The estimate for mean values on prime numbers relative to 4/p=1/(n_1) + 1/(n_2) + 1/(n_3)

If n is a positive integer,let f (n) denote the number of positive integer solutions (n 1,n 2,n 3) of the Diophantine equation 4/n=1/n_1 + 1/n_2 + 1/n_3.For the prime number p,f (p) can be split into f 1 (p) + f 2 (p),where f i (p) (i=1,2) counts those solutions with exactly i of denominators n 1,n 2,n 3 divisible by p.In this paper,we shall study the estimate for mean values ∑ p<x f i (p),i=1,2,where p denotes the prime number.

A New Proof for Congruent Number’s Problem via Pythagorician Divisors

Considering Pythagorician divisors theory which leads to a new parameterization, for Pythagorician triplets ( a,b,c )∈ ℕ 3∗ , we give a new proof of the well-known problem of these particular squareless numbers n∈ ℕ ∗ , called congruent numbers, characterized by the fact that there exists a right-angled triangle with rational sides: ( A α ) 2 + ( B β ) 2 = ( C γ ) 2 , such that its area Δ= 1 2 A α B β =n;or in an equivalent way, to that of the existence of numbers U 2 , V 2 , W 2 ∈ ℚ 2∗ that are in an arithmetic progression of reason n;Problem equivalent to the existence of: ( a,b,c )∈ ℕ 3∗ prime in pairs, and f∈ ℕ ∗ , such that: ( a−b 2f ) 2 , ( c 2f ) 2 , ( a+b 2f ) 2 are in an arithmetic progression of reason n;And this problem is also equivalent to that of the existence of a non-trivial primitive integer right-angled triangle: a 2 + b 2 = c 2 , such that its area Δ= 1 2 ab=n f 2 , where f∈ ℕ ∗ , and this last equation can be written as follows, when using Pythagorician divisors: (1) Δ= 1 2 ab= 2 S−1 d e ¯ ( d+ 2 S−1 e ¯ )( d+ 2 S e ¯ )=n f 2;Where ( d, e ¯ )∈ ( 2ℕ+1 ) 2 such that gcd( d, e ¯ )=1 and S∈ ℕ ∗ , where 2 S−1 , d, e ¯ , d+ 2 S−1 e ¯ , d+ 2 S e ¯ , are pairwise prime quantities (these parameters are coming from Pythagorician divisors). When n=1 , it is the case of the famous impossible problem of the integer right-angled triangle area to be a square, solved by Fermat at his time, by his famous method of infinite descent. We propose in this article a new direct proof for the numbers n=1 (resp. n=2 ) to be non-congruent numbers, based on an particular induction method of resolution of Equation (1) (note that this method is efficient too for general case of prime numbers n=p≡a ( ( mod8 ) , gcd( a,8 )=1 ). To prove it, we use a classical proof by induction on k , that shows the non-solvability property of any of the following systems ( t=0 , corresponding to case n=1 (resp. t=1 , corresponding to case n=2 )): ( Ξ t,k ){ X 2 + 2 t ( 2 k Y ) 2 = Z 2 X 2 + 2 t+1 ( 2 k Y ) 2 = T 2 , where k∈ℕ;and solutions ( X,Y,Z,T )=( D k , E k , f k , f ′ k )∈ ( 2ℕ+1 ) 4 , are given in pairwise prime numbers.2020-Mathematics Subject Classification 11A05-11A07-11A41-11A51-11D09-11D25-11D41-11D72-11D79-11E25 .

SOME ALMOST ALL RESULTS CONCERNINGTHE PJATECKII-SAPIRO PRIME NUMBERS

The distribution of the Pjateckii-Sapiro prime numbers in arithmetic progressions is investigated, and a Bombier i- Vinogr adov typ e mean- value t heorem and anot her almost all resultconcerning this problem are established.

一个指数Diophantine方程的正整数解

本文研究了一个纯指数Diophantine方程的求解问题,利用有关Lucas数本原素因数的存在性方面的新近结果,获得了该方程的全部正整数解.

关于Diophantine方程x^3±1=3Dy^2

利用数论中同余及其它一些方法研究丢番图方程x3±1=3Dy2(其中:D=2αqp,q,p均为奇素数,α=0或1,q≡5(mod6),p=12r2+1,r是正整数)的解的情况.证明了该丢番图方程无正整数解.推进了该类三次丢番图方程的研究.

关于指数Diophantine方程a^x+b^y=(a^2+b^r)z

设r是正整数,a,b,c。是大于1的互素正整数。文章证明了:如果a2+br=c,a=-1(m od-br+1)且c是奇数,则方程ax+by=cz仅有正整数解(x,y,z)=(2,r,1)。

关于Diophantine方程x+y+xy=2^(p-1)

设p是素数,对于非负整数k,设F(k)=22k+1是第k个Fermat数,本文证明了:方程x+y+xy=2p-1没有正整数解(x,y)的充要条件是P=2或者P=F(k)且F(2k)也是素数.

素数幂和形式的平衡数

为了寻找递归数列中2、3、5的幂和,本文考虑形如2^(a)+3^(b)+5^(c)的平衡数。首先利用构造、取模的方法得出一个可计算的上界,再在上界范围内筛选,得出可表示为2、3、5的幂和的平衡数是6和35。

奇完全数素因数的一个性质

利用高次Diophantine方程的结果讨论奇完全数素因数的性质。证明了:如果n是奇完全数,p是n素因数,r是p在n的标准分解式中的次数,则σ(n/pr)/pr≠qt其中σ(n/pr)是n/pr的约数和,q是奇素数,t是正奇数或者适合t≤6的正偶数。

关于不定方程y(y+1)(y+2)(y+3)=4p^(2k)x(x+1)(x+2)(x+3)

用初等方法证明了不定方程y(y+1)(y+2)(y+3)=nx(x+1)(x+2)(x+3)在n=4p2k(p为奇素数,k为正整数)时无正整数解(x,y).

关于不定方程multiply from k=1 to n(k^2+1)=a·m^2的探讨

对于不定方程multiply from k=1 to n(k^2+1)=a·m^2,J.Cillerelo证明了当a=1时,当且仅当n=3方程有解.证明了当a=5和7时,此方程无解;当a=17时,方程只有唯一解;还证明了一般情形,当a满足(a,17×101×1297×739 601)=1且a的最大素因子p(a)≤2×738 740时,当n>3,方程无解.

关于质数的判定准则

本文给出关于质数一个判定准则：数P为质数，当且仅当P不能表示为四个自然数之和，使其中的两数之积等于其余两数之积．

关于Smarandache因子个数为n的最小数问题

n∈N+,Smarandache因子个数为n的最小数Tn定义为最小的正整数k,使得d(k)=n.即Tn=min{k:k∈N,d(k)=n},其中d(n)为Dirichlet除数函数.利用初等方法以及素数的分布性质研究ln(Tn)在Smarandache简单数列上的均值分布问题,并给出一个较强的渐近公式.

关于不定方程x^n+(x+1)~n+…+(x+h)~n=(x+h+1)~n的几个定理

本文证明了,当 时,不定力程x^n+(x+1)~n+…+(x+h)~n=(x+h+1)~n无正整数解。

关于丢番图方程x^3+b=Dy^2(Ⅰ)

设p为奇素数,(x,y)=1,方程x3+p3=y2的全部整数解为:(ⅰ)(x,y)=(3β4+6α2β2-α4,6αβ(α4+3β4)),且α、β满足(α2+3β2)2-12β4=p;(ⅱ)(x,y)=(2α4+2β4-4α3β-4αβ3,3(α+β)(α-β)5+6αβ(α4-β4)),且α、β满足(α+β)4-12α2β2=p;(ⅲ)(x,y)=(α4+6α2β2-3β4,6αβ(α4+3β4)),且α、β满足12β4-(α2-3β2)2=p 其中α,β一奇一偶,(α,β)=1,α>β>0。

关于丢番图方程x^3±1=3Dy^2

设D是素数.主要研究丢番图方程x3±1=3Dy2正整数解的情况.利用初等数论的方法得到了丢番图方程x3±1=3D y2无正整数解的一个充分条件.

关于素变数丢番图方程组与不等式组(英文)

本文研究了和素数有关的方程组和不等式组.通过更细致的指数和估计,我们改进了以前的结果.

形如1+p^2 (x(x+1))/2的平方数

设p是素数,fp(x)=1+p2x(x+1)/2.该文运用二元二次Diophantine方程的性质讨论形如fp(x)的平方数,其中x是正整数.证明了:对于任何素数p,都存在无穷多个正整数x可使fp(x)是平方数.

关于“费尔马最后定理的证明”一文的评注

对“费尔马最后定理的证明”一文作出了两点评注 .

关于Schinzel数

若丢番图方程multiply from i=1 to i(x_i)=sum from i=1 to k(x_i)仅有唯一解,则正整数k称为Schnizel数.本文给出了k为Schinzel数的充要条件,并证明了:对于k≤500,000,除了k=2,3,4,6,24,114.174,444外无其它Schinzel数.