problem #1: charging a capacitor
... WARNING: A charged capacitor can discharge quickly producing a painful spark. Do not handle the capacitors by their electrical terminals or connected wires by their metal ends. Always discharge a capacitor when you are finished using it. To discharge a capacitor, use an insulated wire to briefly con ...
... WARNING: A charged capacitor can discharge quickly producing a painful spark. Do not handle the capacitors by their electrical terminals or connected wires by their metal ends. Always discharge a capacitor when you are finished using it. To discharge a capacitor, use an insulated wire to briefly con ...
parametric study of rotor slot shape on a cage induction motor
... significant cost [2]. Therefore, formal methods can be adequate to modify geometric parameters of the rotor slots until the optimal performance is achieved. This work presents the results of a parametric study of the geometry of the rotor slots on an 4pole three-phase double-squirrel cage large indu ...
... significant cost [2]. Therefore, formal methods can be adequate to modify geometric parameters of the rotor slots until the optimal performance is achieved. This work presents the results of a parametric study of the geometry of the rotor slots on an 4pole three-phase double-squirrel cage large indu ...
Voltage control of magnetism in FeGaB/PIN-PMN-PT multiferroic heterostructures for
... heterostructures, the voltage applied to the piezoelectric layer produces a mechanical deformation that couples to the magnetic layer, and thus induces a change in the magnetic anisotropy.5–7 The strong ME coupling in the multiferroic heterostructures exhibits promising applications in tunable radio ...
... heterostructures, the voltage applied to the piezoelectric layer produces a mechanical deformation that couples to the magnetic layer, and thus induces a change in the magnetic anisotropy.5–7 The strong ME coupling in the multiferroic heterostructures exhibits promising applications in tunable radio ...
No Slide Title
... Is a lighting bolt, (like the one Ben Franklin felt when he was flying his kite) an ideal current supply? An ideal current source will provide the stated amount of current (a specific number of moving charges/unit time) no matter what the demand for that flow of charge becomes or how long that deman ...
... Is a lighting bolt, (like the one Ben Franklin felt when he was flying his kite) an ideal current supply? An ideal current source will provide the stated amount of current (a specific number of moving charges/unit time) no matter what the demand for that flow of charge becomes or how long that deman ...
Triple Pulse Tester - Efficient Power Loss Characterization of Power Modules
... Typical waveforms for the voltage, current, power and energy are given in Figures 9 and 10 for a switching behavior at 150 ◦ C. The busbar stray inductance was around 12 nH, detected automatically at the turn-ON transient. The rise time and current slope are detected also according to [5], namely fr ...
... Typical waveforms for the voltage, current, power and energy are given in Figures 9 and 10 for a switching behavior at 150 ◦ C. The busbar stray inductance was around 12 nH, detected automatically at the turn-ON transient. The rise time and current slope are detected also according to [5], namely fr ...
As we discussed earlier capacitors and coils resist the flow
... As we discussed earlier capacitors and coils resist the flow of current through them. As has been noted their resistance to current flow is called reactance. When these two reactance’s are combined the combined reactance is referred to as impedance. Notice we said combined rather than added. We will ...
... As we discussed earlier capacitors and coils resist the flow of current through them. As has been noted their resistance to current flow is called reactance. When these two reactance’s are combined the combined reactance is referred to as impedance. Notice we said combined rather than added. We will ...
Coilgun
A coilgun (or Gauss rifle, in reference to Carl Friedrich Gauss, who formulated mathematical descriptions of the magnetic effect used by magnetic accelerators) is a type of projectile accelerator consisting of one or more coils used as electromagnets in the configuration of a linear motor that accelerate a ferromagnetic or conducting projectile to high velocity. In almost all coilgun configurations, the coils and the gun barrel are arranged on a common axis.Coilguns generally consist of one or more coils arranged along a barrel, so the path of the accelerating projectile lies along the central axis of the coils. The coils are switched on and off in a precisely timed sequence, causing the projectile to be accelerated quickly along the barrel via magnetic forces. Coilguns are distinct from railguns, as the direction of acceleration in a railgun is at right angles to the central axis of the current loop formed by the conducting rails. In addition, railguns usually require the use of sliding contacts to pass a large current through the projectile or sabot but coilguns do not necessarily require sliding contacts. Whilst some simple coilgun concepts can use ferromagnetic projectiles or even permanent magnet projectiles, most designs for high velocities actually incorporate a coupled coil as part of the projectile.