\(\overline{abcabc}=100000a+10000b+1000c+100a+10b+c\)

\(\overline{abcabc}=\left(100000+100\right)a+\left(10000+10\right)b+\left(1000+1\right)c\)

\(\overline{abcabc}=100100a+10010b+1001c\)

\(\overline{abcabc}=1001\left(100a+10b+c\right)\)

\(\Rightarrow\overline{abcabc}=143\left(100a+10b+c\right)⋮143\) (đpcm)

\(\Rightarrow\overline{abcabc}=13.7.11\left(100a+10b+c\right)⋮\begin{cases}11\\13\\7\end{cases}\)(đpcm)

1)aaa=111a=37.3.a\(⋮37\)(đpcm)

2)aaa+bbb=111a+111b=111(a+b)\(⋮\)11(đpcm)

Dễ mà

tách ra xét Bội thôi

\(\overline{aaabbb}=111000a+111b=37.3000a+37.3b=37\left(3000a+3b\right)\)

Vì \(37\left(3000a+3b\right)\) \(⋮\) 37 nên \(\overline{aaabbb}\) \(⋮\) 37

\(\Rightarrow\) ĐPCM

ab - ba ⋮ 9

ab - ba=a * 10+b*1-b*10-a*1

=a*(10-1)-b*(10-1)=a*9-b*9=9*(a-b)⋮9(vì 9⋮9)

vậy ab-ba⋮9

abba ⋮ 11

abba=a*1000+b*100+b*10+a.1=a*(1000+1)+b*(100+10)

=a*1001+b*110=a*11*91+b*10*11=11(a*91+b*10)⋮11(vì 11⋮11)

Vậy abba⋮11

ab - ba ⋮ 9

ab - ba=a x 10+b x 1-b x 10-a x 1

=a x (10-1)-b x (10-1)=a x 9-b x 9=9x (a-b)⋮9(vì 9⋮9)vậy ab-ba⋮9abba ⋮11

abba=a x 1000+b x 100+b x 10+a.1= a x (1000+1)+b x (100+10)

=a x 1001+b x 110=a x 11 x 91+b x 10 x 11=11(a x 91+b x 10)⋮11(vì 11⋮11)Vậy abba⋮11

Ta có:

\(\overline{abba}=1001a+110b=11.91a+11.10b=11\left(91a+10b\right)\)

Vì \(11\left(91a+10b\right)\) \(⋮\) 11 nên \(\overline{abba}\) \(⋮\) 11

\(\Rightarrow\) ĐPCM

Ta có:

\(\overline{abba}\) = 1000a + 100b + 10b + a

\(\overline{abba}\) = 1001a + 110b

\(\overline{abba}\) = 11 . (91a + 10b)

Vậy \(\overline{abba}\) \(⋮\) 11.

8338

Ta có \(\overline{abba}=a.1000+b.100+b.10+a\)

\(=\left(a.1000+a\right)+\left(b.100+b.10\right)\)

\(=a.1001+b.110\)

\(=11.\left(a.91+b.10\right)⋮11\)

Vậy....

abba = 1000a+100b+10b+a

          =(1000a+a)+(100b+10b)

          =1001a+110b

          =(91×11)a+(11×10)b

Vi 11chia het cho 11=> (91×11)a chia het cho 11 va (11×10)b chia het cho 11

Vay  so co dang abba se chia het cho 11

Chuc ban hoc gioi nhe Hoang Vu .👩