Answer:
(a) HB = 241
(b) diameter = 1.19 mm
Explanation:
Given data
load (P) = 500 kg
diameter (d) = 1.62 mm
Diameter (D) = 10 mm
hardness = 450 HB
To find out
HB of this material and diameter
Solution
First part we use equation to find brinell hardness
HB = (2× load ) / [tex]\pi[/tex] D ( D - [tex]\sqrt{D^2-d^2}[/tex] ) ................1
Now put the value load, D and d in equation 1
HB = (2× 500 ) / [tex]\pi[/tex] 10 ( 10 - [tex]\sqrt{10^2-1.62^2}[/tex] )
HB = 241
In second part, we calculate d from given equation
d = [tex]\sqrt{D^2- (D- \frac{2P}{HB \pi D})^2}^{2}[/tex] ..............2
Now put the value HB = 450, load and D value in equation 2
d =[tex]\sqrt{10^2- (10- \frac{2×500}{450 \pi 10})^2}^{2}[/tex]
so diameter = 1.19 mm
