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A uniform rod of mass 100g has a length of1m. It is supported horizontally on two knife edgesplaced 10cm from its end. What will be thereactions at these supports when a 50g mass issuspended 30cm from one of the knife edges?

A uniform rod of mass 100g has a length of1m. It is supported horizontally on two-example-1
User Chris Crewdson
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1 Answer

23 votes
23 votes

We have to make the conversations

mass rod=100g=.1 kg

mass =50g=0.05 kg

in order to obtain the weight, we need to multiply the mass by the gravity in this case 9.8 m/s^2

w_rod= .1*9.8=0.98 N

w_mass=.05*9.8=0.049N

Then wee need to draw a diagram

We have RA and RB the reactions of the support

First we need to find the sum of forces


\sum ^(\square)_(\square)F_y=RA+RB-P1-P2=0

Then we analyze the moments of force


\sum ^(\square)_(\square)M_(RA)=P1(0.3)+P2(0.4)-RB(0.8)=0

then we can calculate RB


RB=((0.49\cdot0.3)+(0.98\cdot0.4))/(0.8)=0.67375N

then we can calculate RA


RA=P1+P2-RB=0.49+0.98-0.67375=0.79625N

the reactions will be

RA=0.79625N=0.80N

RB=0.67375N=0.67N

A uniform rod of mass 100g has a length of1m. It is supported horizontally on two-example-1
User Madacol
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2.9k points