Question

can you please help with part C thanks!

A 0.0230 kg bullet moving horizontally at 450 m/s embeds itself into an initially stationary 0.500 kg block. (a) What is their velocity (in m/s) just after the collision? 19.79 (b) The bullet-embedded block slides 8.0 m on a horizontal surface with a 0.30 kinetic coefficient of friction. Now what is its velocity (in m/s)? 18.56 (c) The bullet-embedded block now strikes and sticks to a stationary 2.00 kg block. How far (in m) does this combination travel before stopping? 9

Answer 1

m = Part c: Mass of block bullet system, (0.023 +0:5) KG My = 0.523 kg Velocity of block bullet system, uy = 18.56 mb 12 Moss of stallonary block, m = 2 kg from conservation of mamentum, m, ut my U (m + mv 10.523 x 18.56) + (2 X 0) 6 / 0.523 + 2) v 9.70688 = 2.523 v 2 3 V=3.847 ml 5 6 Kinetic energy of this combination is then k = 1 m 2.523 x (3.847)2 = 18.67 J V2 v K= X z Neue weight of the system is W = (2.523 leg) (9.81 m/ W= (2-523)(9.8 UN W = 24.8 K

9 So the frictional force on new system is f = UN & ulw') (0.3) (24.8. NU 9 10 f 7.44 N D 2 2 This frictional force acting through a distance will disipate the 18.67 J of kinetic energy, so work done is W = Force x distance Fox Therefore, 18-67 =251m F 7.44 distance uz w Hence, distance travelled by this new combination before_stopping us U= 2.5lm Note: Answers used in this solution. (6) one for part CD and part