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 解:(1)与(6).$\because \angle A = \angle M$,$AB = MN$,$\angle B = \angle N$.
$\therefore \triangle ABC \cong \triangle MNG$($ASA$).
(2)与(4).在$\triangle TSW$中,$\angle S = 180° - 70° - 50° = 60°$.
$\angle S = \angle Y$,$WS = ZY$,$\angle W = \angle Z$,$\therefore \triangle TSW \cong \triangle XYZ$($ASA$).
(3)与(5)$\because \angle R = \angle D$,$PR = FD$,$\angle P = \angle F$.
$\therefore \triangle PQR \cong \triangle FED$($ASA$).
证明:$\because \angle ABC = \angle DCB$,$\angle 1 = \angle 2$,
$\therefore \angle DBC = \angle ACB$.
在$\triangle ABC$和$\triangle DCB$中,
$\begin{cases} \angle ABC = \angle DCB, \\BC = CB, \\\angle ACB = \angle DBC, \end{cases}$
$\therefore \triangle ABC \cong \triangle DCB$.
$\therefore AB = DC$.
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