the outer and inner diameters of a hemispherical bowl are 17cm and 15cm. Find the cost of polishing it over at the rate of 25 pise per sq.
Answers
✒ Outer Diameter of Hemispherical Bowl = 17cm
✒ Inner Diameter of Hemispherical Bowl = 15cm
✒ Rate of polishing = 25paise/cm²
✑ Cost of polishing it.
❍ Outer Curved Surface Area:
➮ R = D/2
➮ R = 17/2cm
Now, using
➠ Curved Surface area of Hemisphere = 2πr²
✏ Outer Curved Surface area = 2πR²
where,
π = 22/7
R = 17/2cm
✗ Substituting these values ✗
⟹ Outer Curved Surface area = 2πR²
⟹ Outer Curved Surface area = 2×22/7×(17/2)²
⟹ Outer Curved Surface area = 44/7×289/4
⟹ Outer Curved Surface area = 12716/28
⟹ Outer Surface area = 454.142(approx.) cm²
⟹ Outer Curved Surface area = 454.14 cm²
❍ Inner Curved Surface Area:
➮ r = d/2
➮ r = 15/2cm
Now, again using
➠ Curved Surface area of Hemisphere = 2πr²
✎ Inner Curved Surface area = 2πr²
where,
π = 22/7
r = 15/2cm
✁ Substituting these values ✁
↬Inner Curved Surface area = 2πr²
↬Inner Curved Surface area = 2×22/7×(15/2)²
↬Inner Curved Surface area = 44/7×225/4
↬Inner Curved Surface area = 9900/28
↬Inner Curved Surface area = 353.571(approx.) cm²
↬Inner Curved Surface area = 454.14 cm²
Now, using
❏ Area of brim = πR² - πr²
where,
π = 22/7
R = 17/2cm
r = 15/2cm
• Substituting these values •
❐ Area of brim = πR² - πr²
❐ Area of brim = π(R² - r²)
❐ Area of brim = 22/7{(17/2)² - (15/2)²}
❐ Area of brim = 22/7(289/4 - 225/4)
❐ Area of brim = 22/7(289-225/4)
❐ Area of brim = 22/7(64/4)
❐ Area of brim = 1408/28
❐ Area of brim = 50.285(approx.) cm²
❐ Area of brim = 50.28 cm²
Now,
➺ Area to be polished = outer C.S.A+Inner C.S.A+Area of brim
➺ Area to be polished = 454.14+454.14+50.28
➺ Area to be polished = 958.56 cm²
Cost of polishing:
⟶ Cost of polishing = 25 × 958.56
⟶ Cost of polishing = 23964paise
Hence, Cost of polishing the Hemispherical Bowl is 23964paise
Answer:
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Step-by-step explanation:
thanks for the point
