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Q) Prove that the tangent at any point of a circle is perpendicular to the radius through the point of contact.
Q31A – Sample Question Paper – Set 1 – Maths Standard – CBSE 2026
Ans:
Step 1: Let’s make a diagram for better understanding of the question:
Here, we have a circle with center O and IB is its radius of length R.
We have taken a point A outside the circle at same distance as radius R and from point A, tangent AB is drawn on the circle.
We need to prove that tangent AB is Ʇ to radius OB
or we can say that we need to prove that ∠ OBA is 90 0
Step 2:
Let’s consider that ∠ OBA is 90 0
If our findings do not match with perpendicularity, our assumption will be incorrect, and it willl be proved that ∠ OBA is not 90 0
Step 3: Next, Let’s connect OA and draw a perpendicular on OA from point B.
Now, we compare Δ OBC and Δ ABC:
∴ OB = AB (taken initially)
∠ OCB = ∠ ACB (BC is Ʇ to OA)
BC = BC (Common side)
∴ by RHS rule of congruency, Δ OBC 
Δ ABC
Step 4: Now by CPCT rule, 
∠ OBC = ∠ ABC
∵ we considered, ∠ OBA = 90 0
and now ∠ OBC = ∠ ABC
∴ ∠ OBC = ∠ ABC = 45 0
Step 5: Now we look in Δ OBC,
∠ OCB = 90 0
∠ OBC = 45 0
∴ ∠ BOC = 180 0 – 90 0 – 45 0 = 45 0
Step 6: we compare Δ OBC and Δ ABC:
Here, ∠ BOC = ∠ ABC (= 45 0, from step 4 & 5)
∠ BCA = ∠ BCO (BC is Ʇ OA)
∴ Δ OBC ~ Δ ABC
∴ 
∴ BC 2 = OC . AC
Step 7: We look at Right angle triangles, Δ OBC and Δ ABC,
by applying Pythagoras theorem in Δ OBC we get:
OB 2 = OC 2 + BC 2 …………. (i)
Similarly, from Δ ABC, we get:
AB 2 = AC 2 + BC 2 ………… (ii)
By adding equations (i) and (ii), we get:
OB 2 + AB 2 = (OC 2 + BC 2 ) + (AC 2 + BC 2 )
= OC 2 + AC 2 + 2 BC 2
from Step 6, we have BC 2 = OC. AC
∴ OB 2 + AB 2 = OC 2 + AC 2 + 2 (OC . AC)
= (OC + AC) 2
∵ OC + AC = OA
∴ OB 2 + AB 2 = OA 2
This is possible only if ∠ OBA = 90
Since it confirms our assumption, hence ∠ OBA = 90
Therefore, tangent drawn to a point on circle is perpendicular to the radius.
Hence Proved!
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