Concept explainers
The motor applies a constant downward force
(a)
The velocity of the elevator.
Answer to Problem 13.22P
Explanation of Solution
Given information:
The constant downward force is equal to
Weight of elevator E is equal to
Counterweight is equal to
Elevator travels
In a dependent motion of particles such as the pulley system shown above,
The total length of the rope is a constant
For example,
The kinetic energy of a particle is defined as,
Principle of work and energy is defined as,
Above equation states “If a particle moves from A1 to A2 under an action of force F, the work of the force F is equal to the change in kinetic energy.”
Calculation:
Length of both cables is constant, therefore
For cable 1,
Differentiate,
For cable 2,
Differentiate,
For elevator E,
Apply principle of work and energy,
For counter weight,
Apply principle of work and energy,
But we know that,
Therefore,
Add both equations,
Therefore,
Conclusion:
The velocity of elevator E is equal to
(b)
The velocity of the counter weight.
Answer to Problem 13.22P
Explanation of Solution
Given information:
The constant downward force is equal to
Weight of elevator E is equal to
Counterweight is equal to
Elevator travels
In a dependent motion of particles such as the pulley system shown above,
The total length of the rope is a constant
For example,
The kinetic energy of a particle is defined as,
Principle of work and energy is defined as,
Above equation states “If a particle moves from A1 to A2 under an action of force F, the work of the force F is equal to the change in kinetic energy.”
Calculation:
According to sub part a,
We have found,
And,
Therefore, the velocity of counter weight is equal to,
Conclusion:
The velocity of counter weight is equal to
Want to see more full solutions like this?
Chapter 13 Solutions
Vector Mechanics For Engineers
- The double pulley shown in the figure is formed by two wheels that are coupled to each other. The complete pulley (formed by the two wheels) has a mass of 15 kg and a turning radius of 110mm. Block A has a mass of 40 kg. If a force of 2 kN is applied to the tied rope of the inner pulley wheel, determine the speed of block A after 3 seconds. At the beginning, the whole system was at rest. Disregard the mass of the string and consider that the moment of inertia (kg.m²) of the complete pulley is given by IP = mko²where m is the mass of the pulley and Ko is the radiusspinningarrow_forwardA wagon weighing 500 kN starts from rest, runs 30 meter down one percent grade and strikes the bumper post. If the rolling resistance of the track is 5 N/kN, find the velocity of the wagon when it strikes the post. If the bumper spring which compresses 1 mm for every 15 kN determine, by how much this spring will be compressed.arrow_forwardThe cars of an amusement park ride have a speed va = 17 m/s at A and a speed vg = 10 m/s at B. If a 87-kg rider sits on a spring scale (which registers the normal force exerted on it), determine the scale readings as the car passes points A and B. Assume that the person's arms and legs do not support appreciable force. UB 47 m B VA 24 m Aarrow_forward
- The motor applies a constant downward force F = 550 lb to the cable connected to the 4000-lb elevator E shown in the figure. The counterweight has a weight of W = 3000 lb. Knowing that the elevator starts from rest, determine the time when the velocity of the elevator will be 3 m/s.arrow_forwardDetermine the force acting on the cylinder at t = 3 s.arrow_forward. A device called air-track glider has a mass of 150gm is attached to the end of a horizontal air-track by a spring with a force constant 20N/m as shown below. Initially the spring is unstretched and the glider is moving at 3.50m/s to the right. Find the maximum distance d that the glider moves to the right, if the air is turned off, so that there is kinetic friction with coeficient He=0.40 gliderarrow_forward
- The spring is not stretched or compressed when “s=0.8m" and the 11 kg block which is subjected to a force of 105 N has a speed of 5.5 m/s down the smooth plane. Using "THE PRINCIPLE OF WORK AND ENERGY", find the distance "s" when the block STOPS. k = 200 N/m 5 m/s F = 100 N 30°arrow_forwardThe 195-g slider has a speed v = 1.9 m/s as it passes point A of the smooth guide, which lies in a horizontal plane. Determine the magnitude R of the force which the guide exerts on the slider (a) just before it passes point A of the guide and (b) as it passes point B. Answers: (a) RA= (b) RB i i 225 mm B N Narrow_forwardThe 8-kg collar has a velocity of 8 m/s to the right when it is at A. It then travels down along the smooth guide as shown in (Figure 1). The spring has an unstretched length of 100 mm and B is located just before the end of the curved portion of the rod. Figure 200 mm k = 50 N/m A 200 mm 1 of 1 Part A Determine the speed of the collar when it reaches point B. Express your answer to three significant figures and include the appropriate units. V = Submit Part B Value μA Provide Feedback Request Answer P Pearson Units ? Review Next >arrow_forward
- Two identical 16-kg spheres are attached to the light rigid rod, which rotates in the horizontal plane centered at pin Part A: If the spheres are subjected to tangential forces of P = 10 N, and the rod is subjected to a couple moment M=(8t)N⋅mM=(8t)N⋅m, where t is in seconds, determine the speed of the spheres at the instant t = 4 s. The system starts from rest. Neglect the size of the spheres. Express your answer to three significant figures and include the appropriate units.arrow_forwardAt the instant shown the 2.3 kg collar is moving to the left on the horizontal shaft with a speed of 5.7 m/s that is increasing at a rate of 4.3 m/s/s in spite of the 11 N friction force between the collar and shaft. Determine the force of the spring in N. Assume s = 4.0 m, h = 2.2. Express the result in N.arrow_forwardA constant force of ''F'' acts on a mass as shown. The mass starts its motion from rest at position 1, the unstretched length of the spring is 250 mm, and the spring modulus is k=1,5 k?/m. Neglecting the friction, determine the required force ''F'' to cause the 2−kg mass to have a speed of v2=1,5 m/s at position 2.arrow_forward
- Elements Of ElectromagneticsMechanical EngineeringISBN:9780190698614Author:Sadiku, Matthew N. O.Publisher:Oxford University PressMechanics of Materials (10th Edition)Mechanical EngineeringISBN:9780134319650Author:Russell C. HibbelerPublisher:PEARSONThermodynamics: An Engineering ApproachMechanical EngineeringISBN:9781259822674Author:Yunus A. Cengel Dr., Michael A. BolesPublisher:McGraw-Hill Education
- Control Systems EngineeringMechanical EngineeringISBN:9781118170519Author:Norman S. NisePublisher:WILEYMechanics of Materials (MindTap Course List)Mechanical EngineeringISBN:9781337093347Author:Barry J. Goodno, James M. GerePublisher:Cengage LearningEngineering Mechanics: StaticsMechanical EngineeringISBN:9781118807330Author:James L. Meriam, L. G. Kraige, J. N. BoltonPublisher:WILEY