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Conservation of Momentum If two isolated objects interact (collide or separate), then the total momentum of the system is conserved (constant). Conservation.

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Presentation on theme: "Conservation of Momentum If two isolated objects interact (collide or separate), then the total momentum of the system is conserved (constant). Conservation."— Presentation transcript:

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3 Conservation of Momentum If two isolated objects interact (collide or separate), then the total momentum of the system is conserved (constant). Conservation of Energy Energy is neither created nor destroyed.

4 Elastic Collisions Elastic collisions are ideal collisions where zero kinetic energy is converted into thermal energy (heat) …100% conserved. *Springs, magnets, and billiard balls can approximate elastic collisions but they only truly exist at the atomic level.

5 Elastic Collisions Elastic collisions are ideal collisions where zero kinetic energy is converted into thermal energy (heat) …100% conserved. Mathematically: p i =p f and KE i =KE f OR m 1 v i + m 2 v i = m 1 v + m 2 v AND ½ m 1 v i 2 + ½ m 2 v i 2 = ½ m 1 v 2 + ½ m 2 v 2

6 Inelastic Collisions Most collision are considered INELASTIC because some of the kinetic energy is converted into thermal energy (heat). KE NOT CONSERVED. *SPECIAL CASE: When two objects collide they may combine/stick together to become one object. This is a perfectly inelastic collision or completely inelastic. m 1 v i + m 2 v i = m T v (10 kg)(10m/s)+(10kg)(2m/s)= (20 kg)v f 100 Ns + 20 Ns=(20kg)v f 120 N/s /20 kg=V f 6 m/s=V f GIVEN: m 1 =m 2 =10 kg v 1 =10 m/s, v 2 =2 m/s V f =? KE i =½(10kg)(10m/s) 2 + ½(10kg)(2m/s) 2 ……500 J+20 J= 520 J KE f =½(20 kg)(6 m/s) 2 ……360 J……..520 J-360 J=160 J transferred

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8 Conservation of Momentum If two isolated objects interact (collide or separate), then the total momentum of the system is conserved (constant). ELASTIC COLLISIONINELASTIC COLLISION SEPARATION OR EXPLOSION Types of Collisions

9 What is velocity of ball & pin Ex. Bowling ball= 7 kg, v=3m/sWhat is velocity of ball & pin AFTER collision ? (assume elastic) Bowling pin= 2 kgAFTER collision ? (assume elastic) Pi=Pf and KEi=KEf and V 1 + V 1 = V 2 + V 2 V 1 + V 1 = V 2 + V 2 3 m/s + V 1 = V 2 Two Unknowns… Two Equations. m 1 v i + m 2 v i = m 1 v + m 2 v (7kg)(3m/s)=(7kg)v 1 + (2kg) v 2 21 Ns=(7kg)v 1 + (2kg) v 2 Substitute first equation into second… 21 Ns=(7kg)v 1 + (2kg) (3 m/s + V 1 ) Solve for V 1 21 Ns=(7kg) v 1 + 6 Ns + (2 kg) v 1 OR 15 Ns= (9kg) v 1 OR v 1 =1.7 m/s Substitute back into first equation… 3 m/s + 1.7 m/s =v 2 or v 2 =4.7 m/s

10 A 0.05 kg bullet with velocity 150 m/s is shot into a 3 kg ballistic pendulum. Find how high the pendulum rises after the bullet gets stuck inside. First use conservation of momentum to find the final velocity of the bullet/pendulum. This is a perfectly inelastic collision. m 1 v 1i +m 2 v 2i = (m 1 + m 2 )vf (0.05kg)(150m/s)+(3kg)(0m/s) = (3.05kg)vf vf= 2.5 m/s Now that we know the ballistic pendulum with the bullet in it begins to swing with a speed of 2.5 m/s, we use conservation of energy to find how high it swings. ½ mv 2 = mgy ½ m (2.5m/s) 2 = mgy y= 0.32 m BALLISTIC PENDULUM (A Perfectly Inelastic Collision)

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