在三角形ABC中,角A,B,C的对边分别是a,b,c。已知sinC+cosC=1-sin0.5C. 若a^2+b^2=4(a+b)-8.求边c的值
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解: ∵sinC=2sin0.5C ×cos0.5C, cosC=cos0.5C×cos0.5C-sin0.5C×sin0.5C
∴2sin0.5C ×cos0.5C+cos0.5C×cos0.5C-sin0.5C×sin0.5C+sin0.5C=1
∵∠C<180°
∴sin0.5C,cos0.5C>0, 设sin0.5C=x
则有:2x×(1-x^2)^(1/2)+1-2×x^2+x=1
解得:x=[7^(1/2)-1]/4
∴cosC=cos0.5C×cos0.5C-sin0.5C×sin0.5C=1-2sin0.5C×sin0.5C
=1-2×x^2=7^(1/2)/4
又∵a^2+b^2=4(a+b)-8 化简得到:(a-2)^2+(b-2)^2=0
∴a=b=2
根据余弦定理:c^2 = a^2 + b^2 - 2·a·b·cosC
=4+4-8×7^(1/2)/4
∴c=7^(1/2)-1
∴2sin0.5C ×cos0.5C+cos0.5C×cos0.5C-sin0.5C×sin0.5C+sin0.5C=1
∵∠C<180°
∴sin0.5C,cos0.5C>0, 设sin0.5C=x
则有:2x×(1-x^2)^(1/2)+1-2×x^2+x=1
解得:x=[7^(1/2)-1]/4
∴cosC=cos0.5C×cos0.5C-sin0.5C×sin0.5C=1-2sin0.5C×sin0.5C
=1-2×x^2=7^(1/2)/4
又∵a^2+b^2=4(a+b)-8 化简得到:(a-2)^2+(b-2)^2=0
∴a=b=2
根据余弦定理:c^2 = a^2 + b^2 - 2·a·b·cosC
=4+4-8×7^(1/2)/4
∴c=7^(1/2)-1
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