A coin of radius b and mass M rolls on a horizontal surface at speed V. If the plane of the coin is vertical the coin rolls in a
straight line. If the plane is tilted, the path of the coin is a circle of radius R. Find an expression for the tilt angle of the coin a in terms of the given quantities.(Because of the tilt of the coin the circle traced by its center of mass is slightly smaller than R but you can ignore the difference.)
1 answer:
Answer:
The tilt angle is <em>α=tan⁻¹(v²/2Rg)</em>
Explanation:
As the coin rolls with speed <em>v</em> around the circle of radius R, it rotates around the vertical at rate
Ω = v/R.
The rotation is caused by the precession of its spin angular angular momentum due to the torque caused by the tilt. For rolling without slipping,
<em>v = bωₙ, </em>
<em>where </em>
- <em>ωₙ is the angular frequency of the coin</em>
- b is the radius of the coin
<em>so that</em>
<em>Ω = ωₙ(b/R)</em>
<em />
The coin is accelerating, so take the torque about the centre of mass. From the force diagram:
<em>τ_cm = fb×cos(α) - Nb×sin(α)</em>
<em>where</em>
- <em>f is the centrifugal force which is equal to Mv²/R </em>
- <em>N is the normal force which is equal to Mg</em>
Therefore, the equation of motion for Lₙ is
<em>τ_cm = ΩLₙ×cos(α)</em>
<em> = ΩI₀ωₙ×cos(α)</em>
<em> = ωₙ²×(b/R)×I₀cos(α)</em>
<em> = (v/b)²(b/R)(1/2(Mb²)cos(α)</em>
<em> = 1/2(Mv²)(b/R)cos(α)</em>
<em> = Mv²(b/R)cos(α) - Mg(b)sin(α)</em>
Thus, the tilt angle is
<em>tan(α) = (v²/2Rg) ⇒</em> <em>α=tan⁻¹(v²/2Rg)</em>
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