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Aim: How can we calculate the energy of a spring? HW #33 due tomorrow Do Now: An object is thrown straight up. At the maximum height, it has a potential.

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Presentation on theme: "Aim: How can we calculate the energy of a spring? HW #33 due tomorrow Do Now: An object is thrown straight up. At the maximum height, it has a potential."— Presentation transcript:

1 Aim: How can we calculate the energy of a spring? HW #33 due tomorrow Do Now: An object is thrown straight up. At the maximum height, it has a potential energy of 300 J. How much work did it take to do this? 300 J (Work – Energy Relationship)

2 Convert the mass into kg and calculate the weight: mass (g)mass (kg)weight (N) 50 250 450 650 850 0.050 0.250 0.450 0.650 0.850 0.49 2.45 4.41 6.37 8.33 distance stretched (cm)

3 Plot the data Force or weight (N) Distance stretched (cm) 10 9 8 7 6 5 4 3 2 1 0 Your graph should be a straight line similar to this one!

4 Calculate the slope of your graph

5 Hooke’s Law F = kx F = Force or weight applied (N) k = Spring constant (N/m) Each spring has a different value (slinky – low k) (shocks in car – high k) *show springs* x = Distance stretched or compressed from equilibrium (m)

6 Robert Hooke 1635-1703

7 Problems 1.A 4 N weight is hung from a spring causing it to stretch a distance of 0.16 m. What is the spring constant? F = kx 4 N = k(0.16 m) k = 25 N/m

8 Next Problem 2.A 5 kg mass is hung from the same spring. How far does it stretch? F = kx mg = kx (5 kg)(9.8 m/s 2 ) = (25 N/m)x x = 1.96 m

9 Elastic Potential Energy The energy stored in a spring or any other elastic item (i.e. – rubberband) Represented as PE s PE s = ½kx 2 On a F-x graph: F x Area = PE s Slinky Commercail Ace Ventura – Slinky Scene

10 Problems 1.A spring with a constant of 30 N/m stretches 0.5 m. What is its elastic potential energy? PE s = ½kx 2 PE s = ½(30 N/m)(0.5 m) 2 PE s = 3.75 J

11 Next Problem 2. A spring with a constant of 40 N/m has 12 J of elastic potential energy. How far has it stretched? PE s = ½kx 2 12 J = ½(40 N/m)x 2 x = 0.77 m

12 Solve for the elastic potential energy Force or weight (N) Distance stretched (m) 70 2 PE s = area under curve PE s = ½bh PE s = ½(2 m)(70 N) PE s = 70 J

13 Conservation of Energy An 80 kg girl jumps on a trampoline with 1000 J of elastic potential energy stored in the springs. How high with she go? PE s = PE PE s = mgh 1000 J = (80 kg)(9.8 m/s 2 )h h = 1.3 m

14 Conservation of Energy A 100 kg object is connected to a spring with a spring constant of 5,000 N/m and is compressed a distance of 0.75 m. How fast will the object travel when released? PE s = KE ½kx 2 = ½mv 2 kx 2 = mv 2 (5,000 N/m)(0.75 m) 2 = (100 kg)v 2 v = 5.3 m/s

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