A uniform metre rule of Mass 120g is pivoted at 60cm Mark. At what point on metre rule should a mass of 50g be suspended for it to balance horizontally

the 120 g mass acts at the center of the metre rule (50 cm mark)
... 10 cm from the pivot

the 50 g mass needs to be on the other side of the pivot (> 60 cm mark)

120 g * 10 cm = 50 g * ? cm

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Physics
A metre rule is balanced by masses of 24g and 16g suspended from its ends .find the position of the pivot??

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A uniform m metre rule of mass 110g is balance at xcm marks when a mass of 60g is lang at 10cm marks calculate. 1 the balance point x 2 the reaction at turning point