Let $AB$ and $CD$ be equal chords of congruent circles with centres $O$ and $O'$. Since the circles are congruent, $OA=OB=O'C=O'D$. Also $AB=CD$. Thus $\triangle AOB\cong\triangle CO'D$ by SSS congruence. Hence $\angle AOB=\angle CO'D$.
Equal chords of congruent circles subtend equal angles at their centres.
Let chords $AB$ and $CD$ of congruent circles with centres $O$ and $O'$ subtend equal angles, so $\angle AOB=\angle CO'D$. The radii are equal: $OA=O'C$ and $OB=O'D$. Therefore $\triangle AOB\cong\triangle CO'D$ by SAS congruence, and hence $AB=CD$.
Chords of congruent circles that subtend equal central angles are equal.
Let the centres be $O$ and $O'$, with $OO'=4$ cm, and let $AB$ be the common chord. If $M$ is the midpoint of $AB$, then $OO'$ is perpendicular to $AB$. Put $OM=x$; then $O'M=4-x$. From the right triangles, $AM^2=5^2-x^2=3^2-(4-x)^2$. Hence $25-x^2=9-(4-x)^2$, giving $x=4$. Thus $AM^2=25-16=9$, so $AM=3$ cm and $AB=6$ cm.
$6$ cm.
Let perpendiculars from the centre $O$ to $AB$ and $CD$ meet them at $M$ and $N$. Equal chords are equidistant from the centre, so $OM=ON$, and perpendiculars from the centre bisect chords, so $AM=BM$ and $CN=DN$. In right triangles $OMP$ and $ONP$, $OP$ is common and $OM=ON$, so $\triangle OMP\cong\triangle ONP$ by RHS. Hence $PM=PN$. Combining equal half-chords with $PM=PN$ gives the corresponding chord segments equal: $AP=CP$ and $BP=DP$.
If equal chords $AB$ and $CD$ intersect at $P$, then the corresponding segments are equal, i.e. $AP=CP$ and $BP=DP$.
Let equal chords $AB$ and $CD$ intersect at $P$, and let $O$ be the centre. Draw $OM\perp AB$ and $ON\perp CD$. Equal chords are equidistant from the centre, so $OM=ON$. In right triangles $OMP$ and $ONP$, $OP$ is common; hence $\triangle OMP\cong\triangle ONP$ by RHS. Therefore $\angle OPM=\angle OPN$, so $OP$ makes equal angles with the two chords.
The line from the centre to the intersection point makes equal angles with the two equal chords.
Let the line meet the outer circle at $A,D$ and the inner circle at $B,C$. Draw $OM$ perpendicular to the line. Since a perpendicular from the centre to a chord bisects the chord, $M$ is the midpoint of both $AD$ and $BC$. Hence $AM=MD$ and $BM=MC$. Therefore $AB=AM-BM$ and $CD=DM-CM$, so $AB=CD$.
$AB=CD$.
Equal chords $RS$ and $SM$ subtend equal central angles. For chord $RS=6$ m in a circle of radius $5$ m, half the chord is $3$ m, so if $\angle ROS=\theta$, then $\sin\dfrac{\theta}{2}=\dfrac{3}{5}$ and $\cos\dfrac{\theta}{2}=\dfrac{4}{5}$. Chord $RM$ subtends angle $2\theta$, so $RM=2(5)\sin\theta=10\left(2\cdot\dfrac35\cdot\dfrac45\right)=9.6$ m.
$9.6$ m.
Three equally spaced points on a circle form an equilateral triangle. Each side is a chord subtending $120^\circ$ at the centre. Therefore each string length is $2R\sin60^\circ=2(20)\cdot\dfrac{\sqrt3}{2}=20\sqrt3$ m.
$20\sqrt3$ m, approximately $34.6$ m.
The central angle subtending arc $ABC$ is $\angle AOC=\angle AOB+\angle BOC=60^\circ+30^\circ=90^\circ$. The angle at the circumference standing on the same arc is half the central angle. Hence $\angle ADC=\dfrac12\times90^\circ=45^\circ$.
$45^\circ$.
If chord $AB$ equals the radius, then $OA=OB=AB$, so $\triangle AOB$ is equilateral and the minor central angle $\angle AOB=60^\circ$. At a point on the major arc, the chord subtends half of $60^\circ$, i.e. $30^\circ$. At a point on the minor arc, it subtends half of the major arc angle $360^\circ-60^\circ=300^\circ$, i.e. $150^\circ$.
At a point on the minor arc: $150^\circ$; at a point on the major arc: $30^\circ$.
$\angle PQR=100^\circ$ subtends the major arc $PR$, whose central angle is $200^\circ$. Hence the minor central angle $\angle POR=360^\circ-200^\circ=160^\circ$. Since $OP=OR$, triangle $OPR$ is isosceles, so $\angle OPR=\angle ORP=\dfrac{180^\circ-160^\circ}{2}=10^\circ$.
$10^\circ$.
In $\triangle ABC$, $\angle BAC=180^\circ-69^\circ-31^\circ=80^\circ$. Angles in the same segment of a circle are equal, so $\angle BDC=\angle BAC=80^\circ$.
$80^\circ$.
Since $AC$ and $BD$ intersect at $E$, $\angle CED=180^\circ-\angle BEC=50^\circ$. In $\triangle CED$, $\angle CDE=180^\circ-50^\circ-20^\circ=110^\circ$. Thus $\angle CDB=110^\circ$. The angles $\angle BAC$ and $\angle BDC$ stand on chord $BC$ from opposite segments, so they are supplementary. Hence $\angle BAC=180^\circ-110^\circ=70^\circ$.
$70^\circ$.
Angles in the same segment give $\angle DAC=\angle DBC=70^\circ$. Thus $\angle DAB=\angle DAC+\angle CAB=70^\circ+30^\circ=100^\circ$. Opposite angles of a cyclic quadrilateral are supplementary, so $\angle BCD=180^\circ-100^\circ=80^\circ$. If $AB=BC$, then $\triangle ABC$ is isosceles and $\angle ACB=\angle BAC=30^\circ$. Since $E$ lies on $AC$, $\angle ECD=\angle ACD=\angle BCD-\angle BCA=80^\circ-30^\circ=50^\circ$.
$\angle BCD=80^\circ$ and $\angle ECD=50^\circ$.
Let $ABCD$ be cyclic and let both diagonals $AC$ and $BD$ be diameters. An angle in a semicircle is a right angle. Since $BD$ is a diameter, $\angle BAD=\angle BCD=90^\circ$. Since $AC$ is a diameter, $\angle ABC=\angle ADC=90^\circ$. All four angles are right angles, so $ABCD$ is a rectangle.
The cyclic quadrilateral is a rectangle.
Let $ABCD$ be a trapezium with $AB\parallel CD$ and $AD=BC$. In an isosceles trapezium, base angles are equal, so $\angle A=\angle B$ and $\angle C=\angle D$. Also, because $AB\parallel CD$, consecutive interior angles are supplementary: $\angle A+\angle D=180^\circ$. Since $\angle C=\angle D$, we get $\angle A+\angle C=180^\circ$. A quadrilateral with a pair of opposite angles supplementary is cyclic. Hence $ABCD$ is cyclic.
An isosceles trapezium is cyclic.
In the circle through $A,B,C,P$, angles standing on chord $AP$ are equal, so $\angle ACP=\angle ABP$. Since $A,B,D$ are collinear and $P,B,Q$ are collinear, $\angle ABP=\angle DBQ$. In the circle through $D,B,C,Q$, angles standing on chord $DQ$ are equal, so $\angle DBQ=\angle QCD$. Therefore $\angle ACP=\angle QCD$.
$\angle ACP=\angle QCD$.
Let $ABC$ be a triangle and let circles be drawn with $AB$ and $AC$ as diameters. Let the circles meet again at $D$. Since $AB$ is a diameter, $\angle ADB=90^\circ$. Since $AC$ is a diameter, $\angle ADC=90^\circ$. Thus both $DB$ and $DC$ are perpendicular to $AD$ at $D$, so $B,D,C$ are collinear. Hence $D$ lies on the third side $BC$.
The second intersection point of the two circles lies on the third side of the triangle.
Since $ABC$ and $ADC$ are right triangles with common hypotenuse $AC$, the points $A,B,C,D$ lie on the same circle with $AC$ as diameter. In this circle, $\angle CAD$ and $\angle CBD$ stand on the same chord $CD$. Therefore, angles in the same segment are equal, so $\angle CAD=\angle CBD$.
$\angle CAD=\angle CBD$.
In a parallelogram, opposite angles are equal. In a cyclic quadrilateral, opposite angles are supplementary. If $ABCD$ is both cyclic and a parallelogram, then $\angle A=\angle C$ and $\angle A+\angle C=180^\circ$. Hence $2\angle A=180^\circ$, so $\angle A=90^\circ$. Similarly all angles are right angles. Therefore the parallelogram is a rectangle.
Every cyclic parallelogram is a rectangle.