In ΔABC, ∠A = 50° and the external bisectors of ∠B and ∠C meet at O as shown in figure. The measure of ∠BOC is
Answers
Answer:
\large\underline{\sf{Solution-}}
Solution−
It is given that,
The external bisectors of ∠B and ∠C of ΔABC meet at point P.
∠A = 100
∠CPB = 8K
Now,
Since, BP bisects ∠ CBQ.
Let assume that, ∠QBP = ∠PBC = x say.
Also, .
It is given that, CP bisects ∠BCR.
Let assume that, ∠CRP = ∠PCB = y say.
Now,
Let further assume that, ∠ABC = a and ∠ACB = b.
Now,
Consider, Δ ABC,
We know, Sum of all interior angles of a triangle is supplementary.
So, 100° + a + b = 180°
\bf\implies \:a + b = 80 \degree - - - (1)⟹a+b=80°−−−(1)
Now,
Consider, Δ BCP
Again, using Sum of all interior angles of a triangle is supplementary.
So,
\rm :\longmapsto\:x + y + 8k = 180 \degree:⟼x+y+8k=180°
\bf :\longmapsto\:x + y = 180 \degree - 8k - - - (2):⟼x+y=180°−8k−−−(2)
Now,
Since, ABQ is a straight line.
\rm :\longmapsto\:x + x + a = 180 \degree:⟼x+x+a=180°
\bf :\longmapsto\:2x + a = 180 \degree - - - (3):⟼2x+a=180°−−−(3)
Again, As ACR is a straight line.
\rm :\longmapsto\:y + y + b = 180 \degree:⟼y+y+b=180°
\bf :\longmapsto\:2y + b = 180 \degree - - - (4):⟼2y+b=180°−−−(4)
On adding equation (3) and (4), we get
\rm :\longmapsto\:2y + b + 2x + a= 360 \degree:⟼2y+b+2x+a=360°
\rm :\longmapsto\:2(y + x)+ (b + a)= 360 \degree:⟼2(y+x)+(b+a)=360°
Now, using equation (1) and (2), we get
\rm :\longmapsto\:2(180\degree \: - 8k)+ 80\degree= 360 \degree:⟼2(180°−8k)+80°=360°
\rm :\longmapsto\:360\degree \: - 16k+ 80\degree= 360 \degree:⟼360°−16k+80°=360°
\rm :\longmapsto\: - 16k+ 80\degree= 0:⟼−16k+80°=0
\rm :\longmapsto\: - 16k = - 80\degree:⟼−16k=−80°
\rm :\longmapsto\: k = 5\degree:⟼k=5°
Hence,
Value of k = 5°.
Short Cut trick,
1. If the external bisectors of ∠B and ∠C of ΔABC meet at point P, then ∠BPC = 90° - 1/2 ∠BAC.
2. If the internal bisectors of ∠B and ∠C of ΔABC meet at point P, then ∠BPC = 90° + 1/2 ∠BAC.
Answer:
Given ABC is a triangle and external bisector of ∠B and ∠C meet at O,
And ∠A=50
Then Ex ∠PBC=∠A+∠C -(1)
Then Ex ∠QCB=∠B+∠A -(2)
∠PBC=2∠OBC ( BO is bisector of angle B)
∠QCB=2∠BCO ( CO is bisector of angle C)
Add (1) and (2) we get
∠PBC+∠QCB=∠A+∠C+∠B+∠A
⇒2∠OBC+2∠BCO=∠A+180
In triangle ABC
∠A+∠B+∠C=180
and ∠A=50 (given)
Then ∠2∠OBC+2∠BCO=∠A+180
⇒∠OBC+∠BCO= 1/2∠+90 = +90=115
ΔBOC
∠BOC+∠OBC+∠BCO=180
⇒∠BOC=180−115=65
HOPE THE ANSWER IS CORRECT