\(1,\left(n+2\right)⋮\left(n+1\right)\)
2 ,\(8⋮\left(n-2\right)\)
3,\(\left(2n+1\right)⋮\left(6-n\right)\)
4;\(3n⋮\left(n-1\right)\)
5, \(\left(3n+5\right)⋮\left(2n+1\right)\)
6, \(\left(3n+1\right)⋮\left(2n-1\right)\)
Chứng minh rằng với mọi n thuộc Z thì :
a) \(\left(n^2+3n-1\right).\left(n+2\right)-n^3+2⋮5\)
b) \(\left(6n+1\right)\left(n+5\right)-\left(3n+5\right)\left(2n-1\right)⋮2\)
c) \(\left(2n-1\right).3-\left(2n-1\right)⋮8\)
d) \(n^2\left(n+1\right)+2n\left(n+1\right)⋮6\)
a: \(\left(n^2+3n-1\right)\left(n+2\right)-n^3+2\)
\(=n^3+2n^2+3n^2+6n-n-2+n^3+2\)
\(=5n^2+5n=5\left(n^2+n\right)⋮5\)
b: \(\left(6n+1\right)\left(n+5\right)-\left(3n+5\right)\left(2n-1\right)\)
\(=6n^2+30n+n+5-6n^2+3n-10n+5\)
\(=24n+10⋮2\)
d: \(=\left(n+1\right)\left(n^2+2n\right)\)
\(=n\left(n+1\right)\left(n+2\right)⋮6\)
chứng minh với mọi số nguyên n thì :
\(n^2\left(n+1\right)+2n\left(n+1\right)⋮6\)
\(\left(2n-1\right)^3-\left(2n-1\right)⋮8\)
\(\left(n+2\right)^2-\left(n-2\right)^2⋮8\)
\(\left(n+7\right)^2-\left(n-2\right)^2⋮24\)
Lạy ông đi qua lạy bà di lại ai rủ lòng thương giúp chấu bế này cái :v
a) n2(n + 1) + 2n(n + 1)
= (n2 + 2n)(n + 1)
= n(n + 2)(n + 1) chia hết cho 6 vì là 3 số tự nhiên liên tiếp
b) (2n - 1)3 - (2n - 1)
= (2n - 1).[(2n - 1)2 - 1]
= (2n - 1).{ [ (2n - 1) + 1] . [ (2n - 1) -1 ] }
= *2n - 1) . 2n . (2n - 2) chia hết cho 8 vì là 3 số chẵn liên tiếp
c) (n + 2)2 - (n - 2)2
= n2 + 4n - 4 - (n2 - 4n + 4)
= n2 + 4n - 4 - n2 + 4n - 4
= 8n - 8 chia hết cho 8
a) \(lim\frac{\left(-2\right)^n+3^n}{\left(-2\right)^{n+1}+3^{n+1}}\)
b) \(lim\frac{\left(2n-1\right)\left(n+1\right)\left(3n+4\right)}{\left(5-6n\right)^3}\)
c) \(lim\left(\sqrt{n^2+5n+1}-\sqrt{n^2-2}\right)\)
d) \(lim\frac{5\cdot3^n-6^{n+1}}{4\cdot2^n+6^n}\)
e) \(lim\left(-2n^3-3n^2+5n-2020\right)\)
a/ \(=lim\frac{\left(-\frac{2}{3}\right)^n+1}{-2.\left(-\frac{2}{3}\right)^n+3}=\frac{1}{3}\)
b/ \(=lim\frac{\left(2-\frac{1}{n}\right)\left(1+\frac{1}{n}\right)\left(3+\frac{4}{n}\right)}{\left(\frac{5}{n}-6\right)^3}=\frac{2.1.3}{\left(-6\right)^3}=-\frac{1}{36}\)
c/ \(=lim\frac{5n+3}{\sqrt{n^2+5n+1}+\sqrt{n^2-2}}=\frac{5+\frac{3}{n}}{\sqrt{1+\frac{5}{n}+\frac{1}{n^2}}+\sqrt{1-\frac{2}{n}}}=\frac{5}{1+1}=\frac{5}{2}\)
d/ \(=lim\frac{5.\left(\frac{1}{2}\right)^n-6}{4.\left(\frac{1}{3}\right)^n+1}=\frac{-6}{1}=-6\)
e/ \(=-n^3\left(2+\frac{3}{n}-\frac{5}{n^2}+\frac{2020}{n^3}\right)=-\infty.2=-\infty\)
1: \(1^2+2^2+3^2+...+n^2=\dfrac{n\left(n+1\right)\left(2n+1\right)}{6}\)
2: \(1^3+2^3+...+n^3=\dfrac{n^2\left(n+1\right)^2}{4}\)
\(1^2+2^2+3^2...+n^2=1+2\left(1+1\right)+3\left(2+1\right)+...+n\left(n-1+1\right)\\ =1+1\cdot2+2+3\cdot2+3+...+n\left(n-1\right)+n\\ =\left(1+2+3+...+n\right)+\left[1\cdot2+2\cdot3+...+n\left(n-1\right)\right]\)
Ta có \(1\cdot2+2\cdot3+...+n\left(n-1\right)\)
\(=\dfrac{1}{3}\left[1\cdot2\cdot3+2\cdot3\cdot3+...+3n\left(n-1\right)\right]\\ =\dfrac{1}{3}\left[1\cdot2\left(3-0\right)+2\cdot3\left(4-1\right)+...+n\left(n-1\right)\left(n+2+n+1\right)\right]\\ =\dfrac{1}{3}\left(1\cdot2\cdot3-1\cdot2\cdot3+2\cdot3\cdot4-...-\left(n-2\right)\left(n-1\right)n+\left(n-1\right)n\left(n+1\right)\right)\\ =\dfrac{\left(n-1\right)n\left(n+1\right)}{3}\)
\(\Rightarrow1^2+2^2+...+n^2=\dfrac{n\left(n+1\right)}{2}+\dfrac{\left(n-1\right)n\left(n+1\right)}{3}\\ =\dfrac{3n\left(n+1\right)+2n\left(n-1\right)\left(n+1\right)}{6}=\dfrac{n\left(n+1\right)\left(3+2n-2\right)}{6}\\ =\dfrac{n\left(n+1\right)\left(2n+1\right)}{6}\)
Tìm các giới hạn sau:
a) \(lim\left(4^n-3^n\right)\)
b) \(lim\left[\left(2^n+1\right)^2-4^n\right]\)
c) \(lim\left(\sqrt{2n^5-3n^2+11}-n^3\right)\)
d) \(lim\left(\sqrt{2n^2+1}-\sqrt{3n^2-1}\right)\)
e) \(lim\sqrt{n^2+3n\sqrt{n}+1}-n\)
\(a=\lim4^n\left(1-\left(\dfrac{3}{4}\right)^n\right)=+\infty.1=+\infty\)
\(b=\lim\left(4^n+2.2^n+1-4^n\right)=\lim2^n\left(2+\dfrac{1}{2^n}\right)=+\infty.2=+\infty\)
\(c=limn^3\left(\sqrt{\dfrac{2}{n}-\dfrac{3}{n^4}+\dfrac{11}{n^6}}-1\right)=+\infty.\left(-1\right)=-\infty\)
\(d=\lim n\left(\sqrt{2+\dfrac{1}{n^2}}-\sqrt{3-\dfrac{1}{n^2}}\right)=+\infty\left(\sqrt{2}-\sqrt{3}\right)=-\infty\)
\(e=\lim\dfrac{3n\sqrt{n}+1}{\sqrt{n^2+3n\sqrt{n}+1}+n}=\lim\dfrac{3\sqrt{n}+\dfrac{1}{n}}{\sqrt{1+\dfrac{3}{\sqrt{n}}+\dfrac{1}{n^2}}+1}=\dfrac{+\infty}{2}=+\infty\)
Cho \(f\left(n\right)=\left(n^2+n+1\right)^2+1\) với n là số nguyên dương.
Đặt \(P_n=\frac{f\left(1\right).f\left(3\right).f\left(5\right).......f\left(2n-1\right)}{f\left(2\right).f\left(4\right).f\left(6\right).......f\left(2n\right)}\).Chứng minh rằng:\(P_1+P_2+P_3+...........+P_n< \frac{1}{2}\)
Chứng minh các mệnh đề sau:
\(a,1^2+2^2+...+n^2=\dfrac{n\left(n+1\right)\left(2n+1\right)}{6}\) \(\forall n\in N\) *
\(b,1.2+2.3+...+n\left(n+1\right)=\dfrac{n\left(n+1\right)\left(n+2\right)}{3}\) \(\forall n\in N\) *
Chứng minh rằng :
\(A=\left(2+1\right)\left(2^2+1\right)\left(2^4+1\right)\left(2^8+2\right).....\left(2^{2n}+1\right)\left(n\ge2;n\in N\right)\) Không chia hết cho 2.
Chứng minh đề bài sai
Ta có
\(2^8+2=2\left(2^7+1\right)\)
=>\(A⋮2\)
A không chia hết cho 2 vì toàn bộ thừa số của A đều lẻ.
t nghĩ đề là \(2^8+1\)
Đây này :
\(A=\left(2+1\right)\left(2^2+1\right)\left(2^4+1\right)\left(2^8+1\right)...\left(2^{2n}+1\right)\)
\(=3.\left(2^2+1\right)\left(2^4+1\right)....\left(2^{2n}+1\right)\)
\(=\left(2^2-1\right)\left(2^2+1\right)\left(2^4+1\right)....\left(2^{2n}+1\right)\)
\(=\left(2^4-1\right)\left(2^4+1\right).....\left(2^{2n}+1\right)\)
\(=\left(2^8-1\right).....\left(2^{2n}+1\right)\)
\(=2^{4n}-1\)không chia hết cho 2
Sử dụng liên tục tính chất \(\left(a-b\right)\left(a+b\right)=a^2-b^2\)để rút gọn ra số cuối cùng.
Chứng minh rằng với \(n\in N\)* thì:
a, \(1^2+2^2+3^2+...+n^2=\frac{n\left(n+1\right)\left(2n+1\right)}{6}\)
b, \(1^3+2^3+3^3+...+n^3=\left(\frac{n\left(n+1\right)}{2}\right)^2\)
c, \(n+2\left(n-1\right)+3\left(n-2\right)+...+n=\frac{n\left(n+1\right)\left(n+2\right)}{6}\)