EBK COLLEGE PHYSICS
EBK COLLEGE PHYSICS
10th Edition
ISBN: 8220100853050
Author: Vuille
Publisher: CENGAGE L
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Chapter 8, Problem 16P
To determine

The position of the centre of gravity of the gymnast.

Expert Solution & Answer
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Answer to Problem 16P

Solution: The x component of the centre of gravity is 0.459m . The y component of the centre of gravity is 0.103m .

Explanation of Solution

Given info: The mass of the segments in kg (Mass), the lengths of the segments (Length), the distance of the centre of gravity to the nearest joint ( reg ) and the moment of inertia of each segment (I) are provided in the table.

The x co-ordinate of the centre of gravity is given by,

x=marmsxarms+mtorsoxtorso+mthighsxthighs+mlegsxlegsmarms+mtorso+mthighs+mlegs

  • x is the x-co-ordinate of the centre of gravity
  • marms is the mass of the arm
  • mtorso is the mass of the torso
  • mthighs is the mass of the thighs
  • mlegs is the mass of the legs
  • xarms is the x component of the distance of the centre of gravity of arm from the bar
  • xtorso is the x component of the distance of the centre of gravity of torso from the bar
  • xthighs is the x component of the distance of the centre of gravity of thighs from the bar
  • xlegs is the x component of the distance of the centre of gravity of legs from the bar

The y co-ordinate of the centre of gravity is given by,

y=marmsyarms+mtorsoytorso+mthighsythighs+mlegsylegsmarms+mtorso+mthighs+mlegs

  • y is the y-co-ordinate of the centre of gravity
  • yarms is the y component of the distance of the centre of gravity of arm from the bar
  • ytorso is the y component of the distance of the centre of gravity of torso from the bar
  • ythighs is the y component of the distance of the centre of gravity of thighs from the bar
  • ylegs is the y component of the distance of the centre of gravity of legs from the bar

Consider the positive direction of the lengths to direct from the bar to the direction of the head.

The representative diagram of the gymnast is given below.

EBK COLLEGE PHYSICS, Chapter 8, Problem 16P

  • (reg)thighs is the distance between the centre of mass of the thighs to the nearest hip joint
  • (reg)torso is the distance between the centre of mass of the torso to the nearest shoulder joint
  • (reg)arms is the distance between the centre of mass of the arms to the nearest shoulder joint
  • (reg)legs is the distance between the centre of mass of the legs to the nearest knee joint
  • Larms is the length of arm
  • Ltorso is the length of torso
  • Lthighs is the length of thighs
  • Larms is the length of the arm

From the above diagram,

xarms=0

xtorso=(reg)torso

xthighs=Ltorso+(reg)thighscos60.0°

xlegs=Ltorso+Lthighscos60.0°+(reg)legs

yarms=Larms(reg)arms

ytorso=0

ythighs=(reg)thighssin60.0°

xlegs=Lthighssin60.0°

Thus the x co-ordinate of the centre of gravity is given by,

x=[marms(0)+mtorso((reg)torso)+mthighs(Ltorso+(reg)thighscos60.0°)+mlegs(Ltorso+Lthighscos60.0°+(reg)legs)]marms+mtorso+mthighs+mlegs

Thus the y co-ordinate of the centre of gravity is given by,

y=[marms(Larms(reg)arms)+mtorso(0)+mthighs((reg)thighssin60.0°)+mlegs(Lthighssin60.0°)]marms+mtorso+mthighs+mlegs

Substitute 6.87kg for marms , 33.57kg for mtorso , 14.07kg for mthighs , 7.54kg for mlegs , 0.239m for (reg)arms , 0.548m for Larms , 0.337m for (reg)torso , 0.601m for Ltorso , 0.151m for (reg)thighs , 0.374m for Lthighs , 0.227m for (reg)legs to determine the centre of gravity along  x and y component.

The centre of gravity along x component is,

x=[(6.87kg)(0)+(33.57kg)(0.337m)+(14.07kg)(0.601m+(0.151m)cos60.0°)+7.54kg(0.601m+(0.374m)cos60.0°+(0.227m))]6.87kg+33.57kg+14.07kg+7.54kg=28.5kgm62.05kg=0.459m

The centre of gravity along y component is,

y=[(6.87kg)(0.548m0.239m)+(33.57kg)(0)+(14.07kg)((0.151m)sin60.0°)+(7.54kg)((0.374m)sin60.0°)]6.87kg+33.57kg+14.07kg+7.54kg=6.41kgm62.05kg=0.103m

Conclusion:

The x component of the centre of gravity is 0.459m . The y component of the centre of gravity is 0.103m .

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Chapter 8 Solutions

EBK COLLEGE PHYSICS

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