Physics 50 example problems: Recent Episodes

Peter Beyersdorf

This is a video podcast of solutions to example problems from Dr. Beyersdorf's Physics 50 class at San Jose State University. Several episodes will be published each week including solutions to the previous week's homework and examples that may be useful in understanding current homework or preparing for upcoming exams.

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For a tube containing mercury and water, find the difference in height of the mercury and water using Pascal's law

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Given some measurements of the pressure in a fluid taken on the surface of an unknown planet, use Pascal's law and the universal law of gravitation to find the mass of the planet.

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Use Bernoulli's Equation to find the force on an airplane wing and then find the net force acting on the airplane.

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Use the continuity equation to find the exit velocity for water in a shower head

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For a block of wood floating on top of a layer of water and below a layer of oil, find its mass and density given how high it is floating

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Determine the gauge pressure at a given distance below the surface of a fluid using Pascal's law

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Find the density of a piece of metal given its mass and volume. Is the metal gold?

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For a piece of cheese oscillating on the end of a spring, find out how far the spring will be stretched when the oscillations stop.

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Find the gravitational force acting on the moon from the Earth and Sun for moon at three different points in the lunar orbit

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Find the tension in ropes holding up a beam in equilibrium.

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Find the acceleration of a block on a plane that is attached to a rotating cylinder which has non-negligible moment of inertia

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Determine the direction that a gyroscope precesses

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Determine the lifting capacity of a motor with a given power and rotation rate

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Find the acceleration of a falling yo-yo and the tension in the string as it falls

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Find the frictional torque necessary to slow a spinning object a given amount in a given time

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Find the torque exerted on an object by each of three different forces

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Find the torque that a force exerts on a wrench for six different configurations

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Calculate the moment of inertia for a cone.

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Solve for the speed of a falling block that must pull another block and spin a pulley that has inertia.

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Relate the linear velocity of a car to the angular velocity of the axle as read by the speedometer

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Use the parallel axis theorem to find the moment of inertia for a wheel rotating about a point on its rim.

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Find the moment of inertia for a wagon wheel given the size and shape of its components.

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Find the moment of inertia for a distribution of masses.

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Determine the linear acceleration of a point on the edge of a drill bit, given its angular velocity.

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Relate the parameters of angular motion for a helicopter rotor blade to the parameters of linear motion for a point on the tip of the blade.

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Calculate the change in the angular velocity and angular displacement of a flywheel that is slowing down due to friction

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Relate an expression for the angular displacement of a merry-go-round to its angular velocity and angular acceleration

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Relate an angle to arc lengths subtended by the angle

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Determine the center of mass of an object

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Find the velocity of a ball after a head-on elastic collision

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Find the speed of a bullet by using the work-energy theorem and conservation of momentum during a collision with a block

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Find the velocity of a puck after collision with another puck

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Find the velocities of two masses after they are launched by a spring

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Find the velocity of a hockey player after being hip-checked

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Find the momentum of a moving truck

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Solutions to Homework 7 - Gas Guzzling

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Solutions to midterm #2

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Solutions to the homework where you were asked about the parameters of a rollercoaster

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Find the angle of a ramp that causes a block sliding up the ramp to have the minimum speed after sliding a certain distance

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Find the parameters of a bungee cord necessary for a given bungee jump

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Find the minimum height of a roller-coaster hill for the coaster to go over a loop successfully.

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Find the speed a car was traveling given the length of the skid marks it left when it stopped.

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Find the force on a particle from the energy diagram. Is it attractive or repulsive?

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Check if friction is a conservative force or not by determining the work it does when a book sliding on a table moves in a closed path

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Find the energy stored in a spring when it is stretched or compressed

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Find the force necessary to lift a sack of sugar. Find the work done.

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Find the power necessary to ride a bike at a given speed

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Find the work necessary to compress or stretch a spring

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Find the initial speed and eventual height of a thrown rock using the work energy theorem

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Find the work done reeling in a fish

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Solutions to Homework 5 - rides and elevators

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We look at the behavior of an elevator system known as Atwood's machine that consists of two masses held by a rope that goes over a pulley.

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We find the acceleration of a pair of blocks that are connected to each other by a rope and a system of pulleys,

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We find the maximum speed a stone can be swung at when it is on the end of a rope before that rope breaks

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We find the acceleration of a block being pulled along a table by a rope and before and after a cat jumps onto the block

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We draw the free body diagrams for two blocks on an incline connected by a rope over a pulley

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Find the acceleration of an elevator necessary for a passenger to have an apparent weight that differs from her actual weight

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Find the tension in two ropes that keep two blocks from sliding down an inclined plane

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Find the tension in the cables necessary to hold a wrecking ball in equilibrium

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A person is hanging from a rope, what is the tension in the rope as a function of the deflection angle

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We look at how much a road must be banked for a car to accelerate around a turn without the aid of friction

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Solutions to Midterm 1 on kinematics

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Find the tension in a tow rope necessary to pull a skier up a ski slope.

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Find the force responsible for accelerating a pendulum bob in an accelerating train car

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Calculate the acceleration that the Earth feels due to the reaction force of the weight of a person.

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Find the reaction forces for the forces that act on a woman in an accelerating elevator

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What is the mass of a box given its acceleration when pushed on by a given force?

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How hard must you pull on a rope to get a block to slide up a plane?

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Solution to homework 3 - The Human Trebuchet

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Determine how high a target needs to be in order to be hit.

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Calculate the necessary initial velocity for the cliff diver to avoid the ledge below

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Using information provided about the SAn Jose Grand Prix find the acceleration and other parameters for the race cars.

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Use the equations of motion in 1 dimension to figure out how fast you need to run to catch a bus that is accelerating away from a nearby bus stop

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USe the equations of motion in 1D to find the parameters of motion for a water balloon thrown from the roof of a building

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USe the equations of motion in 1D to analyze the trajectory of a flea in free fall after jumping

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Find the time to travel to the moon using some given values and the equations of motion in 1 dimension

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Use the equations of motion in 1D to find the acceleration of a car

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Use the equations of motion in 1D to analyze a car crash

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Use the equations of motion in 1D to find the acceleration of an antelope

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Relate the parameters of motion to a graph of displacement versus time

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The method for the solution to homework 1 is presented. A written solution and the full set of answers are available in a PDF document in the handouts podcast.

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We practice unit conversion by finding the number of seconds in a year and then find the percent error in a simple estimate of this number

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We show how to convert units from miles per hour to kilometers per hour and meters per second

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We practice taking the cross product (also called the vector product) of vectors. We use both the method of the determinate and the right hand rule.

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We practice taking the dot product (also called the scalar product) of vectors

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We practice adding vectors by adding their components

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We show how to use a ruler and protractor to estimate the sum of vectors

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Problem 1.97 from the textbook - Given the location of two stars in the big dipper relative to the Earth, where would the Earth appear from the perspective of one of the stars?

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We break a vector into its x and y components, then we consider an example where the components of the vector we are interested are inclined at an angle