sin²2a + sin(2a)cos(a) -cos(2a) = 1 a属于(0,π/2)
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sin²2a+sin(2a)cos(a)-cos(2a)=1a属于(0,π/2)sin²2a+sin(2a)cos(a)-cos(2a)=1a属于(0,π/2)sin²2
sin²2a + sin(2a)cos(a) -cos(2a) = 1 a属于(0,π/2)
sin²2a + sin(2a)cos(a) -cos(2a) = 1 a属于(0,π/2)
sin²2a + sin(2a)cos(a) -cos(2a) = 1 a属于(0,π/2)
原方程可化为:sin²2a + sin(2a)cos(a) -[cos(2a) +1 ]=0
即:sin²2a + sin(2a)cos(a) -2cos²a=0
(sin2a+2cosa)(sin2a-cosa)=0
所以:sin2a=-2cosa或sin2a=cosa
即:2sina*cosa=-2cosa或2sina*cosa=cosa
因为:a属于(0,π/2),所以:cosa>0
则:sina=-1(无解)或sina=1/2
解得:a=π/6