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A car weights 1800 kg. The distance betw...

A car weights 1800 kg. The distance between its front and back axles is 1.8 m. Its centre of gravity is 1.05 m behind the front axle. Determine the force exerted by the level ground on each front wheel and each back wheel.

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3675 N on each front wheel, 5145 N on each back wheel.
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NCERT GUJARATI-SYSTEMS OF PARTICLES AND ROTATIONAL MOTION-EXERCISES
  1. Find the components along the x, y, z axes of the angular momentum l o...

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  2. Two particles, each of mass m and speed v, travel in opposite directio...

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  3. A car weights 1800 kg. The distance between its front and back axles i...

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  4. (a) Find the moment of inertia of a sphere about a tangent to the sphe...

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  5. Torques of equal magnitude are applied to a hollow cylinder and a soli...

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  6. A solid cylinder of mass 20 kg rotates about its axis with angular spe...

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  7. (a) A child stands at the centre of a turntable with his two arms outs...

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  8. A rope of negligible mass is wound round a hollow cylinder of mass 3 k...

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  9. To maintain a rotor at a uniform angular speed of 200 rad s-1, an engi...

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  10. From a uniform disk of radius R, a circular hole of radius R/2 is cut ...

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  11. A metre stick is balanced on a knife edge at its centre. When two coin...

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  12. A solid sphere rolls down two different inclined planes of the same he...

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  13. A hoop of radius 2 m weighs 100 kg. It rolls along a horizontal floor ...

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  14. The oxygen molecule has a mass of 5.30 × 10^(-26) kg and a moment of i...

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  15. A solid cylinder rolls up an inclined plane of angle of inclination 30...

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  16. As shown in Fig.7.40, the two sides of a step ladder BA and CA are 1.6...

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  17. A man stands on a rotating platform, with his arms stretched horizonta...

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  18. A bullet of mass 10 g and speed 500 m/s is fired into a door and gets ...

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  19. Two discs of moments of inertia I(1) and I(2) about their respective a...

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  20. (a) Prove the theorem of perpendicular axes. (b) Prove the theorem o...

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