Physics Asked by StressBall on May 22, 2021
I found myself reading some lecture notes on magnetism and tried out the challenge question: http://spiff.rit.edu/classes/phys313/lectures/sol/sol_f01_long.html (At the bottom of the page).
What I did was first calculate the volume of the bar, then the mass and then the force required to hold it against gravity, assuming g = 10.
For this I got that the force required was: ~0.02N
Using this value I tried to calculate the required magnetic field B and got: 2 * $sqrt{μ_0 / pi}$
I then tried calculating the current required and got: 1 /100 * $sqrt{1 / ( μ_0 * pi )}$
Calculating this I get ~5A.
I found the answer and dont know what I did wrong: http://spiff.rit.edu/classes/phys313/quiz/quiz.24.html
Should I have used E$_h$ = mgh somewhere?
Thanks to Michael Richmond.
He setup the question from the link above and responded to my email query with the following:
$$n = N/l = 200/0.2 = 1000 turns / m$$
$$µ_{m} = 2times10^{-2} T/A^2$$ $$µ_{0} = 1.26times10^{-6}N/A^2$$ $$ρ = 7800 kg/m^3$$
Mass of the bar: $$m = ρ pi r^2l = 7800(pi(0.02m)^2(0.2m)) = 1.96kg$$
Force of gravity: $$F_{g} = mg = 19.2N$$
Magnetic force (From an energy perspective): $$F_{B} = frac{pi r^2B^2}{2µ_{0}}(µ_{m}/µ_{0} -1) = frac{pi r^2(µ_{0}nI)^2}{2µ_{0}}(µ_{m}/µ_{0} -1) = frac{pi (0.02m)^2(µ_{0}1000I)^2}{2µ_{0}}(µ_{m}/µ_{0} -1) = 7.9times10^{-4} (15.872) I^2 = 12.6I^2$$
Therefore the current is: $$F_{B} = F_{g} to I^2 = frac{F_{B}}{12.6} to I = 1.2A$$
Looking at this I made two mistakes;
Answered by StressBall on May 22, 2021
Get help from others!
Recent Questions
Recent Answers
© 2024 TransWikia.com. All rights reserved. Sites we Love: PCI Database, UKBizDB, Menu Kuliner, Sharing RPP