Derivation of angular velocity of classical harmonic oscillator

1.	Derivation of angular velocity of classical harmonic oscillator
Answer» HEYA mate here is your answer ⬇️⬇️⬇️⬇️ above the equator, or 360 degrees per 24 hours, and has angular velocity ω = 360 / 24 = 15 degrees per hour, or 2π / 24 ≈ 0.26 RADIANS per hour. If angle is measured in radians, the linear velocity is the radius times the angular velocity, . With orbital radius 42,000 KM from the earth's center, the satellite's speed through space is thus v = 42,000 × 0.26 ≈ 11,000 km/hr. The angular velocity is POSITIVE since the satellite travels eastward with the Earth's rotation (counter-clockwise from above the north POLE.) hope it helps Mark as BRAINLIEST if you like and follow me

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Derivation of angular velocity of classical harmonic oscillator

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