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\(1,\widehat{A}+\widehat{B}+\widehat{C}=180^0\\ \text{Mà }\widehat{A}=\widehat{B}=\widehat{C}\\ \Rightarrow\widehat{A}=\widehat{B}=\widehat{C}=\dfrac{180^0}{3}=60^0\\ 2,\widehat{A}+\widehat{B}+\widehat{C}=180^0\\ \Rightarrow\widehat{B}+\widehat{C}=180^0-\widehat{A}=110^0\\ \text{Mà }\widehat{B}-\widehat{C}=10^0\\ \Rightarrow\left\{{}\begin{matrix}\widehat{B}=\left(110^0+10^0\right):2=60^0\\\widehat{C}=60^0-10^0=50^0\end{matrix}\right.\)
a/
\(Ax\perp m\left(gt\right);By\perp m\left(gt\right)\) => Ax//By (cùng vuông góc với m)
Mà Cz//Ax (gt)
=> Cz//By (cùng // với Ax)
b/
\(\widehat{BCz}=\widehat{ACB}-\widehat{C}=110^o-30^o=80^o\)
Ta có
Cz//By (cmt) \(\Rightarrow\widehat{BCz}=\widehat{CBy}=80^o\) (góc so le trong)
c/
\(CD\perp Ax\left(gt\right)\Rightarrow\widehat{ADC}=90^o\)
Cz//Ax (gt) \(\Rightarrow\widehat{A}=\widehat{C}=30^o\) (Góc so le trong)
Xét tg vuông ACD có
\(\widehat{ACD}=\widehat{ADC}-\widehat{A}=90^o-30^o=60^o\)
a: \(\widehat{EAB}=\dfrac{180^0-\widehat{BAC}}{2}=\dfrac{\widehat{ABC}+\widehat{ACB}}{2}\)
\(\widehat{EBA}=180^0-\widehat{ABC}\)
=>\(\widehat{EAB}+\widehat{EBA}=\dfrac{1}{2}\widehat{ABC}+\dfrac{1}{2}\widehat{ACB}+180^0-\widehat{ABC}=-\dfrac{1}{2}\widehat{ABC}+\dfrac{1}{2}\widehat{ACB}+180^0\)
=>\(\widehat{E}=180^0+\dfrac{1}{2}\widehat{ABC}-\dfrac{1}{2}\widehat{ACB}-180^0=\dfrac{1}{2}\widehat{ABC}-\dfrac{1}{2}\widehat{ACB}\)
=>góc E=1/2góc BAx-góc C
b: góc E=1/2góc BAx-góc BAx+góc B
=góc B-1/2góc xAB
c: góc E=1/2góc ABC-1/2góc ACB
=>2*góc E=góc ABC-góc ACB
a)
=> Ta có : \(\widehat{A}+\widehat{B}+\widehat{C}\) = 180o
100o + \(\widehat{B}+\widehat{C}\) = 180o
\(\widehat{B}+\widehat{C}\) = 180o - 100o
\(\widehat{B}+\widehat{C}\) = 80o
Góc B = (80o+50o):2 = 65o
=> \(\widehat{C}\) = 65o - 50o = 15o
Vậy \(\widehat{B}\) = 65o ; \(\widehat{C}\) = 15o
b)
Ta có : \(\widehat{3A}+\widehat{B}+\widehat{2C}\) = 180o
\(\widehat{3A}+\widehat{2C}\) = 180o - 80o
\(\widehat{3A}+\widehat{2C}\) = 100o
=> \(\widehat{A}\) = 100o:(3+2).3 = 60o
\(\widehat{C}\) = 100o - 60o = 40o
Vậy \(\widehat{A}\) = 60o ; \(\widehat{C}\) = 40o
a, \(3\widehat{A}=4\widehat{B}\Leftrightarrow\dfrac{3\widehat{A}}{12}=\dfrac{4\widehat{B}}{12}\Rightarrow\dfrac{\widehat{A}}{4}=\dfrac{\widehat{B}}{3}\)
Áp dụng tính chất dãy tỉ số bằng nhau ta có:
\(\dfrac{\widehat{A}}{4}=\dfrac{\widehat{B}}{3}=\dfrac{\widehat{A}-\widehat{B}}{4-3}=\dfrac{20^0}{1}=20^0\)
+)\(\dfrac{\widehat{A}}{4}=20^0\Rightarrow\widehat{A}=20^0.4=80^0\)
+)\(\dfrac{\widehat{B}}{3}=20^0\Rightarrow\widehat{B}=20^0.3=60^0\)
Xét △ABC có:
\(\widehat{A}+\widehat{B}+\widehat{C}=180^0\\ 80^0+60^0+\widehat{C}=180^0\\ \widehat{C}=180^0-80^0-60^0=40^0\)
Vậy \(\Delta ABC\) có \(\widehat{A}=80^0;\widehat{B}=60^0;\widehat{C}=40^0\)
a) Gọi số đo các góc lần lượt là x,y ( x,y > 0 )
Theo bài ra ta có:
\(\dfrac{x}{4}=\dfrac{y}{3}\) và \(x-y=20^0\)
Áp dụng tính chất dãy tỉ số bằng nhau ta có:
\(\dfrac{x}{4}=\dfrac{y}{3}=\dfrac{x-y}{4-3}=\dfrac{20^0}{1}=20^0\)
\(\Rightarrow\left\{{}\begin{matrix}\dfrac{x}{4}=20^0\Rightarrow x=80^0\\\dfrac{y}{3}=20^0\Rightarrow x=60^0\end{matrix}\right.\)
Xét \(\Delta ABC\) có:
\(\widehat{A}+\widehat{B}+\widehat{C}=180^0\)
mà \(\widehat{A}=80^0;\widehat{B}=60^0\)
\(\Rightarrow80^0+60^0+\widehat{C}=180^0\)
\(\Rightarrow140^0+\widehat{C}=180^0\)
\(\Rightarrow\widehat{C}=180^0-140^0\)
\(\Rightarrow\widehat{C}=40^0\)
Vậy ........................
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Kẻ \(Bm//Ax\). Ta có : \(\widehat{ABm}+\widehat{A}=180^0\) ( 1 )
Do \(Bm//Ax\)và \(Cy//Ax\)nên \(Bm//Cy\)
\(Bm//Cy\Rightarrow\widehat{CBm}+\widehat{C}=360^0\) ( 2 )
Từ 1 và 2 suy ra \(\widehat{ABm}+\widehat{A}+\widehat{CBm}+\widehat{C}=360^0\)
Do đó \(\widehat{A}+\widehat{B}+\widehat{C}=360^0\)