Centre–Chord Perpendicular Bisector

GCSE Circle Theorems circle theorems chord

\( \text{A radius/diameter perpendicular to a chord bisects the chord} \)

Statement

In a circle, any radius or diameter drawn perpendicular to a chord will bisect that chord. That means the chord is cut into two equal halves at the point of intersection.

Why it’s true (short reason)

Join the centre of the circle to the endpoints of the chord: you create two congruent right-angled triangles.
Both triangles share the radius as their hypotenuse, and they share the perpendicular line as a height.
By symmetry, the two halves of the chord must be equal. This is why the perpendicular radius/diameter bisects the chord.

Recipe (how to use it)

Identify the circle, its centre \(O\), and chord \(AB\).
Draw a radius or diameter \(OM\) such that \(OM \perp AB\).
By the perpendicular bisector property: \(AM = MB\).
Use Pythagoras in right triangle \(OAM\) if you need to find chord length from radius and perpendicular distance: \[ OA^2 = OM^2 + AM^2. \]
Multiply \(AM\) by 2 to get the full chord length: \(AB = 2AM\).

Spotting it

Use this property when:

A question involves a perpendicular line from the centre to a chord.
You are asked for the length of a chord, given the radius and the perpendicular distance from the centre.
You need to prove that a line bisects a chord or that two segments are equal.

Common pairings

Pythagoras’ theorem (to calculate chord length or perpendicular distance).
Circle theorems (equal radii, symmetry of chords).
Geometry of isosceles triangles (two radii are equal).

Mini examples

A radius perpendicular to chord \(AB=12\) cm → each half is \(6\) cm.
Circle with radius \(10\) cm, perpendicular from centre to chord is \(6\) cm. By Pythagoras: \(AM = \sqrt{10^2-6^2}=8\). So \(AB = 16\) cm.
Circle radius \(13\) cm, perpendicular distance to chord = \(5\) cm. \(AM = \sqrt{13^2-5^2}=12\). So \(AB = 24\) cm.

Pitfalls

Forgetting that the chord is bisected: A perpendicular radius doesn’t just meet the chord; it splits it into two equal parts.
Using the whole chord instead of half: In Pythagoras, use \(AM = AB/2\), not the full chord.
Confusing tangent property: A tangent is perpendicular to a radius at the point of contact — not the same as this theorem.

Exam strategy

Mark the midpoint \(M\) of the chord where the radius/diameter meets it.
State clearly: “Radius ⟂ chord ⇒ chord is bisected.”
Apply Pythagoras: \(OA^2 = OM^2 + AM^2\).
Multiply the half-chord back up if the full chord length is required.

Extended micro-examples

Circle with radius \(17\) cm, perpendicular distance to chord = \(8\) cm. \(AM = \sqrt{17^2-8^2}=\sqrt{225}=15\). So \(AB=30\) cm.
Chord length \(40\) cm, perpendicular distance = \(9\) cm. Half chord = \(20\). Radius = \(\sqrt{20^2+9^2}=\sqrt{481}\approx 21.9\) cm.
Chord \(AB\) bisected by diameter, \(AM=6\). Then \(AB=12\) cm.

Summary

A radius or diameter drawn perpendicular to a chord always bisects the chord, splitting it into two equal segments. This gives a simple way to find chord lengths or perpendicular distances using Pythagoras’ theorem: \[ AB = 2\sqrt{r^2 - OM^2}. \] Remember: perpendicular → bisected, and the property works for any chord inside the circle.