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AN439 bảng dữ liệu(PDF) 13 Page - STMicroelectronics

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Giải thích chi tiết về linh kiện  The use of TRIACs is limited by their switching behavior
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AN439 bảng dữ liệu(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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