Question 1

This is the last question i have of this! i have been stuck on it all of yesterday

Question 2

Given:

$\bar{AD}\text{ is a diameter of }\odot B$

Therefore,

$m\angle A=(1)/(2)m\angle CBD$

Thus

$\begin{gathered} \text{If m}\angle A=35^0, \\ m\angle CBD=2* m\angle A=2*35^0=70^0 \\ \therefore m\angle CBD=70^0 \end{gathered}$

Also,

$\begin{gathered} \text{If m}\angle CBD=100^0, \\ \therefore m\angle A=(1)/(2)*100^0=50^0 \\ \therefore m\angle A=50^0 \end{gathered}$

Finally,

$\begin{gathered} \text{If m}\angle A=x, \\ m\angle CBD=2* x=2x \\ \therefore m\angle CBD=2x \end{gathered}$

Final answers

$\begin{gathered} a)\text{ }m\angle CBD=70^0 \\ b)\text{ }m\angle A=50^0 \\ c)\text{ }m\angle CBD=2x \end{gathered}$

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