a. Luas selimut kerucut
b. Luas permukaan kerucut
c. Volume kerucut
Diketahui diameter kerucut 14 cm dan panjang garis pelukis 25 cm, pi = 22/7. Tentukan =
d = 14 cm ⇒ r = 7 cm
t = √(s² – r²)
= √(25² – 7²)
= √(625 – 49)
= √576
= 24 cm
a) L.selimut = π . r .s
= 22/7 . 7 . 25
= 22 . 25
= 550 cm²
b) L.permukaan = L.alas + L.selimut
= π .r² + 550 cm²
= 22/7 . 7² + 550 cm²
= 154 cm² + 550 cm²
= 704 cm²
c) vo;ume = 1/3 .π .r² . t
= 1/3 .22/7 . 7² . 24
= 22 . 7 . 8
= 154 . 8
= 1232 cm³
D=14
r=7
tinggi=24 (pake rumus phytagoras)
a. luas selimut kerucut = phi x r x s
= 22/7 x 7 x 25
= 22 x 25
= 550
b. L.per kerucut = phi x r (r+s)
= 22/7 x 7 (7+25)
= 22 x 32
= 704
c. volume kerucut = 1/3 x phi x r x r x t
= 1/3 x 22/7 x 7 x 7 x 24
= 154 x 8
= 1232