Adv Physics

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ADV PHYSICS Chapter 5 Sections 2 and 4

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Adv Physics. Chapter 5 Sections 2 and 4. Review. Work – force applied over a given distance W = F Δ x [W] = Joules, J Assumes the force is constant. Review. Energy – having the ability to do work Kinetic Energy – energy due to motion KE = ½ mv 2 [KE] = Joules, J. Review. - PowerPoint PPT Presentation

Transcript of Adv Physics

Page 1: Adv Physics

ADV PHYSICSChapter 5Sections 2 and 4

Page 2: Adv Physics

Review

Work – force applied over a given distance

W = F Δx[W] = Joules, J

Assumes the force is constant

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Review

Energy – having the ability to do work

Kinetic Energy – energy due to motionKE = ½ mv2

[KE] = Joules, J

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Review

Gravitational Potential Energy – energy an object has due to its height

Relative to a reference point

GPE = mgh [GPE] = Joules, J

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Review

Mechanical energy – energy due to motion and/or position

Total of KE and GPE

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Elastic Potential Energy

Energy an object has due to its stretched or compressed position Ex – spring, rubber band

PEE = ½ kx2

k = spring constantx = amount spring is stretched or

compressed

[PEE] = Joules, J

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Hooke’s Law

Whenever a spring is stretched or compressed, the spring tries to pull itself back to its equilibrium position

Restoring force – force that pulls a spring back to equilibrium Greater the stretch or compression, the

greater the restoring force

F = -kx

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Hooke’s Law F = -kx

F = restoring force x = amount spring is compressed or

stretched Negative sign because the restoring force is

always opposite the direction of displacement, x

k = spring constanta number that indicates the stiffness of the spring (bigger the k, the stiffer the spring)[k] = N/m

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Sample Problem

1. If a mass of 0.55 kg attached to a vertical spring stretches the spring 2 cm from its original equilibrium position, what is the spring constant?

2. What if the spring is replaced with a spring that stretches 36 cm from its equilibrium position. What is the spring constant in this case?

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Sample Problem

3. A slingshot consists of a light leather cup attached between two rubber bands. If it takes a force of 32 N to stretch the bands 1.2 cm, what is the equivalent spring constant of the rubber bands?

4. How much force is required to pull the cup 3 cm from its equilibrium position?

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Elastic Potential Energy and Work Energy a spring has because its been

stretched or compressedEPE = ½ kx2

To give a spring EPE requires work Can’t use W = FΔx since the force changes

with distance

W = ΔEPE = EPEf – EPEi

= ½ kxf 2 – ½ kxi 2

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Conservation of Energy (Updated) Energy Initial = Energy Final

ΣEi = ΣEf

PEei + PEgi + KEi = PEef + PEgf + KEf

½ kxi2 + mghi + ½ mvi

2 = ½ kxf2 + mghf + ½ mvf

2

wherePEe= Elastic Potential EnergyPEg= Graviational Potential EnergyKE= Kinetic Energy

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Sample Problem

5. A spring with a force constant of 5.2 N/m has a relaxed length of 2.45 m. When a mass is attached to the end of the spring and allowed to come to rest, the vertical length of the spring is 3. 57 m. Calculate the elastic potential energy stored in the spring.

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Sample Problem

6. A spring with a force constant of 50 N/m is to be stretched from 0 to 20 cm.

(a) The work required to stretch the spring from 10 to 20 cm is (1) more than, (2) the same as, (3) less than that required to stretch it from 0 to 10 cm. (b) Compute the two work values.

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Sample Problem

7. A particular spring has a force constant of 2500 N/m.

(a) How much work is done in stretching the relaxed spring by 6 cm? (b) How much more work is done in stretching the spring an additional 2 cm?

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Sample Problem

8. A 1.5 kg mass is placed on the end of a spring that has a spring constant of 175 N/m. The mass-spring system rests on a frictionless incline that is at an angle of 30 degrees from the horizontal. The system is eased into its equilibrium position, where it stays.

(a) Determine the change in elastic potential energy of the system.

(b) Determine the system’s change in gravitational potential

energy.

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Challenge Problems

9. A 0.250 kg block is pkaced on a light vertical spring (k = 5.00 x 103 N/m) and is pushed downwards, compressing the spring 0.100 m. After the block is released, it leaves the spring and continues to travel upwards.

(a) What height above the point of release will the block reach if air resistance is negligible?

(a) What is the velocity of the block when it reaches the halfway point (0.50 m) from where the spring was stretched to?

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Challenge Problems

10. A 1.5 kg mass is placed on the end of a spring that has a spring constant of 175 n/m. The mass-spring system rests on a frictionless incline that is at an angle of 30 degrees from the horizontal. The soystem is eased into its equilibrium system where it stays.

(a) What is the distance the spring streches?(b) Determine the change in elastic potential

energy of the system.(c) Determine the system’s change in gravitational

potential energy.