Concept explainers
(a)
Find the change in the angular velocity of the turbine disk.
(a)
Answer to Problem 17.24P
The change in angular velocity of the turbine disk is
Explanation of Solution
Given information:
The mass of the turbine disk is
The centroidal radius of gyration of the turbine disk is
The angular velocity of the small blade is
The weight of the small blade is
The centroidal radius of the blade is
The angle the turbine disk rotates is
Position 1:
Find the mass of inertia about point O
Here, the acceleration due to gravity is g.
Consider the acceleration due to gravity is
Substitute 30 kg for
Find the location of mass center
Position 1
The angular velocity at the position 1 is
Find the total kinetic energy
Substitute
Find the total potential energy
Here, the conditional center of gravity is
In this case, the center of gravity lies at the point O. so,
Substitute 0 for
Position 2
Find the total kinetic energy
Substitute
Find the total potential energy
Here, the conditional center of gravity is
In this case, the center of gravity lies at the point O. so,
Substitute
Substitute 30 kg for
Write the equation of conservation of energy as follows;
Substitute 18.04480 J for
Find the change in angular velocity
Substitute 59.75 rpm for
Therefore, the change in angular velocity of the turbine disk is
(b)
Find the change in the angular velocity of the turbine disk.
(b)
Answer to Problem 17.24P
The change in angular velocity of the turbine disk is
Explanation of Solution
Given information:
The mass of the turbine disk is
The centroidal radius of gyration of the turbine disk is
The angular velocity of the small blade is
The weight of the small blade is
The centroidal radius of the blade is
The angle the turbine disk rotates is
Position 1:
Find the mass of inertia about point O
Here, the acceleration due to gravity is g.
Consider the acceleration due to gravity is
Substitute 30 kg for
Find the location of mass center
Position 1
The angular velocity at the position 1 is
Find the total kinetic energy
Substitute
Find the total potential energy
Here, the conditional center of gravity is
In this case, the center of gravity lies at the point O. so,
Substitute 0 for
Position 3
Find the total kinetic energy
Substitute
Find the total potential energy
Here, the conditional center of gravity is
In this case, the center of gravity lies at the point O. so,
Substitute
Substitute 30 kg for
Write the equation of conservation of energy as follows;
Substitute 18.04480 J for
Find the change in angular velocity
Substitute 60.249 rpm for
Therefore, the change in angular velocity of the turbine disk is
Want to see more full solutions like this?
Chapter 17 Solutions
VECTOR MECHANIC
- A 5.32-kg disk A of radius 0.445 m initially rotating counter-clockwise at 436 rev/min is engaged with a 6.72-kg disk B of radius 0.275 m initially rotating clockwise at 528 rev/min, where the moment of inertia of a disk is given as I = ½ mi?. Determine their combined angular speed (in rpm) and direction of rotation after the meshing of the two disks. Remember to show clearly the equations that you use!!'arrow_forwardThe 10-in.-radius brake drum is attached to a larger flywheel which is not shown. The total mass moment of inertia of the flywheel and drum is 22 lb ⋅ ft ⋅ s 2 and the coefficient of kinetic friction between the drum and the brake shoe is 0.41. Knowing that the initial angular velocity is 255 rpm clockwise, determine the force which must be exerted by the hydraulic cylinder at point B if the system is to stop in 85 revolutions.arrow_forwardCan you explain the radius of gyration ? why is it 480mm for the rod & 120mm for the disk. How do we figure this out ? thank youarrow_forward
- A 40-kg flywheel of radius R = 0.5 m is rigidly attached to a shaft of radius r = 0.05 m that can roll along parallel rails. A cord is attached as shown and pulled with a force P of magnitude 150 N. Knowing the centroidal radius of gyration is k = 0.4 m, determine (a) the angular acceleration of the flywheel, (b) the velocity of the center of gravity after 5 s. 15° Parrow_forwardThe 1.5-kg uniform slender bar AB is connected to the 3-kg gear B that meshes with the stationary outer gear C The centroidal radius of gyration of gear B is 30 mm. Knowing that the system is released from rest in the position shown, determine (a) the angular velocity of the bar as it passes through the vertical position, (b ) the corresponding angular velocity of gear B.arrow_forward0.54 m -1.08 m- Fig. P16.61 Fig. P16.60 16.62 Two uniform cylinders, each of mass 7 kg and radius r= 125 mm. are connected by a belt as shown. If the system is released from rest. determine (a) the angular acceleration of each cylinder, (b) the tension in the portion of belt connecting the two cylinders, (c) the velocity of the center of the cylinder A after it has moved through I m. Fig. P16.62arrow_forward
- A long ladder of length l, mass m, and centroidal mass moment of inertia I is placed against a house at an angle 0=0O. Knowing that the ladder is released from rest, determine the angular velocity of the ladder when 0=02. Assume the ladder can slide freely on the horizontal ground and on the vertical wall.arrow_forwardThe rotor of an electric motor has an angular velocity of 3600 rpm when the load and power are cut off. The 110-lb rotor, which has a centroidal radius of gyration of 9 in., then coasts to rest. Knowing that the kinetic friction of the rotor produces a couple with a magnitude of 2.5 1b.ft determine the number of revolutions that the rotor executes before coming to rest.arrow_forwardA 6000-lb flywheel requires 1500 revolutions to coast to rest from an angular velocity of 300 rpm. Knowing that the radius of gyration of the flywheel is 36 in. and I = m-k^2, determine the magnitude of the couple M due to kinetic friction in the bearings in Ib-ft.arrow_forward
- 4. Each of the gears A and B has a mass of 2.4 kg and a radius of gyration of 60 mm, while gear C has a mass of 12 kg and a radius of gyration of 150 mm. A couple M of constant magnitude 10 Nm is applied to gear C. Determine (a) the number of revolutions of gear C required for its angular velocity to increase from 100 to 450 rpm, (b) the corresponding tangential force acting on gear A. В S0 mm, S0 mm 200 mm. Marrow_forward3arrow_forwardQuestion 4: The brake drum of radius 10 cm is attached is a larger flywheel that is not shown. The total mass moment of inertia of the drum and the flywheel is 50 kg.cm? and the coefficient of kinetic friction between the drum and the brake shoe is 0.35. Knowing that the angular velocity of the flywheel is 360 rpm counterclockwise when a force P of magnitude 40 N is applied to the pedal C, determine the number of revolutions executed by the flywheel before it comes to rest. 15 сm |A 25 cm D 10 cm 35 cm-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