AAT1157IVN-3.3-T1 [ANALOGICTECH]

Switching Regulator/Controller,;
AAT1157IVN-3.3-T1
型号: AAT1157IVN-3.3-T1
厂家: ADVANCED ANALOGIC TECHNOLOGIES    ADVANCED ANALOGIC TECHNOLOGIES
描述:

Switching Regulator/Controller,

文件: 总15页 (文件大小:645K)
中文:  中文翻译
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
General Description  
Features  
The AAT1157 SwitchReg™ is a step-down switching con-  
verter, ideal for applications where fixed frequency and  
low ripple are required over the full range of load condi-  
tions. The 2.7V to 5.5V input voltage range makes the  
AAT1157 ideal for single-cell lithium-ion/polymer battery  
applications. Capable of up to 1.2A with internal  
MOSFETs, the current-mode controlled IC provides high  
efficiency over a wide operating range. Fully integrated  
compensation simplifies system design and lowers exter-  
nal parts count. The device operates at a fixed 1MHz  
switching frequency across all load conditions.  
• VIN Range: 2.7V to 5.5V  
• Up to 95% Efficiency  
• 110 mΩ RDS(ON) Internal Switches  
• <1μA Shutdown Current  
• 1MHz Buck Switching Frequency  
• Fixed or Adjustable VOUT 0.8V  
• Integrated Power Switches  
• Current Mode Operation  
• Internal Compensation  
• Stable with Ceramic Capacitors  
• Constant PWM Operation for Low Output Ripple  
• Internal Soft Start  
• Over-Temperature Protection  
• Current Limit Protection  
The AAT1157 is available in the Pb-free, 16-pin 3x3mm  
QFN package and is rated over the -40°C to +85°C tem-  
perature range.  
• 16-Pin QFN 3x3mm Package  
• -40°C to +85°C Temperature Range  
Applications  
• HDD MP3 Players  
• Notebook Computers  
• PDAs  
• Point-of-Load Regulation  
• Set Top Boxes  
• Smart Phones  
• Wireless Notebook Adapters  
Typical Application  
U1  
AAT1157  
3.3V  
2.5V  
4
12  
11  
10  
7
VP  
FB  
LX  
R3  
187k  
15  
14  
13  
16  
3
R1  
100  
VP  
L1  
3.0μH  
VP  
LX  
C1  
10μF  
EN  
LX  
9
VCC  
N/C  
N/C  
N/C  
R4  
59k  
C3-C4  
2x 22μF  
6
PGND  
PGND  
2
8
C2  
0.1μF  
1
5
SGND PGND  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Pin Descriptions  
Pin #  
Symbol  
Function  
Main power ground return pin. Connect to the output and input capacitor return. (See board layout  
rules.)  
1, 2, 3  
PGND  
Feedback input pin. This pin is connected to the converter output. It is used to set the output of the  
converter to regulate to the desired value via an internal resistive divider. For an adjustable output,  
an external resistive divider is connected to this pin.  
4
FB  
5
SGND  
EN  
Signal ground. Connect the return of all small signal components to this pin. (See board layout rules.)  
Enable input pin. A logic high enables the converter; a logic low forces the AAT1157 into shutdown  
mode reducing the supply current to less than 1μA. The pin should not be left oating.  
Not internally connected.  
Bias supply. Supplies power for the internal circuitry. Connect to input power via low pass lter with  
decoupling to SGND.  
Input supply voltage for the converter power stage. Must be closely decoupled to PGND.  
Connect inductor to these pins. Switching node internally connected to the drain of both high- and  
low-side MOSFETs.  
7
6, 8, 16  
9
N/C  
VCC  
VP  
10, 11, 12  
13, 14, 15  
EP  
LX  
Exposed paddle (bottom); connect to PGND directly beneath package.  
Pin Configuration  
QFN33-16  
(Top View)  
1
2
3
4
12  
11  
10  
9
PGND  
PGND  
PGND  
FB  
VP  
VP  
VP  
VCC  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Absolute Maximum Ratings1  
Symbol  
Description  
Value  
Units  
VCC, VP  
VLX  
VFB  
VCC, VP to GND  
LX to GND  
FB to GND  
EN to GND  
6
V
V
V
-0.3 to VP + 0.3  
-0.3 to VCC + 0.3  
-0.3 to -6  
VEN  
V
TJ  
VESD  
Operating Junction Temperature Range  
ESD Rating2 - HBM  
-40 to150  
3000  
°C  
V
Thermal Characteristics  
Symbol  
Description  
Maximum Thermal Resistance (QFN33-16)3  
Maximum Thermal Resistance (QFN33-16)  
Maximum Power Dissipation (QFN33-16) (TA = 25°C)3, 4  
Value  
Units  
θJA  
θJC  
PD  
50  
4.2  
2.0  
°C/W  
°C/W  
W
Recommended Operating Conditions  
Symbol  
Description  
Value  
Units  
T
Ambient Temperature Range  
-40 to 85  
°C  
1. Stresses above those listed in Absolute Maximum Ratings may cause damage to the device. Functional operation at conditions other than the operating conditions specified is  
not implied. Only one Absolute Maximum Rating should be applied at any one time.  
2. Human body model is 100pF capacitor discharged through a 1.5kΩ resistor into each pin.  
3. Mounted on a demo board (FR4, in still air). Exposed pad must be mounted to PCB.  
4. Derate 20mW/°C above 25°C.  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Electrical Characteristics1  
VIN = VCC = VP = 5V, TA = -40°C to +85°C, unless otherwise noted. Typical values are at TA = 25°C.  
Symbol Description  
Conditions  
Min Typ Max Units  
VIN  
VOUT  
Input Voltage Range  
Output Voltage Tolerance  
2.7  
-4  
5.5  
+4  
V
%
%
VIN = VOUT + 0.2 to 5.5V, IOUT = 0 to 1.2A  
VIN = 4.2V, ILOAD = 0 to 1.2A  
ΔVOUT/VOUT Load Regulation  
±2.5  
±0.1  
160  
ΔVOUT  
Line Regulation  
(VOUT*ΔVIN)  
VIN =2.7 to 5.5V  
%/V  
IQ  
ISHDN  
ILIM  
Quiescent Supply Current  
Shutdown Current  
Current Limit  
No Load  
VEN = 0V, VIN = 5.5V  
TA = 25°C  
VIN Rising, VEN = VCC  
VIN Falling, VEN = VCC  
300  
1.0  
μA  
μA  
A
1.7  
1.2  
2.5  
0.6  
VUVLO  
Under-Voltage Lockout  
V
VUVLO(HYS)  
VIL  
Under-Voltage Lockout Hysteresis  
Input Low Voltage  
250  
mV  
V
VIH  
Input High Voltage  
1.4  
V
IIL  
IIH  
RDS(ON)H  
RDS(ON)L  
Input Low Current  
Input High Current  
High Side Switch On Resistance  
Low Side Switch On Resistance  
VIN = VFB = 5.5V  
VIN = VFB = 0V  
TA = 25°C  
1.0  
1.0  
150  
150  
μA  
μA  
mΩ  
mΩ  
110  
100  
TA = 25°C  
TA = 25°C, Adjustable Version  
TA = 25°C, 3.3V Version  
750 1000 1250  
FOSC  
Oscillator Frequency  
kHz  
600  
850 1200  
TSD  
THYS  
Over-Temperature Shutdown Threshold  
Over-Temperature Shutdown Hysteresis  
140  
15  
°C  
°C  
1. The AAT1157 is guaranteed to meet performance specifications over the -40°C to +85°C operating temperature range and is assured by design, characterization, and correla-  
tion with statistical process controls.  
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1157.2009.04.1.6  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Typical Characteristics  
No Load Supply Current vs. Input Voltage  
DC Regulation  
(VOUT = 2.5V)  
300  
2.0  
85°C  
VIN = 3.6V  
250  
200  
1.0  
VIN = 3.0V  
0.0  
VIN = 3.3V  
25°C  
150  
-1.0  
-40°C  
100  
-2.0  
-3.0  
-4.0  
50  
0
1
10  
100  
1000  
10000  
2.5  
3
3.5  
4
4.5  
5
5.5  
Input Voltage (V)  
Output Current (mA)  
P-Channel RDSON vs. Input Voltage  
N-Channel RDSON vs. Input Voltage  
200  
200  
180  
160  
140  
120  
100  
80  
180  
160  
140  
120  
100  
80  
100°C  
25°C  
120°C  
100°C  
120°C  
85°C  
85°C  
25°C  
60  
60  
40  
40  
20  
20  
0
0
2.5  
3
3.5  
4
4.5  
5
5.5  
2.5  
3
3.5  
4
4.5  
5
5.5  
Input Voltage (V)  
Input Voltage (V)  
Output Voltage vs. Temperature  
(VIN = 3.6V; VOUT = 2.5V; IOUT = 1.0A)  
Frequency vs. Input Voltage  
(VOUT = 1.8V)  
0.1  
0
1.3  
1.28  
1.26  
1.24  
1.22  
1.2  
-0.1  
-0.2  
-0.3  
-0.4  
-0.5  
-0.6  
-0.7  
-40  
-20  
0
20  
40  
60  
80  
100  
2.7  
3.1  
3.5  
3.9  
4.3  
4.7  
5.1  
5.5  
Temperature (°C)  
Input Voltage (V)  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Typical Characteristics  
Soft Start  
(VOUT = 2.5V; IOUT = 1.2A; VIN = 3.6V)  
Output Ripple  
(VOUT = 2.5V; IOUT = 1.2A; VIN = 3.6V)  
0.02  
0.01  
0
3
6.0  
4.0  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0.0  
-0.5  
2.5  
2
2.0  
-0.01  
-0.02  
-0.03  
-0.04  
-0.05  
-0.06  
0.0  
1.5  
1
-2.0  
-4.0  
-6.0  
-8.0  
-10.0  
0.5  
0
Time (250μμs/div)  
Time (500ns/div)  
Line Transient  
(IOUT = 1.2A; VO = 2.5V)  
Load Transient Response  
(400mA-1.2A; VIN = 3.3V; VOUT = 2.5V)  
0.08  
0.05  
4.0  
4.4  
4.2  
4.0  
3.8  
3.6  
3.4  
3.2  
3.0  
2.8  
0.24  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0.0  
0.20  
0.16  
0.12  
0.08  
0.04  
0.00  
-0.04  
-0.08  
0.02  
-0.01  
-0.04  
-0.07  
-0.10  
-0.13  
-0.16  
1.2A  
400mA  
Time (25μs/div)  
Time (20μs/div)  
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1157.2009.04.1.6  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Functional Block Diagram  
VCC  
VP = 2.7V to 5.5V  
1.0V REF  
CMP  
DH  
OP. AMP  
FB  
LOGIC  
LX  
DL  
1MΩ  
OSC  
Temp.  
Sensing  
SGND  
EN  
PGND  
nents while providing sufficient DC loop gain for good  
load regulation. The voltage loop crossover frequency  
and phase margin are set by the output capacitor.  
Applications Information  
Control Loop  
The AAT1157 is a peak current mode buck converter. The  
inner wide bandwidth loop controls the inductor peak  
current. The inductor current is sensed through the  
P-channel MOSFET (high side) and is also used for short-  
circuit and overload protection. A fixed slope compensa-  
tion signal is added to the sensed current to maintain  
stability for duty cycles greater than 50%. The loop  
appears as a voltage-programmed current source in par-  
allel with the output capacitor.  
Soft Start/Enable  
Soft start increases the inductor current limit point in  
discrete steps once the input voltage or enable input is  
applied. It limits the current surge seen at the input and  
eliminates output voltage overshoot. When pulled low,  
the enable input forces the AAT1157 into a non-switch-  
ing shutdown state. The total input current during shut-  
down is less than 1μA.  
The voltage error amplifier output programs the current  
loop for the necessary inductor current to force a con-  
stant output voltage for all load and line conditions. The  
voltage feedback resistive divider (external for adjustable  
output voltage; internal for fixed output voltage) divides  
the output voltage to the error amplifier reference volt-  
age of 0.6V. The low-DC gain voltage error amplifier  
eliminates the need for external compensation compo-  
Power and Signal Source  
Separate small signal ground and power supply pins iso-  
late the internal control circuitry from the noise associated  
with the output power MOSFET switching. The low-pass  
filter R1 and C2 shown in the Figure 1 schematic filters  
the input noise associated with the power switching.  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
LX  
Enable  
U1  
VOUT+  
VIN+  
AAT1157  
12  
11  
10  
4
VP  
FB  
VOUT(V)  
R3 (kΩ)  
R3  
15  
14  
13  
16  
3
R1  
0.8  
0.9  
1.0  
1.1  
1.2  
1.3  
1.4  
1.5  
1.8  
2.0  
2.5  
3.3  
19.6  
29.4  
39.2  
49.9  
59.0  
68.1  
78.7  
88.7  
118  
VP  
LX  
LX  
100  
L1  
VP  
3.0μH  
R2  
7
EN  
LX  
100K  
9
6
8
5
C1  
10μF  
VCC  
N/C  
N/C  
N/C  
R4  
59.0k  
C2  
0.1μF  
PGND  
PGND  
137  
C3-C4  
2x 22μF  
2
187  
267  
1
SGND PGND  
GND  
GND  
C1 Murata 10μF 6.3V X5R GRM42-6X5R106K6.3  
C3,C4 MuRata 22μF 6.3V GRM21BR60J226ME39L X5R 0805  
L1 Sumida CDRH5D28-3R0NC  
Figure 1: AAT1157 Evaluation Board Schematic  
Lithium-Ion to 2.5V Converter.  
appreciable saturation under normal load conditions.  
Some inductors may meet the peak and average current  
ratings yet result in excessive losses due to a high DCR.  
Always consider the losses associated with the DCR and  
its effect on the total converter efficiency when selecting  
an inductor.  
Current Limit and  
Over-Temperature Protection  
For overload conditions, the peak input current sensed  
through the high-side P-channel MOSFET is limited.  
Thermal protection completely disables switching when  
internal dissipation becomes excessive, protecting the  
device from damage. The junction over-temperature  
threshold is 140°C with 15°C of hysteresis. Once the  
over-temperature or over-current fault is removed, the  
AAT1157 automatically recovers.  
VOUT  
ΔIPP F  
VOUT  
L =  
=
1 -  
VIN(MAX)  
2.5  
V
2.5V  
4.2V  
1 -  
0.33A 1MHz  
Inductor  
= 3.07μH  
The output inductor should limit the ripple current to  
330mA at the maximum input voltage. This matches the  
inductor current downslope with the fixed internal slope  
compensation. For a 2.5V output and the ripple set to a  
maximum input voltage of 4.2V, the inductance value  
required to limit the ripple current to 330mA is 3.0μH.  
From this calculated value, a standard value can be  
selected.  
For a maximum ripple current of 330mA, the peak switch  
and inductor current at 1.2A is 1.365A. A standard value  
of 3.0μH can be used in this example. The 3.0μH Sumida  
series CDRH5D28 inductor has a 24mΩ maximum DCR  
and a 2.4A DC current rating.  
Input Capacitor  
The primary function of the input capacitor is to provide  
a low impedance loop for the edges of pulsed current  
drawn by the AAT1157. A low ESR/ESL ceramic capacitor  
is ideal for this function. To minimize stray inductance,  
the capacitor should be placed as closely as possible to  
Manufacturer’s specifications list both the inductor DC  
current rating, which is a thermal limitation, and the  
peak current rating, which is determined by the satura-  
tion characteristics. The inductor should not show any  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
the IC. This keeps the high frequency content of the  
input current localized, minimizing radiated and con-  
ducted EMI while facilitating optimum performance of  
the AAT1157. Ceramic X5R or X7R capacitors are ideal  
for this function. The size required will vary depending  
on the load, output voltage, and input voltage source  
impedance characteristics. Values range from 1μF to  
10μF. The input capacitor RMS current varies with the  
input voltage and the output voltage. The equation for  
the RMS current in the input capacitor is:  
For an X7R or X5R ceramic capacitor, the ESR is very low  
and the dissipation due to the RMS current of the capac-  
itor is not a concern. Tantalum capacitors with suffi-  
ciently low ESR to meet output voltage ripple require-  
ments also have an RMS current rating well beyond that  
actually seen in this application.  
Layout  
The suggested PCB layout for the AAT1157 is shown in  
Figures 2 and 3. The following guidelines should be used  
to help insure a proper layout.  
VO  
VIN  
VO ⎞  
VIN ⎠  
IRMS = IO ⋅  
1 -  
1. The input capacitor (C1) should connect as closely as  
possible to VP (Pins 10, 11, and 12) and PGND (Pins  
1, 2, and 3).  
2. C3-C4 and L1 should be connected as closely as pos-  
sible. The connection from L1 to the LX node should  
be as short as possible.  
The input capacitor RMS ripple current reaches a maxi-  
mum when VIN is two times the output voltage where it  
is approximately one half of the load current. Losses  
associated with the input ceramic capacitor are typically  
minimal and are not an issue. The proper placement of  
the input capacitor can be seen in the evaluation board  
layout (C1 in Figure 2).  
3. The trace connecting the FB pin to resistors R3 and  
R4 should be as short as possible by placing R3 and  
R4 immediately next to the AAT1157. The sense  
trace connection R3 to the output voltage should be  
separate from any power trace and connect as close-  
ly as possible to the load point. Sensing along a high-  
current load trace will degrade DC load regulation.  
4. The resistance of the trace from the load return to  
the PGND (Pins 1, 2, and 3) and SGND (Pin 5) should  
be kept to a minimum. This will help to minimize any  
error in DC regulation due to differences in the  
potential of the internal signal ground and the power  
ground. SGND (Pin 5) can also be used to remotely  
sense the output ground at the point of load to  
improve regulation.  
5. A low pass filter (R1 and C2) provides a cleaner bias  
source for the AAT1157 active circuitry. C2 should be  
placed as closely as possible to SGND (Pin 5) and VCC  
(Pin 9).  
6. For good heat transfer, four 15 mil vias spaced on a  
26 mil grid connect the QFN central paddle to the bot-  
tom side ground plane, as shown in Figures 2 and 3.  
Output Capacitor  
Since there are no external compensation components,  
the output capacitor has a strong effect on loop stability.  
Larger output capacitance reduces the crossover fre-  
quency while increasing the phase margin. For the 2.5V  
1.2A design using the 3.0μH inductor, a 40μF capacitor  
provides a stable output. Table 1 provides a list of sug-  
gested output capacitor values for various output volt-  
ages. In addition to assisting in stability, the output  
capacitor limits the output ripple and provides holdup  
during large load transitions. The output capacitor RMS  
ripple current is given by:  
VOUT  
(VIN - VOUT  
VIN  
)
1
IRMS  
=
L
F ⋅  
2
3  
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PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Figure 2: AAT1157 Evaluation Board Top Side.  
Figure 3: AAT1157 Evaluation Board Bottom Side.  
Thermal Calculations  
Adjustable Output  
There are three types of losses associated with the  
AAT1157: MOSFET switching losses, conduction losses,  
and quiescent current losses. The conduction losses are  
due to the RDSON characteristics of the internal P- and  
N-channel MOSFET power devices. At full load, assuming  
continuous conduction mode (CCM), a simplified form of  
the total losses is given by:  
Resistors R3 and R4, as shown in Figure 1, force the  
output to regulate higher than the 0.6V reference volt-  
age level. The optimum value for R4 is 59kΩ. Values  
higher than this can cause stability problems, while  
lower values can degrade light load efficiency. For a 2.5V  
output with R4 set to 59kΩ, R3 is 187kΩ.  
V
2.5V  
0.6V  
O
R3 =  
-1 · R4 =  
- 1 · 59kΩ = 187kΩ  
V
IO2 ⋅ (RDSON(HS) VO + RDSON(LS) ⋅ (VIN - VO))  
REF  
P =  
VIN  
Output  
Voltage  
(V)  
Output  
Capacitor  
L1 (μH) (C3-C4) (μF)  
R3 for  
R4 = 59kΩ  
(kΩ)  
+ (tsw F IO VIN + IQ) VIN  
0.8  
1.0  
1.2  
1.5  
1.8  
2.5  
3.3  
1.5 - 2.6  
1.5 - 3.3  
2.2 - 3.3  
2.2 - 4.7  
3.0 - 4.7  
3.0 - 4.7  
2.2 - 4.7  
3x 22  
2x 22  
2x 22  
2x 22  
2x 22  
2x 22  
22  
19.6  
39.2  
59  
88.7  
118  
187  
267  
Where IQ is the AAT1157 quiescent current.  
Once the total losses have been determined, the junction  
temperature can be derived from the θJA for the QFN  
package. Close attention should be paid to the proper  
layout for the QFN package. Proper size and placement  
of thermal routing vias below the central paddle is nec-  
essary for good heat transfer to other PCB layers and  
their ground planes. The θJA for the QFN package with no  
connection to the central paddle is 50°C/W. The actual  
θJA will vary with the number and type of vias. The PCB  
board size, number of board layers, and ground plane  
characteristics also influence the θJA. A good thermal  
connection from the paddle to the PCB ground plane lay-  
ers can significantly reduce θJA.  
Table 1: Suggested Component Values.  
Buck-Boost Output  
Figure 4 shows how to configure the AAT1157 in a buck  
boost configuration with an external MOSFET and  
Schottky diode. The converter has a 3.3V 600mA output  
with an input voltage ranging from 2.7V to 5.5V.  
TJ = P • ΘJA + TAMB  
w w w . a n a l o g i c t e c h . c o m  
10  
1157.2009.04.1.6  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
VIN 2.7V to 5.5V  
U1  
VO 3.3V/600mA  
R2  
267k  
AAT1157  
12  
11  
10  
7
4
VP  
OUT  
15  
14  
13  
16  
3
L1  
3.0μH  
R1  
VP  
LX  
D1  
100  
VP  
LX  
MBRM120L  
Q1  
EN  
LX  
C1  
22μF  
9
VCC  
N/C  
N/C  
SGND  
N/C  
C3,C4  
2x 22μF  
Si2302ADS  
R3  
59.0k  
6
C2  
0.1μF  
PGND  
PGND  
PGND  
8
2
5
1
L1 SumidaCDRH5D28-3R0  
C1 Murata 22μF 10V X7R 1210 GRM32ER71A226KE20L  
C3,C4 MuRata 22μF 6.3V X5R 0805 GRM21BR60J226ME39L  
Figure 4: AAT1157 Buck Boost Converter.  
w w w . a n a l o g i c t e c h . c o m  
1157.2009.04.1.6  
11  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Design Example  
Specifications  
IOUT = 1.2A  
IRIPPLE = 330mA  
VOUT = 2.5V  
VIN = 3.0V to 4.2V  
FS = 1MHz  
TAMB = 85°C  
Maximum Input Capacitor Ripple  
V
V
O
O
IRMS = IO ·  
· 1-  
= 0.59Arms  
V
V
IN  
IN  
P = esr · IRMS2 = 5mΩ · 0.592 A = 1.7mW  
Inductor Selection  
VOUT  
ΔIPP F  
1 -  
VOUT  
2.5  
V
2.5V  
4.2V  
L =  
=
1 -  
= 3.07μH  
VIN  
0.33A 1MHz  
Select Sumida inductor CDRH5D28 3.0μH.  
2.5V  
4.2V  
VO  
L F  
VO  
VIN  
2.5  
V
ΔI =  
1 -  
=
1-  
= 340mA  
3.0μH 1MHz  
ΔI  
2
IPK = IOUT  
+
= 1.2A + 0.17A = 1.37A  
P = IO2 DCR = (1.2A)2 31mΩ = 45mW  
Output Capacitor Ripple Current  
(VOUT) · (VIN - VOUT  
)
1
2.5V · (4.2V - 2.5V)  
1
·
= 97.4mArms  
IRMS  
=
·
=
3.0μH · 1MHz · 4.2V  
L·F·V  
2· 3  
2· 3  
IN  
Pesr = esr · IRMS2 = 5mΩ · (97.4mA)2 = 47.4μW  
w w w . a n a l o g i c t e c h . c o m  
12  
1157.2009.04.1.6  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
AAT1157 Dissipation and Junction Temperature Estimate  
IO2 • (RDSON(HS) • VO + RDSON(LS) • (VIN -VO))  
PTOTAL  
=
=
+ (tsw • F • IO + IQ) • VIN  
VIN  
1.2A2 • (0.17Ω 2.5V + 0.16Ω (4.2V - 2.5V))  
+ (20nsec • 1MHz • 1.2A + 275μA) • 4.2V  
4.2V  
= 341mW  
TJ(MAX) = TAMB + ΘJA • PTOTAL = 85°C + 50°C/W • 0.341W = 102°C  
w w w . a n a l o g i c t e c h . c o m  
1157.2009.04.1.6  
13  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Value  
(μH)  
Max DC  
Current (A)  
DCR  
(mΩ)  
Size (mm)  
L x W x H  
Manufacturer  
Part Number  
Type  
Sumida  
Sumida  
Sumida  
Taiyo Yuden  
Sumida  
Sumida  
Sumida  
Sumida  
Sumida  
Sumida  
Murata  
CDRH5D28-2R6  
CDRH5D28-3R0  
CDRH5D28-4R2  
NPO5DB4R7M  
CDRH4D28-2R2  
CDRH4D28-2R7  
CDRH4D28-3R3  
CDRH5D18-4R1  
CDRH3D16/HP-2R2  
CDRH3D16/HP-3R3  
LQH55DN4R7M03  
LQH66SN4R7M03  
2.6  
3.0  
4.2  
4.7  
2.2  
2.7  
3.3  
4.1  
2.2  
3.3  
4.7  
4.7  
2.6  
2.4  
2.2  
1.4  
2.04  
1.6  
1.57  
1.95  
2.3  
1.8  
2.7  
18  
24  
31  
38  
31  
43  
49  
57  
59  
85  
41  
25  
5.7x5.7x3.0  
5.7x5.7x3.0  
5.7x5.7x3.0  
5.9x6.1x2.8  
5.0x5.0x3.0  
5.0x5.0x3.0  
5.0x5.0x3.0  
5.7x5.7x2.0  
4.0x4.0x1.8  
4.0x4.0x1.8  
5.0x5.0x4.7  
6.3x6.3x4.7  
Shielded  
Shielded  
Shielded  
Shielded  
Shielded  
Shielded  
Shielded  
Shielded  
Shielded  
Shielded  
Non-Shielded  
Shielded  
Murata  
2.2  
Table 2: Surface Mount Inductors.  
Manufacturer  
Part Number  
Value (μF)  
Voltage (V)  
Temp. Co.  
Case  
Murata  
Murata  
Murata  
GRM21BR60J106ME01L  
GRM21BR60J226ME01L  
GRM31CR60J106KA01L  
10  
22  
10  
6.3  
6.3  
6.3  
X5R  
X5R  
X5R  
0805  
0805  
1206  
Table 3: Surface Mount Capacitors.  
w w w . a n a l o g i c t e c h . c o m  
14  
1157.2009.04.1.6  
PRODUCT DATASHEET  
AAT1157  
TM  
SwitchReg  
1MHz 1.2A Buck DC/DC Converter  
Ordering Information  
Output Voltage  
Package  
Marking1  
Part Number (Tape and Reel)2  
FB = 0.6V, Adjustable 0.8V  
QFN33-16  
QFN33-16  
OEXYY  
OZXYY  
AAT1157IVN-T1  
AAT1157IVN-3.3-T1  
3.3V  
All AnalogicTech products are offered in Pb-free packaging. The term “Pb-free” means semiconductor  
products that are in compliance with current RoHS standards, including the requirement that lead not exceed  
0.1% by weight in homogeneous materials. For more information, please visit our website at  
http://www.analogictech.com/about/quality.aspx.  
Package Information3  
QFN33-16  
0.230 0.050  
Pin 1 Dot By Marking  
Pin 1 Identification  
1
5
C0.3  
13  
9
3.000 0.050  
1.700 0.050  
Top View  
Bottom View  
0.214 0.036  
Side View  
All dimensions in millimeters.  
1. XYY = assembly and date code.  
2. Sample stock is generally held on part numbers listed in BOLD.  
3. The leadless package family, which includes QFN, TQFN, DFN, TDFN and STDFN, has exposed copper (unplated) at the end of the lead terminals due to the manufacturing  
process. A solder fillet at the exposed copper edge cannot be guaranteed and is not required to ensure a proper bottom solder connection.  
Advanced Analogic Technologies, Inc.  
3230 Scott Boulevard, Santa Clara, CA 95054  
Phone (408) 737-4600  
Fax (408) 737-4611  
© Advanced Analogic Technologies, Inc.  
AnalogicTech cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in an AnalogicTech product. No circuit patent licenses, copyrights, mask work rights, or other intellectual  
property rights are implied. AnalogicTech reserves the right to make changes to their products or specications or to discontinue any product or service without notice. Except as provided in AnalogicTech’s terms and  
conditions of sale, AnalogicTech assumes no liability whatsoever, and AnalogicTech disclaims any express or implied warranty relating to the sale and/or use of AnalogicTech products including liability or warranties  
relating to tness for a particular purpose, merchantability, or infringement of any patent, copyright or other intellectual property right. In order to minimize risks associated with the customer’s applications, adequate  
design and operating safeguards must be provided by the customer to minimize inherent or procedural hazards. Testing and other quality control techniques are utilized to the extent AnalogicTech deems necessary to  
support this warranty. Specic testing of all parameters of each device is not necessarily performed. AnalogicTech and the AnalogicTech logo are trademarks of Advanced Analogic Technologies Incorporated. All other  
brand and product names appearing in this document are registered trademarks or trademarks of their respective holders.  
w w w . a n a l o g i c t e c h . c o m  
1157.2009.04.1.6  
15  

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