Concept explainers
(a)
The impact speed when the hammer hits the test specimen.
Answer to Problem 17.137RP
The impact speed when the hammer hits the test specimen is
Explanation of Solution
Given information:
Initial energy of the system is calculated as follows:
Final energy of the system is calculated as follows:
Apply the conservation of energy as follows:
The impact speed when the hammer hits the test specimen is calculated as follows:
Thus, the impact speed when the hammer hits the test specimen is
Conclusion:
The impact speed when the hammer hits the test specimen is
(b)
Find the force on the pin O
Answer to Problem 17.137RP
Force at the point O before impact is
Explanation of Solution
Moment of inertia about “O” is calculated as follows:
Free body diagram of the system is shown below:
Applying newtons second law in rotation as follows:
Center of gravity of whole system is calculated as follows:
Apply Newton’s second law of motion before impact in horizontal direction as follows:
Apply Newton’s second law of motion before impact in vertical direction as follows:
Force at the point O before impact is calculated as follows:
Thus, Force at the point O before impact is
(c)
The amount of energy that test specimen absorb.
Answer to Problem 17.137RP
Amount of energy that test specimen absorb is
Explanation of Solution
Initial energy of the system is
Final energy of the system is calculated as follows:
Amount of energy that test specimen absorb is calculated as follows:
Thus, amount of energy that test specimen absorb is
Want to see more full solutions like this?
Chapter 17 Solutions
Vector Mechanics For Engineers
- Two blocks are attached by strings of negligible mass to a physical pulley with two radii R1=027 m and R2=042 m. The strings are wrapped around their respective radii so that the masses can move either up or down. The pulley has a moment of inertia Ipcm=0249 kgm2, and is supported by a bearing with negligible friction. If block 1 has a mass of m1=4.1 kg, block 2 has a mass of m2=1.14 kg, and the tension in the rope connecting block 1 to the pulley is T1p=31.11 N, what is the magnitude of the angular acceleration of the pulley?arrow_forwardR - m 130° A hollow wheel of mass given by m 50 kg rolls down an incline of 30° without slipping. The inner radius of the wheel is given by R = 50 mm and its thickness is given by d = 5 mm. Gravity acts down. (a) Show that the moment of inertia of the wheel is given by Ī = 138 125 kg mm². (b) Show that the linear acceleration of the wheel's centre of gravity ā is related to the angular acceleration of the wheel a via a (55 mm)a. = (c) Analyse an appropriate free-body diagram to determine the linear acceleration of the wheel's centre of gravity ā.arrow_forward%3D The pulley shown below with radius of 140 mm and moment of inertia I = 7x103 kg.m2 is holding a mass m = 3 kg through a rope. If the mass falls from rest, find the distance it drops in 1 sec. m O a. 6.02 m O b. 1.22 m O C 8.13 m. d. O d. 4.38 marrow_forward
- One end of a uniform 2.60m rod with a mass of 38.0kg is supported by a cable connecting one end to the wall so that the cable makes an angle of 42.0° with respect to the rod. The other end rests against the vertical wall, where it is held in place by friction so that the rod is perfectly horizontal. A sign with an unknown mass is hung from the rod 1.90m from the wall so that wall exerts a normal force of 1790N on the rod in the positive x-direction. What is the mass of the sign in kilograms?arrow_forwardQuestion 5 A four-wheeled automobile car has a total mass of 1000 kg. The moment of inertia of each wheel about a transverse axis through its center of gravity is 0.5 kgm?. The rolling radius of the wheel is 0.35 m. The rotating and reciprocating parts of the engine and the transmission system are equivalent to a moment of inertia of 2.5 kgm?, which rotates at five times the road-wheel speed. The car is travelling at a speed of 100 km/hr on a plane road. When the brakes are applied, the car decelerates at 0.5g [g= Gravity]. There are brakes on all four wheels. Calculate: a) The energy absorbed by each brake b) The torque capacity of each brake.arrow_forwardIn the mechanism below, neglect the inertias of all the links and determine the cable tension force in Newton for when M-195 kg? Aşağıdaki mekanizmada, M-195 kg için uzuv ataletlerini ihmal ederek Newton cinsinden kablo gerilme (çekme) kuvvetini belirleyiniz? B E 3. D 4 cable/kablo M y cable/kablo 9.81 m/s2 0.8 m Hint/İpucu: Pin = (T )w2 Pout = (Mg )w4 = ... ...arrow_forward
- The body and bucket of a skid steer loader has a weight of 1990 lb, and its center of gravity is located at G. Each of the four wheels has a weight of 95 lb and a radius of gyration about its center of gravity of 1 ft.( Figure 1) Figure 1.25 ft G1.25 ft 2 ft 1 ft Part A If the engine supplies a torque of M = 90 lb-ft to each of the rear drive wheels, determine the speed of the loader in t = 10 s starting from rest. The wheels roll without slipping. Express your answer with the appropriate units. v= Value Submit μA Provide Feedback Request Answer Units Review ? Next >arrow_forwardThe thin rod of the figure has a mass of 15kg and is attached to a spring of constant K = 50 N/m at one end, which has an unstretched length of 1.5 m. If the rod is released from rest in horizontal position (ø = 0°) and only conservative forces act on it, determine: a) What is the moment of inertia of the thin rod around the axis of rotation in A? b) What is the angle at which the rod is momentarily resting again? c) What is the maximum angular speed of the route? Please attach the free body diagram if necessary. Thank you!arrow_forwardIn the mechanism below, neglect the inertias of all the links and determine the cable tension force in Newton for when M=677 kg? B E F C D 4 T cable/kablo M y cable/kablo 9.81 m/s? A х 0.8 m Hint/İpucu: Pin = Pout = (Mg )w4 = (T ..)w2 3.arrow_forward
- Please help in 3, 4, and 5arrow_forwardA,B,Carrow_forwardThe pendulum consists of a uniform slender rod and a solid cylinder. The centre of gravity G of the pendulum is a distance L from the pin connection O. The radius of gyration of the pendulum about G is kG. The pendulum is displaced a small distance from its equilibrium position and then released. Take L=2.521 m (a) Give the differential equation that describes the motion by filling in the coefficient of θ (with at least 4 significant figures): the above equation is in one of the images. (b) What is the natural period of vibration of the pendulum (with at least 4 significant figures):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