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a) Ta có: \(\overline{abcabc}=100000a+10000b+1000c+100a+10b+c\) \(=100100a+10010b+1001c\) \(=1001\left(100a+10b+c\right)=7\cdot11\cdot13\left(100a+10b+c\right)⋮7,11,13\)
b) Ta có: \(\overline{ab}-\overline{ba}=10a+b-10b-a=9a-9b\) \(=9\left(a-b\right)⋮9\)
c) Ta có: \(\overline{abc}-\overline{cba}=100a+10b+c-100c-10b-a=99a-99c=99\left(a-c\right)⋮99\)
Ta có
ab + ba =10a+b+10b+a
=(10a+a)+(10b+b)
=11a+11b=11(a+b)
=> ab + ba chia hết cho 11.
ta có:
ab+ba=(a.10+b)+(b.10+a)=a.11+b.11
vì 11chia hết cho 11 => (a+b).11 chia hết cho 11
=> ab+ba chia hết cho 11
k nha
Bài 1:
a)
\(\overline{abcd}=100\overline{ab}+\overline{cd}\)
\(=100.2\overline{cd}+\overline{cd}\)
\(=201\overline{cd}\)
Mà \(201⋮67\)
\(\Rightarrow\overline{abcd}⋮67\)
b)
\(\overline{abc}=100\overline{a}+10\overline{b}+\overline{c}\)
\(=\left(100\overline{b}+10\overline{c}+\overline{a}\right)+\left(99\overline{a}-90\overline{b}-9\overline{c}\right)\)
\(=\overline{bca}+9\left[\left(12\overline{a}-9\overline{b}\right)-\left(\overline{a}+\overline{b}+\overline{c}\right)\right]\)
\(=\overline{bca}+27\left(4\overline{a}-3\overline{b}\right)-\left(\overline{a}+\overline{b}+\overline{c}\right)⋮27\)
\(\Rightarrow\overline{bca}-\left(\overline{a}+\overline{b}+\overline{c}\right)⋮27\)
\(\Rightarrow\left\{{}\begin{matrix}\overline{bca}⋮27\\\overline{a}+\overline{b}+\overline{c}⋮27\end{matrix}\right.\)
\(\Rightarrow\overline{bca}⋮27\)
Bài 2:
\(\overline{abcd}=\overline{ab}.100+\overline{cd}\)
\(=\overline{ab}.99+\overline{ab}+\overline{cd}\)
\(=\overline{ab}.11.99+\left(\overline{ab}+\overline{cd}\right)\)
Mà \(11⋮11\)
\(\Rightarrow\overline{ab}.11.9⋮11\)
\(\Rightarrow\overline{abcd}⋮11\).
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.
Ta có : \(\overline{ab}-\overline{ba}=\left(10a+b\right)-\left(10b+a\right)\)
\(=10a+b-10b-a=10a-10b+b-a\)
\(=10\left(a-b\right)-\left(a-b\right)=\left(10-1\right)\left(a-b\right)=9\left(a-b\right)⋮9\)
( Vì \(9⋮9\) ; \(a\ge b\) ) \(\Rightarrow\overline{ab}-\overline{ba}⋮9\)
Vậy \(\overline{ab}-\overline{ba}⋮9\)
Ta có:
\(\overline{ab}=10.a+b\)
\(\overline{ba}=10.b+a\)
\(=>\overline{ab}-\overline{ba}=10a+b-10b+a\)
\(=9a-9b\)
\(=9\left(a-b\right)⋮9\)
\(=>\overline{ab}-\overline{ba}⋮9\left(dpcm\right)\)
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 .👩
Ta có:
\(\overline{ab}=a\cdot10+b\)
\(\overline{ba}=b\cdot10+a\)
\(\Rightarrow\overline{ab}-\overline{ba}\)
\(=a\cdot10+b-\left(b\cdot10+a\right)\)
\(=a\cdot10+b-b\cdot10-a\)
\(=a\cdot9-b\cdot9\)
\(=9\cdot\left(a-b\right)\) ⋮ 9
Vậy với mọi \(a>b\left(a-b>0\right)\) thì \(\overline{ab}-\overline{ba}\) ⋮ 9
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