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Frequently Asked Questions
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What is a VFD? And, what does VFD stand for?
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A variable-frequency drive (VFD) is a system for controlling the
rotational speed of an alternating current (AC) electric motor by
controlling the frequency of the electrical power supplied to the motor. A
variable frequency drive is a specific type of adjustable-speed drive.
Variable-frequency drives are also known as adjustable-frequency drives (AFD),
variable-speed drives (VSD), AC drives, microdrives or inverter drives. Since
the voltage is varied along with frequency, these are sometimes also called VVVF
(variable voltage variable frequency) drives.
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What does a VFD system consist of?
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A variable frequency drive system generally consists of an AC motor, a
controller and an operator interface.
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What type of motors can be used?
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The motor used in a VFD system is usually a three-phase induction motor. Some types of single-phase motors can be
used, but three-phase motors are usually preferred. Various types of synchronous
motors offer advantages in some situations, but induction motors are suitable
for most purposes and are generally the most economical choice. Motors that are
designed for fixed-speed mains voltage operation are often used, but certain
enhancements to the standard motor designs offer higher reliability and better
VFD performance.
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What happens and how does it work?
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When a VFD starts a motor, it initially applies a low frequency and voltage
to the motor. The starting frequency is typically 2 Hz or less. Starting at such
a low frequency avoids the high inrush current that occurs when a motor is
started by simply applying the utility (mains) voltage by turning on a switch.
When a VFD starts, the applied frequency and voltage are increased at a
controlled rate or ramped up to accelerate the load without drawing excessive
current. This starting method typically allows a motor to develop 150% of its
rated torque while drawing only 50% of
its rated current. When a motor is simply switched on at full voltage, it
initially draws at least 300% of its rated current while producing less than 50%
of its rated torque. As the load accelerates, the available torque usually drops
a little and then rises to a peak while the current remains very high until the
motor approaches full speed. A VFD can be adjusted to produce a steady 150%
starting torque from standstill right up to full speed while drawing only 50%
current.
With a VFD, the stopping sequence is just the opposite as the starting
sequence. The frequency and voltage applied to the motor are ramped down at a
controlled rate. When the frequency approaches zero, the motor is shut off. A
small amount of braking torque is available to help decelerate the load a little faster than it would
stop if the motor were simply switched off and allowed to coast. Additional
braking torque can be obtained by adding a braking circuit to dissipate the
braking energy or return it to the power source.
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