A particle move in x y plane with a velocity v=2yi+4j equation of path follwed by particle is
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answer : y² = 4x
explanation : A particle moves in x-y plane with a velocity , v = 2y i + 4 j.
we know, rat of change of displacement with respect to time, is known as velocity.
so, v = (dx/dt)i + (dy/dt)j = 2y i + 4j
on comparing we get,
dx/dt = 2y and dy/dt = 4
from dy/dt = 4
or, ∫ dy = 4∫dt
or, y = 4t .....(1)
from dx/dt = 2y
or, dx/dt = 2(4t) = 8t [ from equation (1), ]
or, ∫dx = 8∫t.dt
or, x = 8 × t²/2
or, x = 4t² ......(2)
from equations (1) and (2),
x = y²/4 => y² = 4x
hence, equation of path followed by the particle is 4x = y²
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