1、1.2.4 诱导公式 同步练习1sin585的值为()AB.C D.解析:选A.sin585sin(360225)sin225sin(18045)sin45.2cos(225)sin(225)等于()A. BC0 D.解析:选C.cos(225)sin(225)cos225sin225cos(18045)sin(18045)cos45sin4503cos2010()A BC. D.解析:选B.cos2010cos(3605210)cos210cos(18030)cos30.4tancos()sin()的值为_解析:原式tan(2)cos(2)sin(2)tan2()cos(2)sin(2)ta
2、ncossin12.答案:2一、选择题1sin()的值是()A. BC. D解析:选A.sin()sin(4)sin.2已知cos(),且|,则tan()A B.C D.解析:选C.cos(),sin,又|ac BabcCbca Dacb解析:选A.atan()tantan()tan;bcoscos(6)cos;csin()sinsin(8)sin.,bac.二、填空题7已知cos(),则cos()_.解析:cos()cos2()cos().答案:8sin21sin22sin23sin289_.解析:令Ssin21sin22sin23sin289,则Ssin289sin288sin287sin
3、21cos21cos22cos23cos289,2S(sin21cos21)(sin22cos22)(sin289cos289)89,S.答案:9若(,0),且sin(2)log8,则tan(2)_.解析:sin(2)log8,sin.(,0),cos,tan(2)tan.答案:三、解答题10求tan()sin()costan的值解:原式tan(4)sin(14)cos(6)tan(9)tan(2)sin()costantansinsin0.11已知cos(75),为第三象限角,求cos(105)sin(105)的值解:由于cos(105)cos180(75)cos(75),sin(105)sin(105)sin180(75)sin(75)由于cos(75)0,为第三象限角,那么75为第四象限角,则sin(75),所以cos(105)sin(105)()().12已知f().(1)化简f();(2)若是第三象限角,且cos(),求f()的值解:(1)原式cos.(2)cos()sin,sin,又是第三象限角,cos,f()cos.高考资源网w w 高 考 资源 网
