2 , then there exist 0< λ ∗ < λ ∗ ≤ λ ¯ <+∞ such that (1.3) has exactly one solution for λ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions for λ∈[ λ ∗ , λ ∗ ), and no solution for λ∈( λ ∗ ,+∞).

  5. (ii)

    If λ ¯ is such that max 0 < s < α ( λ ¯ ) T( λ ¯ ,s)> 1 2 .

Case 1. IfT( λ ¯ ,α( λ ¯ ))< 1 2 , then there exist0< λ ∗ < λ ¯ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ¯ ], and no solution forλ∈( λ ∗ ,+∞).

Case 2. IfT( λ ¯ ,α( λ ¯ ))> 1 2 , then there exist0< λ ¯ < λ ∗ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ∗ ), and no solution forλ∈( λ ∗ ,+∞).

Case 3. IfT( λ ¯ ,α( λ ¯ ))= 1 2 , then there exist0< λ ¯ = λ ∗ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ∗ ), and no solution forλ∈( λ ∗ ,+∞).

Proof

The proof of (a), (b) is similar to that of Theorem 3.3.

Considering (c)(i), from q≤ 2 p + 1 2 + 2 p + 9 4 and (4) of Lemma 2.4, we know that T(λ,α(λ)) is strictly decreasing in (0,+∞). Selecting λ ∗ >0 such that T( λ ∗ ,α( λ ∗ ))= 1 2 , we obtain T(λ,α(λ))> 1 2 for 0<λ< λ ∗ . Then there is only one s satisfying (2.4) for 0<λ< λ ∗ .

By (5) of Lemma 2.4, for fixed λ 0 ∈(0, λ ¯ ], T s ( λ 0 ,α( λ 0 ))<0. Combining this with Lemma 2.7, T( λ 0 ,s) has only one critical point s 0 , which is a maximum point, and T s ( λ 0 ,s)>0 for 0<s< s 0 , T s ( λ 0 ,s)<0 for s 0 <s<α( λ 0 ).

If max 0 < s < α ( λ ¯ ) T( λ ¯ ,s)< 1 2 , choosing 0< λ ∗ < λ ¯ such that max 0 < s < α ( λ ∗ ) T( λ ∗ ,s)= 1 2 , there is one s satisfying (2.4) for λ= λ ∗ and no s satisfying (2.4) for λ> λ ∗ by (3) of Lemma 2.4. If max 0 < s < α ( λ ¯ ) T( λ ¯ ,s)= 1 2 , then let λ ∗ = λ ¯ .

When λ ∗ ≤λ< λ ∗ , by the fact that max 0 < s < α ( λ ) T(λ,s)> 1 2 and T(λ,α(λ))< 1 2 , it follows that there are two s satisfying (2.4). The proof of (c)(i) is complete.

Next, turning to (c)(ii), since max 0 < s < α ( λ ¯ ) T( λ ¯ ,s)> 1 2 , there exists λ ∗ > λ ¯ such that max 0 < s < α ( λ ∗ ) T( λ ∗ ,s)= 1 2 and there is no s satisfying (2.4) for λ> λ ∗ .

By the fact T( λ ∗ ,α( λ ∗ ))= 1 2 , if T( λ ¯ ,α( λ ¯ ))< 1 2 , then we have λ ¯ > λ ∗ ; if T( λ ¯ ,α( λ ¯ ))> 1 2 , then we have λ ¯ < λ ∗ ; if T( λ ¯ ,α( λ ¯ ))= 1 2 , then we have λ ¯ = λ ∗ . The proof of the other conclusions follows by a similar method to (c)(i). Then the result (c)(ii) follows. □

Remark

If we assume that − 1 3 ≤p<0, 0<q≤1, then we have similar results to those of Theorem 3.5. It is worth to point that λ ¯ is different from that of Theorem 3.5 in this case. Then we have Theorem 3.6.

Case 6: − 1 3 ≤p<0, 0<q≤1.

Theorem 3.6

Assume that− 1 3 ≤p<0, 0<q≤1. Then the following conclusions hold.

  1. (a)

    For any λ>0, (1.3) has at most two solutions.

  2. (b)

    There exist 0< λ 1 < λ 2 <+∞ such that (1.3) has exactly one solution for 0<λ< λ 1 and has no solution for λ> λ 2 .

  3. (c)

    Furthermore, suppose that q≤ 2 p + 1 2 + 2 p + 9 4 holds. Let λ ˆ be defined in the same way as in (6) of Lemma  2.4.

  4. (i)

    If λ ˆ is such that max 0 < s < α ( λ ˆ ) T( λ ˆ ,s)≤ 1 2 , then there exist 0< λ ∗ < λ ∗ ≤ λ ˆ <+∞ such that (1.3) has exactly one solution for λ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions for λ∈[ λ ∗ , λ ∗ ), and no solution for λ∈( λ ∗ ,+∞).

  5. (ii)

    If λ ˆ is such that max 0 < s < α ( λ ˆ ) T( λ ˆ ,s)> 1 2 .

Case 1. IfT( λ ˆ ,α( λ ˆ ))< 1 2 , then there exist0< λ ∗ < λ ˆ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ˆ ], and no solution forλ∈( λ ∗ ,+∞).

Case 2. IfT( λ ˆ ,α( λ ˆ ))> 1 2 , then there exist0< λ ˆ < λ ∗ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ∗ ), and no solution forλ∈( λ ∗ ,+∞).

Case 3. IfT( λ ˆ ,α( λ ˆ ))= 1 2 , then there exist0< λ ˆ = λ ∗ < λ ∗ <+∞such that (1.3) has exactly one solution forλ∈(0, λ ∗ )∪{ λ ∗ }, exactly two solutions forλ∈[ λ ∗ , λ ∗ ), and no solution forλ∈( λ ∗ ,+∞).

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Acknowledgements

This work is sponsored by the project NSFC (11301178, 11171032), the Fundamental Research Funds for the Central Universities (2014MS58) and the improving project of graduate education of Beijing Information Science and Technology University (YJT201416). The authors are grateful to the anonymous referees for their constructive comments and suggestions, which have greatly improved this paper.

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MF completed the main study and carried out the results of this article. XZ checked the proofs and verified the calculation. All the authors read and approved the final manuscript.

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Feng, M., Zhang, X. Time-map analysis to establish the exact number of positive solutions of one-dimensional prescribed mean curvature equations. Bound Value Probl 2014, 193 (2014). https://doi.org/10.1186/s13661-014-0193-4

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