sina=(4-2m)/(m+5),cosa=(m-3)/(m+5),a为4项限角,求tana
人气:382 ℃ 时间:2020-04-04 23:29:43
解答
sin^2a+cos^2a=1
即:(4-2m)^2/(m+5)^2+(m-3)^2/(m+5)^2=1
(4-2m)^2+(m-3)^2=(m+5)^2
化建得:m(m-8)=0
m=8或0
因为:第四象限,所以sina0
分别代入
m=8 sina=-12/130
m=-0 sina=4/5>0 cosa=-3/5
推荐
- 已知sina=m-3/m+5,cosa=4-2m/m+5(m≠0),则m=___,tana=____
- sina=(4-2m)/(m+5),cosa=(m-3)/(m+5)且a是第四象限角求tana
- 若角A是第二象限角,且sinA=(m-3)/(m+5),cosA=(4-2m)/(m+5),求m和tanA的值
- 已知sina=2m/5 cosa=(m-1)/5 则tana=
- 求大神解:已知cosa=2m/(m^2+1).(m≤-1), .求sina,tana
- 元素周期表里每一横行叫一个周期,
- 与朱元思书从视觉角度写景物的对偶句其表达效果是?
- The little girl has her hair ------ by her mother every moring.
猜你喜欢
