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1:
Xét ΔCHD có \(\widehat{CHD}+\widehat{HCD}+\widehat{HDC}=180^0\)
=>\(\widehat{HCD}+\widehat{HDC}=180^0-110^0=70^0\)
=>\(\dfrac{1}{2}\left(\widehat{ADC}+\widehat{BCD}\right)=70^0\)
=>\(\widehat{ADC}+\widehat{BCD}=140^0\)
Xét tứ giác ABCD có
\(\widehat{ADC}+\widehat{BCD}+\widehat{DAB}+\widehat{ABC}=360^0\)
=>\(\widehat{DAB}+\widehat{ABC}=220^0\)
mà \(\widehat{DAB}-\widehat{ABC}=40^0\)
nên \(\widehat{ABC}=\dfrac{220^0-40^0}{2}=90^0\)
=>BA\(\perp\)BC
2:
Xét tứ giác ABCD có
\(\widehat{BAD}+\widehat{ABC}+\widehat{BCD}+\widehat{ADC}=360^0\)
=>\(\widehat{BCD}+\widehat{ADC}=360^0-220^0=140^0\)
=>\(2\cdot\left(\widehat{KCD}+\widehat{KDC}\right)=140^0\)
=>\(\widehat{KCD}+\widehat{KDC}=70^0\)
Xét ΔCKD có
\(\widehat{CKD}+\widehat{KCD}+\widehat{KDC}=180^0\)
=>\(\widehat{CKD}=180^0-70^0=110^0\)
\(\widehat{A}=\widehat{B}=\widehat{C}=\widehat{D}=90^0\)