CAN SOMEONE PLEASE HELP ME WITH THIS QUESTIONS! !!
Answers
Answer:
19. ∠APB=∠ARB=90° (∵angles in the semicircle)
In ΔAPB, By angle sum property of triangle
∠BAP+∠APB+∠PBA=180°
⇒ 55°+90°+∠PBA=180°
⇒ ∠PBA=35°
Now, ∠PQB=∠PAB=55° (∵Angle subtended by the same chord)
In ΔPQB, By angle sum property of triangle
∠BPQ+∠PQB+∠QBP=180°
⇒ ∠BPQ+55°+25°=180°
⇒ ∠BPQ=100°
In ΔARB, By angle sum property of triangle
∠ARB+∠ABR+∠BAR=180°
OR
Let two circles O and O' intersect at two points A and B so that AB is the common chord of two circles and OO' is the line segment joining the centres
Let OO' intersect AB at M
Now Draw line segments OA, OB , O'A and O'B
In ΔOAO' and OBO' , we have
OA = OB (radii of same circle)
O'A = O'B (radii of same circle)
O'O = OO' (common side)
⇒ ΔOAO' ≅ ΔOBO' (SSS congruency)
⇒ ∠AOO' = ∠BOO'
⇒ ∠AOM = ∠BOM ......(i)
Now in ΔAOM and ΔBOM we have
OA = OB (radii of same circle)
∠AOM = ∠BOM (from (i))
OM = OM (common side)
⇒ ΔAOM ≅ ΔBOM (SAS congruncy)
⇒ AM = BM and ∠AMO = ∠BMO
But
∠AMO + ∠BMO = 180°
⇒ 2∠AMO = 180°
⇒ ∠AMO = 90°
Thus, AM = BM and ∠AMO = ∠BMO = 90°
Hence OO' is the perpendicular bisector of AB.
⇒ 90°+50°+∠BAR=180°
⇒ ∠BAR=40°
The figure of this question is here ⬇⬇
