2007-1-28 12:14 AM
vic1602
[請更改-fu]A-maths
解下列方程,其中0≦x≦360
[u]1 [/u]
cos2x = (sinx)^4 + (cosx)^4
之後點?
[u]2[/u]
2(sinx)^2-sin2x-2=0
2(sin)^2-2sinxcosx-1=0
之後點?
求通解
[u]3[/u]
cos(x+3x)-cos(x-3x)=1
cos4x-cos2x=1
2(cos2x)^2-1-cos2x=1
2(cos2x)^2-cos2x-2=0
之後點?
[[i] 本帖最後由 AH-Fu` 於 2007-2-1 06:36 PM 編輯 [/i]]
2007-2-1 06:36 PM
ffu;)
請加上功課繳交日期
2007-2-2 09:05 PM
pizzay
1
cos2x = (sinx)^4 + (cosx)^4
cos2x = (sin^2x)^2+(cos^2x)^x
cos2x = (sin^2x+cos^2x)^2 -2sin^2xcos^2x
cos2x = 1 -2sin^2x(1 -2sin^2x)
1-2sin^2x= 1 -2sin^2x + 4sin^4x
4sin^4x=0
sin^4x=0
sinx=0
x=0,180,360
2007-2-2 09:39 PM
pizzay
2
2(sinx)^2-sin2x-2=0
2(sinx)^2-2-sin2x=0
2[(sinx)^2-1]-sin2x=0
-2(cosx)^2 -2sinxcosx=0
-2(cosx)^2=2sinxcosx
-2cosx=2sinx
sinx+cosx=0
(sinx+cosx)^2=2sinxcosx
sinxcosx=1/2
sinx=1/2 or cosx=1/2
x=30,60,150,300