Spring Potential Energy

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Work in progress by scarswell3 This topic covers Spring Potential Energy.

The Main Idea

Elastic Potential Energy is the energy stored in elastic materials due to their deformation. Often this refers to the stretching or compressing of a spring.

A Mathematical Model

The formula for Ideal Spring Energy is:

Us=12kss2

where:

ks= spring constant

s2= stretch measured from the equilibrium point;


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Spring Potential Energy

A Computational Model

An oscillating spring can be modeled by the following:

 from __future__ import division                
 from visual import *
 from visual.graph import *
 scene.width=600
 scene.height = 760
 g = 9.8
 mball = .2
 Lo = 0.3    
 ks = 12    
 deltat = 1e-3
 t = 0       
 ceiling = box(pos=(0,0,0), size = (0.5, 0.01, 0.2))
 ball = sphere(pos=(0,-0.3,0), radius=0.025, color=color.yellow)
 spring = helix(pos=ceiling.pos, color=color.green, thickness=.005, coils=10, radius=0.01)
 spring.axis = ball.pos - ceiling.pos
 vball = vector(0.02,0,0)
 ball.p = mball*vball
 scene.autoscale = 0            
 scene.center = vector(0,-Lo,0)   
 while t < 10:           
 rate(1000)    
 L_vector = (mag(ball.pos) - Lo)* ball.pos.norm()
 Fspring = -ks * L_vector
 Fgrav = vector(0,-mball * g,0)
 Fnet = Fspring + Fgrav
 ball.p = ball.p + Fnet * deltat
 ball.pos = ball.pos + (ball.p/mball) * deltat
 spring.axis = ball.pos-ceiling.pos  
 t = t + deltat
  

Examples

Be sure to show all steps in your solution and include diagrams whenever possible

Simple

If a spring's spring constant is 200 N/m and it is stretched 1.5 meters from rest, what is the potential spring energy?

ks= 200 N/m

s= 1.5 m

Us=(0.5)kss2

Us= (0.5)(200 N/m)(1.5 m)2

Us= 225 J

Middling

A horizontal spring with stiffness 0.6 N/m has a relaxed length of 10 cm. A mass of 25 g is attached and you stretch the spring to a length of 20 cm. The mass is released and moves with little friction. What is the speed of the mass at the moment when the spring returns to its relaxed length of 10cm?

ks= 0.6 N/m

s= 0.1 m

Us=(.5)kss2= (.5)(0.6 N/m)(0.1 m)2

Us= 0.003 J

Potential Energy is Converted into Kinetic Energy (K):

Us= K

Us=(0.5)mv2

0.003 J=(0.5)(0.025 kg)v2

v2=(0.003 J)((0.5)(0.025 kg)

v2=0.24 J/kg*s

v=0.49 m/s

Difficult

A package of mass 9 kg sits on an airless asteroid with mass 8.0x1020 kg and radius 8.7x105 m. Your goal is to launch the package so that it will never come back and when it is very far away it will have a speed of 226 m/s. You have a spring whose stiffness is 2.8x105 N/m. How much must you compress the spring?

The initial condition for escape from the asteroid is:

Ki+Ui=1(2mvesc2 +(-GMm(R=0

Potential energy of the spring equals the total energy in the system.

1(2kss2=1(2mvesc2 +(-GMm(R</sub

s2=m(ks(2GM(kR+v2

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