371871
Two masses \(\mathrm{m}_{1}=5 \mathrm{~kg}\) and \(\mathrm{m}_{2}=4.8 \mathrm{~kg}\) tied to a string are hanging over a light frictionless pulley. What is the acceleration of the masses. When left free to move? \(\left(\mathrm{g}=9.8 \mathrm{~m} . \mathrm{s}^{-2}\right)\)
371871
Two masses \(\mathrm{m}_{1}=5 \mathrm{~kg}\) and \(\mathrm{m}_{2}=4.8 \mathrm{~kg}\) tied to a string are hanging over a light frictionless pulley. What is the acceleration of the masses. When left free to move? \(\left(\mathrm{g}=9.8 \mathrm{~m} . \mathrm{s}^{-2}\right)\)
371871
Two masses \(\mathrm{m}_{1}=5 \mathrm{~kg}\) and \(\mathrm{m}_{2}=4.8 \mathrm{~kg}\) tied to a string are hanging over a light frictionless pulley. What is the acceleration of the masses. When left free to move? \(\left(\mathrm{g}=9.8 \mathrm{~m} . \mathrm{s}^{-2}\right)\)
371871
Two masses \(\mathrm{m}_{1}=5 \mathrm{~kg}\) and \(\mathrm{m}_{2}=4.8 \mathrm{~kg}\) tied to a string are hanging over a light frictionless pulley. What is the acceleration of the masses. When left free to move? \(\left(\mathrm{g}=9.8 \mathrm{~m} . \mathrm{s}^{-2}\right)\)