A camera weighing 21 N falls from a small drone hovering 28 m overhead and enters free fall. What is the gravitational potential energy change (in J) of the camera from the dron…

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asked Aug 1, 2020 18.7k views

1 Answer

Mnp · Answer 1 · 2020-08-06T22:06:51+0000

Answer:

$\Delta U_g=-588J$

Step-by-step explanation:

The change of gravitational potential energy is given by:

$\Delta U_g=U_(gf)-U_(go)$

$\Delta U_g=m.g.h_f-m.g.h_i\\Fc=21N=m.g\\\Delta U_g=21N*(0)-21N*(28m)\\\Delta U_g=-588J$

The preceding result is negative because the camera was on a higher point from where it ended.