题目内容
求cos420°+cos440°+cos480°的值.
考点:二倍角的余弦
专题:三角函数的求值
分析:根据三角函数二倍角的公式反复进行计算即可得到结论.
解答:
解:cos420°+cos440°+cos480°=cos420°+cos440°+sin410°
=
[(cos40°+1)2+(cos80°+1)2+(1-cos20°)2]
=
[(1+2cos40°+cos240°)+1+2sin10°+sin210°+1-2cos20°+cos220°]
=
[(3+2cos40°+
(1+cos80°)+2cos80°+
(1-cos20°)-2cos20°+
(1+cos40°)]
=
[(3+
+
(cos40°+cos80°-cos20°)]
=
[
+
(sin50°+sin10°-cos20°)]
=
[
+
(2sin30°cos20°-cos20°)]
=
×
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点评:本题主要考查三角函数值的化简,利用三角函数二倍角的公式是解决本题的关键.,综合性较强,难度较大.
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