David Sang and Graham Jones Solutions for Chapter: Work, Energy and Power, Exercise 11: EXAM-STYLE QUESTIONS

Author:David Sang & Graham Jones

David Sang Physics Solutions for Exercise - David Sang and Graham Jones Solutions for Chapter: Work, Energy and Power, Exercise 11: EXAM-STYLE QUESTIONS

Attempt the practice questions on Chapter 5: Work, Energy and Power, Exercise 11: EXAM-STYLE QUESTIONS with hints and solutions to strengthen your understanding. Physics for Cambridge International AS & A Level Coursebook 3rd Edition Digital Access solutions are prepared by Experienced Embibe Experts.

Questions from David Sang and Graham Jones Solutions for Chapter: Work, Energy and Power, Exercise 11: EXAM-STYLE QUESTIONS with Hints & Solutions

MEDIUM
AS and A Level
IMPORTANT

 Use the equations of motion to show that the kinetic energy of an object of mass m moving with velocity v is 12mv2.

MEDIUM
AS and A Level
IMPORTANT

 A car of mass 800 kg accelerates from rest to a speed of 20 ms-1 in a time of 6.0 s.Calculate the average power used to accelerate the car in the first 6.0 s

EASY
AS and A Level
IMPORTANT

 A car of mass 800 kg accelerates from rest to a speed of 20 ms-1 in a time of 6.0 s.The power passed by the engine of the car to the wheels is constant. Explain why the acceleration of the car decreases as the car accelerates.

EASY
AS and A Level
IMPORTANT

 Identify differences between gravitational potential energy and elastic potential energy.

EASY
AS and A Level
IMPORTANT

Seawater is trapped behind a dam at high tide and then released through turbines. The level of the water trapped by the dam falls 10.0 m until it is all at the same height as the sea. Calculate the mass of seawater covering an area of 1.4×106 m2 and with a depth of 10.0 m. (Density of seawater =1030 kg m-3.)

MEDIUM
AS and A Level
IMPORTANT

Seawater is trapped behind a dam at high tide and then released through turbines. The level of the water trapped by the dam falls 10.0 m until it is all at the same height as the sea. Calculate the maximum loss of potential energy of the seawater when passed through the turbines and the level of water on both side becomes same mass of water transferred is 1.442×1010kg .

MEDIUM
AS and A Level
IMPORTANT

Seawater is trapped behind a dam at high tide and then released through turbines. The level of the water trapped by the dam falls 10.0 m until it is all at the same height as the sea. The potential energy of the seawater, 1.442×1012 J, is lost over a period of 6.0 hours. Estimate the average power output of the power station over this time period, given that the efficiency of the power station is 50%.