1.0 A, Adjustable Output
Voltage, Step-Down
Switching Regulator
The LM2575 series of regulators are monolithic integrated circuits
ideally suited for easy and convenient design of a step−down
switching regulator (buck converter). All circuits of this series are
capable of driving a 1.0 A load with excellent line and load regulation.
These devices are available in fixed output voltages of 3.3 V, 5.0 V,
12 V, 15 V, and an adjustable output version.
These regulators were designed to minimize the number of external
components to simplify the power supply design. Standard series of
inductors optimized for use with the LM2575 are offered by several
different inductor manufacturers.
Since the LM2575 converter is a switch−mode power supply, its
efficiency is significantly higher in comparison with popular
three−terminal linear regulators, especially with higher input voltages.
In many cases, the power dissipated by the LM2575 regulator is so
low, that no heatsink is required or its size could be reduced
dramatically.
The LM2575 features include a guaranteed ±4% tolerance on output
voltage within specified input voltages and output load conditions, and
±10% on the oscillator frequency (±2% over 0°C to 125°C). External
shutdown is included, featuring 80 mA typical standby current. The
output switch includes cycle−by−cycle current limiting, as well as
thermal shutdown for full protection under fault conditions.
Minimum ESD Rating (Human Body Model: C = 100 pF, R = 1.5 kW)
D
R
q
JA
R
q
JC
D
R
q
JA
R
q
JC
stg
−2.0kV
Lead Temperature (Soldering, 10 s)−260°C
Maximum Junction TemperatureT
J
Stresses exceeding Maximum Ratings may damage the device. Maximum Ratings are stress ratings only. Functional operation above the
Recommended Operating Conditions is not implied. Extended exposure to stresses above the Recommended Operating Conditions may affect
device reliability.
45V
in
Internally LimitedW
65°C/W
5.0°C/W
Internally LimitedW
70°C/W
5.0°C/W
−65 to +150°C
150°C
V
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2
LM2575, NCV2575
OPERATING RATINGS (Operating Ratings indicate conditions for which the device is intended to be functional, but do not guarantee
specific performance limits. For guaranteed specifications and test conditions, see the Electrical Characteristics.)
Rating
Operating Junction Temperature RangeT
Supply VoltageV
SYSTEM PARAMETERS ([Note 1] Test Circuit Figure 14)
ELECTRICAL CHARACTERISTICS (Unless otherwise specified, V
for the 12 V version, and Vin = 30 V for the 15 V version. I
operating junction temperature range that applies [Note 2], unless otherwise noted.)
CharacteristicsSymbolMinTy pMaxUnit
LM2575−3.3(Note 1 Test Circuit Figure 14)
Output Voltage (Vin = 12 V, I
= 0.2 A, T
Load
Output Voltage (4.75 V ≤ Vin ≤ 40 V, 0.2 A ≤ I
= 25°C)V
J
≤ 1.0 A)V
Load
TJ = 25°C3.1683.33.432
TJ = −40 to +125°C3.135−3.465
Efficiency (V
= 12 V, I
in
= 1.0 A)η−75−%
Load
LM2575−5([Note 1] Test Circuit Figure 14)
Output Voltage (Vin = 12 V, I
Output Voltage (8.0 V ≤ Vin ≤ 40 V, 0.2 A ≤ I
= 0.2 A, TJ = 25°C)V
Load
≤ 1.0 A)V
Load
TJ = 25°C4.85.05.2
TJ = −40 to +125°C4.75−5.25
Efficiency (Vin = 12 V, I
= 1.0 A)η−77−%
Load
LM2575−12(Note 1 Test Circuit Figure 14)
Output Voltage (Vin = 25 V, I
Output Voltage (15 V ≤ Vin ≤ 40 V, 0.2 A ≤ I
= 0.2 A, TJ = 25°C)V
Load
≤ 1.0 A)V
Load
TJ = 25°C11.521212.48
TJ = −40 to +125°C11.4−12.6
Efficiency (Vin = 15V, I
= 1.0 A)η−88−%
Load
LM2575−15(Note 1 Test Circuit Figure 14)
Output Voltage (V
= 30 V, I
in
Output Voltage (18 V ≤ Vin ≤ 40 V, 0.2 A ≤ I
= 0.2 A, TJ = 25°C)V
Load
≤ 1.0 A)V
Load
TJ = 25°C14.41515.6
T
= −40 to +125°C14.25−15.75
J
Efficiency (Vin = 18 V, I
= 1.0 A)η−88−%
Load
LM2575 ADJUSTABLE VERSION(Note 1 Test Circuit Figure 14)
Feedback Voltage (V
Feedback Voltage (8.0 V ≤ Vin ≤ 40 V, 0.2 A ≤ I
= 12 V, I
in
= 0.2 A, V
Load
= 5.0 V, TJ = 25°C)V
out
≤ 1.0 A, V
Load
TJ = 25°C1.1931.231.267
T
= −40 to +125°C1.18−1.28
J
Efficiency (V
= 12 V, I
in
= 1.0 A, V
Load
= 5.0 V)η−77−%
out
1. External components such as the catch diode, inductor, input and output capacitors can affect switching regulator system performance.
When the LM2575 is used as shown in the Figure 14 test circuit, system performance will be as shown in system parameters section.
2. Tested junction temperature range for the LM2575 and the NCV2575: T
= 200 mA. For typical values T
Load
= 5.0 V)V
out
= 12 V for the 3.3 V, 5.0 V, and Adjustable version, Vin = 25 V
in
out
out
out
out
out
out
out
out
FB
FB
= −40°C T
low
SymbolValueUnit
J
in
= 25°C, for min/max values TJ is the
J
−40 to +125°C
40V
3.2343.33.366V
V
4.95.05.1V
11.761212.24V
14.71515.3V
1.2171.231.243V
= +125°C
high
V
V
V
V
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3
LM2575, NCV2575
DEVICE PARAMETERS
ELECTRICAL CHARACTERISTICS (Unless otherwise specified, V
for the 12 V version, and Vin = 30 V for the 15 V version. I
operating junction temperature range that applies [Note 2], unless otherwise noted.)
CharacteristicsSymbolMinTy pMaxUnit
ALL OUTPUT VOLTAGE VERSIONS
Feedback Bias Current (V
= 5.0 V Adjustable Version Only)I
out
TJ = 25°C−25100
TJ = −40 to +125°C−−200
Oscillator Frequency Note 3f
TJ = 25°C−52−
TJ = 0 to +125°C47−58
TJ = −40 to +125°C42−63
Saturation Voltage (I
= 1.0 A Note 4)V
out
TJ = 25°C−1.01.2
TJ = −40 to +125°C−−1.3
Max Duty Cycle (“on”) Note 5DC9498−%
Current Limit (Peak Current Notes 4 and 3)I
TJ = 25°C1.72.33.0
TJ = −40 to +125°C1.4−3.2
Output Leakage Current Notes 6 and 7, TJ = 25°CI
Output = 0 V−0.82.0
Output = −1.0 V−6.020
Quiescent Current Note 6I
TJ = 25°C−5.09.0
TJ = −40 to +125°C−−11
Standby Quiescent Current (ON/OFF Pin = 5.0 V (“off”))I
ON/OFF Pin = 5.0 V (“off”), TJ = 25°CI
ON/OFF Pin = 0 V (“on”), TJ = 25°CI
3. The oscillator frequency reduces to approximately 18 kHz in the event of an output short or an overload which causes the regulated output
voltage to drop approximately 40% from the nominal output voltage. This self protection feature lowers the average dissipation of the IC by
lowering the minimum duty cycle from 5% down to approximately 2%.
4. Output (Pin 2) sourcing current. No diode, inductor or capacitor connected to output pin.
5. Feedback (Pin 4) removed from output and connected to 0 V.
6. Feedback (Pin 4) removed from output and connected to +12 V for the Adjustable, 3.3 V, and 5.0 V versions, and +25 V for the 12 V and
15 V versions, to force the output transistor “off”.
7. V
= 40 V.
in
= 200 mA. For typical values T
Load
= 12 V for the 3.3 V, 5.0 V, and Adjustable version, Vin = 25 V
in
b
osc
sat
CL
L
Q
stby
IH
IL
IH
IL
= 25°C, for min/max values TJ is the
J
−1530
−05.0
nA
kHz
V
A
mA
mA
mA
mA
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4
0.4
0.2
Vin = 20 V
= 200 mA
I
Load
Normalized at
TJ = 25°C
LM2575, NCV2575
TYPICAL PERFORMANCE CHARACTERISTICS (Circuit of Figure 14)
1.00.6
I
= 200 mA
Load
TJ = 25°C
0.8
0.6
3.3 V, 5.0 V and Adj
0
-0.2
, OUTPUT VOLTAGE CHANGE (%)
-0.4
out
V
-0.6
-50
Figure 2. Normalized Output Voltage
1.2
1.1
1.0
0.9
0.8
0.7
, SATURATION VOLTAGE (V)
0.6
sat
V
0.5
0.4
-40°C
25°C
125°C
0
TJ, JUNCTION TEMPERATURE (°C)
SWITCH CURRENT (A)
0.80.91.0
0.4
0.2
, OUTPUT VOLTAGE CHANGE (%)
0
out
V
-0.2
0
5.0-25100201525257550353040100125
3.0
2.5
2.0
1.5
1.0
, OUTPUT CURRENT (A)
O
I
0.5
0
-50
-250.100.2250.3500.4750.51000.61250.7
12 V and 15 V
Vin, INPUT VOLTAGE (V)
Figure 3. Line Regulation
Vin = 25 V
TJ, JUNCTION TEMPERATURE (°C)
INPUT-OUTPUT DIFFERENTIAL (V)
2.0
1.8
1.6
1.4
1.2
1.0
0.8
0.6
0.4
-50
Figure 4. Switch Saturation VoltageFigure 5. Current Limit
, QUIESCENT CURRENT (mA)
Q
I
8.0
6.0
4.0
20
18
16
14
I
Load
= 1.0 A
12
10
I
= 200 mA
Load
0
5.0-251001525205025753010035125
Vin, INPUT VOLTAGE (V)
I
Load
I
Load
= 1.0 A
= 200 mA
TJ, JUNCTION TEMPERATURE (°C)
DV
R
ind
= 5%
out
= 0.2 W
Figure 6. Dropout VoltageFigure 7. Quiescent Current
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5
V
= 5.0 V
out
Measured at
Ground Pin
TJ = 25°C
40
LM2575, NCV2575
, STANDBY QUIESCENT CURRENT ( A)μ
I
stby
-2.0
120
100
2.0
80
60
40
20
0
0
0
TJ = 25°C
5.0
10
15
20
25
Vin, INPUT VOLTAGE (V)
Figure 8. Standby Quiescent Current
Vin = 12 V
Normalized at 25°C
120
Vin = 12 V
V
= 5.0 V
ON/OFF
100
80
60
40
20
, STANDBY QUIESCENT CURRENT ( A)μ
0
stby
I
-50
30
4035
-25
0
25
50
75
100
125
TJ, JUNCTION TEMPERATURE (°C)
Figure 9. Standby Quiescent Current
40
Adjustable
Version Only
20
-4.0
-6.0
NORMALIZED FREQUENCY (%)
-8.0
-10
-50
OUTPUT
VOLTAGE
(PIN 2)
OUTPUT
CURRENT
(PIN 2)
INDUCTOR
CURRENT
OUTPUT
RIPPLE
VOLTAGE
0
-20
, FEEDBACK PIN CURRENT (nA)
FB
I
-40
-50
-25
0
25
TJ, JUNCTION TEMPERATURE (°C)
50
75
100
125
-25
0
25
TJ, JUNCTION TEMPERATURE (°C)
Figure 10. Oscillator FrequencyFigure 11. Feedback Pin Current
As in any switching regulator, the layout of the printed
circuit board is very important. Rapidly switching currents
associated with wiring inductance, stray capacitance and
parasitic inductance of the printed circuit board traces can
generate voltage transients which can generate
electromagnetic interferences (EMI) and affect the desired
operation. As indicated in the Figure 14, to minimize
inductance and ground loops, the length of the leads
indicated by heavy lines should be kept as short as possible.
For best results, single−point grounding (as indicated) or
ground plane construction should be used.
ref
= 1.23 V, R1
ref
R1
V
out
1Ǔ
V
ref
R2
ǒ
Ǔ
1 )
On the other hand, the PCB area connected to the Pin 2
(emitter of the internal switch) of the LM2575 should be
kept to a minimum in order to minimize coupling to sensitive
circuitry.
Another sensitive part of the circuit is the feedback. It is
important to keep the sensitive feedback wiring short. To
assure this, physically locate the programming resistors near
to the regulator, when using the adjustable version of the
LM2575 regulator.
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7
LM2575, NCV2575
PIN FUNCTION DESCRIPTION
Pin
1V
2OutputThis is the emitter of the internal switch. The saturation voltage V
3GNDCircuit ground pin. See the information about the printed circuit board layout.
4FeedbackThis pin senses regulated output voltage to complete the feedback loop. The signal is divided by the
5ON/OFFIt allows the switching regulator circuit to be shut down using logic level signals, thus dropping the total
SymbolDescription (Refer to Figure 1)
in
This pin is the positive input supply for the LM2575 step−down switching regulator. In order to minimize
voltage transients and to supply the switching currents needed by the regulator, a suitable input bypass
capacitor must be present (C
It should be kept in mind that the PCB area connected to this pin should be kept to a minimum in order to
minimize coupling to sensitive circuitry.
internal resistor divider network R2, R1 and applied to the non−inverting input of the internal error amplifier.
In the Adjustable version of the LM2575 switching regulator this pin is the direct input of the error amplifier
and the resistor network R2, R1 is connected externally to allow programming of the output voltage.
input supply current to approximately 80 mA. The input threshold voltage is typically 1.4 V. Applying a
voltage above this value (up to +Vin) shuts the regulator off. If the voltage applied to this pin is lower than
1.4 V or if this pin is connected to ground, the regulator will be in the “on” condition.
in Figure 1).
in
sat
DESIGN PROCEDURE
of this output switch is typically 1.0 V.
Buck Converter Basics
The LM2575 is a “Buck” or Step−Down Converter which
is the most elementary forward−mode converter. Its basic
schematic can be seen in Figure 15.
The operation of this regulator topology has two distinct
time periods. The first one occurs when the series switch is
on, the input voltage is connected to the input of the inductor.
The output of the inductor is the output voltage, and the
rectifier (or catch diode) is reverse biased. During this
period, since there is a constant voltage source connected
across the inductor, the inductor current begins to linearly
ramp upwards, as described by the following equation:
I
L(on)
+
ǒ
VinV
out
L
Ǔ
t
on
During this “on” period, energy is stored within the core
material in the form of magnetic flux. If the inductor is
properly designed, there is sufficient energy stored to carry
the requirements of the load during the “off” period.
Power
Switch
L
V
out
current loop. This removes the stored energy from the
inductor.
The inductor current during this time is:
I
L(off)
+
ǒ
V
out
Ǔ
V
t
D
off
L
This period ends when the power switch is once again
turned on. Regulation of the converter is accomplished by
varying the duty cycle of the power switch. It is possible to
describe the duty cycle as follows:
t
on
d +
, where T is the period of switching.
T
For the buck converter with ideal components, the duty
cycle can also be described as:
V
out
d +
V
in
Figure 16 shows the buck converter idealized waveforms
of the catch diode voltage and the inductor current.
C
V
in
Figure 15. Basic Buck Converter
D1
out
R
Load
The next period is the “off” period of the power switch.
When the power switch turns off, the voltage across the
inductor reverses its polarity and is clamped at one diode
voltage drop below ground by catch dioded. Current now
flows through the catch diode thus maintaining the load
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8
V
on(SW)
LM2575, NCV2575
Power
Switch
Off
Diode VoltageInductor Current
VD(FWD)
I
min
DiodeDiode
Power
Switch
On
Power
Switch
Power
Switch
Off
Power
Switch
On
I
pk
Power
Switch
Figure 16. Buck Converter Idealized Waveforms
I
Load
Time
(AV)
Time
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