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AN439 Folha de dados(PDF) 13 Page - STMicroelectronics

Nome de Peças AN439
Descrição Electrónicos  The use of TRIACs is limited by their switching behavior
PDF  16 Pages
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Fabricante Electrônico  STMICROELECTRONICS [STMicroelectronics]
Página de início  http://www.st.com
Logo STMICROELECTRONICS - STMicroelectronics

AN439 Folha de dados(HTML) 13 Page - STMicroelectronics

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AN439
Logic level and Snubberless TRIACs
13/16
Figure 12.
Solid state relay diagram, using Zero Voltage Switching with opto-TRIAC
●
Motor drive circuits. The circuit Figure 12 shows an asynchronous motor controlled in
both direction by turning on each TRIAC alternately.
Figure 13.
Motor control circuit using Snubberless TRIACs (Ls + r = network for
series protection)
Note:
Series impedance (r + L) is needed to protect the blocked TRIAC in case of unwanted
triggering (when the other is already on). Only one clamping device (VDR) provides
overvoltage protection for both TRIACs (IEC 61000-4-5). Snubber networks (R1C1 and
R2C2) eliminate spurious triggering due to fast line transients (IEC 61000-4-4).
The specified (dI/dt)c for a Snubberless TRIAC is higher than the decreasing slope of its
specified rms on-state current (IT(RMS)). This feature is important for several applications,
including:
●
Circuits in which the dI/dtOFF is higher than the dI/dtOFF calculated with the Equation 3.
For universal motors, due to the impact of the brushes, the dI/dtOFF is typically three
times higher (see Figure 14). Table 3 illustrates the component choice optimization by
using Snubberless TRIACs. For example, a 8 A Snubberless TRIAC is sufficient to
control a 110 V / 600 W motor instead of a 16 A standard TRIAC.
LOAD
R1
R2
C1
T
SSR
LOAD
R1
R2
C1
V
Mains
T
Solid State Relay
INPUT
LOAD
R1
R2
C1
T
SSR
LOAD
R1
R2
C1
V
Mains
T
Solid State Relay
INPUT
V
Mains
M
C
Start
Run
X2
r
L
R1
Gate
drive
circuit
C1
VDR
R2
C2
V
Mains
M
C
Start
Run
X2
r
L
R1
Gate
drive
circuit
C1
VDR
VDR
R2
C2



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