NCP600
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10
TYPICAL CHARACTERISTICS
Figure 30. Output Stability with Output
Capacitor ESR over Output Current
I
out
, OUTPUT CURRENT (mA)
1251007550250
0.01
0.1
1.0
10
150
OUTPUT CAPACITOR ESR (W)
C
out
= 1.0 mF to 10 mF
T
A
= 40°C to 125°C
V
in
= up to 6.0 V
Unstable Region
Stable Region
V
out
= 5.0 V
V
out
= 1.25 V
Figure 31. Load Transient Response (1.0 mF)
Figure 32. Load Transient Response (10 mF)
V
out
= 1.25 V
V
out
= 1.25 V
NCP600
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11
DEFINITIONS
Load Regulation
The change in output voltage for a change in output load
current at a constant temperature.
Dropout Voltage
The input/output differential at which the regulator output
no longer maintains regulation against further reductions in
input voltage. Measured when the output drops 2% below its
nominal. The junction temperature, load current, and
minimum input supply requirements affect the dropout level.
Output Noise Voltage
This is the integrated value of the output noise over a
specified frequency range. Input voltage and output load
current are kept constant during the measurement. Results
are expressed in mV
rms
or nV/Hz.
Disable and Ground Current
Ground Current (I
GND
) is the current that flows through
the ground pin when the regulator operates with a load on its
output. This consists of internal IC operation, bias, etc. It is
actually the difference between the input current (measured
through the LDO input pin) and the output load current. If
the regulator has an input pin that reduces its internal bias
and shuts off the output (enable/disable function), this term
is called the disable current (I
DIS
).
Line Regulation
The change in output voltage for a change in input voltage.
The measurement is made under conditions of low
dissipation or by using pulse techniques such that the
average junction temperature is not significantly affected.
Line Transient Response
Typical output voltage overshoot and undershoot
response when the input voltage is excited with a given
slope.
Load Transient Response
Typical output voltage overshoot and undershoot
response when the output current is excited with a given
slope between noload and fullload conditions.
Thermal Protection
Internal thermal shutdown circuitry is provided to protect
the integrated circuit in the event that the maximum junction
temperature is exceeded. When activated at typically 175°C,
the regulator turns off. This feature is provided to prevent
failures from accidental overheating.
Maximum Package Power Dissipation
The power dissipation level at which the junction
temperature reaches its maximum operating value.
APPLICATIONS INFORMATION
The NCP600 series regulator is selfprotected with
internal thermal shutdown and internal current limit. Typical
application circuits are shown in Figures 4 and 5.
Input Decoupling (C
in
)
A ceramic or tantalum 1.0 mF capacitor is recommended
and should be connected close to the NCP600 package.
Higher capacitance and lower ESR will improve the overall
line transient response.
Output Decoupling (C
out
)
The NCP600 is a stable component and does not require
a minimum Equivalent Series Resistance (ESR) for the
output capacitor. The minimum output decoupling value is
1.0 mF and can be augmented to fulfill stringent load
transient requirements. The regulator works with ceramic
chip capacitors as well as tantalum devices. Larger values
improve noise rejection and load regulation transient
response. Figure 30 shows the stability region for a range of
operating conditions and ESR values.
NoLoad Regulation Considerations
The NCP600 adjustable regulator will operate properly
under conditions where the only load current is through the
resistor divider that sets the output voltage. However, in the
case where the NCP600 is configured to provide a 1.250 V
output, there is no resistor divider. If the part is enabled
under noload conditions, leakage current through the pass
transistor at junction temperatures above 85°C can approach
several microamps, especially as junction temperature
approaches 150°C. If this leakage current is not directed into
a load, the output voltage will rise up to a level
approximately 20 mV above nominal.
The NCP600 contains an overshoot clamp circuit to
improve transient response during a load current step
release. When output voltage exceeds the nominal by
approximately 20 mV, this circuit becomes active and
clamps the output from further voltage increase. Tying the
ENABLE pin to V
in
will ensure that the part is active
whenever the supply voltage is present, thus guaranteeing
that the clamp circuit is active whenever leakage current is
present.
When the NCP600 adjustable regulator is disabled, the
overshoot clamp circuit becomes inactive and the pass
transistor leakage will charge any capacitance on V
out
. If no
load is present, the output can charge up to within a few
millivolts of V
in
. In most applications, the load will present
some impedance to V
out
such that the output voltage will be
inherently clamped at a safe level. A minimum load of
10 mA is recommended.
NCP600
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12
Noise Decoupling
The NCP600 is a low noise regulator and needs no
external noise reduction capacitor. Unlike other low noise
regulators which require an external capacitor and have slow
startup times, the NCP600 operates without a noise
reduction capacitor, has a typical 15 ms start up delay and
achieves a 50 mV
rms
overall noise level between 10 Hz and
100 kHz.
Enable Operation
The enable pin will turn the regulator on or off. The
threshold limits are covered in the electrical characteristics
table in this data sheet. The turnon/turnoff transient
voltage being supplied to the enable pin should exceed a
slew rate of 10 mV/ms to ensure correct operation. If the
enable function is not to be used then the pin should be
connected to V
in
.
Output Voltage Adjust
The output voltage can be adjusted from 1 times
(Figure 4) to 4 times (Figure 5) the typical 1.250 V
regulation voltage via the use of resistors between the output
and the ADJ input. The output voltage and resistors are
chosen using Equation 1 and Equation 2.
V
out
+ 1.250
ǒ
1 )
R
1
R
2
Ǔ
)
ǒ
I
ADJ
R
1
Ǔ
(eq. 1)
R
2
^
R
1
V
out
1.25
* 1
(eq. 2)
Input bias current I
ADJ
is typically less than 150 nA.
Choose R2 arbitrarily to minimize errors due to the bias
current and to minimize noise contribution to the output
voltage. Use Equation 2 to find the required value for R1.
Thermal
As power in the NCP600 increases, it might become
necessary to provide some thermal relief. The maximum
power dissipation supported by the device is dependent
upon board design and layout. Mounting pad configuration
on the PCB, the board material, and the ambient temperature
affect the rate of junction temperature rise for the part. When
the NCP600 has good thermal conductivity through the
PCB, the junction temperature will be relatively low with
high power applications. The maximum dissipation the
NCP600 can handle is given by:
P
D(MAX)
+
T
J(MAX)
* T
A
R
qJA
(eq. 3)
Since T
J
is not recommended to exceed 125°C (T
J(MAX)
),
then the NCP600 in a DFN6 package can dissipate up to
870 mW when the ambient temperature (T
A
) is 25°C, and
PCB area is 640 mm
2
and larger, see Figure 33.
The power dissipated by the NCP600 can be calculated
from the following equations:
P
D
[ V
in
ǒ
I
GND
@I
out
Ǔ
) I
out
ǒ
V
in
* V
out
Ǔ
(eq. 4)
or
V
in(MAX)
[
P
D(MAX)
)
ǒ
V
out
I
out
Ǔ
I
out
) I
GND
(eq. 5)
0
50
100
150
200
250
300
350
0 100 200 300 400 500 600 700
Figure 33. R
thJA
vs. PCB Copper Area
PCB COPPER AREA (mm
2
)
R
thJA
, THERMAL RESISTANCE JUNCTIONTOAMBIENT (°C/W)
TSOP5 (1 oz)
DFN6 2x2.2 (1 oz)
TSOP5 (2 oz)
DFN6 2x2.2 (2 oz)
Hints
V
in
and GND printed circuit board traces should be as
wide as possible. When the impedance of these traces is
high, there is a chance to pick up noise or cause the regulator
to malfunction. Place external components, especially the
output capacitor, as close as possible to the NCP600, and
make traces as short as possible.

NCP600SN150T1G

Mfr. #:
Manufacturer:
ON Semiconductor
Description:
LDO Voltage Regulators SBN BE VOLTAGE REG
Lifecycle:
New from this manufacturer.
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