Answer:
(a). The HB of this material is 217.8
(b). The diameter of an indentation is 1.45 mm.
Explanation:
Given that,
Diameter of Brinell hardness D= 10.0 m
Diameter of steel alloy d= 2.4 mm
Load = 1000 kg
(a). We need to calculate the HB of this material
Using formula of Brinell hardness
[tex]HB=\dfrac{2P}{\pi D(D-\sqrt{D^2-d^2})}[/tex]
Put the value into the formula
[tex]HB=\dfrac{2\times1000}{\pi\times10(10-\sqrt{10^2-2.4^2})}[/tex]
[tex]HB=217.8[/tex]
(b). Given that,
Hardness = 300 HB
Load = 500 kg
We need to calculate the diameter of an indentation
Using formula of diameter
[tex]d=\sqrt{D^2-[D-\dfrac{2P}{(HB)\pi D}]^2}[/tex]
Put the value into the formula
[tex]d=\sqrt{10^2-[10-\dfrac{2\times500}{300\pi\times10}]^2}[/tex]
[tex]d=1.45\ mm[/tex]
Hence,(a). The HB of this material is 217.8
(b). The diameter of an indentation is 1.45 mm.
