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ISL28177FBZ-T13 データシート(PDF) 8 Page - Intersil Corporation

部品番号 ISL28177FBZ-T13
部品情報  40V General Purpose Precision Operational Amplifier
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メーカー  INTERSIL [Intersil Corporation]
ホームページ  http://www.intersil.com/cda/home
Logo INTERSIL - Intersil Corporation

ISL28177FBZ-T13 データシート(HTML) 8 Page - Intersil Corporation

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ISL28177
8
FN7859.2
April 5, 2012
Power Dissipation
It is possible to exceed the +150°C maximum junction
temperature under certain load and power supply conditions. It is
therefore important to calculate the maximum junction
temperature (TJMAX) for all applications to determine if power
supply voltages, load conditions, or package type need to be
modified to remain in the safe operating area. These parameters
are related using Equation 1:
where:
•PDMAXTOTAL is the sum of the maximum power dissipation of
each amplifier in the package (PDMAX)
•PDMAX for each amplifier can be calculated using Equation 2:
where:
•TMAX = Maximum ambient temperature
θJA = Thermal resistance of the package
•PDMAX = Maximum power dissipation of 1 amplifier
•VS = Total supply voltage
•IqMAX = Maximum quiescent supply current of 1 amplifier
•VOUTMAX = Maximum output voltage swing of the application
ISL28177 SPICE Model
Figure 22 shows the SPICE model schematic and Figure 23 shows
the net list for the SPICE model. The model is a simplified version
of the actual device and simulates important AC and DC
parameters. AC parameters incorporated into the model are: 1/f
and flatband noise voltage, Slew Rate, CMRR, Gain and Phase. The
DC parameters are, VOS, IOS, total supply current and output
voltage swing. The model uses typical parameters given in the
“Electrical Specifications” table beginning on page 3. The AVOL is
adjusted for 140dB with the dominant pole at 0.075Hz. The CMRR
is set 145dB, fcm = 500kHz. The input stage models the actual
device to present an accurate AC representation. The model is
configured for ambient temperature of +25°C.
Figures 24 through 37 show the characterization vs simulation
results for the Noise Voltage, Closed Loop Gain vs Frequency,
Small Signal 0.1V Step, Large Signal 5V Step Response, Open
Loop Gain Phase, CMRR, Unity Gain Frequency Response vs CL
and Output Voltage Swing for ±15V supplies.
LICENSE STATEMENT
The information in this SPICE model is protected under the
United States copyright laws. Intersil Corporation hereby grants
users of this macro-model hereto referred to as “Licensee”, a
nonexclusive, nontransferable license to use this model as long
as the Licensee abides by the terms of this agreement. Before
using this macro-model, the Licensee should read this license. If
the Licensee does not accept these terms, permission to use the
model is not granted.
The Licensee may not sell, loan, rent, or license the macro-model,
in whole, in part, or in modified form, to anyone outside the
Licensee’s company. The Licensee may modify the macro-model
to suit his/her specific applications, and the Licensee may make
copies of this macro-model for use within their company only.
This macro-model is provided “AS IS, WHERE IS, AND WITH NO
WARRANTY OF ANY KIND EITHER EXPRESSED OR IMPLIED,
INCLUDING BUT NOT LIMITED TO ANY IMPLIED WARRANTIES OF
MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.”
In no event will Intersil be liable for special, collateral, incidental,
or consequential damages in connection with or arising out of
the use of this macro-model. Intersil reserves the right to make
changes to the product and the macro-model without prior
notice.
T
JMAX
T
MAX
θ
JAxPDMAXTOTAL
+
=
(EQ. 1)
PD
MAX
V
S
I
qMAX
V
S
(
- V
OUTMAX )
V
OUTMAX
R
L
----------------------------
×
+
×
=
(EQ. 2)


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