91Ó°ÊÓ

For the system to be in rotational equilibrium, the addition of all torques about any axis acting on the system should be equal to zero.

Given data:

The height of the person is\(l = 172\;{\rm{cm}}\).

The reading of the first scale is\({m_1} = 35.1\;{\rm{kg}}\).

The reading of the second scale is \({m_2} = 31.6\;{\rm{kg}}\).

The free body diagram of the person can be drawn as:

For the system to be in equilibrium, the net torque acting on the system should be equal to zero. Therefore, you can write:

\(\begin{array}{c}\sum {\tau _{{\rm{CG}}}} = 0\\{m_2}gx = {m_1}g\left( {l - x} \right)\\\left( {31.6\;{\rm{kg}}} \right)g\left( x \right) = \left( {35.1\;{\rm{kg}}} \right)g\left[ {\left( {172\;{\rm{cm}}} \right) - \left( x \right)} \right]\\\left( {31.6\;{\rm{kg}}} \right)\left( x \right) = \left( {6037.2\;{\rm{kg}} \cdot {\rm{cm}}} \right) - \left( {35.1\;{\rm{kg}}} \right)\left( x \right)\\x = 90.5\;{\rm{cm}}\end{array}\)

Thus, the center of gravity from the feet is \(90.5\;{\rm{cm}}\).