Bài 1.Chứng minh rằng:
Cho A= 30+ 32+34+36+...........+ 32002. A : hết cho 7
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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.
Bài 1 :
a) \(a.b+b.19=713\) \(\left(a;b\inℕ^∗\right)\)
\(\Rightarrow b.\left(a+19\right)=713\)
\(\Rightarrow\left(a+19\right);b\in\left\{1;23;31;713\right\}\)
\(\Rightarrow\left(a;b\right)\in\left\{\left(-18;713\right);\left(4;31\right);\left(12;23\right);\left(694;1\right)\right\}\)
\(\Rightarrow\left(a;b\right)\in\left\{\left(4;31\right);\left(12;23\right);\left(694;1\right)\right\}\left(a;b\inℕ^∗\right)\)
b) \(a.b-10.b=650\)
\(\Rightarrow b.\left(a-10\right)=650\)
\(\Rightarrow\left(a-10\right);b\in\left\{1;5;10;13;25;26;50;65;130;325;650\right\}\)
Bạn lập bảng sẽ tìm ra (a;b)...
Bài 2 :
a) \(3^4+3^5+3^6+3^7=3^4\left(1+3+3^2+3^3\right)=3^4.40\)
b) \(B=1+3+3^2+3^3+...+3^{99}\)
\(\Rightarrow B=\left(1+3+3^2+3^3\right)+3^4.\left(1+3+3^2+3^3\right)...+3^{96}.\left(1+3+3^2+3^3\right)\)
\(\Rightarrow B=40+3^4.40...+3^{96}.40\)
\(\Rightarrow B=40\left(1+3^4...+3^{96}\right)⋮40\)
\(\Rightarrow dpcm\)
b: \(S=3^0+3^2+3^4+...+3^{2002}\)
\(=\left(3^0+3^2+3^4\right)+...+3^{1998}\left(3^0+3^2+3^4\right)\)
\(=91\cdot\left(1+...+3^{1998}\right)⋮7\)
1.
a.\(A=1+2^1+2^2+2^3+...+2^{2007}\)
\(2A=2+2^2+2^3+....+2^{2008}\)
b. \(A=\left(2+2^2+2^3+...+2^{2008}\right)-\left(1+2^1+2^2+..+2^{2007}\right)\)
\(=2^{2008}-1\) (bạn xem lại đề)
2.
\(A=1+3+3^1+3^2+...+3^7\)
a. \(2A=2+2.3+2.3^2+...+2.3^7\)
b.\(3A=3+3^2+3^3+...+3^8\)
\(2A=3^8-1\)
\(=>A=\dfrac{2^8-1}{2}\)
3
.\(B=1+3+3^2+..+3^{2006}\)
a. \(3B=3+3^2+3^3+...+3^{2007}\)
b. \(3B-B=2^{2007}-1\)
\(B=\dfrac{2^{2007}-1}{2}\)
4.
Sửa: \(C=1+4+4^2+4^3+4^4+4^5+4^6\)
a.\(4C=4+4^2+4^3+4^4+4^5+4^6+4^7\)
b.\(4C-C=4^7-1\)
\(C=\dfrac{4^7-1}{3}\)
5.
\(S=1+2+2^2+2^3+...+2^{2017}\)
\(2S=2+2^2+2^3+2^4+...+2^{2018}\)
\(S=2^{2018}-1\)
4:
a:Sửa đề: C=1+4+4^2+4^3+4^4+4^5+4^6
=>4*C=4+4^2+...+4^7
b: 4*C=4+4^2+...+4^7
C=1+4+...+4^6
=>3C=4^7-1
=>\(C=\dfrac{4^7-1}{3}\)
5:
2S=2+2^2+2^3+...+2^2018
=>2S-S=2^2018-1
=>S=2^2018-1
Bài 1:
\(a,A=\left(2+2^2\right)+\left(2^3+2^4\right)+...+\left(2^{2009}+2^{2010}\right)\\ A=\left(1+2\right)\left(2+2^3+...+2^{2009}\right)=3\left(2+...+2^{2009}\right)⋮3\\ A=\left(2+2^2+2^3\right)+...+\left(2^{2008}+2^{2009}+2^{2010}\right)\\ A=\left(1+2+2^2\right)\left(2+...+2^{2008}\right)=7\left(2+...+2^{2008}\right)⋮7\)
\(b,\left(\text{sửa lại đề}\right)B=\left(3+3^2\right)+\left(3^3+3^4\right)+...+\left(3^{2009}+3^{2010}\right)\\ B=\left(1+3\right)\left(3+3^3+...+3^{2009}\right)=4\left(3+3^3+...+3^{2009}\right)⋮4\\ B=\left(3+3^2+3^3\right)+...+\left(3^{2008}+3^{2009}+3^{2010}\right)\\ B=\left(1+3+3^2\right)\left(3+...+3^{2008}\right)=13\left(3+...+3^{2008}\right)⋮13\)
Bài 2:
\(a,\Rightarrow2A=2+2^2+...+2^{2012}\\ \Rightarrow2A-A=2+2^2+...+2^{2012}-1-2-2^2-...-2^{2011}\\ \Rightarrow A=2^{2012}-1>2^{2011}-1=B\\ b,A=\left(2020-1\right)\left(2020+1\right)=2020^2-2020+2020-1=2020^2-1< B\)
b: \(S=\left(3^0+3^2+3^4\right)+...+3^{1998}\left(3^0+3^2+3^4\right)\)
\(=91\cdot\left(1+...+3^{1998}\right)⋮7\)
A = ( 1 + 3^2) + (3^4 + 3^6) + ... + (3^2016 + 3 ^2018 ) + 3 ^ 2020
= 10 + 3^4(1+3^2) + .... + 3^2016.(1+3^2) + 3^2020
= 10.(1+3^4+...+3^2016) + 3^2020
Mà : 3^n có tận cùng là : 1,3,9,7
Do đó 3 ^2020 không chia hết cho 10
Lại có 10.(1+3^4+...+3^2016) chia hết cho 10
=> A không chia hết cho 10
A=(1+32)+(34+36)+ ... + (32018+32020)
=(1+32)+ 34(1+32)+....+32018(1+32)
=(1+32) (1+34+....+32018)
=10 (1+34+....+32018) ⋮10 ( do 10 ⋮10)
Vậy A=1+32+34+36+ ... +32020 ⋮ 10 (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)
C = 3 - 32 + 33 - 34 + 35 - 36 +...+ 323 - 324
3C = 32 - 33 + 34 - 35 + 36-...- 323 + 324 - 325
3C - C = -325 - 3
2C = -325 - 3
2C = - ( 325 + 3) = - [(34)6. 3 + 3] = - [\(\overline{...1}\)6.3+3] = -[ \(\overline{..3}\) + 3]
2C = - \(\overline{..6}\)
⇒ \(\left[{}\begin{matrix}C=\overline{..3}\\C=\overline{..8}\end{matrix}\right.\)
⇒ C không thể chia hết cho 420 ( xem lại đề bài em nhé)
b, (\(x+1\))2022 + (\(\sqrt{y-1}\) )2023 = 0
Vì (\(x+1\))2022 ≥ 0
\(\sqrt{y-1}\) ≥ 0 ⇒ (\(\sqrt{y-1}\))2023 ≥ 0
Vậy (\(x\) + 1)2022 + (\(\sqrt{y-1}\))2023 = 0
⇔ \(\left\{{}\begin{matrix}\left(x+1\right)^{2022}=0\\\sqrt{y-1}=0\end{matrix}\right.\)
⇔\(\left\{{}\begin{matrix}x+1=0\\y-1=0\end{matrix}\right.\)
⇔\(\left\{{}\begin{matrix}x=-1\\y=1\end{matrix}\right.\)
Kết luận: cặp (\(x,y\)) thỏa mãn đề bài là:
(\(x,y\)) = (-1; 1)