Find the minimum diameter of an alloy cable, tensile stress75 MPa (75,000,000 Pa), needed to support a Force of 15 kN (15,000 N)?

1 Answer
May 22, 2018

Given tensile strength #=75 xx10^6\ MPa=>75 xx10^6\ Nm^-2#
Force to be supported #F=15xx10^3\ N#

Corresponding area #a=F/"tensile strength"#

#=>a=(15xx10^3)/(75xx10^6) = 2xx10^-4\ m^2#

We know that for a circular cable of diameter #d#

#a=(pid^2)/4#
#=>d=sqrt((4a)/pi)#

Inserting calculated value we get

#d=sqrt((4xx2xx10^-4)/pi)#
#d=0.016\ m#