Answer: [tex]B=0.0162T[/tex]
Explanation:
let this sign be ∅ (titha in degrees)
let coefficient of friction of 0.200 be u
and i be current i= 1.41A
mass m=1.14g/cm m=0.0114g/m
To find the magnetic field from the north will be:
tan ∅= u
∅=[tex]tan^{-1}(0.200[/tex]
∅=11.3°
The direction:
i L*B cos(∅)= umg
divide both by iLcos(∅) to find B
B= [tex]\frac{umg}{iBcos(∅)}[/tex] where m=[tex]\frac{m}{L}[/tex]
B= [tex]\frac{u(m/L)g}{icos(∅)}[/tex]
B= [tex]\frac{0.200*0.0114*9.81}{1.41*cos(11.3)}[/tex]
[tex]B=0.0162T[/tex]
