To solve this problem it is necessary to apply the concepts related to the Rotational Force described from the equilibrium and Newton's second law.
When there is equilibrium, the Force generated by the tension is equivalent to the Force of the Weight. However in rotation, the Weight must be equivalent to the Centrifugal Force and the tension, in other words:
[tex]W = F_T + m\omega^2r_E[/tex]
Where
[tex]\omega = \frac{2\pi}{T} \rightarrow[/tex] Angular velocity is equal to the Period, at this case Earth's period
[tex]r_E = 6.371*10^6m \rightarrow[/tex] Radius of the Earth
m = mass
[tex]F_T[/tex]= Force of Tension
[tex]W = mg \rightarrow[/tex] Newton's second law
Replacing and re-arrange to find the Tension we have,
[tex]F_T = W- \frac{W}{g} (\frac{2\pi}{T})^2r_E[/tex]
[tex]F_T = W(1-(\frac{2\pi}{T})^2\frac{r_E}{g})[/tex]
[tex]F_T = (505)(1-(\frac{2\pi}{24hours})^2\frac{6.371*10^6}{9.8})[/tex]
[tex]F_T = (505)(1-(\frac{2\pi}{24hours(\frac{3600s}{1hour})})^2\frac{6.371*10^6}{9.8})[/tex]
[tex]F_T = (505)(1-(\frac{2\pi}{86400})^2\frac{6.371*10^6}{9.8})[/tex]
[tex]F_T = 503.26N[/tex]
Therefore when Sneezy is on the equator he is in a circular orbit with a Force of tension of 503.26N
We have that for the Question "what will the tension in it be?"
it can be said that
From the question we are told You decide to visit Santa Claus at the north pole to put in a good word about your splendid behavior throughout the year. While there, you notice that the elf Sneezy, when hanging from a rope, produces a tension of 505 N in the ropeA.
Generally the equation for the Tension is mathematically given as[tex]T = mg = 505N\\\\m = \frac{505}{g}[/tex]
for man and elf Sneezy,
[tex]m = \frac{505}{9.8}\\\\= 51.53kg[/tex]
for man and earth,
[tex]M = 5.97*10^{24}[/tex]
where,
radius of the earth,[tex]r = 6400km[/tex]
Therefore, tension in the rope
[tex]= \frac{GmM}{r^2}\\\\= \frac{6.67*10^{-11}*5.97*10^{24}*51.53}{(6400*10^{3})^2}\\\\= \frac{2051.92*10^{13}}{4.096*10^{13}}\\\\= 500.95N[/tex]
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