The pentagon ABCDE above is given to be drawn such that
∠A = 60°, and ∠B = ∠C = ∠D = ∠E
The sum of the interior angles of a polygon of n sides
is given by the formula:
(n-2)∙180°
The pentagon above has 5 sides, so n=5. Substituting n=5,
(5-2)∙180° =
(3)∙180° =
540°
So ∠A + ∠B + ∠C + ∠D + ∠E = 540°
Suppose ∠A = 60° and all the other angles = x°
then:
60° + x° + x° + x° + x° = 540°
60° + 4x° = 540°
Subtract 60° from both sides:
4x° = 480°
Divide both sides by 4
x° = 120°
So in the figure above,
∠A = 60°, ∠B = ∠C = ∠D = ∠E = 120°
Now we recall a well-known theorem of geometry:
When a transversal intersects two lines, the two
lines are parallel if and only if interior angles
on the same side of the transversal are
supplementary (sum to 180°).
∠A and ∠B are supplementary because ∠A + ∠B = 60° + 120° = 180°
Lines AE and BC are two lines cut by transversal AB.
Therefore by the theorem, AE ∥ BC.
Similarly,
∠A and ∠E are supplementary because ∠A + ∠E = 60° + 120° = 180°
Lines AB and EC are two lines cut by transversal AE.
Therefore by the theorem, AB ∥ EC.
Edwin
