Mathematics
Senior High
2枚目に解説をしてくれたものを載せたのですが、内容を理解出来ませんでした(T_T)
補足など、もう少し丁寧に教えて頂きたいです🙇♂️
(1) sin 50。+ sin^40°
Sin80 CO
(3)* tan55°tan35°
(4)* cos10°sin10°(tan10°+ tan80°)
cos(a+3)
252 Aが鋭角で, cosA =
1
のとき,次の値を求めよ。
3
(Y sin(90°- A).
(2) cos(90° - A)
(3) tan(90°- A)
TITLE
252. Ad家
SinratB)
COSA- 3
= SindcosBtcosasinp
cos (atp)
= (05以c0sβ年5hdsin
Sin(90-A)
= Sin9ocos A -Cosqo'simA
0
- CosA
2)
cos(902A).
Cos90cosA tSin90 sinA
- SInA
-家(46-A)
ニ
1-
3
3
ton(90-A)
ム(98-A)
(0s(90-A)
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