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\(1,\widehat{A}+\widehat{B}+\widehat{C}=180^0\\ \text{Mà }\widehat{A}=\widehat{B}=\widehat{C}\\ \Rightarrow\widehat{A}=\widehat{B}=\widehat{C}=\dfrac{180^0}{3}=60^0\\ 2,\widehat{A}+\widehat{B}+\widehat{C}=180^0\\ \Rightarrow\widehat{B}+\widehat{C}=180^0-\widehat{A}=110^0\\ \text{Mà }\widehat{B}-\widehat{C}=10^0\\ \Rightarrow\left\{{}\begin{matrix}\widehat{B}=\left(110^0+10^0\right):2=60^0\\\widehat{C}=60^0-10^0=50^0\end{matrix}\right.\)

Đáp án B, \(\widehat{C}=\widehat{D}\)

sssssss

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 : \(\widehat{A}+\widehat{B}+\widehat{C}\) = 180^o

100^o + \(\widehat{B}+\widehat{C}\) = 180^o

\(\widehat{B}+\widehat{C}\) = 180^o - 100^o

\(\widehat{B}+\widehat{C}\) = 80^o

Góc B = (80^o+50^o):2 = 65^o

=> \(\widehat{C}\) = 65^o - 50^o = 15^o

Vậy \(\widehat{B}\) = 65^o ; \(\widehat{C}\) = 15^o

b)

 

Ta có : \(\widehat{3A}+\widehat{B}+\widehat{2C}\) = 180^o

\(\widehat{3A}+\widehat{2C}\) = 180^o - 80^o

\(\widehat{3A}+\widehat{2C}\) = 100^o

=> \(\widehat{A}\) = 100^o:(3+2).3 = 60^o

\(\widehat{C}\) = 100^o - 60^o = 40^o

Vậy \(\widehat{A}\) = 60^o ; \(\widehat{C}\) = 40^o

Vì  ΔABC ∽ ΔDEF \( \Rightarrow \widehat A = \widehat D{,^{}}\widehat B = \widehat E{,^{}}\widehat C = \widehat F\)

Mà \(\widehat A = {60^o} \Rightarrow \widehat D = {60^o}\)

\(\widehat E = {80^o} \Rightarrow \widehat B = {80^o}\)

Có \(\widehat A + \widehat B + \widehat C = {180^o}\)

\( \Rightarrow \widehat C = \widehat F = {180^o} - {60^o} - {80^o} = {40^o}\)

a: góc A-góc D=20 độ

góc A+góc D=180 độ

=>góc A=(20+180)/2=100 độ và góc D=180-100=80 độ

góc B=2*góc C

góc B+góc C=180 độ

=>góc B=2/3*180=120 độ; góc C=180-120=60 độ

b: góc B-góc C=20 độ

góc B+góc C=180 độ

=>góc B=(180+20)/2=100 độ và góc C=80 độ

=>góc A=100+20=120 độ

=>góc D=60 độ

a, Tứ giác ABCD có:

\(\widehat {ABC} + \widehat {BCD} + \widehat {CDA} + \widehat {DAB} = {360^0}\)

\(\widehat {ABC} + \widehat {DAB} + \widehat {ABC} + \widehat {DAB} = {360^0}\)(do \(\widehat {DAB} = \widehat {BCD};\widehat {ABC} = \widehat {CDA}\))

\(\begin{array}{l}2\widehat {ABC} + 2\widehat {DAB} = {360^0}\\\widehat {ABC} + \widehat {DAB} = \dfrac{{{{360}^0}}}{2} = {180^0}\end{array}\)

b, Ta có: \(\widehat {xAD} + \widehat {DAB} = {180^0}\)(do tia Ax là tia đối của tia AB)

Nên

 \(\begin{array}{l}\widehat {xAD} + \widehat {DAB} = \widehat {ABC} + \widehat {DAB}\\ \Rightarrow \widehat {xAD} = \widehat {ABC}\end{array}\)

Suy ra AD//BC (hai góc đồng vị bằng nhau)

c, Vì AD//BC \( \Rightarrow \widehat {ADB} = \widehat {DBC}\) (2 góc so le trong)

Xét \(\Delta A{\rm{D}}B\) có \(\widehat {ABD} = {180^0} - \widehat {ADB} - \widehat {DAB} = {180^0} - \widehat {DBC} - \widehat {BCD}\left( 1 \right)\)

( vì \(\widehat {ADB} = \widehat {DBC};\widehat {DAB} = \widehat {BCD})\)

Xét \(\Delta CDB\) có: \(\widehat {BDC} = {180^0} - \widehat {DBC} - \widehat {BCD}\left( 2 \right)\)

Từ (1), (2) suy ra \(\widehat {ABD} =\widehat {BDC}\)

Xét \(\Delta ADB\) và \(\Delta BCD\)có:

\(\left. \begin{array}{l}DBchung\\\widehat {ABD} = \widehat {BDC}\\\widehat {ABD} = \widehat {DBC}\end{array} \right\} \Rightarrow \Delta A{\rm{D}}B = \Delta C{\rm{D}}B \Rightarrow A{\rm{D}} = BC,AB = CB\)

Suy ra tứ giác ABCD có cặp cạnh đối bằng nhau nên ABCD là hình bình hành.