參數(shù)資料
型號(hào): EL5220CYZ
廠商: INTERSIL CORP
元件分類: 運(yùn)算放大器
英文描述: 12MHz Rail-to-Rail Input-Output Op Amps
中文描述: DUAL OP-AMP, 12000 uV OFFSET-MAX, 8 MHz BAND WIDTH, PDSO10
封裝: ROHS COMPLIANT, MSOP-10
文件頁數(shù): 11/12頁
文件大?。?/td> 253K
代理商: EL5220CYZ
11
FN7186.4
February 21, 2005
output waveforms for the device in the unity-gain
configuration. Operation is from ±5V supply with a 10k
load
connected to GND. The input is a 10V
P-P
sinusoid. The
output voltage is approximately 9.985V
P-P
.
FIGURE 25. OPERATION WITH RAIL-TO-RAIL INPUT AND
OUTPUT
Short Circuit Current Limit
The EL5120, EL5220, and EL5420 will limit the short circuit
current to ±120mA if the output is directly shorted to the
positive or the negative supply. If an output is shorted
indefinitely, the power dissipation could easily increase such
that the device may be damaged. Maximum reliability is
maintained if the output continuous current never exceeds
±30mA. This limit is set by the design of the internal metal
interconnects.
Output Phase Reversal
The EL5120, EL5220, and EL5420 are immune to phase
reversal as long as the input voltage is limited from (V
S
-)
-0.5V to (V
S
+) +0.5V. Figure 26 shows a photo of the output
of the device with the input voltage driven beyond the supply
rails. Although the device's output will not change phase, the
input's overvoltage should be avoided. If an input voltage
exceeds supply voltage by more than 0.6V, electrostatic
protection diodes placed in the input stage of the device
begin to conduct and overvoltage damage could occur.
FIGURE 26. OPERATION WITH BEYOND-THE-RAILS INPUT
Power Dissipation
With the high-output drive capability of the EL5120, EL5220,
and EL5420 amplifiers, it is possible to exceed the 125°C
“absolute-maximum junction temperature” under certain load
current conditions. Therefore, it is important to calculate the
maximum junction temperature for the application to
determine if load conditions need to be modified for the
amplifier to remain in the safe operating area.
The maximum power dissipation allowed in a package is
determined according to:
where:
T
JMAX
= Maximum junction temperature
T
AMAX
= Maximum ambient temperature
θ
JA
= Thermal resistance of the package
P
DMAX
= Maximum power dissipation in the package
The maximum power dissipation actually produced by an IC
is the total quiescent supply current times the total power
supply voltage, plus the power in the IC due to the loads, or:
when sourcing, and:
when sinking.
where:
i = 1 to 2 for dual and 1 to 4 for quad
V
S
= Total supply voltage
I
SMAX
= Maximum supply current per amplifier
V
OUT
i = Maximum output voltage of the application
I
LOAD
i = Load current
If we set the two P
DMAX
equations equal to each other, we
can solve for R
LOAD
i to avoid device overheat. Figures 27
and 28 provide a convenient way to see if the device will
overheat. The maximum safe power dissipation can be
found graphically, based on the package type and the
ambient temperature. By using the previous equation, it is a
simple matter to see if P
DMAX
exceeds the device's power
derating curves. To ensure proper operation, it is important
to observe the recommended derating curves in Figures 27
and 28.
V
S
=±5V
T
A
=25°C
A
V
=1
V
IN
=10V
P-P
O
I
V
S
=±2.5V
T
A
=25°C
A
V
=1
V
IN
=6V
P-P
1V
100μs
1V
P
DMAX
T
--------------------------------------------
T
JA
=
P
DMAX
Σ
i
V
S
I
SMAX
V
S
+
(
V
OUT
i
)
I
LOAD
i
×
+
×
[
]
×
=
P
DMAX
Σ
i
V
S
I
SMAX
V
OUT
i
(
V
S
-
)
I
LOAD
i
×
+
×
[
]
×
=
EL5120, EL5220, EL5420
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