问题
解答题
| 求值: (1)sin30°+sin245°+
(2)
|
答案
(1)原式=
+(1 2
)2+2 2
×(1 3
)23
=
+1 2
+1 2
×31 3
=
+1 2
+11 2
=2.
(2)原式=(
+4×3
)(4×1 2
-1 2
)3
=(
+2)(2-3
)3
=1
=1.
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| 求值: (1)sin30°+sin245°+
(2)
|
(1)原式=
+(1 2
)2+2 2
×(1 3
)23
=
+1 2
+1 2
×31 3
=
+1 2
+11 2
=2.
(2)原式=(
+4×3
)(4×1 2
-1 2
)3
=(
+2)(2-3
)3
=1
=1.
