\(B=3+3^2+3^3+...+3^{120}\)

Dễ thấy \(B\)chia hết cho \(3\)do là tổng của các số hạng chia hết cho \(3\).

\(B=3+3^2+3^3+...+3^{120}\)

\(=\left(3+3^2\right)+\left(3^3+3^4\right)+...+\left(3^{119}+3^{120}\right)\)

\(=3\left(1+3\right)+3^3\left(1+3\right)+...+3^{119}\left(1+3\right)\)

\(=4\left(3+3^3+...+3^{119}\right)⋮4\)

\(B=3+3^2+3^3+...+3^{120}\)

\(=\left(3+3^2+3^3\right)+...+\left(3^{118}+3^{119}+3^{120}\right)\)

\(=3\left(1+3+3^2\right)+...+3^{118}\left(1+3+3^2\right)\)

\(=13\left(3+...+3^{118}\right)⋮13\)

a) \(B\)là tổng các số hạng chia hết cho \(3\)nên chia hết cho \(3\).

b) \(B=3+3^2+...+3^{120}\)

\(=\left(3+3^2\right)+\left(3^3+3^4\right)+...+\left(3^{119}+3^{120}\right)\)

\(=3\left(1+3\right)+3^3\left(1+3\right)+...+3^{119}\left(1+3\right)\)

\(=4\left(3+3^3+...+3^{119}\right)⋮4\)

c) \(B=3+3^2+...+3^{120}\)

\(=\left(3+3^2+3^3\right)+...+\left(3^{118}+3^{119}+3^{120}\right)\)

\(=3\left(1+3+3^2\right)+...+3^{118}\left(1+3+3^2\right)\)

\(=13\left(3+3^4+...+3^{118}\right)⋮13\)

a: \(B=3+3^2+3^3+...+3^{120}\)

\(=3\left(1+3+3^2+...+3^{119}\right)⋮3\)

b: \(B=3+3^2+3^3+3^4+...+3^{2020}\)

\(=3\left(1+3\right)+...+3^{2019}\left(1+3\right)\)

\(=4\cdot\left(3+...+3^{2019}\right)⋮4\)

A =3+3²+3³+...+3¹¹⁹

A=(3+3²)+(3³+3⁴)+...(3¹¹⁸+3¹¹⁹)

A=3.(1+3)+3³.(1+3)+...+3¹¹⁸.(1+3)

A=3.4+3³.4+...+3¹¹⁸.4

A=4.(3+3³+...+3¹¹⁸)\(⋮\)4

=>A\(⋮\)4

A=3+3²+3³+...+3¹¹⁹

A=(3+3²+3³)+...+(3¹¹⁷+3¹¹⁸+3¹¹⁹)

A=3.(1+3+9)+...+3¹¹⁷.(1+3+9)

A=3.13+...+3¹¹⁷.13

A=13.(3+...+3¹¹⁷)\(⋮\)13

vì   A\(⋮\)4

và  A\(⋮\)13

=>A\(⋮\)4.13

=>A\(⋮\)52

vậy A\(⋮\)4 và A\(⋮\)52

`#3107.101107`

\(A=1+3+3^2+3^3+...+3^{101}\)

$A = (1 + 3 + 3^2) + (3^3 + 3^4 + 3^5) + ... + (3^{99} + 3^{100} + 3^{101}$

$A = (1 + 3 + 3^2) + 3^3 (1 + 3 + 3^2)  + ... + 3^{99}(1 + 3 + 3^2)$

$A = (1 + 3 + 3^2)(1 + 3^3 + ... + 3^{99})$

$A = 13(1 + 3^3 + ... + 3^{99})$

Vì `13(1 + 3^3 + ... + 3^{99}) \vdots 13`

`\Rightarrow A \vdots 13`

Vậy, `A \vdots 13.`

\(A=1+3+3^2+3^3+3^4+3^5+...+3^{101}\\=(1+3+3^2)+(3^3+3^4+3^5)+(3^6+3^7+3^8)+...+(3^{99}+3^{100}+3^{101})\\=13+3^3\cdot(1+3+3^2)+3^6\cdot(1+3+3^2)+...+3^{99}\cdot(1+3+3^2)\\=13+3^3\cdot13+3^6\cdot13+...+3^{99}\cdot13\\=13\cdot(1+3^3+3^6+...+3^{99})\)

Vì \(13\cdot(1+3^3+3^6...+3^{99}\vdots13\)

nên \(A\vdots13\)

\(\text{#}Toru\)

\(A=\left(3+3^2\right)+\left(3^3+3^4\right)+...+\left(3^{89}+3^{90}\right)\\ A=3\left(1+3\right)+3^3\left(1+3\right)+...+3^{89}\left(1+3\right)\\ A=3\cdot4+3^3\cdot4+...+3^{89}\cdot4\\ A=4\left(3+3^3+...+3^{89}\right)⋮4\)

cảm ơn bạn

bạn hình như viết sai đề

\(A=3+3^2+3^3+3^4+.......+3^{100}\)

\(\Rightarrow A=\left(3+3^2+3^3+3^4\right)+.......+\left(3^{97}+3^{98}+3^{99}+3^{100}\right)\)

\(\Rightarrow A=3.\left(1+3+3^2+3^3\right)+........+3^{97}.\left(1+3+3^2+3^3\right)\)

\(\Rightarrow A=3.40+.........+3^{97}.40\)

\(\Rightarrow A=40.\left(3+.......+3^{97}\right)\)

\(\Rightarrow A⋮40\)( 1 )

Vì \(A\)là tổng của các bậc lũy thừa của 3 nên \(A⋮3\)( 2 )

Từ ( 1 ) và ( 2 ) suy ra : \(A⋮40.3\)

\(\Rightarrow A⋮120\)

Vậy \(A⋮120\)( ĐPCM )

Câu 1: 

$A=(2+2^2)+(2^3+2^4)+(2^5+2^6)+....+(2^{2019}+2^{2020})$

$=2(1+2)+2^3(1+2)+2^5(1+2)+....+2^{2019}(1+2)$

$=(1+2)(2+2^3+2^5+...+2^{2019})=3(2+2^3+2^5+...+2^{2019})\vdots 3$

-----------------

$A=2+(2^2+2^3+2^4)+(2^5+2^6+2^7)+....+(2^{2018}+2^{2019}+2^{2020})$

$=2+2^2(1+2+2^2)+2^5(1+2+2^2)+....+2^{2018}(1+2+2^2)$

$=2+(1+2+2^2)(2^2+2^5+....+2^{2018})$

$=2+7(2^2+2^5+...+2^{2018})$

$\Rightarrow A$ chia $7$ dư $2$.

Câu 2:

$B=(3+3^2)+(3^3+3^4)+....+(3^{2021}+3^{2022})$
$=3(1+3)+3^3(1+3)+...+3^{2021}(1+3)$

$=(1+3)(3+3^3+...+3^{2021})=4(3+3^3+....+3^{2021})\vdots 4$

-------------------

$B=(3+3^2+3^3)+(3^4+3^5+3^6)+...+(3^{2020}+3^{2021}+3^{2022})$

$=3(1+3+3^2)+3^4(1+3+3^2)+....+3^{2020}(1+3+3^2)$

$=(1+3+3^2)(3+3^4+...+3^{2020})=13(3+3^4+...+3^{2020})\vdots 13$ (đpcm)

mình ko biết

phải là chứng minh A chia hết cho 121