Concept explainers
(a)
Find the couple M.
(a)
Answer to Problem 16.136P
The couple M is
Explanation of Solution
Given information:
The mass of the rod BC is
The mass of the disk is
The mass of the rod CD is
The angular velocity is
The angular acceleration is
Calculation:
Consider the acceleration due to gravity as
Calculate the velocity of disk AB
Substitute
Calculate the velocity of rod BC
The velocity of disk AB is equal to the velocity of rod BC.
Substitute
Calculate the angular velocity of rod CD
Substitute
Apply the acceleration analysis as shown below.
Calculate the acceleration for disk AB
Substitute
Calculate the acceleration for rod BC
Substitute
Calculate the acceleration for rod CD
Substitute
Equating the components of Equations (1) and (2) as shown below.
Along x component.
Along y component.
Substitute
Calculate the acceleration of the mass centers as shown below.
Calculate the acceleration of mass center for disk AB
Calculate the acceleration of the mass center at P for rod BC
Substitute
Substitute
Calculate the acceleration of the mass center at Q for rod CD
Substitute
Calculate the inertial terms at mass centers as shown below.
The inertia terms at centers are
For disk AB.
For rod BC.
Substitute
For rod CD.
Substitute
Calculate the mass moment of inertia
For disk AB.
Substitute
For rod BC.
Substitute
For rod CD.
Substitute
Calculate the effective couples at mass centers as shown below.
The inertia terms at centers are
For disk AB.
For rod BC.
Substitute
For rod CD.
Substitute
Sketch the effective force and couples on the system as shown in Figure 1.
Sketch the Free Body Diagram of the rod BC as shown in Figure 2.
Refer to Figure 2.
Apply the Equilibrium of moment about B as shown below.
Substitute
Sketch the Free Body Diagram of the rod CD as shown in Figure 3.
Refer to Figure 3.
Apply the Equilibrium of moment about D as shown below.
Substitute
Sketch the Free Body Diagram of the rod AB and BC as shown in Figure 4.
Refer to Figure 4.
Apply the Equilibrium of moment about A as shown below.
Substitute
Therefore, the couple M is
(b)
The components of force exerted at C on rod BC.
(b)
Answer to Problem 16.136P
The components of force exerted at C on rod BC is
Explanation of Solution
Given information:
The mass of the rod BC is
The mass of the disk is
The mass of the rod CD is
The angular velocity is
The angular acceleration is
Calculation:
Refer to part (a).
The components of force exerted at C on rod BC along x direction is
The components of force exerted at C on rod BC along y direction is
Therefore, the components of force exerted at C on rod BC is
Want to see more full solutions like this?
Chapter 16 Solutions
<LCPO> VECTOR MECH,STAT+DYNAMICS
- 4arrow_forwardPravinbhaiarrow_forwardEach 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 N.m 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.arrow_forward
- Two identical 4-lb slender rods AB and BC are connected by a pin at B and by the cord AC. The assembly rotates in a vertical plane under the combined effect of gravity and a 6-lb·ft couple M applied to rod AB. Knowing that in the position shown the angular velocity of the assembly is zero, determine (a) the angular acceleration of the assembly, (b) the tension in cord AC.arrow_forwardGreek engineers had the unenviable task of moving large columns from the quarries to the city. One engineer, Chersiphron, tried several different techniques to do this. One method was to cut pivot holes into the ends of the stone and then use oxen to pull the column. The 4-ft diameter column weighs 12,000 lbs, and the team of oxen generates a constant pull force of 1500 lbs on the center of the cylinder G. Knowing that the column starts from rest and rolls without slipping, determine (a) the velocity of its center G after it has moved 5 ft, (b) the minimum static coefficient of friction that will keep it from slipping.arrow_forwardRequired information NOTE: This is a multi-part question. Once an answer is submitted, you will be unable to return to this part. A 4-kg slender rod is welded to the edge of a 3-kg uniform disk as shown. The assembly rotates about A in a vertical plane under the combined effect of gravity and of the vertical force P. Know that at the instant shown, the assembly has an angular velocity of 12 rad/s and an angular acceleration of 36.5 rad/s2, both counterclockwise. 120 mm Determine the force P. B The force P is D 240 mm с 240 mm (You must provide an answer before moving on to the next part.) |N.↓arrow_forward
- Each of the gears A and B has a mass of 10 kg and a radius of gyration of 190 mm, while gear Chas a mass of 2.5 kg and a radius of gyration of 80 mm. Consider that a couple M of constant magnitude 10 N-m is applied to gear C. 250 mm 250 mm 100 mm Determine the corresponding tangential force acting on gear A. The corresponding tangential force acting on gear A is 26.35 O N.arrow_forwardThree shafts and four gears are used to form a gear train which will transmit 7.5 kW from the motor at A to a machine tool at F. (Bearings for the shafts are omitted from the sketch.) Knowing that the frequency of the motor is 30 Hz, determine the magnitude of the couple that is applied to shaft (a) AB(b) CD (c) EF.arrow_forwardescribe the motion of bodies A and Bof each mechanism shown as: (1) tre n about a fixed axis; or (3) general plane motion A B (b) (c)arrow_forward
- Two disks of the same material are attached to a shaft as shown. Disk A has a radius r and a thickness 2b, while disk B has a radius nr and a thickness 2b. A couple M with a constant magnitude is applied when the system is at rest and is removed after the system has executed two revolutions. Determine the value of n that results in the largest final speed for a point on the rim of disk B.arrow_forwardTwo uniform cylinders, each of mass m = 6 kg and radius r = 125 mm, are connected by a belt as shown. Knowing that at the instant shown the angular velocity of cylinder A is 30 rad/s counterclockwise, determine (a) the time required for the angular velocity of cylinder A to be reduced to 5 rad/s, (b) the tension in the portion of belt connecting the two cylinders.arrow_forwardQ3. Two identical slender rods AB and BC are welded together to form an L-shaped assembly. The assembly is pressed against a spring at D and released from the position shown. Knowing that the maximum angle of rotation of the assembly in its subsequent motion is 90° counterclockwise, determine the magnitude of the angular velocity of the assembly as it passes through the position where rod AB forms an angle of 30° with the horizontal. h D B 1 0.4 m 0.4 marrow_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