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Chapter 8, Problem 48P

Two gliders are set in motion on a horizontal air track. A spring of force constant k is attached to the back end of the second glider. As shown in Figure P8.48, the first glider, of mass m1, moves to the right with speed v1, and the second glider, of mass m2, moves more slowly to the right with speed v2. When m1 collides with the spring attached to m2, the spring compresses by a distance xmax, and the gliders then move apart again. In terms of v1, v2, m1, m2, and k, find (a) the speed rat maximum compression, (b) the maximum compression xmax, and (c) the velocity of each glider after m1 has lost contact with the spring.

Chapter 8, Problem 48P, Two gliders are set in motion on a horizontal air track. A spring of force constant k is attached to

(a)

Expert Solution
Check Mark
To determine

The speed at the maximum compression for the spring.

Answer to Problem 48P

The speed at the maximum compression for the spring is v=m1v1+m2v2m1+m2.

Explanation of Solution

Write the expression for conservation of momentum.

  pi=pf        (I)

Here, pf is the final momentum of the system and pi is the initial momentum of the system.

Rewrite the above expression for mass and velocity of gliders.

  m1v1+m2v2=(m1+m2)v        (II)

Here, m1 is the mass of the first glider, v1 is the velocity of the first glider, v is the velocity of the gliders collides, m2 is the mass of the second glider, and v2 is the velocity of the second glider.

Conclusion:

Rewrite the equation (II) for v.

  v=m1v1+m2v2m1+m2

Therefore, the speed at the maximum compression for the spring is v=m1v1+m2v2m1+m2.

(b)

Expert Solution
Check Mark
To determine

The maximum compression of the spring.

Answer to Problem 48P

The maximum compression of the spring is xm=(v1v2)m1m2k(m1+m2).

Explanation of Solution

Write the expression for law of conservation of energy for the two gliders.

  12m1v12+12m2v22=12(m1+m2)v2+12kxm2        (III)

Here, k is the spring constant and xm is the maximum extension distance of the spring.

Rewrite the above expression.

  m1v12+m2v22=(m1+m2)v2+kxm2        (IV)

Conclusion:

Substitute m1v1+m2v2m1+m2 for v from part (a) in equation (IV).

    m1v12+m2v22=(m1+m2)(m1v1+m2v2m1+m2)2+kxm2m1v12+m2v22=((m1v1+m2v2)2m1+m2)+kxm2m1v12+m2v22(m1v1+m2v2)2(m1+m2)=kxm2

Rewrite the above equation for xmax.

m1v12+m2v22(m1v1+m2v2)2(m1+m2)=kxm2xm2=(1k(m1+m2))[(m1+m2)m1v12+(m1+m2)m2v22(m1v1)2(m2v2)22m1m2v1v2]xm=m1m2(v12+v222v1v2)k(m1+m2)=(v1v2)m1m2k(m1+m2)

Therefore, the maximum compression of the spring is xm=(v1v2)m1m2k(m1+m2).

(c)

Expert Solution
Check Mark
To determine

The velocity of the each glider after first gliders has lost the contact with spring.

Answer to Problem 48P

The velocity of the second glider is v2f=2m1v1+(m2m1)v2m1+m2 and first glider is

v1f=2m2v2+(m1m2)v1m1+m2.

Explanation of Solution

Write the expression for conservation of momentum.

  m1(v1v1f)=m2(v2fv2)        (V)

Here, v1f is the velocity of the first glider after lost contact with spring and v2f is the velocity of the second glider after lost contact with spring.

Write the expression for law of conservation of energy for the each gliders.

  12m1v12+12m2v22=12m1v1f2+12m2v2f2        (VI)

Rewrite the equation (VI).

  m1v12+m2v22=m1v1f2+m2v2f2m1v12m1v1f2=m2v2f2m2v22m1(v12v1f2)=m2(v2f2v22)

Conclusion:

Simplify the above relation and substitute equation (V).

  m2(v2fv2)(v1+v1f)=m2(v2fv2)(v2f+v2)(v1+v1f)=(v2f+v2)v1f=v2f+v2v1

Substitute the above relation in equation (V) and rearrange for v2f and v1f.

  m1(v1v2fv2+v1)=m2(v2fv2)m1(2v1v2fv2)=m2(v2fv2)v2f=2m1v1+(m2m1)v2m1+m2

  v1f=2m2v2+(m1m2)v1m1+m2

Therefore, the velocity of the second glider is v2f=2m1v1+(m2m1)v2m1+m2 and first glider is

v1f=2m2v2+(m1m2)v1m1+m2.

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Chapter 8 Solutions

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term

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