a) Lập bảng

Ta có: 2018 : 4 = 504 (dư 2)

Suy ra \(2017^{2018}+2019^{2018}= \overline{...9}+\overline{...1}=\overline{...0}\)

Vậy 2017²⁰¹⁸ + 2019²⁰¹⁸ chia hết cho 10

b) Làm tương tự như câu a)

Ta có: \(8^7-2^{18}\)

\(=\left(2^3\right)^7-2^{18}\)

\(=2^{21}-2^{18}\)

\(=2^{18}.\left(2^3-1\right)\)

\(=2^{18}.7\)

\(=2^{17}.2.7\)

\(=2^{17}.14\)

Vì \(14⋮14\) nên \(2^7.14⋮14.\)

=> \(8^7-2^{18}⋮14\left(đpcm\right).\)

Chúc bạn học tốt!

*Ta có : 8⁷ - 2¹⁸

= (2³)⁷ - 2¹⁸

= 2²¹ - 2¹⁸

= 2¹⁸ . ( 8 - 1)

= 2¹⁷ . 2 . 7

= 2¹⁷ . 14 \(⋮\) 14

*Hay : 8⁷ - 2¹⁸ \(⋮\) 14. (đpcm)

*Tick nhé bạn!

Trả lời:

16⁷ - 2²⁴ 

= ( 2⁴ )⁷ - 2²⁴ 

= 2²⁸ - 2²⁴ 

= 2²⁴ ( 2⁴ - 1 )

= 2²⁴ . 15 \(⋮\) 15 ( vì  15\(⋮\)15 )

Vậy 16⁷ - 2²⁴ chia hết cho 15

CMR: \(16^7\) \(-\) \(2^{24}\) \(⋮\) \(15\)

=    \(\left(2^4\right)^7\)  \(-\)  \(2^{24}\)

=     \(2^{4.7}\)  \(-\)  \(2^{24}\)

=     \(2^{28}\) \(-\)  \(2^{24}\) 

=   \(2^{24}\) \(.\) (  \(2^8\) \(+\) \(1\))

=    \(2^{24}\)  \(.\)   \(257\)

=>    \(⋮̸\) \(15\)

- Hok T - 

16⁵ - 2¹⁵

= (2⁴)⁵ - 2¹⁵

= 2²⁰ - 2¹⁵

= 2¹⁵(2⁵ - 1)

= 2¹⁵.31 \(⋮31\)(đpcm)

\(8^7-2^{18}=\left(2^3\right)^7-2^{18}=2^{21}-2^{18}=2^{17}\left(2^4-2\right)=2^{17}.14⋮14\)

\(8^7-2^{18}\)

\(=2^{21}-2^{18}\)

\(=2^{18}\left(2^3-1\right)=2^{18}.7\)

\(=2^{17}.14⋮14\)

Ta có : \(8^7-2^{18}=\left(2^3\right)^7-2^{18}=2^{21}-2^{18}=2^{18}\left(2^3-1\right)=2^{18}.7=2^{17}.2.7=2^{17}.14\)

chia hết cho 14

Vậy \(8^7-2^{18}⋮14\)

Ta có:

8⁷ - 2¹⁸ = (2³)⁷ - 2¹⁸ = 2²¹ - 2¹⁸ = 2¹⁸ (2³ - 1) = 2¹⁸ x 7 = 2¹⁷ x 14 (chia hết cho 14)

Vậy 8⁷ - 2¹⁸ chia hết cho 14

Ta có:

\(8^7-2^{18}=8^7-\left(2^3\right)^6=8^7-8^6=8^5.\left(8^2-8\right)=8^5.56⋮14\)

\(\Rightarrow8^7-2^{18}⋮14\left(đpcm\right)\)

\(8^7-2^{18}=\left(2^3\right)^7-2^{18}=2^{21}-2^{18}=2^{18}.2^3-2^{18}=2^{18}\left(2^3-1\right)=2^{18}.7=2^{17}.2.7=2^{17}.14⋮14\)

Vây....................

\(8^7-2^{18}=\left(2^3\right)^7-2^{18}=2^{21}-2^{18}=2^{18}\left(2^3-1\right)=2^{17}.2.7=2^{17}.14⋮14\left(đpcm\right)\)

\(A=3^{2022}-2^{2022}+3^{2020}-2^{2020}\\=(3^{2022}+3^{2020})-(2^{2022}+2^{2020})\\=3^{2020}\cdot(3^2+1)-2^{2020}\cdot(2^2+1)\\=3^{2020}\cdot10-2^{2019}\cdot2\cdot5\\=3^{2020}\cdot10-2^{2019}\cdot10\)

Ta có: \(\left\{{}\begin{matrix}3^{2020}\cdot10⋮10\\2^{2019}\cdot10⋮10\end{matrix}\right.\)

\(\Rightarrow3^{2020}\cdot10-2^{2019}\cdot10⋮10\)

hay \(A⋮10\) (đpcm)

\(\text{#}Toru\)