Question
Download Solution PDFWork done in increasing the size of a soap bubble from a radius of 3 cm to 5 cm is nearly (Surface tension of soap solution = 0.03 Nm-1)
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFCalculation:
Given,
R1 = 3 cm = 3 × 10⁻² m
R2 = 5 cm = 5 × 10⁻² m
T = 0.03 N/m (Surface tension)
Original surface area = 2 × 4πR1
For second bubble = 2 × 4πR2
Work done = Surface tension × extension in area
Work done = T × ΔA
Substitute the values:
Work done = 0.03 × 2[4πR2² - 4πR1²]
Work done = 0.03 × 8π[(5)² - (3)²] × 10⁻⁴
Work done = 0.03 × 8π × 16 × 10⁻⁴
Work done = 0.384π × 10⁻³ J
Hence, the work done is approximately 0.4π mJ.
Last updated on Jun 17, 2025
-> The AIIMS BSc Nursing (Hons) Result 2025 has been announced.
->The AIIMS BSc Nursing (Hons) Exam was held on 1st June 2025
-> The exam for BSc Nursing (Post Basic) will be held on 21st June 2025.
-> AIIMS BSc Nursing Notification 2025 was released for admission to the 2025 academic session.