作业帮函数y=【cos(3x+π/4)-sin(3x+π/4)】/[cos(3x+π/4)+sin(3x+π/4)]的定义域,最小正周期、值域是?
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![函数y=【cos(3x+π/4)-sin(3x+π/4)】/[cos(3x+π/4)+sin(3x+π/4)]的定义域,最小正周期、值域是?](/uploads/image/z/8712506-2-6.jpg?t=%E5%87%BD%E6%95%B0y%3D%E3%80%90cos%EF%BC%883x%2B%CF%80%2F4%29-sin%283x%2B%CF%80%2F4%EF%BC%89%E3%80%91%2F%5Bcos%EF%BC%883x%2B%CF%80%2F4%29%2Bsin%283x%2B%CF%80%2F4%EF%BC%89%5D%E7%9A%84%E5%AE%9A%E4%B9%89%E5%9F%9F%2C%E6%9C%80%E5%B0%8F%E6%AD%A3%E5%91%A8%E6%9C%9F%E3%80%81%E5%80%BC%E5%9F%9F%E6%98%AF%3F)
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函数y=【cos(3x+π/4)-sin(3x+π/4)】/[cos(3x+π/4)+sin(3x+π/4)]的定义域,最小正周期、值域是?
函数y=【cos(3x+π/4)-sin(3x+π/4)】/[cos(3x+π/4)+sin(3x+π/4)]的定义域,最小正周期、值域是?
函数y=【cos(3x+π/4)-sin(3x+π/4)】/[cos(3x+π/4)+sin(3x+π/4)]的定义域,最小正周期、值域是?
上下同除以cos(3x+π/4)得:原式=【1-tan(3x+π/4)】/[1+tan(3x+π/4)]
用tan的和分角公式,得原式=[1-tan3x-1-tan3x]/[1-tan3x+1+tan3x]
化简,得:原式=-2tan3x/2,即,原式=-2tan3x
∴,定义域为[-π/6+kπ/3,π/6+kπ/3]
最小正周期π/3
值域为R
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