E1. Work-Energy Theorem: differential form

Ground reference frame: Since this is a Galilean reference frame, all forces on P are interaction forces.

Ring reference frame: It is a non-Galilean reference, and the transportation force on P must be taken into account.

Cabin reference frame: It is also a non-Galilean reference, and the transportation force on P must be taken into account.

Ground reference frame: Since it is a Galilean reference frame, P is only subjected to interaction forces.

Platform reference frame: It is a non Galilean reference frame, and the transportation force on P has to be taken into account.

At that momento, the [math]\displaystyle{ \mathbf{ICR}^\text{wheel}_\Es }[/math] is point [math]\displaystyle{ \Js_\text{wheel} }[/math] in contact with the belt. This point slides backwards with respect to the belt, therefore the friction force on the wheel is forwards:

[math]\displaystyle{ \left.\begin{array}{l} \text { AB: ground } \\ \text { REL: belt } \end{array}\right\} \quad \bar{\vs}_{\text {REL }}\left(\Js_{\text {wheel }}\right)=\bar{\vs}_{\text{AB}}\left(\Js_{\text {wheel }}\right)-\bar{\vs}_{\mathrm{ar}}\left(\Js_{\text {wheel }}\right)=-\bar{\vs}_{\mathrm{ar}}\left(\Js_{\text {wheel }}\right)=-\left(\rightarrow \mathrm{v}_0\right)=\left(\leftarrow \mathrm{v}_0\right) . }[/math]

Calculation of the friction power: [math]\displaystyle{ \dot{\Ws}^\text{friction}=\dot{\Ws}_\Rs^{\text{friction}\rightarrow \text{wheel}}+ \dot{\Ws}_\Rs^{\text{friction}\rightarrow \text{belt}} }[/math], where R may be any reference frame. To quickly calculate this power, it is advisable to choose a reference frame R where one of the two points subjected to the action-reaction pair has zero speed, so that one of the two terms is directly zero:

[math]\displaystyle{ \dot{\Ws}^\text{friction}=\dot{\Ws}_\text{belt}^{\text{fric}\rightarrow \text{wheel}}+ \dot{\Ws}_\text{belt}^{\text{fric }\rightarrow \text{belt}}=\overline{\Fs}^{\text{fric}\rightarrow \text{wheel}} \cdot \bar{\vs}_{\text {belt}}\left(\Js_{\text {wheel }}\right)=(\rightarrow \mu\ms\gs)\cdot(\leftarrow \vs_0)=-\mu\ms\gs\vs_0. }[/math]

If the calculation is done in any other reference frame, the result is the same:

[math]\displaystyle{ \dot{\Ws}^\text{friction}=\dot{\Ws}_\text{E}^{\text{fric}\rightarrow \text{wheel}}+ \dot{\Ws}_\text{E}^{\text{fric} \rightarrow \text{belt}}=(\rightarrow \mu\ms\gs)\cdot 0 + (\leftarrow \mu\ms\gs)\cdot(\rightarrow \vs_0)=-\mu\ms\gs\vs_0. }[/math]

[math]\displaystyle{ \dot{\Ws}^\text{friction}=\dot{\Ws}_\text{vehicle}^{\text{fric}\rightarrow \text{wheel}}+ \dot{\Ws}_\text{vehicle}^{\text{fric} \rightarrow \text{belt}}=(\rightarrow \mu\ms\gs)\cdot (\rightarrow\vs_0) + (\leftarrow \mu\ms\gs) \cdot(\rightarrow 3\vs_0)=-\mu\ms\gs\vs_0. }[/math]

However, if only the power of one of the two forces is calculated (for example, the friction on the wheel), the result depends on the reference frame and can have any sign:

[math]\displaystyle{ \dot{\Ws}_\text{belt}^{\text{fric }\rightarrow \text{wheel}}=(\rightarrow \mu\ms\gs)\cdot(\leftarrow \vs_0)=-\mu\ms\gs\vs_0 , }[/math]

[math]\displaystyle{ \dot{\Ws}_\text{E}^{\text{fric} \rightarrow \text{wheel}}=(\rightarrow \mu\ms\gs)\cdot 0 = 0 , }[/math]

[math]\displaystyle{ \dot{\Ws}_\text{vehicle}^{\text{fric} \rightarrow \text{wheel}}=(\rightarrow \mu\ms\gs)\cdot (\rightarrow\vs_0)=\mu\ms\gs\vs_0. }[/math]

It is a 2D problem. The kinematic and dynamic descriptions are:

Since the roller center has no motion perpendicular to the plane, the AMT leads to [math]\displaystyle{ \Ns =\ms\gs\cos\beta }[/math]. Therefore:

Ground reference frame: It is a 2D problem. The kinematic and dynamic descriptions are:

The powers associated with all interactions on the block in the ground reference are:

[math]\displaystyle{ \dot{\Ws}_\Es^{\rightarrow \mathrm{block}}=\dot{\Ws}_\Es^{\mathrm{ext}}=\dot{\Ws}_\Es^{\mathrm{weoght}}+\dot{\Ws}_\Es^{\mathrm{friction}}+\dot{\Ws}_\Es^{\mathrm{constraint}}= \Bigr[(\downarrow \ms\gs)+(\leftarrow \mu\ms\gs)+(\uparrow \Ns) \Bigr] \cdot \Bigr[\rightarrow(\vs+\vs')\Bigr] + (\odot \Ms_\es)\cdot 0 = -\mu\ms\gs(\vs+\vs') }[/math]

Since the block has a translational motion relative to the ground, the calculation of its total kinetic energy is straightforward, and the power balance can be easily stated:

[math]\displaystyle{ \Ts_\Es^\mathrm{block}=\frac{1}{2}\int_\mathrm{block}\ds\ms \vs_\Es^2(\mathrm{block})=\frac{1}{2}\ms \vs_\Es^2(\mathrm{block})\quad \Rightarrow \quad \dot{\Ts}_\Es^\mathrm{bloque}=\ms\vs_\Es( \mathrm{block})\dot{\vs}_\Es( \mathrm{block}) }[/math]

Since the only horizontal force on the block is friction:

[math]\displaystyle{ \dot{\vs}_\Es(\mathrm{block})=-\mu\gs\quad \Rightarrow \quad \dot{\Ts}_\Es^\mathrm{block}=-\mu\ms\gs(\vs+\vs'). }[/math]

The power balance is consistent:

[math]\displaystyle{ \left.\begin{array}{l} \dot{\mathrm{W}}_\Es^{\rightarrow \text { block }}=\dot{\mathrm{W}}_{\mathrm{T}}^{\text {ext }}=-\mu \mathrm{mg}\left(\mathrm{v}+\mathrm{v}^{\prime}\right) \\ \dot{\mathrm{T}}_{\mathrm{E}}^{\text {block }}=-\mu \mathrm{mg}\left(\mathrm{v}+\mathrm{v}^{\prime}\right) \end{array}\right\} \Rightarrow \dot{\mathrm{W}}_{\mathrm{E}}^{\rightarrow \text { block }}=\dot{\mathrm{T}}_{\mathrm{E}}^{\text {block }} }[/math]

Truck reference frame: As the truck is accelerated relative to the ground, the transportation forces on all the mass differentials (dm) of the block must be taken into account:

The consistency of the power balance is easily checked:

[math]\displaystyle{ \Ts^\mathrm{block}_\mathrm{camión}=\frac{1}{2}\ms\vs^2_\mathrm{truck}(\mathrm{block}) \quad \Rightarrow \quad \dot{\Ts}^\mathrm{block}_\mathrm{truck} = \ms\vs_\mathrm{truck}(\mathrm{block})\dot{\vs}_\mathrm{truck}(\mathrm{block}) }[/math]

[math]\displaystyle{ \left.\begin{array}{l} \mathrm{AB}:\mathrm{ground} \\ \mathrm{REL}:\mathrm{truck} \end{array}\right\} \quad \dot{\vs}_\mathrm{truck}(\mathrm{block})= \dot{\vs}_\mathrm{T}(\mathrm{block})-\dot{\vs}_\mathrm{ar}(\mathrm{block}) = (-\mu\gs)-(-\as)=\as-\mu\gs \quad \Rightarrow \quad \dot{\Ts}^\mathrm{block}_\mathrm{truck}=\ms\vs'(\as-\mu\gs) }[/math]

[math]\displaystyle{ \left.\begin{array}{l} \dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{block}}=\dot{\Ws}_\mathrm{truck}^{\mathrm{ext}} + \dot{\Ws}_\mathrm{truck}^{\mathrm{ar}}= \ms(\as-\mu\gs)\vs'\\ \dot{\Ts}^\mathrm{block}_\mathrm{truck}=\ms\vs'(\as-\mu\gs) \end{array}\right\} \Rightarrow\dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{block}}= \dot{\Ts}^\mathrm{block}_\mathrm{truck} }[/math]

Since the power of the internal interactions is not zero in principle (it is not a single rigid body), it is convenient to draw a DGI of the system so as not to forget any:

The system on which the power balance is performed contains all elements (but the ground). Since the power of the internal constraints is always zero, the only interactions that need to be taken into account are weight, wheel-to-ground constraints, braking torques, and friction between the block and the truck:

Ground reference frame:

The ground's constraint forces on the wheels are applied at points of zero speed, and therefore generate no power. Weight is a vertical force, and the motion of the truck and block is horizontal, so its power is also zero.

[math]\displaystyle{ \dot{\Ws}_\Es^{\rightarrow \mathrm{syst}}=\dot{\Ws}_\Es^{\mathrm{ext}}+\dot{\Ws}^{\mathrm{int}}=\dot{\Ws}_\Es^{\mathrm{weight}}+\dot{\Ws}_\Es^{\mathrm{constraint}}+\dot{\Ws}^{\mathrm{friction}}+\dot{\Ws}^{\Gamma}=\dot{\Ws}^{\mathrm{friction}}+\dot{\Ws}^{\Gamma}. }[/math]

The power of the internal interactions can be calculated in any reference frame. Thus:

[math]\displaystyle{ \dot{\Ws}^{\mathrm{friction}}= \dot{\Ws}_\mathrm{truck}^{\mathrm{fric}\rightarrow \mathrm{bloque}} +\dot{\Ws}_\mathrm{truck}^{\mathrm{fric}\rightarrow \mathrm{truck}} = \dot{\Ws}_\mathrm{truck}^{\mathrm{fric}\rightarrow \mathrm{block}}= (\leftarrow \mu\ms\gs)\cdot (\rightarrow \vs')=-\mu\ms\gs\vs' }[/math]

[math]\displaystyle{ \dot{\Ws}^{\Gamma}= \dot{\Ws}_\mathrm{truck}^{\Gamma\rightarrow \mathrm{wheels}} +\dot{\Ws}_\mathrm{truck}^{\Gamma\rightarrow \mathrm{truck}} = \dot{\Ws}_\mathrm{truck}^{\Gamma\rightarrow \mathrm{wheels}}= 2 \left(\odot \Gamma \right)\cdot \left(\otimes \frac{\vs}{\rs}\right)=-2\Gamma\frac{\vs}{\rs}. }[/math]

On the other hand: [math]\displaystyle{ \Ts_\Es^\mathrm{sist}=\frac{1}{2}\ms\vs_\Es^2(\mathrm{bloque})+\frac{1}{2}\ms\vs_\Es^2(\mathrm{camión})\quad \Rightarrow \quad \dot{\Ts}_\Es^\mathrm{sist}=-\ms(\vs+\vs')\mu\gs-\Ms\vs\as. }[/math]

Finally: [math]\displaystyle{ \dot{\Ws}_\Es^{\rightarrow \mathrm{sist}}=\dot{\Ts}_\Es^\mathrm{sist} \quad \Rightarrow \quad -\mu\ms\gs\vs'-2\Gamma\frac{\vs}{\rs}=-\ms(\vs+\vs')\mu\gs-\Ms\vs\as. }[/math]

The braking torque can be obtained from that equation: [math]\displaystyle{ \Gamma=\frac{1}{2}(\mu\ms\gs+\Ms\as)\rs. }[/math]

Truck reference frame:

In this reference frame, transportation forces must be taken into account. On the other hand, the ground's constraint forces on the wheels are applied at points that no longer have zero velocity, and therefore generate power. As before, the power of weight is zero.

[math]\displaystyle{ \dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{syst}}=\dot{\Ws}_\mathrm{truck}^{\mathrm{ext}}+\dot{\Ws}^{\mathrm{int}}+\dot{\Ws}_\mathrm{truck}^{\mathrm{tr}}=\dot{\Ws}_\mathrm{truck}^{\mathrm{constraint}}+\dot{\Ws}^{\mathrm{friction}}+\dot{\Ws}^{\Gamma}+\dot{\Ws}_\mathrm{truck}^{\mathrm{tr}}. }[/math]

The transportation forces on the truck do not generate power because the truck does not move relative to this reference frame. The transportation forces on the block were calculated in example E1-3.2. The friction and braking torques are the same as before since they do not depend on the reference frame.

[math]\displaystyle{ \dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{syst}}=\dot{\Ws}_\mathrm{truck}^{\mathrm{constraint}}+\dot{\Ws}^{\mathrm{fricción}}+\dot{\Ws}^{\Gamma}+\dot{\Ws}_\mathrm{truck}^{\mathrm{tr} \rightarrow \mathrm{block}}= \dot{\Ws}_\mathrm{truck}^{\mathrm{constraint}} -\mu\ms\gs\vs'-2\Gamma\frac{\vs}{\rs} +\ms\as\vs'. }[/math]

The kinematic and dynamic descriptions of the wheel are:

[math]\displaystyle{ \dot{\Ws}_\mathrm{truck}^{\mathrm{constraint}}=2\Bigr[(\leftarrow \Ts)+(\uparrow \Ns)\Bigr]\cdot(\leftarrow\vs)=2\Ts\vs. }[/math]

The tangential constraint force can be calculated from the AMT applied to the wheel centre C. Since it has no mass: [math]\displaystyle{ \sum\overline{\Ms}_\mathrm{ext}(\Cs)=\overline{0} \quad \Rightarrow \quad (\odot \Gamma)+(\otimes \Ts\rs)=0\quad \Rightarrow \quad \Ts=\Gamma/\rs. }[/math]

Therefore: [math]\displaystyle{ \dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{syst}} =2\frac{\Gamma}{\rs}\vs-\mu\ms\gs\vs'-2\Gamma\frac{\vs}{\rs}+\ms\as\vs'=\ms(\as-\mu\gs)\vs'. }[/math]

On the other hand, as seen in example E1-3.2:

[math]\displaystyle{ \Ts_\mathrm{truck}^\mathrm{sist}= \Ts_\mathrm{truck}^\mathrm{bloque}=\frac{1}{2}\ms\vs_\mathrm{truck}^2(\mathrm{block}) \quad \Rightarrow \quad \dot{\Ts}_\mathrm{truck}^\mathrm{syst}= \dot{\Ts}_\mathrm{truck}^\mathrm{block}=\ms\vs'(\as-\mu\gs). }[/math]

The power balance is consistent:

[math]\displaystyle{ \left.\begin{array}{l} \dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{syst}}= \ms(\as-\mu\gs)\vs'\\ \dot{\Ts}^\mathrm{syst}_\mathrm{truck}=\ms(\as-\mu\gs)\vs' \end{array}\right\} \Rightarrow\dot{\Ws}_\mathrm{truck}^{\rightarrow \mathrm{syst}}= \dot{\Ts}^\mathrm{syst}_\mathrm{truck} }[/math]

Direct calculation: [math]\displaystyle{ \dot{\Ws}^{\mathrm{brake}}= \overline{\Gamma}^{\rightarrow \mathrm{pulley}}\cdot\velang{pulley}{E}=\left(\odot\Gamma\right)\cdot\left( \otimes \frac{\vs_0}{\rs}\right)=-\Gamma \frac{\vs_0}{\rs}. }[/math]

The braking torque is not given, and the AMT must be applied to calculate it.

[math]\displaystyle{ \left.\begin{array}{l} \text{SYSTEM: pulley + block}\\ \text{AMT about } \Os \end{array}\right\} \sum\overline{\Ms}_\mathrm{ext}(\Os)=\dot{\overline{\Hs}}_\mathrm{RTO}(\Os) }[/math]

The angular momentum is associated with both pieces. Since O is not fixed to the block, baricentric decomposition is required to calculate the angular momentum of the block:

[math]\displaystyle{ \overline{\Hs}_\mathrm{RTO=E} (\Os) =\overline{\Hs}_\Es^\mathrm{pulley}(\Os) + \overline{\Hs}_\Es^\mathrm{block}(\Os)= \overline{\Hs}_\Es^\mathrm{pulley}(\Os) + \overline{\Hs}_\Es^\mathrm{block}(\Gs_\mathrm{block})+ \overline{\Hs}_\Es^{\oplus\mathrm{block}}(\Os) = }[/math]

[math]\displaystyle{ \hspace{2.3cm}=\Is_\mathrm{O}^\mathrm{polea} \velang{polea}{T}+\Is_{\Gs_\mathrm{block}}^\mathrm{block}+\OGvec_\mathrm{block}\times \ms\overline{\vs}_\Ts(\Gs_\mathrm{block})=\left(\otimes \Is_\mathrm{O}\frac{\vs_0}{\rs}\right)+(\otimes \ms\vs_0\rs). }[/math]

It is an angular momentum whose direction and value are constant. Therefore:

[math]\displaystyle{ \dot{\overline{\Hs}}_\mathrm{RTO}(\Os)=0 \quad \Rightarrow \quad \sum{\overline{\Ms}}_\mathrm{ext}(\Os)=(\odot\Gamma)+(\otimes \ms\gs\rs) =0\quad \Rightarrow \quad \Gamma= \ms\gs\rs }[/math].

Finally: [math]\displaystyle{ \dot{\Ws}^{\mathrm{freno}}= -\Gamma \frac{\vs_0}{\rs} = -\ms\gs\vs_0. }[/math]

Indirect calculation:

[math]\displaystyle{ \left.\begin{array}{l} \text{SYSTEM: ppulley + support + block}\\ \text{REF: ground(Gal)} \end{array}\right\} \quad \dot{\Ts}^\mathrm{syst}_\Es=\dot{\Ws}^\mathrm{ext}_\Es+ \dot{\Ws}^\mathrm{int} }[/math]

[math]\displaystyle{ \left.\begin{array}{l} \dot{\Ts}^\mathrm{syst}_\Es=0\\ \dot{\Ws}^\mathrm{ext}_\Es=\left(\downarrow \ms\gs\right)\cdot\left(\downarrow \vs_0\right)= \ms\gs\vs_0\\ \dot{\Ws}^\mathrm{int}=\dot{\Ws}^{\mathrm{brake}} \end{array}\right\} \quad \Rightarrow \quad \dot{\Ws}^{\mathrm{brake}} =-\ms\gs\vs_0 }[/math]

Direct calculation: [math]\displaystyle{ \dot{\Ws}^{\mathrm{brake}}= \overline{\Gamma}^{\rightarrow \mathrm{pulley}}\cdot\velang{pulley}{T}=\left(\odot\Gamma\right)\cdot\left( \odot \Omega_0\right)=\Gamma \Omega_0. }[/math]

The engine torque is not given, and AMT is required to calculate it.

[math]\displaystyle{ \left.\begin{array}{l} \text{SYST: pulley + monkey + bananas}\\ \text{AMT about } \Os \end{array}\right\} \sum\overline{\Ms}_\mathrm{ext}(\Os)=\dot{\overline{\Hs}}_\mathrm{RTO}(\Os) }[/math]

The angular momentum is associated with both the monkey and the bananas. As a first approximation, the monkey's mass can be considered concentrated in its trunk and head, so it doesn't rotate and its velocity relative to the ground is zero. Taking into account that point O does not move relative to the monkey but it does relative to the bananas:

[math]\displaystyle{ \overline{\Hs}_\mathrm{RTO=E} (\Os) =\overline{\Hs}_\Es^\mathrm{monkey}(\Os) + \overline{\Hs}_\Es^\mathrm{bananas}(\Os)= \overline{\Hs}_\Es^\mathrm{monkey}(\Os) + \overline{\Hs}_\Es^\mathrm{bananas}(\Gs_\mathrm{ban})+ \OGvec_\mathrm{ban} \times \frac{2}{3} \ms \overline{\vs}_\Es(\Gs_\mathrm{ban})= }[/math]

[math]\displaystyle{ \hspace{2.3cm}=\OGvec_\mathrm{ban}\times \frac{2}{3} \ms \overline{\vs}_\Ts(\Gs_\mathrm{ban}) = \Bigr[(\rightarrow \rs)+(\downarrow \xs)\Bigr] \times\frac{2}{3} \ms \left(\downarrow \rs\Omega_0\right)=\left(\otimes \frac{2}{3}\ms\rs^2\Omega_0\right). }[/math]

It is an angular momentum with constant value and constant direction. Therefore:

[math]\displaystyle{ \dot{\overline{\Hs}}_\mathrm{RTO}(\Os)=0 \quad \Rightarrow \quad \sum{\overline{\Ms}}_\mathrm{ext}(\Os)=(\odot\Gamma)+(\otimes \ms\gs\rs) + \left(\otimes \frac{2}{3}\ms\gs\rs\right)=0\quad \Rightarrow \quad \Gamma= \frac{5}{3}\ms\gs\rs }[/math].

Finally: [math]\displaystyle{ \dot{\Ws}^{\mathrm{motor}}= \Gamma \Omega_0 = \frac{5}{3}\ms\gs\rs\Omega_0. }[/math]

Indirect calculation:

It should be noted that this is a problem involving two types of actuators: the motor and the monkey’s muscles. There are several biomechanical formulations for muscle forces, but they are beyond the scope of this course. Since the monkey moves, its muscles develop a non-zero power.

[math]\displaystyle{ \left.\begin{array}{l} \text{SYSTEM: pulley + monkey + bananas}\\ \text{REF: ground(Gal)} \end{array}\right\} \quad \dot{\Ts}^\mathrm{syst}_\Es=\dot{\Ws}^\mathrm{ext}_\Es+ \dot{\Ws}^\mathrm{int} }[/math]

[math]\displaystyle{ \left.\begin{array}{l} \dot{\Ts}^\mathrm{syst}_\Es=0\\ \dot{\Ws}^\mathrm{ext}_\Es=\left(\downarrow \frac{2}{3}\ms\gs\right)\cdot\left(\downarrow \rs\Omega_0\right)= \frac{2}{3}\ms\gs\rs\Omega_0\\ \dot{\Ws}^\mathrm{int}=\dot{\Ws}^{\mathrm{musc}}+\dot{\Ws}^{\mathrm{motor}} \end{array}\right\} \quad \Rightarrow \quad \dot{\Ws}^{\mathrm{musc}} + \dot{\Ws}^{\mathrm{motor}}=-\frac{2}{3}\ms\gs\rs\Omega_0 }[/math]

This balance provides an equation with two unknowns. A second balance can be established for a system where one of the two is missing: a system without the monkey or a system without the motor. If a power balance is performed for the system (monkey + piece of rope), the external forces to consider are the weight and tension of the rope. If we carry on the calculation at the ground reference, this (unknown) tension will result in non-zero power since it is applied at an upward velocity point.

To avoid the appearance of a term associated with the rope tension, we can move to the reference frame of the piece of rope, which, having a constant upward velocity, is Galilean. In this reference frame, the monkey descends at a constant velocity:

[math]\displaystyle{ \left.\begin{array}{l} \text{REL: piece of rope}\\ \text{AB: ground} \end{array}\right\} }[/math]

[math]\displaystyle{ \overline{\vs}_\mathrm{REL}(\mathrm{monkey})=\overline{\vs}_\mathrm{ar}(\mathrm{monkey})=-\overline{\vs}_\mathrm{ar}(\mathrm{monkey})=(\downarrow \rs\Omega_0) }[/math]

[math]\displaystyle{ \left.\begin{array}{l} \text{SISTEMA: monkey+ piece of rope}\\ \text{REF: piece of rope(Gal)} \end{array}\right\} \quad \dot{\Ts}^\mathrm{syst}_\mathrm{rope} =\dot{\Ws}^\mathrm{ext}_\mathrm{rope}+ \dot{\Ws}^\mathrm{int} }[/math]

[math]\displaystyle{ \left.\begin{array}{l} \dot{\Ts}^\mathrm{syst}_\mathrm{rope}=0\\ \dot{\Ws}^\mathrm{ext}_\mathrm{rope}=\left(\downarrow \ms\gs\right)\cdot\left(\downarrow \rs\Omega_0\right)= \ms\gs\rs\Omega_0\\ \dot{\Ws}^\mathrm{int}=\dot{\Ws}^{\mathrm{musc}} \end{array}\right\} \quad \Rightarrow \quad \dot{\Ws}^{\mathrm{musc}} =-\ms\gs\rs\Omega_0 }[/math]

Combining this result with the previous balance:

[math]\displaystyle{ \dot{\Ws}^\mathrm{motor}=-\frac{2}{3}\ms\gs\rs\Omega_0-\dot{\Ws}^\mathrm{musc}=-\frac{5}{3}\ms\gs\rs\Omega_0 }[/math]