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Three thin rods of mass m and length a each are joined to form a triangle ABC in vertical plane. The triangle is pivoted at the vertex A such that it can rotate in the vertical plane. It is released from rest when the side AB is horizontal as shown. As the triangle rotates, the maximum velocity of the vertex B,v_("MAX"), is given by: |
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Answer» `v_("MAX")^(2)=(4ga)/(sqrt(3))` `I_(A)=2((1)/(3)ma^(2))+((1)/(12)ma^(2)+m((sqrt(3)a)/(2))^(2))=(3)/(2)ma^(2)` If the angular velocity of the triangle at any instant is `omega`, the velocity of the vertex B at that instant is `a omega` Therefore, the velocity of B is maximum at the instant the angular velocity is maximum, i.e. when the side BC becomes horizontal Let the angular velocity at this instant be `omega_("MAX")` Then, by conservation of energy Gain in KINETIC energy = LOSS in POTENTIAL energy `(1)/(2)I_(A)omega_("MAX")^(2)=3mg` (Loss in height of CM of triangle) `(1)/(2)((3)/(2)ma^(2))omega_("MAX")^(2)=3mg((a)/(sqrt(3))-(a)/(2sqrt(3)))=(sqrt(3))/(2)mga""implies""omega_("MAX")^(2)=(2g)/(sqrt(3)a)` Therefore, the maximum velocity of the vertex B is given by `v_("MAX")^(2)=omega_("MAX")^(2)a^(2)=(2ga)/(sqrt(3))` |
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