kingaaron08041991 said:Suppose the circumfernce of a circle of radius r is divided into n equal pieces by n points, P1, P2, ... Pn, where P1 is adjacent to Pn and P2, P2 is adjacent to P1 and P3, etc. Let li be the length of the line segment that connect Pi and Pi+1 except ln is the length of the line segment that connects Pn to P1. Let L = l1+l2+...+ln. (a.) express L as a function of n. (hint: use trig functions/radians). (b.) find the lim L n->infinity.
How would you show this?Next draw of one the triangles and draw a line from the apex of the triangle to the center of the short line segment. Then we will have two right triangles, and using what you know about triangles, you can show that the length of the short line segment must be 2r sin(pi/n).
I'm not quite sure how that would look... can you please elaborate on this idea?Now for very small x, sin(x) is approximately x. Therefore in the limit, as n->infinity, sin(pi/n)->pi/n. In that case, the polygon circumference approaches 2nr*pi/n = 2 pi r. This answer makes sense because as n->infinity, the polygon approaches a perfect circle, and we already know that the circumference of a circle is 2 pi r.