Advertisements
Advertisements
प्रश्न
The frequency of oscillation of a particle of mass m suspended at the end of a vertical spring having a spring constant k is directly proportional to ____________.
विकल्प
mk
m/k
m2k
`(k/m)^(1//2)`
MCQ
रिक्त स्थान भरें
उत्तर
The frequency of oscillation of a particle of mass m suspended at the end of a vertical spring having a spring constant k is directly proportional to `(k/m)^(1//2)`.
Explanation:
`"F" = "ma" = -"kx"` ....(i)
`"As x" = "A" sin omega"t",`
`therefore "a" = -omega^2 sin omega"t" = -omega^2 "x"`
`"Substituting a" = -omega^2" x in equation (i), we get,"`
`-momega^2 "x" = -"kx" "or" omega^2 = "k"/"m"`
`"Now," omega = 2pi"f" = ("k"/"m")^(1//2)`
`therefore "f" = 1/(2pi) = ("k"/"m")^(1//2)`
`therefore F prop ("k"/"m")^(1//2)`
shaalaa.com
The Energy of a Particle Performing S.H.M.
क्या इस प्रश्न या उत्तर में कोई त्रुटि है?
