What is the surface area of a cylindrical ring where the diameter of the cross section is 6.3 in and the centerline has a length of 48in

Question

asked Mar 21, 2018 95.6k views

2 Answers

Aedoro · Answer 1 · 2018-03-24T17:46:25+0000

Answer: The surface area of a cylindrical ring is 950.4 square in.

Explanation:

We know that the surface area of an open cylinder is given by :-

$S.A.=2\pi rh$ , where r= radius and h= height

As per given , diameter of cylindrical ring = 6.3 in

then ,
$r=\frac{6.3\text{ in}}{2}=3.15\text{ in}$

h= 48 in

Now , the surface area of the cylindrical ring =
2((22)/(7))(3.15)(48)

$=950.4\text{ square in.}$

Hence, the surface area of a cylindrical ring is 950.4 square in.