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Question 7
The Bagger 293 excavator is the world's largest land vehicle, with a mass of 14200 tonnes. (1 tonne = 1000 kg) Bagger 293 has a maximum speed of 0.17 m s^-1. (i) B... show full transcript
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Answer
The principle of conservation of momentum states that in a closed system, the total momentum before an interaction is equal to the total momentum after the interaction. Mathematically, it can be represented as:
where and are the masses of the objects, and , , , and are their respective velocities before and after the interaction.
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Newton's second law states that the force acting on an object is equal to the rate of change of its momentum. This means that if no external forces are acting on a closed system, then the momentum of the system remains constant. Thus, the conservation of momentum aligns with Newton's second law because both principles maintain that momentum in a closed system cannot change without an external force.
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When Bagger 293 picks up a stationary load, its total mass increases while its momentum must remain conserved. Since momentum is given by the product of mass and velocity, the increase in mass from picking up the load would lead to a decrease in speed to conserve momentum. Thus, the speed would decrease.
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After the collision, the two trains stick together. Using conservation of momentum:
For the two trains:
Mass of train Y is 46 g (which is ). Thus,
This simplifies to:
Solving for :
ightarrow v_{final} ext{ is approximately } 0.037 ext{ m s}^{-1}$$Step 8
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Answer
The initial kinetic energy of train X is given by:
KE_{initial} = rac{1}{2} m v^2 = rac{1}{2}(0.133)(0.05)^2 = 0.00016625 ext{ J}
The initial kinetic energy of train Y is zero since it is at rest.
The final kinetic energy of the combined mass after the collision:
ightarrow KE_{final} ext{ is approximately } 0.000123 ext{ J}$$ Now, the loss in kinetic energy is: $$ ext{Loss in KE} = KE_{initial} - KE_{final} = 0.00016625 - 0.000123 ext{ J} ightarrow ext{Loss is approximately } 0.00004325 ext{ J}$$Step 10
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