A .0250 kg sock spins in a dryer of radius .225 m once every .304 seconds. How much centripetal force acts on the sock?

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Answer 1 · 2017-09-30T11:17:41

#24.025"N"#

#F_("centripital")=(mv^2)/r#
#m = 0.250 kg#
#r = 0.225 m#

#v = ?#
#v = ("distance")/("time")#

Here, distance #= 2pir#

#=> v= ((2pi0.225)m)/((0.304)s) = 4.65m/s#

Now, substituting,
#F_("centripital")=(0.25kg(4.65m/s)^2)/(0.225m)#

With a little help from Google,😁

#F_("centripital")= 24.025N#

Answer 2 · 2017-09-30T11:30:10

The force is found from F =# mv^2/r# or more simply in this case F =#momega^2r#

You calculate #omega# from #2pi.f#

Should work out ok.