giup minh voi

tham khảo

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cái này khó

Lời giải:
a.

$S=3^0+3^2+3^4+...+3^{2002}$

$3^2S=3^2+3^4+3^6+...+3^{2004}$

$3^2S-S=(3^2+3^4+3^6+...+3^{2004})-(3^0+3^2+3^4+...+3^{2002})$

$8S=3^{2004}-3^0=3^{2004}-1$

$S=\frac{3^{2004}-1}{8}$
b.

$S=(3^0+3^2+3^4)+(3^6+3^8+3^{10})+....+(3^{1998}+3^{2000}+3^{2002})$

$=(3^0+3^2+3^4)+3^6(3^0+3^2+3^4)+....+3^{1998}(3^0+3^2+3^4)$

$=(3^0+3^2+3^4)(1+3^6+...+3^{1998})$

$=91(1+3^6+...+3^{1998})=7.13(1+3^6+...+3^{1998})\vdots 7$

Ta có đpcm.

b: \(S=\left(3^0+3^2+3^4\right)+...+3^{1998}\left(3^0+3^2+3^4\right)\)

\(=91\cdot\left(1+...+3^{1998}\right)⋮7\)

b: \(S=3^0+3^2+3^4+...+3^{2002}\)

\(=\left(3^0+3^2+3^4\right)+...+3^{1998}\left(3^0+3^2+3^4\right)\)

\(=91\cdot\left(1+...+3^{1998}\right)⋮7\)

Ta thấy : các số hạng trong tổng S đều \(>\frac{7}{35}\) 

\(\Rightarrow S>\frac{7}{35}+\frac{7}{35}+\frac{7}{35}+\frac{7}{35}+\frac{7}{35}\)

\(\Rightarrow S>\frac{35}{35}\) 

\(\Rightarrow S>1\) ( đpcm )

Ta có: \(S=1+3^2+3^4+3^6+...+3^{98}\)

\(=\left(1+3^2\right)+\left(3^4+3^6\right)+...+\left(3^{96}+3^{98}\right)\)

\(=10+3^4\cdot10+...+3^{96}\cdot10\)

\(=10\left(1+3^4+...+3^{96}\right)⋮10\)(ĐPCM)

\(S=1+3+3^2+3^3+...+3^8+3^9\)

\(=1+3+3^2\left(1+3\right)+...+3^8\left(1+3\right)\)

\(=4\left(1+3^2+...+3^8\right)⋮4\)

\(S=\left(1+3\right)+3^2\left(1+3\right)+...+3^8\left(1+3\right)=4\left(1+3^2+...+3^8\right)⋮4\)

cảm ơn các bạn

Các bạn giúp mình nhé

\(S=\left(1+3\right)+...+3^8\left(1+3\right)=4\left(1+...+3^8\right)⋮4\)

\(S=\left(1+3+3^2\right)+...+3^7\left(1+3+3^2\right)\)

\(=13\left(1+...+3^7\right)⋮13\)