Is the following statement true? If not, why? Within the system, both the momentum and kinetic energy are conserved during each of the collisions ( spring-loaded elastic, hoop spring, and putty collisions).
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Is the following statement true? If not, why?
Within the system, both the momentum and kinetic energy are conserved during each of the collisions ( spring-loaded elastic, hoop spring, and putty collisions).

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- What is the impulse delivered to a tennis ball (mass m speed v) by a racket that sends an incoming ball directly back on its previous path in the opposite direction at the same speed? Could be: Zero mv –mv 2mvA 1kg object with initial speed v collides with a 2kg object (which is initially standing still). The objects stick together in a perfectly inelastic collision. Check all the following answers which are true statements. There may be more than one correct answer! The total kinetic energy (in the form of moving objects) is the same before and after the collision. More than 50% of the initial momentum is converted to non-conservative work. The final speed of the objects is v. More than 50% of the initial kinetic energy is converted to non-conservative work. The total momentum is the same before and after the collision.A ball of mass m moving with a speed v collides elastically with a stationary ball of mass 3m. During the collision the total kinetic energy decreases and then returns to its original value. Which of the following statements correctly describes the system when the kinetic energy reaches a minimum? * 5 The speeds of the two balls are equal The kinetic energies of the two balls are equal The momentum of each ball is the same The potential energy stored in the system equals the total kinetic energy O The total momentum of the system is a minimum
- A figure skater glides across the ice to another skater at rest. They collide inelastically. The mechanical energy and the momentum of the skaters is conserved. Is this statement true or false?Question 3 a) A cannon of mass 2000kg fires a cannon ball of mass 10kg at an initial velocity of 100ms1. Calculate the velocity of the cannon immediately after the firing. Calculate the Kinetic Energy of both immediately prior and immediately post the firing. What parameters are conserved? Comment on the results.A boxer punches a 50-kg bag. Just as his fist hits the bag, it travels at a speed of 7 m/sec. As a result of hitting the bag, his hand comes to a complete stop. Assuming that the moving part of his hand weighs 5 kg, calculate the rebound velocity and kinetic energy of the bag. Is kinetic energy conserved in this example? Why? (Use conservation of momentum)
- In the figure here, a stationary block explodes into two pieces L and R that slide across a frictionless floor and then into regions with friction, where they stop. Piece L, with a mass of 1.1 kg, encounters a coefficient of kinetic friction = 0.49 and slides to a stop in distance d = 0.30 m. Piece R encounters a coefficient of kinetic friction UR = 0.47 and slides to a stop in distance dr = 0.38 m. What was the mass of the block? -µ = 0 HR Number i UnitWhen no energy is lost to thermal modes in a collision, the coefficient of restitution is e = 1. This represents the ideal golfing equipment. The legal maximum is e = 0.83. A 200-g clubhead moving at 88 mph strikes a golf ball. The mass of the golf ball is 45 g. Determine the amount of energy that winds up as KEclubhead, KEball, and Etherm for e = 0.83. Round the final answer to two decimal places.Consider a frictionless track as shown in the figure below. A block of mass m, = 2.00 kg is released from point O from a height of h = 1.15 m. It makes a perfectly inelastic collision at point ® with a block of mass m, = 2.00 kg that is initially at rest. After the collision, the block of mass m, moves to the right and collides with a spring at point ©. The spring is attached to a wall and has a spring constant of 8.81 kN/m. A m h m2 B (a) Calculate the energy loss during the collision. Enter the magnitude. 4.0 (b) Calculate the maximum compression of the spring. 4.0 cm (c) Instead of an inelastic collision, consider a head-on elastic collision at point ®. During this specific elastic collision when the masses are equal, m, transfers its kinetic energy to m, and as a result, m, comes to rest. Calculate the maximum compression of the spring. 4.0 cm
- oes every moving body posses both kinetic energy and momentum? Explain.Answer question 7Problem: You are lead engineer on the design of a crash test apparatus that verifies collisions of varying types. A m = 2 kg mass, when suspended above from a light-weight wire of L = 1.5 m, is first released at an angle of 90°, and correspondingly a height h = L. The tethered ball swings toward the waiting block of M = 4 kg. collides, then rebounds back to an angle of 0 = 32°. In this case, the collision between m and M is elastic, which prompts M's rightwards motion a distance of Ax = 2.1 m, from which the coefficient of kinetic friction between the block and surface on which it is slid is determined. m L h 0 M