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ADP1031ACPZ-2-R7 数据表(PDF) 34 Page - Analog Devices

部件名 ADP1031ACPZ-2-R7
功能描述  Three-Channel, Isolated Micropower Management Unit with Seven Digital Isolators
PDF  38 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP1031ACPZ-2-R7 数据表(HTML) 34 Page - Analog Devices

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ADP1031
Data Sheet
Rev. A | Page 34 of 38
INSULATION LIFETIME
All insulation structures eventually break down when subjected to
voltage stress over a sufficiently long period. The rate of insulation
degradation is dependent on the characteristics of the voltage
waveform applied across the insulation as well as on the materials
and material interfaces.
The two types of insulation degradation of primary interest are
breakdown along surfaces exposed to the air and insulation wear
out. Surface breakdown is the phenomenon of surface tracking
and the primary determinant of surface creepage requirements
in system level standards. Insulation wear out is the phenomenon
where charge injection or displacement currents inside the
insulation material cause long-term insulation degradation.
Surface Tracking
Surface tracking is addressed in electrical safety standards by
setting a minimum surface creepage based on the working voltage,
the environmental conditions, and the properties of the insulation
material. Safety agencies perform characterization testing on the
surface insulation of components that allows the components to be
categorized in different material groups. Lower material group
ratings are more resistant to surface tracking. Therefore, lower
material group ratings provide adequate lifetime with smaller
creepage. The minimum creepage for a given working voltage and
material group is determined in each system level standard and is
based on the total rms voltage across the isolation, pollution
degree, and material group. The material group and creepage
for the ADP1031 isolators are shown in Table 4.
Insulation Wear Out
The lifetime of insulation is determined by thickness, material
properties, and the voltage stress applied. It is important to
verify that the product lifetime is adequate at the application
working voltage. The working voltage supported by an isolator for
wear out may not be the same as the working voltage supported
for tracking. The working voltage applicable to tracking is
specified in most standards.
Testing and modeling have shown that the primary driver of
long-term degradation is displacement current in the polyimide
insulation. This displacement current causes incremental damage
to the insulation. The stress on the insulation can be broken down
into broad categories: dc stress and ac component time varying
voltage stress. DC stress causes very little insulation wear out
because there is no displacement current. AC component time
varying voltage stress causes insulation wear out.
The ratings in certification documents are usually based on
60 Hz sinusoidal stress because this reflects isolation from line
voltage. However, many practical applications have combinations
of 60 Hz ac and dc across the barrier as shown in Equation 1.
Because only the ac portion of the stress causes wear out, the
equation can be rearranged to solve for the ac rms voltage, as
shown in Equation 2. For insulation wear out with the polyimide
materials, the ac rms voltage determines the product lifetime.
2
2
DC
RMS
AC
RMS
V
V
V
+
=
(1)
or
22
AC RMS
RMS
DC
V
V
V
=
(2)
where:
VRMS is the total rms working voltage.
VAC RMS is the time varying portion of the working voltage.
VDC is the dc offset of the working voltage.
Calculation and Use of Parameters Example
The following example frequently arises in power conversion
applications. Assume that the line voltage on one side of the
isolation is 240 V ac rms and a 400 V dc bus voltage is present
on the other side of the isolation barrier. The isolator material is
polyimide. To establish the critical voltages in determining the
creepage, clearance, and lifetime of a device, see Figure 75 and
the following equations.
TIME
VAC RMS
VRMS
VDC
VPEAK
Figure 75. Critical Voltage Example
The working voltage across the barrier from Equation 1 is
2
2
DC
RMS
AC
RMS
V
V
V
+
=
2
2
400
240 +
=
RMS
V
VRMS = 466 V
This VRMS value is the working voltage and is used together with
the material group and pollution degree when looking up the
creepage required by a system standard.
To determine if the lifetime is adequate, obtain the time varying
portion of the working voltage. To obtain the ac rms voltage,
use Equation 2.
22
AC RMS
RMS
DC
V
V
V
=
2
2
400
466 −
=
RMS
AC
V
VAC RMS = 240 V rms
In this case, the ac rms voltage is simply the line voltage of
240 V rms. This calculation is more relevant when the waveform is
not sinusoidal. The value is compared to the limits for working
voltage in Table 8 for the expected lifetime, which is less than a



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