參數(shù)資料
型號: ADUM1233BRWZ
廠商: ANALOG DEVICES INC
元件分類: 其它接口
英文描述: Isolated, Precision Half-Bridge Driver, 0.1 A Output
中文描述: SPECIALTY INTERFACE CIRCUIT, PDSO16
封裝: ROHS COMPLIANT, MS-013AA, SOIC-16
文件頁數(shù): 8/12頁
文件大?。?/td> 216K
代理商: ADUM1233BRWZ
ADuM1233
APPLICATION NOTES
COMMON-MODE TRANSIENT IMMUNITY
In general, common-mode transients consist of linear and
sinusoidal components. The linear component of a common-
mode transient is given by
V
CM, linear
= (ΔV/Δt)
t
where ΔV/Δt is the slope of the transient shown in Figure 11
and Figure 12.
The transient of the linear component is given by
d
V
CM
/
dt
= ΔV/Δt
The ability of the ADuM1233 to operate correctly in the
presence of linear transients is characterized by the data in
Figure 8. The data is based on design simulation and is the
maximum linear transient magnitude that the ADuM1233 can
tolerate without an operational error. This data shows a higher
level of robustness than what is listed in Table 5 because the
transient immunity values obtained in Table 5 use measured
data and apply allowances for measurement error and margin.
Rev. A | Page 8 of 12
0
TEMPERATURE (°C)
100
–40
0
40
80
–20
20
60
T
400
300
200
350
250
150
100
50
0
WORST-CASE PROCESS VARIATION
BEST-CASE PROCESS VARIATION
Figure 8. Transient Immunity (Linear Transients) vs. Temperature
The sinusoidal component (at a given frequency) is given by
V
CM, sinusoidal
=
V
0
sin(2π
ft
)
where:
V
0
is the magnitude of the sinusoidal.
f
is the frequency of the sinusoidal.
The transient magnitude of the sinusoidal component is given by
dV
CM
/
dt
= 2π
f V
0
.
The ability of the ADuM1233 to operate correctly in the
presence of sinusoidal transients is characterized by the data in
Figure 9 and Figure 10. The data is based on design simulation
and is the maximum sinusoidal transient magnitude (2πf V
0
)
that the ADuM1233 can tolerate without an operational error.
Values for immunity against sinusoidal transients are not
included in Table 5 because measurements to obtain such values
have not been possible.
0
FREQUENCY (MHz)
2,000
0
500
1,000
1,500
1,750
250
750
1,250
T
300
200
100
250
150
0
50
WORST-CASE PROCESS VARIATION
BEST-CASE PROCESS VARIATION
Figure 9. Transient Immunity (Sinusoidal Transients),
27°C Ambient Temperature
0
FREQUENCY (MHz)
2,000
0
500
1,000
1,500
1,750
250
750
1,250
T
250
100
150
200
50
0
WORST-CASE PROCESS VARIATION
BEST-CASE PROCESS VARIATION
Figure 10. Transient Immunity (Sinusoidal Transients),
100°C Ambient Temperature
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