(a) 2
(b) `frac{1}{2}`
(c) `frac{1}{3}`
(d) `frac{1}{4}`
![]()
(b) `frac{1}{2}`
(b) `frac{1}{2}`
(c) `frac{1}{3}`
(d) `frac{1}{4}`
(b) `frac{1}{2}`
Explanation:
= `\frac{cot y^{0}}{cot x^{0}} = \frac{\frac{1}{tan y^{0}}}{\frac{1}{tan x^{0}}`
= `\frac{1}{tan y^{0}}\times\frac{tan x^{0}}{1}`
= `\frac{tan x^{0}}{tan y^{0}}`
Now,
(1) `tan x^{0}`
= `tan x^{0}` = `frac{CD}{AC}` = `frac{a}{AC}`
(2) `tan x^{0}`
= `tan y^{0}` = `frac{CB}{AC}`
= `frac{a + a}{AC}`
= `frac{2a}{AC}`
then,
= `\frac{cot y^{0}}{cot x^{0}}=\frac{tan x^{0}}{tan y^{0}}`
= `\frac{\frac{a}{AC}}{\frac{2a}{AC}}`
= `"a"/"AC"\times"AC"/"2a"`
= `"a"/"2a"`
= `1/2`
![](https://www.pinterest.com/pin/create/button/?url=https://bzzii.blogspot.com/2021/09/in-given-figure-d-is-mid-point-of-bc.html&media=https://blogger.googleusercontent.com/img/b/R29vZ2xl/AVvXsEjdOoPzXzfVTvn18rgvXQ0O5qXqpCMOS-aCCuZmQqU_0aUXHEpUsCmruQurGR82on-rpsdJ4jy391NM-MQmHaiSpQrAB_bb4xxQ57VhVUHNLhzorr0KwLpFSa5F7sCNwsqt5gF9gu37T10/s320/jk.png&description=In the Given Figure, D Is the Mid-Point of BC, Then the Value of `"Cot Y °"/"Cot X °"` Is - Mathematics){kind=link}
0 Comments