A roller has diameter of 0.7m and length of 1m. It is used to roll over the cricket pitch. The surface area of the cricket pitch is equal to 60m^2. How much revolution will roller make to move once over the pitch? (Take π = \(\frac{22}{7}\))(a) 25(b) 28(c) 30(d) 26The question was posed to me in an interview.The doubt is from Surface Area of a Right Circular Cylinder in division Surface Areas and Volumes of Mathematics – Class 9

A roller has diameter of 0.7m and length of 1m. It is used to roll ove

1.	A roller has diameter of 0.7m and length of 1m. It is used to roll over the cricket pitch. The surface area of the cricket pitch is equal to 60m^2. How much revolution will roller make to move once over the pitch? (Take π = \(\frac{22}{7}\))(a) 25(b) 28(c) 30(d) 26The question was posed to me in an interview.The doubt is from Surface Area of a Right Circular Cylinder in division Surface Areas and Volumes of Mathematics – Class 9
Answer» The correct option is (b) 28 The explanation: The effective area that will be in contact with the pitch is the curved surface area of the cylinder. Diameter of the ROLLER = 0.7m Hence, RADIUS of the roller = 0.35m and height (length here) of the roller = 1m We know that curved surface area of a cylinder = 2πr = 2 * \(\frac{22}{7}\) * 0.35 * 1 = 2.2 m^2 Area of the cricket pitch = 60m^2 Let’s assume that the roller MAKES “n” revolutions to move once over the pitch. Therefore, n * curved surface area of the roller = surface area of the pitch n = \(\frac{Surface \,area \,of \,the \,pitch}{Curved \,surface \,area \,of \,the \,roller}\) = \(\frac{60}{2.2}\) = 27.27 ≈ 28 revolutions.

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