Rut gon : \(M=\dfrac{n^3+2n^2-1}{n^3+2n^2+2n+1}\)
Rut gon bt 2n+3+2n+2-2n+1+2n n la so mu nha
Ý bạn là
\(2^n+3+2^{^{ }n}+2-2^{^{ }n}+1+2^n\)
Giải :
\(A=2^n+3+2^n+2-2^n+1+2^n\)
\(A=\left(2^n+2^n-2^n+2^n\right)+3+1\)
\(A=3\times2^n+3+1\)
\(A=3\times2^n+4\)
tim n thuoc N de n+3/2n-2 nguyen
tim n thuoc N de A= 21n + 3 / 6n + 4 rut gon duoc
Rút gọn : M = \(\dfrac{n^3+2n^2-1}{n^3+2n^2+2n+1}\)
Lời giải:
Ta có:
\(n^3+2n^2-1=(n^3+n^2)+(n^2-1)\)
\(=n^2(n+1)+(n-1)(n+1)=(n+1)(n^2+n-1)\)
Và:
\(n^3+2n^2+2n+1=n^3+n^2+(n^2+2n+1)\)
\(=n^2(n+1)+(n+1)^2=(n+1)(n^2+n+1)\)
Do đó:
\(M=\frac{(n+1)(n^2+n-1)}{(n+1)(n^2+n+1)}=\frac{n^2+n-1}{n^2+n+1}\)
Tìm các giới hạn sau:
a) \(lim\sqrt[3]{-n^3+2n^2-5}\)
b) \(lim\dfrac{1}{\sqrt{n+1}-\sqrt{n}}\)
c) \(lim\left(\dfrac{1}{n+1}-n\right)\)
d) \(lim\left(\dfrac{2n^2-1}{n+1}-2n\right)\)
e) \(lim\dfrac{2n^3+n^2-3n+1}{2-3n}\)
\(a=\lim n\left(\sqrt[3]{-1+\dfrac{2}{n}-\dfrac{5}{n^3}}\right)=+\infty.\left(-1\right)=-\infty\)
\(b=\lim\left(\sqrt{n+1}+\sqrt{n}\right)=+\infty\)
\(c=\lim n\left(\dfrac{1}{n^2+n}-1\right)=+\infty.\left(-1\right)=-\infty\)
\(d=\lim\left(\dfrac{2n^2-1-2n\left(n+1\right)}{n+1}\right)=\lim\left(\dfrac{-1-2n}{n+1}\right)=-2\)
\(e=\lim\dfrac{2n^2+n-3+\dfrac{1}{n}}{\dfrac{2}{n}-3}=\dfrac{+\infty}{-3}=-\infty\)
Gọi ƯCLN (2n-1:3n+2) là d.Ta có:
2n-1 chia hết cho d => 6n -3 chia hết cho d
3n+2 chia hết cho d => 6n+4 chia hết cho d =>6n-3+7
=>6n-3+7-(6n-3)chia hết cho d
=>7 chia hết cho d
Giả sử phân số rút gọn được là:
=>2n-1 chia hết cho 7
=>2n-1+7 chia hết cho 7
=>2n+6 chia hết cho 7
=>2(n+3)chia hết cho 7
=>n+3 chia hết cho 7
=>n=7k-3
Vậy để phân số trên tối giản thì n\(\ne\)7k-3
cho mik nhé
Tìm n?
\(3C^o_{2n}-\dfrac{1}{2}C^1_{2n}-\dfrac{1}{4}C^3_{2n}+...+\dfrac{3}{2n+1}C^{2n}_{2n}=\dfrac{10923}{5}\)
tìm n nhé
3C\(^0\)\(_{2n}\) \(-\) \(\dfrac{1}{2}\)C\(^1\)\(_{2n}\) \(-\) \(\dfrac{1}{4}\)C\(^3\)\(_{2n}\) +...+ \(\dfrac{3}{2n+1}\)C\(^{2n}\)\(_{2n}\) \(=\) \(\dfrac{10923}{5}\)
Tìm n ϵ Z sao cho n là số nguyên
\(\dfrac{2n-1}{n-1};\dfrac{3n+5}{n+1};\dfrac{4n-2}{n+3};\dfrac{6n-4}{3n+4};\dfrac{n+3}{2n-1};\dfrac{6n-4}{3n-2};\dfrac{2n+3}{3n-1};\dfrac{4n+3}{3n+2}\)
tính các giới hạn sau:
a) lim (3n2+n2-1)
b)lim \(\dfrac{n^3+3n+1}{2n-n^3}\)
c) lim \(\dfrac{-2n^3+3n+1}{n-n^2}\)
d) lim \(\left(n+\sqrt{n^2-2n}\right)\)
e) lim \(\left(2n-3.2^n+1\right)\)
f) lim \(\left(\sqrt{4n^2-n}-2n\right)\)
g) lim \(\left(\sqrt{n^2+3n-1}-\sqrt[3]{n^3-n}\right)\)
a/ Bạn coi lại đề bài, 3n^2 +n^2 thì bằng 4n^2 luôn chứ ko ai cho đề bài như vậy cả
b/ \(\lim\limits\dfrac{\dfrac{n^3}{n^3}+\dfrac{3n}{n^3}+\dfrac{1}{n^3}}{-\dfrac{n^3}{n^3}+\dfrac{2n}{n^3}}=-1\)
c/ \(=\lim\limits\dfrac{-\dfrac{2n^3}{n^2}+\dfrac{3n}{n^2}+\dfrac{1}{n^2}}{-\dfrac{n^2}{n^2}+\dfrac{n}{n^2}}=\lim\limits\dfrac{-2n}{-1}=+\infty\)
d/ \(=\lim\limits\left[n\left(1+1\right)\right]=+\infty\)
e/ \(\lim\limits\left[2^n\left(\dfrac{2n}{2^n}-3+\dfrac{1}{2^n}\right)\right]=\lim\limits\left(-3.2^n\right)=-\infty\)
f/ \(=\lim\limits\dfrac{4n^2-n-4n^2}{\sqrt{4n^2-n}+2n}=\lim\limits\dfrac{-\dfrac{n}{n}}{\sqrt{\dfrac{4n^2}{n^2}-\dfrac{n}{n^2}}+\dfrac{2n}{n}}=-\dfrac{1}{2+2}=-\dfrac{1}{4}\)
g/ \(=\lim\limits\dfrac{n^2+3n-1-n^2}{\sqrt{n^2+3n-1}+n}+\lim\limits\dfrac{n^3-n^3+n}{\sqrt[3]{\left(n^3-n\right)^2}+n.\sqrt[3]{n^3-n}+n^2}\)
\(=\lim\limits\dfrac{\dfrac{3n}{n}-\dfrac{1}{n}}{\sqrt{\dfrac{n^2}{n^2}+\dfrac{3n}{n^2}-\dfrac{1}{n^2}}+\dfrac{n}{n}}+\lim\limits\dfrac{\dfrac{n}{n^2}}{\dfrac{\sqrt[3]{\left(n^3-n\right)^2}}{n^2}+\dfrac{n\sqrt[3]{n^3-n}}{n^2}+\dfrac{n^2}{n^2}}\)
\(=\dfrac{3}{2}+0=\dfrac{3}{2}\)
a) lim \(\left(-3n^3+n^2-1\right)\)
minh le oi ban dao mau so cua ban len cho tu uong roi thay vi tri cua mau thanh n3 +2n
Cho \(M=\dfrac{1.3.5.7.....\left(2n-1\right)}{\left(n+1\right)\left(n+2\right)\left(n+3\right).....2n}\) với \(n\in\) N* .
Chứng minh rằng \(M< \dfrac{1}{2^{n-1}}\)
Lời giải:
\(M=\frac{1.2.3.4.5.6.7...(2n-1)}{2.4.6...(2n-2).(n+1)(n+2)....2n}=\frac{(2n-1)!}{2.1.2.2.2.3...2(n-1).(n+1).(n+2)...2n}\)
\(=\frac{(2n-1)!}{2^{n-1}.1.2...(n-1).(n+1).(n+2)....2n}=\frac{(2n-1)!}{2^{n-1}.1.2...(n-1).n(n+1)..(2n-1).2}\)
\(=\frac{(2n-1)!}{2^{n-1}.(2n-1)!.2}=\frac{1}{2^{n-1}.2}<\frac{1}{2^{n-1}}\)
Ta có đpcm.