
(a)
Find the coefficient of restitution between A and B
(a)

Answer to Problem 13.178P
The coefficient of restitution between A and B
Explanation of Solution
Given information:
The weight of the block A
The weight of the block B
The weight of the block C
The coefficient of friction between the block and plane
The initial speed of the block A
The blocks B and C are at rest.
The distance between the blocks (d) is
The width of the each blocks (b) is
The acceleration due to gravity (g) is
Calculation:
Calculate the mass of the block A
Substitute
Calculate the mass of the block B
Substitute
Calculate the mass of the block C
Substitute
Show the diagram of the block A just before its impact with block B as in Figure (1).
The expression for the initial kinetic energy of the block A at position ‘1’
Here,
The expression for the kinetic energy of the block A at position ‘2’ just before its impact with blocks B
Here,
The expression for the work done by the block A to overcome frictional force
The expression for the principle of work and energy to the block A at position ‘1’ and position ‘2’ just before its impact with block B as follows:
Substitute
Substitute
Show the diagram of the block A just after its impact with block B as in Figure (2).
The expression for the kinetic energy of the block A immediately after the impact
Here,
The block finally comes to stop after the impact. Thus,
The expression for the work done by the block A after the collision to overcome the frictional force
The expression for the principle of work and energy to the block A after it collides with block B to find the velocity of the block A after its impact with B as follows:
Substitute
Substitute
Show the momentum impact diagram of the blocks A and B as in Figure (3).
The expression for the principle of conservation of momentum to the collision between the block A and block B as follows:
Here,
Substitute
Calculate the coefficient of restitution for the impact between the block A and block B
Substitute 0 for
Therefore, the coefficient of restitution between A and B
(b)
Find the displacement (x) of block C.
(b)

Answer to Problem 13.178P
The displacement (x) of block C is
Explanation of Solution
Given information:
The weight of the block A
The weight of the block B
The weight of the block C
The coefficient of friction between the block and plane
The initial speed of the block A
The blocks B and C are at rest.
The distance between the blocks (d) is
The width of the each blocks (b) is
The acceleration due to gravity (g) is
Calculation:
Show the diagram of the block B just before its impact with block C as in Figure (4).
The expression for the kinetic energy of the block B at position ‘2’ just after the impact with block A
The expression for the kinetic energy of the block B just before its impact with blocks C at the position ‘4’
Here,
The expression for the work done by the block B to overcome the frictional force in reaching position ‘4’ from position ‘2’ as follows:
The expression for the principle of work and energy to the block B just before its impact with block C at the position ‘2’ and position ‘4’ as follows:
Substitute
Substitute
Show the momentum impact diagram of the blocks B and C as in Figure (5).
The expression for the principle of conservation of momentum to the collision between the block B and block C as follows:
Substitute
Here,
Substitute
Calculate the coefficient of restitution for the impact between the block B and block C
Substitute 0 for
Show the diagram of the block C after its impact with Block B as in Figure (6).
The expression for the kinetic energy of the block C immediately after its impact with blocks B at position ‘4’
Finally, at the position ‘5’, the block C comes to rest. Thus,
The expression for the work done by the block C to overcome the frictional force in reaching the position ‘5’
Here, x is the distance travelled by the block C before coming to rest.
The expression for the principle of work and energy to the block C after its impact with block B as follows:
Substitute
Substitute
Therefore, displacement (x) of block C is
Want to see more full solutions like this?
Chapter 13 Solutions
Vector Mechanics for Engineers: Statics and Dynamics
- Hand calculation of cooling loadarrow_forwardAn HEV has a 24kW battery. How many miles can it go on electricity alone at 40 mph on a flat straight road with no headwind? Assume the rolling resistance factor is 0.018 and the Coefficient of Drag (aerodynamic) is 0.29 the frontal area is 2.25m^2 and the vehicle weighs 1618 kg.arrow_forwardAs shown in the figure below, moist air at T₁ = 36°C, 1 bar, and 35% relative humidity enters a heat exchanger operating at steady state with a volumetric flow rate of 10 m³/min and is cooled at constant pressure to 22°C. Ignoring kinetic and potential energy effects, determine: (a) the dew point temperature at the inlet, in °C. (b) the mass flow rate of moist air at the exit, in kg/min. (c) the relative humidity at the exit. (d) the rate of heat transfer from the moist air stream, in kW. (AV)1, T1 P₁ = 1 bar 11 = 35% 120 T₂=22°C P2 = 1 bararrow_forward
- The inside temperature of a wall in a dwelling is 19°C. If the air in the room is at 21°C, what is the maximum relative humidity, in percent, the air can have before condensation occurs on the wall?arrow_forwardThe inside temperature of a wall in a dwelling is 19°C. If the air in the room is at 21°C, what is the maximum relative humidity, in percent, the air can have before condensation occurs on the wall?arrow_forward###arrow_forward
- Find the closed loop transfer function and then plot the step response for diFerentvalues of K in MATLAB. Show step response plot for different values of K. Auto Controls Show solution for transform function and provide matlab code (use k(i) for for loop NO COPIED SOLUTIONSarrow_forwardThis is an old practice exam. The answer is Ta-a = 4.615 MPa max = 14.20 MPa Su = 31.24 MPa Sus = 10.15 MPa but why?arrow_forwardThis is an old practice exam. The answer is dmin = 42.33 mm but how?arrow_forward
- 5.) 12.124* - Block B (WB = 12 lb) rests as shown on the upper surface of wedge A (W₁ = 30 lb). The angle of the slope is 0 = 30°. Neglect friction, and find immediately after the system is released from rest (a) the acceleration of a (a) and (b) the acceleration of B relative to A (a B/A).arrow_forwardWhat is the Maximum Bending Moment induced in the following Beam, if? P = 19 KN L = 11 m Ensure that your answer is in kN.m. لا اللهarrow_forwardWhat is the Magnitude of the Maximum Stress in the beam below if? W。 = 6 kN/m L = 9 m Beam width, b = 226 mm Beam Height, h = 273 mm Give your answer in MPa. A 233 B 4|3 Woarrow_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





