Glancing Collision in Two Dimensions

Glancing Collision in two Dimensions

Question:

Consider two smooth disks, A and B each weighing 47lb. Disk B is at rest and disk A has velocity 8 fps such that it will strike disk B in a glancing collision. At the instant of impact the velocity of A makes a 30 degree angle with the line connecting the disk centers. Find the speed of each disk immediately after collision, neglecting friction. The coefficient of restitution between the disks is 0.8.

Answer:

When two smooth cylindrically symmetrical objects collide the forces acting to change the velocity of each can only act along the line connecting their centers, in the line of sight so to speak. Their smoothness prevents any other force component from existing. So only the velocity components in the line of sight are subject to change in such a collision. In the collision of the question, the velocity in the line of site in the instant before the collision,vils0 is (vA0-vB0)*cos(30). The initial velocity of the A disk, vA0 is 8 fps. The initial velocity of the B disk, vB0 is 0. This makes vils0=8*.866=6.928f/s. The coefficient of restitution, Cr, is the ratio of the velocity of separation to the velocity of approach. The velocity of separation is the component in the line of sight, of the difference between the velocities of the two disks after collision, vB1-vA1. The velocity of approach is the component in the line of sight, of the difference in velocities of the two disks before collision, vils0=6.928f/s. Let's call the velocity of separation -vils1. The minus sign appears because approach and separation are in opposite directions. So we have Cr=0.8=-vils1/6.928 or vils1=-5.5424. The change in velocity in the line of sight then is 12.47f/s.

Since the masses are equal this change in velocity in the line of site will be shared equally between the disks, each getting 6.24f/s. To get the speed of each disk after collision we need to take the square root of the sum of the squares of the speed in the line of sight and the speed across the line of sight. For disk A the velocity across the line of sight is 8*sin(30)=4 fps. For disk B the speed across the line of sight is zero. These speeds are unchanged by the collision. For disk A the speed in the line of sight after the collision is 6.928-6.24=0.688f/s. For disk B the speed in the line of sight after the collision is 6.24f/s. The total speed of disk b is just that in the line of sight, 6.24f/s. The total speed of A is the square root of (.688²+4²) = 4.06 f/s

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