Delta C2000 Series User Manual page 515

Classical field oriented control ac motor drive
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X0
T1
X0
Example 9: Triggering circuit
In the figure below, a command consisting of the differential of the rising edge of X0 causes
coil M0 to generate a single pulse for
electrified during this scanning cycle. Coil M0 loses power during the next scanning cycle,
and NC contact M0 and NC contact Y1 are both closed. This causes coil Y1 to stay in an
electrified state until there is another rising edge in input X0, which again causes the
electrification of coil M0 and the start of another scanning cycle, while also causing coil Y1 to
lose power, etc. The sequence of these actions can be seen in the figure below. This type of
circuit is commonly used to enable one input to perform two actions in alternation. It can be
seen from the time sequence in the figure below that when input X0 is a square wave signal
with a period of T, the output of coil Y1 will be a square wave signal with a period of 2T.
X0
M0
M0
Example 10: Delay circuit
When input X0 is On, because the corresponding NC contact will be Off, the timer T10 will
be in no power status, and output coil Y1 will be electrified. T10 will receive power and
begin timing only after input X0 is Off, and output coil Y1 will be delayed for 100 sec.
(K1000*0.1 sec. =100 sec.) before losing power; please refer to the sequence of actions in
the figure below.
Example 11: The open/close delay circuit is composed of two timers; output Y4 will have a delay
whether input X0 is On or Off.
Example 12: Extended timing circuit
In the circuit in the figure on the left, the total delay time from the moment input X0 closes to
the time output Y1 is electrified is (n1+n2)*T, where T is the clock cycle. Timers: T11, T12;
clock cycle: T.
T2
TMR
T1
Kn1
TMR
T2
Kn2
T1
Y1
X 0
M0
Y1
Y1
M0
Y1
Y 1
16-23
X0
n2*T
Y1
n1*T
T (length of one scanning cycle), and coil Y1 is
T
PLC Function Applications

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