Title :
Power dissipation and magnetic forces on MAGLEV rebars
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., MIT, Cambridge, MA, USA
fDate :
3/1/1997 12:00:00 AM
Abstract :
Concrete guideways for proposed MAGLEV vehicles may be reinforced with electrically conducting and magnetizable steel rebars. Transient magnetic fields due to passing MAGLEV vehicles will then induce transient currents in the rebars leading to power dissipation and temperature rise as well as Lorentz and magnetization forces on the rebars. In order to evaluate if this heating and force on the rebars affects concrete life and performance, analysis is presented for an infinitely long conducting and magnetizable cylinder in imposed uniform axial or transverse magnetic fields. Exact and approximate solutions are presented for sinusoidal steady state and step transient magnetic fields inside and outside the cylinder, the induced current density, the vector potential for transverse magnetic fields, the time average dissipated power in the sinusoidal steady state, and the total energy dissipated for step transients. Forces are approximately calculated for imposed magnetic fields with a weak spatial gradient. The analysis is applied to representative rebar materials
Keywords :
eddy currents; magnetic fields; magnetic levitation; magnetisation; transient analysis; Lorentz forces; MAGLEV rebars; MAGLEV vehicles; concrete guideway reinforcement; electrically conducting rebars; induced current density; magnetic forces; magnetization forces; power dissipation; sinusoidal steady state; step transient magnetic fields; time average dissipated power; transient magnetic fields; transverse fields; uniform axial fields; vector potential; weak spatial gradient; Concrete; Magnetic analysis; Magnetic fields; Magnetic forces; Magnetic levitation; Power dissipation; Steady-state; Steel; Temperature; Vehicles;
Journal_Title :
Magnetics, IEEE Transactions on