2. C D
300 300 B
A
Т.к. 2BD = BA, то ∠DAB = ∠CBD = 30° ⇒ =4
CB = 2CD ⎫ ⎪ 1 ⎬ ⇒1= CB = CA⎪ 2 ⎭
CD 1 3 ⇒ CD = CA ⇒ AD = CA ⇒ 4AD = 3CA. CA 4 4
В. 6, С-21. 1. B
K
A
D
C
146
Геометрия 7 кл_Дидактич материалы_Зив Мейлер_2003_ГДЗ
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