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Homework answers / question archive / Physics 140 – Homework Week #13 Due: Wednesday, Dec
Physics 140 – Homework Week #13 Due: Wednesday, Dec. 9th
10.4: Moment of Inertia Calculations
1(T). Four small, but dense lead balls each have a mass of 3.0 kg. They are connected into a square array by strong, but ultralight carbon fibre rods. The system is able to rotate in the plane of the paper about an axis perpendicular to the paper.
2. Determine the moment of inertia of a shape made of two cylinders welded together as shown, if:
3(T). The figure to the right shows a side view of a winter tire. In this problem you’ll calculate
the moment of inertia of the rubber tire itself (e.g. not the metal wheel disk) Model it as having two sidewalls of uniform width of 0.635 cm and a tread wall of uniform thickness 2.50 cm and width 20.0 cm. Assume that the rubber has a uniform density of 1.10 x 103 kg/m3.
a)Find the moment of inertia of the car tire about its centre.
(Hint: break up the tire into three separate components and find the volume and mass of each. Then find the moment of inertia of each component – the tire’s overall moment of inertia will be the sum of the individual components. Note that you are calculating the moment of inertia for just the rubber tire and not the metal rim).
b) If the tire rotates at 200 rpm, determine its rotational kinetic energy.
4. A thin, 100 g disk with a diameter of 8.0 cm rotates about an axis through its centre with 0.15 J of kinetic energy. What is the speed of a point on the rim?
5(T). A 25 kg solid door is 220 cm tall, 91 cm wide. What is the door’s moment of inertia for…
a) Rotation on its hinges and b) Rotation above a vertical axis inside the door, 15 cm from one edge.
c) If the door rotates at a steady angular velocity of 2 rad/s, determine its rotational kinetic energy in each of the above configurations.
10.5: Torque and Angular Acceleration
A force ??? = 7.00 ?????− 3.00 ?? ??? is applied to the bar at the point x = 3.00 m, y = 4.00 m. What is the magnitude and direction of the torque produced by this force?
11(T). A tradesman sharpens an axe by pushing it against the rim of a grindstone. The 30-cmdiameter stone is initially spinning at 200 rpm and has a mass of 28 kg. The coefficient of kinetic friction between the knife and stone is 0.20. If the stone loses 10 % of its speed in 10 s of grinding, what is the force with which the man presses the knife against the stone?
12(T). An electric motor turns a flywheel through a drive belt that joins a pulley on the motor and a pulley that is rigidly attached to the flywheel as shown in the figure below and to the left. The flywheel is a solid disk with a mass of 80.0 kg and a diameter of 1.25 m. It turns on a frictionless axle. Its pulley has a much smaller mass and a radius of 0.230 m. If the tension in the upper section of the belt is 135 N and the flywheel has a clockwise angular acceleration of 1.67 rad/s2, find the tension in the lower segment of the belt. (Hint: You are only concerned with the system of disks to the left in the figure – do not concern yourself with the motor. Also note that since the pulley has a much smaller mass you can ignore the pulley for the purpose of working out the moment of inertia.)
13. A 3 kg object on a rough (µs = 0.40, µk = 0.30) surface inclined at 25o to the horizontal is connected to a suspended 6 kg mass via a rope and pulley. The solid steel cylindrical pulley has a radius of 10.0 cm, a width of 1.20 cm and a density of ρ = 7.80 x 103 kg/m3.
14(T). A sphere of mass M and radius R is rigidly attached to a thin rod of radius r that passes through the sphere at a distance 1/2R from the centre. A string wrapped around the rod pulls with tension T. Find an expression for the sphere’s angular acceleration. The rod’s moment of inertia is negligible
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