11. Soi
Rs
3. For what value of K, the system of equations x - Ky - K
and x +(K-2) y = 2 will have no any solutions?
(a) 1
(b) 2 (c)-1
(d) 0
Answers
Answer:
Given,A+B=90°
⇒B=90°-A...(1)⇒B=90°−A...(1)
In equation (1) , multiplying both the sides by cos
⇒ \cos(B) = \cos(90° - A)⇒cos(B)=cos(90°−A)
In this known, Sin θ = Cos θ (90°-θ)
⇒ \cos(B) = \sin(A)⇒cos(B)=sin(A)
Given ,X + Y=90°
⇒ \cos X = \cos(90° -Y )⇒cosX=cos(90°−Y)
In this known, Sin θ = Cos θ (90°-θ)
⇒x = 90° - y...(1)⇒x=90°−y...(1)
In equation (1) , multiplying both the sides by cos
⇒ \cos X = \sin Y⇒cosX=sinY
➦ Q.9
GIVEN :- A + B = 90° , Sin A = Sin a , Sin B= Sin b
Now ,
LHS =a² + b² = { \sin }^{2} A + { \sin }^{2} BLHS=a²+b²=sin
2
A+sin
2
B
={ \sin }^{2} A + { \sin }^{2} (90°-A)=sin
2
A+sin
2
(90°−A)
⇒{ \sin }^{2} A + { \cos }^{2} A⇒sin
2
A+cos
2
A
∴{ A + B = 90°
∴B = 90° - A}
∴1 = RHS∴1=RHS
➣Let's Recall
➛sin(90°−x) = cos x
➛cos(90°−x) = sin x
➛tan(90°−x) = cot x
➛cot(90°−x) = tan x
➛sec(90°−x) = csc x
➛csc(90°−x) = sec x