MP2235SGJ-Z [MPS]

Switching Regulator, Current-mode, 2000kHz Switching Freq-Max, PDSO8, TSOT-23, 8-PIN;
MP2235SGJ-Z
型号: MP2235SGJ-Z
厂家: MONOLITHIC POWER SYSTEMS    MONOLITHIC POWER SYSTEMS
描述:

Switching Regulator, Current-mode, 2000kHz Switching Freq-Max, PDSO8, TSOT-23, 8-PIN

开关 光电二极管 输出元件
文件: 总19页 (文件大小:771K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
MP2235S  
High-Efficiency, 3 A, 16 V, 800 kHz  
Synchronous Step-Down Converter  
The Future of Analog IC Technology  
DESCRIPTION  
FEATURES  
The  
MP2235S  
is  
a
high-frequency,  
Wide 4.5 V to 16 V Operating Input Range  
120 m/50 mLow RDS(ON) Internal Power  
MOSFETs  
High-Efficiency Synchronous Mode  
Operation  
Fixed 800 kHz Switching Frequency  
Synchronizes from a 300 kHz to a 2 MHz  
External Clock  
Power-Save Mode at Light Load  
External Soft-Start  
Over-Current Protection and Hiccup  
Thermal Shutdown  
Output Adjustable from 0.804 V  
Available in a 8-pin TSOT-23 Package  
synchronous, rectified, step-down, switch-mode  
converter with built-in power MOSFETs. It  
offers a compact solution to achieve a 3 A  
continuous output current with excellent load  
and line regulation over a wide input supply  
range. The MP2235S has synchronous mode  
operation for higher efficiency over the output  
current load range.  
Current mode operation provides fast transient  
response and eases loop stabilization.  
Full protection features include over-current  
protection (OCP) and thermal shutdown (TSD).  
The MP2235S requires a minimal number of  
APPLICATIONS  
readily  
available,  
standard,  
external  
components and is available in a space-saving  
8-pin TSOT23 package.  
Notebook Systems and I/O Power  
Digital Set-Top Boxes  
Flat-Panel Televisions and Monitors  
Distributed Power Systems  
All MPS parts are lead-free, halogen-free, and adhere to the RoHS  
directive. For MPS green status, please visit the MPS website under Quality  
Assurance.  
“MPS” and “The Future of Analog IC Technology” are registered  
trademarks of Monolithic Power Systems, Inc.  
TYPICAL APPLICATION  
100  
95  
90  
V
=16V  
85  
80  
75  
70  
65  
60  
55  
50  
IN  
V
=5V  
V
=12V  
IN  
IN  
0.0 0.5 1.0 1.5 2.0 2.5 3.0  
LOAD CURRENT(A)  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
1
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
ORDERING INFORMATION  
Part Number*  
Package  
Top Marking  
MP2235SGJ  
TSOT23-8  
See Below  
* For Tape & Reel, add suffix –Z (e.g. MP2235SGJ–Z)  
TOP MARKING  
AQA: Product code of MP2235SGJ  
Y: Year code  
PACKAGE REFERENCE  
1
2
3
4
8
7
6
5
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
2
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
ABSOLUTE MAXIMUM RATINGS (1)  
VIN ................................................-0.3 V to 17 V  
Thermal Resistance (5)  
TSOT23-8..............................100..... 55... °C/W  
θJA  
θJC  
V
SW.........-0.3 V (-5 V for <10 ns) to 17 V (19 V for < 10 ns)  
NOTES:  
VBST ..................................................... VSW + 6 V  
1) Exceeding these ratings may damage the device.  
2) For additional details on the absolute maximum rating of EN,  
please refer to the “Enable/SYNC Control” section on page  
12.  
All other pins............................... -0.3 V to 6 V (2)  
(3)  
Continuous power dissipation (TA = +25°C)  
.......................................................... 1.25 W  
Junction temperature................................150°C  
Lead temperature .....................................260°C  
Storage temperature.................. -65°C to 150°C  
3) The maximum allowable power dissipation is a function of the  
maximum junction temperature TJ (MAX), the junction-to-  
ambient thermal resistance θJA, and the ambient temperature  
TA. The maximum allowable continuous power dissipation at  
any ambient temperature is calculated by PD (MAX) = (TJ  
(MAX)-TA)/θJA. Exceeding the maximum allowable power  
dissipation produces an excessive die temperature, causing  
the regulator to go into thermal shutdown. Internal thermal  
shutdown circuitry protects the device from permanent  
damage.  
Recommended Operating Conditions (4)  
Supply voltage (VIN) .......................4.5 V to 16 V  
Output voltage (VOUT).........0.804 V to VIN x DMAX  
Operating junction temp. (TJ)... -40°C to +125°C  
4) The device is not guaranteed to function outside of its  
operating conditions.  
5) Measured on JESD51-7, 4-layer PCB.  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
3
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
ELECTRICAL CHARACTERISTICS  
VIN = 12 V, TJ = -40°C to + 125°C(6), typical value is tested at TJ = +25°C, unless otherwise noted.  
Parameter  
Symbol Condition  
VEN = 0 V, TJ= + 25°C  
EN = 0 V,  
Min  
Typ  
Max  
Units  
1
μA  
Supply current (shutdown)  
IIN  
V
5
1
μA  
TJ = -40°C to + 125°C  
Supply current (quiescent)  
HS switch on resistance  
LS switch on resistance  
Switch leakage  
Iq  
VEN = 2 V, VFB = 1 V  
0.5  
120  
50  
mA  
mΩ  
mΩ  
μA  
HSRDS-ON VBST-SW = 5 V  
LSRDS-ON VCC = 5 V  
SWLKG  
ILIMIT  
VEN = 0 V, VSW = 12 V or 0 V  
1
Current limit  
Under 40% duty cycle  
4
5
A
VFB = 0.75 V,TJ = + 25°C  
620  
800  
900  
900  
kHz  
Oscillator frequency  
fSW  
VFB = 0.75 V,  
550  
800  
kHz  
TJ = -40°C to +125°C  
Foldback frequency  
Maximum duty cycle  
Minimum on time(7)  
Sync frequency range  
fFB  
VFB < 400 mV  
0.5  
92  
40  
fSW  
%
DMAX  
τON_MIN  
fSYNC  
VFB = 700 mV  
ns  
0.3  
2
MHz  
TJ = 25°C  
788  
804  
804  
820  
mV  
mV  
Feedback voltage  
VFB  
TJ = -40°C to +125°C  
VFB = 830 mV  
784  
824  
Feedback current  
EN rising threshold  
EN hysteresis  
IFB  
10  
1.4  
150  
50  
nA  
V
VEN_RISING  
VEN_Hysteresis  
1
1.8  
mV  
VEN = 2 V  
VEN = 0 V  
2
μA  
EN input current  
IEN  
0
μA  
μs  
EN turn-off delay  
ENtd-off  
10  
VIN under-voltage lockout  
threshold—rising  
INUVVth  
3.5  
3.9  
4.3  
V
VIN under-voltage lockout  
threshold—hysteresis  
INUVHYS  
VCC  
700  
mV  
VCC regulator  
4.6  
8
5
2
5.4  
14  
V
VCC load regulation  
Soft-start current  
Thermal shutdown (7)  
Thermal hysteresis (7)  
NOTES:  
ICC = 5 mA  
%
ISS  
11  
150  
20  
μA  
°C  
°C  
6) Not tested in production. Guaranteed by over-temperature correlation.  
7) Guaranteed by design.  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
4
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
TYPICAL CHARACTERISTICS  
Performance waveforms are tested on the evaluation board of the design example section.  
VIN = 12 V, VOUT = 3.3 V, L = 3.3 μH, TA = 25°C, unless otherwise noted.  
0.8  
0.6  
0.4  
0.2  
0
0.6  
0.4  
0.2  
0
6.0  
5.5  
5.0  
4.5  
4.0  
3.5  
3.0  
-0.2  
-0.4  
-0.6  
-0.8  
-0.2  
-0.4  
-0.6  
0
0.5  
1
1.5  
2
2.5  
3
6
7
8
9 10 11 12 13 14 15 16  
0 10 20 30 40 50 60 70 80  
530  
510  
490  
470  
900  
850  
800  
30  
25  
20  
15  
10  
750  
700  
450  
430  
650  
600  
5
0
4
6
8
10 12 14 16 18  
4
6
8
10 12 14 16 18  
-40 -20 0 20 40 60 80 100 120 140  
FB Voltage vs. Temperature  
820  
815  
810  
805  
800  
795  
790  
785  
780  
-40 -20 0 20 40 60 80 100120 140  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
5
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
TYPICAL PERFORMANCE CHARACTERISTICS  
Performance waveforms are tested on the evaluation board of the design example section.  
VIN = 12 V, VOUT = 3.3 V, L = 3.3 μH, TA = 25°C, unless otherwise noted.  
100  
95  
90  
85  
80  
75  
70  
65  
60  
55  
50  
100  
95  
90  
85  
80  
75  
70  
65  
60  
55  
50  
100  
95  
90  
85  
80  
75  
70  
65  
60  
55  
50  
45  
V
=5V  
V
=5V  
IN  
IN  
V
=5V  
IN  
V
=16V  
IN  
V
=12V  
IN  
V
=16V  
IN  
V
=16V  
V
=12V  
IN  
IN  
V
=12V  
IN  
0.0 0.5 1.0 1.5 2.0 2.5 3.0  
LOAD CURRENT(A)  
0.0 0.5 1.0 1.5 2.0 2.5 3.0  
0.0 0.5 1.0 1.5 2.0 2.5 3.0  
LOAD CURRENT(A)  
LOAD CURRENT(A)  
Case Temperature Rise  
vs. Load Current  
V
=5V, 2 Layers PCB,  
IN  
Size: 6.35cm x 4.83cm  
100  
100  
45  
40  
35  
30  
25  
20  
15  
10  
5
95  
90  
85  
80  
75  
70  
65  
60  
55  
50  
95  
90  
85  
80  
75  
70  
65  
60  
55  
50  
V
=16V  
IN  
V
=12V  
IN  
V
=7V  
IN  
V
=5V  
V
=12V  
IN  
IN  
V
=1.2V  
OUT  
V
=16V  
IN  
0
0.0 0.5 1.0 1.5 2.0 2.5 3.0  
0.0 0.5 1.0 1.5 2.0 2.5 3.0  
0.5  
1.0  
1.5  
2.0  
2.5  
3.0  
LOAD CURRENT(A)  
LOAD CURRENT(A)  
LOAD CURRENT (A)  
Case Temperature Rise  
vs. Load Current  
Case Temperature Rise  
vs. Load Current  
V
=12V, 2 Layers PCB,  
V
=16V, 2 Layers PCB,  
IN  
IN  
Size: 6.35cm x 4.83cm  
Size: 6.35cm x 4.83cm  
60  
50  
40  
30  
20  
10  
0
70  
60  
50  
40  
30  
20  
10  
0
V
=5V  
V
=5V  
OUT  
OUT  
V
=3.3V  
OUT  
V
=3.3V  
OUT  
V
=1.2V  
OUT  
V
=1.2V  
OUT  
0.5  
1.0  
1.5  
2.0  
2.5  
3.0  
0.5  
1.0  
1.5  
2.0  
2.5  
3.0  
LOAD CURRENT (A)  
LOAD CURRENT (A)  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
6
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
TYPICAL PERFORMANCE CHARACTERISTICS (continued)  
Performance waveforms are tested on the evaluation board of the design example section.  
VIN = 12 V, VOUT = 3.3 V, L = 3.3 μH, TA = 25°C, unless otherwise noted.  
V
V
V
OUT  
2V/div.  
OUT  
OUT  
2V/div.  
2V/div.  
V
V
V
IN  
IN  
EN  
10V/div.  
SW  
10V/div.  
10V/div.  
SW  
10V/div.  
5V/div.  
SW  
10V/div.  
V
V
V
I
I
I
INDUCTOR  
5A/div.  
INDUCTOR  
5A/div.  
INDUCTOR  
2A/div.  
V
V
V
OUT  
OUT  
OUT  
2V/div.  
2V/div.  
2V/div.  
V
V
V
EN  
EN  
EN  
5V/div.  
SW  
10V/div.  
5V/div.  
SW  
10V/div.  
5V/div.  
SW  
10V/div.  
V
V
V
I
I
I
INDUCTOR  
2A/div.  
INDUCTOR  
2A/div.  
INDUCTOR  
2A/div.  
V
OUT  
V
V
OUT  
OUT  
2V/div.  
2V/div.  
2V/div.  
V
V
V
IN  
IN  
IN  
5V/div.  
SW  
5V/div.  
5V/div.  
SW  
5V/div.  
5V/div.  
SW  
5V/div.  
V
V
V
I
I
I
INDUCTOR  
2A/div.  
INDUCTOR  
2A/div.  
INDUCTOR  
2A/div.  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
7
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
TYPICAL PERFORMANCE CHARACTERISTICS (continued)  
Performance waveforms are tested on the evaluation board of the design example section.  
VIN = 12 V, VOUT = 3.3 V, L = 3.3 μH, TA = 25°C, unless otherwise noted.  
V
/AC  
OUT  
10mV/div.  
V
/AC  
V
OUT  
OUT  
50mV/div.  
2V/div.  
V
/AC  
IN  
200mV/div.  
V
IN  
5V/div.  
SW  
5V/div.  
V
V
SW  
10V/div.  
I
I
INDUCTOR  
2A/div.  
INDUCTOR  
I
OUT  
2A/div.  
1A/div.  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
8
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
PIN FUNCTIONS  
Package  
Pin #  
Name Description  
Soft start. Connect an external capacitor to program the soft-start time for the switch  
mode regulator.  
1
SS  
IN  
Supply voltage. IN supplies power for the internal MOSFET and regulator. The MP2235S  
operates from a +4.5 V to +16 V input rail. IN requires a low ESR and low-inductance  
capacitor (C1) to decouple the input rail. Place the input capacitor very close to IN and  
connect it with wide PCB traces and multiple vias.  
2
3
Switch output. Connect SW to the inductor and bootstrap capacitor. SW is driven up to  
VIN by the high-side switch during the PWM duty cycle on time. The inductor current drives  
SW negative during the off time. The on resistance of the low-side switch and the internal  
body diode fixes the negative voltage. Connect SW using wide PCB traces and multiple  
vias.  
SW  
System ground. GND is the reference ground of the regulated output voltage. PCB layout  
requires extra care. For best results, connect to GND with copper and vias.  
4
5
6
7
GND  
BST  
Bootstrap. Requires a capacitor connected between SW and BST to form a floating  
supply across the high-side switch driver.  
Enable. EN=high to enable the MP2235S. Apply an external clock to change the switching  
frequency. For automatic start-up, connect EN to VIN with a 100 kresistor.  
EN/SYNC  
VCC  
Internal 5 V LDO output. VCC powers the driver and control circuits. Decouple with a  
0.1 μF to 0.22 μF capacitor. Do NOT use a capacitor 0.22 μF.  
Feedback. Connect FB to the tap of an external resistor divider from the output to GND to  
set the output voltage. The frequency foldback comparator lowers the oscillator frequency  
when the FB voltage is below 400 mV to prevent current limit runaway during a short-  
circuit fault. Place the resistor divider as close to FB as possible. Avoid placing vias on the  
FB traces.  
8
FB  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
9
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
FUNCTIONAL BLOCK DIAGRAM  
-
Figure 1—Functional block diagram  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
10  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
OPERATION  
The  
MP2235S  
is  
a
high-frequency,  
clock initiates the PWM cycle, the HS-FET turns  
on and remains on until VILsense reaches the  
value set by VCOMP (after a period of dead time),  
and the low-side MOSFET (LS-FET) turns on  
and remains on until the inductor-current value  
decreases to zero. The device repeats the  
same operation in every clock cycle to regulate  
the output voltage (see Figure 3).  
synchronous, rectified, step-down, switch-mode  
converter with built-in power MOSFETs. It  
offers a compact solution that achieves a 3 A  
continuous output current with excellent load  
and line regulation over a 4.5 V to 16 V input  
supply range.  
The MP2235S has three working modes:  
advanced asynchronous modulation (AAM)  
mode, discontinuous conduction mode (DCM),  
and continuous conduction mode (CCM). The  
load current increases as the device transitions  
from AAM mode to DCM to CCM.  
IL  
AAM Control Operation  
In a light-load condition, the MP2235S works in  
advanced asynchronous modulation (AAM)  
mode (see Figure 2). The VAAM is an internal  
fixed voltage when the input and output  
voltages are fixed. VCOMP is the error-amplifier  
output (which represents the peak inductor-  
current information). When VCOMP is lower than  
Figure 3—DCM control operation  
CCM Control Operation  
The device enters continuous conduction mode  
(CCM) from DCM once the inductor current no  
longer drops to zero in a clock cycle. In CCM,  
the internal clock initiates the PWM cycle, the  
HS-FET turns on and remains on until VILsense  
reaches the value set by VCOMP (after a period  
of dead time), and the LS-FET turns on and  
remains on until the next clock cycle begins.  
The device repeats the same operation in every  
clock cycle to regulate the output voltage.  
VAAM, the internal clock is blocked. This causes  
the MP2235S to skip pulses, achieving the  
light-load power save. Refer to AN032 for  
additional details.  
The internal clock re-sets every time VCOMP is  
higher than VAAM. Simultaneously, the high-side  
MOSFET (HS-FET) turns on and remains on  
until VILsense reaches the value set by VCOMP.  
If VILsense does not reach the value set by VCOMP  
within 92 percent of one PWM period, the HS-  
FET is forced off.  
The light-load feature in this device is optimized  
for 12 V input applications.  
Internal Regulator  
A 5 V internal regulator powers most of the  
internal circuitries. This regulator takes VIN and  
operates in the full VIN range. When VIN  
exceeds 5 V, the output of the regulator is in full  
regulation. When VIN is less than 5 V, the output  
decreases, and the part requires a 0.1 µF  
ceramic decoupling capacitor.  
Figure 2—Simplified AAM control logic  
Error Amplifier (EA)  
The error amplifier compares the FB voltage to  
the internal 0.804 V reference (VREF) and  
outputs a current proportional to the difference  
between the two. This output current then  
DCM Control Operation  
The VCOMP ramps up as the output current  
increases. When its minimum value exceeds  
VAAM  
,
the device enters discontinuous  
charges  
or  
discharges  
the  
internal  
conduction mode (DCM). In DCM, the internal  
compensation network to form the COMP  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
11  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
voltage, which controls the power MOSFET  
input voltage UVLO by using two external  
resistors (see Figure 5). For best results, set  
the UVLO falling threshold (VSTOP) above  
4.5 V using the enable resistors. Set the rising  
threshold (VSTART) to provide enough  
hysteresis to allow for input-supply variations.  
current. The optimized internal compensation  
network minimizes the external component  
count and simplifies the control loop design.  
Enable/SYNC Control  
EN/SYNC is a digital control pin that turns the  
regulator on and off. Drive EN high to turn on  
the regulator, drive EN low to turn off the  
regulator. An internal 1 Mresistor from  
EN/SYNC to GND allows EN/SYNC to be  
floated to shut down the chip. EN/SYNC is  
clamped internally using a 6.5 V Zener diode  
(see Figure 4). Connecting the EN input pin  
through a pull-up resistor to the voltage on IN  
limits the EN input current to less than 100 µA.  
RENUP  
RENDOWN  
For example, with 12 V connected to IN,  
Figure 5Adjustable UVLO  
R
PULLUP (12 V – 6.5 V) ÷ 100 µA = 55 k.  
Soft-Start (SS)  
Connecting EN directly to a voltage source  
without a pull-up resistor requires limiting the  
amplitude of the voltage source to 6 V to  
prevent damage to the Zener diode (see Figure  
4).  
Adjust the soft-start time by connecting a  
capacitor from SS to ground. When the soft-  
start begins, an internal 11 µA current source  
charges the external capacitor. The soft-start  
capacitor connects to the non-inverting input of  
the error amplifier. The soft-start period  
continues until the voltage on the soft-start  
capacitor exceeds the 0.804 V reference. Then  
the non-inverting amplifier takes the reference  
voltage as the input. Use Equation (1) to  
calculate the soft-start time:  
1M  
0.804V ×Css(nF)  
tSS(ms) =  
(1)  
Figure 4—6.5 V Zener diode connection  
11μA  
For external clock synchronization, connect a  
clock with a frequency range between 300 kHz  
and 2 MHz 2 ms after the output voltage is set:  
The internal clock rising edge synchronizes with  
the external clock rising edge. Select an  
external clock signal with a pulse width less  
than 1 μs.  
Over-Current-Protection (OCP) and Hiccup  
The MP2235S has a cycle-by-cycle over-  
current limit when the inductor current peak  
value exceeds the set current limit threshold.  
Meanwhile, the output voltage drops until VFB is  
below the under-voltage (UV) threshold (50  
percent below the reference, typically). Once  
UV is triggered, the MP2235S enters hiccup  
mode to re-start the part periodically. This  
protection mode is useful when the output is  
dead shorted to ground, greatly reducing the  
average short-circuit current to alleviate thermal  
issues and protect the regulator. The MP2235S  
exits hiccup mode once the over-current  
condition is removed.  
Under-Voltage Lockout (UVLO)  
The MP2235S has under-voltage lockout  
protection (UVLO). When the VCC voltage  
exceeds the UVLO rising threshold voltage, the  
device begins to power-up. It shuts off when  
the VCC voltage drops below the UVLO falling  
threshold voltage. This is non-latch protection.  
The MP2235S is disabled when the input  
voltage falls below 3.2 V, typically. If an  
application requires a higher under-voltage  
lockout (UVLO) threshold, use EN to adjust the  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
12  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
Start-Up and Shutdown  
Thermal Shutdown  
Thermal shutdown prevents the chip from  
operating at exceedingly high temperatures.  
When the die temperature exceeds 150°C, the  
entire chip shuts down. When the temperature  
drops below its lower threshold (130°C,  
typically), the chip is enabled again.  
If both VIN and VEN exceed their respective  
thresholds, the chip starts up. The reference  
block starts first, generating stable reference  
voltage and currents, and then the internal  
regulator is enabled. The regulator provides a  
stable supply for the remaining circuitries.  
Floating Driver and Bootstrap Charging  
An external bootstrap capacitor powers the  
floating power MOSFET driver. This floating  
driver has its own UVLO protection. This  
UVLO’s rising threshold is 2.2 V with a  
hysteresis of 150 mV. The bootstrap capacitor  
voltage is regulated internally by VIN through D1,  
M1, R3, C4, L1, and C2 (see Figure 6). If VIN-  
VSW exceeds 5 V, U1 regulates M1 to maintain  
a 5 V BST voltage across C4. A 20 resistor  
placed between the SW and BST capacitors is  
strongly recommended to reduce SW spike  
voltage.  
Three events can shut down the chip: VEN low,  
VIN low, and thermal shutdown. During the  
shutdown procedure, the signal path is blocked  
first to avoid any fault triggering. The COMP  
voltage and the internal supply rail are then  
pulled down. The floating driver is not subject to  
this shutdown command.  
D1  
VIN  
M1  
BST  
U1  
R3  
5V  
C4  
VOUT  
C2  
L1  
SW  
Figure 6—Internal bootstrap charging circuit  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
13  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
APPLICATION INFORMATION  
VOUT ×(V VOUT  
)
Setting the Output Voltage  
The external resistor divider sets the output  
voltage (see Typical Application on page 1).  
IN  
(3)  
L1 =  
V × ΔIL × fOSC  
IN  
Where ΔIL is the inductor ripple current.  
Choose R1 around 40 kfor VOUT > 1.2 V, R2 is  
then given using Equation (2):  
Choose the inductor ripple current to be  
approximately 30 percent of the maximum load  
current. The maximum inductor peak current is  
calculated using Equation (4):  
R1  
R2 =  
(2)  
V
OUT  
1  
0.804V  
ΔIL  
2
IL(MAX) = ILOAD  
+
(4)  
The T-type network is highly recommended  
(see Figure 7).  
Use a larger inductor for improved efficiency  
under light-load conditions—below 100 mA.  
Selecting the Input Capacitor  
The input current to the step-down converter is  
discontinuous, therefore it requires a capacitor  
to supply the AC current to the step-down  
converter while maintaining the DC input  
voltage. Use low ESR capacitors for the best  
performance. Use ceramic capacitors with X5R  
or X7R dielectrics for best results because of  
their low ESR and small temperature  
coefficients. For most applications, use a 22 µF  
capacitor.  
Figure 7—T-type network  
Table 1 lists the recommended resistor and  
compensation values for common output  
voltages.  
Table 1—Resistor selection for common output  
voltages(8)  
VOUT  
R1 (k) R2 (k) Rt (k)  
Since C1 absorbs the input switching current, it  
requires an adequate ripple current rating. The  
RMS current in the input capacitor can be  
estimated using Equation (5) and Equation (6):  
(V)  
1
20.5  
30.1  
40.2  
40.2  
40.2  
40.2  
84.5  
61.9  
32.4  
19.1  
13  
34  
24  
15  
6.8  
5.6  
2
1.2  
1.8  
2.5  
3.3  
5
VOUT  
VIN  
VOUT  
VIN  
IC1 = ILOAD  
×
× 1−  
(5)  
7.68  
The worst case condition occurs at VIN = 2VOUT  
,
where:  
NOTES:  
8) The recommended parameters are based on an 800 kHz  
switching frequency; a different input voltage, output inductor  
value, and output capacitor value may affect the selection of  
R1, R2, and Rt. For additional component parameters, please  
refer to the “Typical Application Circuits” section on page 17  
and page 18.  
ILOAD  
IC1  
=
(6)  
2
For simplification, choose an input capacitor  
with an RMS current rating greater than half of  
the maximum load current.  
Selecting the Inductor  
Use an inductor (1 µH to 22 µH) with a DC  
current rating at least 25 percent higher than  
the maximum load current for most applications.  
For highest efficiency, use an inductor with a  
DC resistance less than 15 m. For most  
designs, the inductance value can be derived  
from Equation (3):  
The input capacitor can be electrolytic, tantalum,  
or ceramic. When using electrolytic or tantalum  
capacitors, add a small, high-quality ceramic  
capacitor (e.g. 0.1 μF) placed as close to the IC  
as possible. When using ceramic capacitors,  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
14  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
z VOUT is 5 V or 3.3 V; or  
make sure that they have enough capacitance  
VOUT  
VIN  
to provide sufficient charge in order to prevent  
excessive voltage ripple at the input. The input  
voltage ripple caused by capacitance can be  
estimated using Equation (7):  
z the duty cycle is high: D=  
>65%  
If the BST voltage is insufficient, the output  
ripple voltage may become extremely large  
during a light-load condition. If this occurs, add  
an external BST diode from VCC to BST (see  
Figure 8).  
ILOAD  
VOUT  
VOUT  
(7)  
ΔV  
=
×
× 1−  
IN  
fS ×C1  
V
IN  
V
IN  
Selecting the Output Capacitor  
The output capacitor (C2) maintains the DC  
output voltage. Use ceramic, tantalum, or low  
ESR electrolytic capacitors. For best results,  
use low ESR capacitors to keep the output  
voltage ripple low. The output voltage ripple can  
be estimated with Equation (8):  
MP2235S  
Figure 8—Optional external bootstrap diode to  
enhance efficiency  
⎞ ⎛  
VOUT  
VOUT  
1
The recommended external BST diode is  
IN4148, and the BST capacitor value is 0.1 µF  
to 1 μF.  
PCB Layout Guidelines (9)  
Efficient PCB layout is critical to achieve stable  
operation, especially for VCC capacitor and  
input capacitor placement. For best results,  
refer to Figure 9 and follow the guidelines below:  
(8)  
ΔVOUT  
=
× 1−  
× R  
⎟ ⎜  
+
ESR  
fS ×L1  
V
8× fS ×C2  
IN ⎠ ⎝  
Where L1 is the inductor value and RESR is the  
equivalent series resistance (ESR) value of the  
output capacitor.  
For ceramic capacitors, the capacitance  
dominates the impedance at the switching  
frequency, and the capacitance causes the  
majority of the output voltage ripple. For  
simplification, the output voltage ripple can be  
estimated with Equation (9):  
1. Use  
a
large ground plane directly  
connected to GND. Add vias near GND if  
the bottom layer is ground plane.  
2. Place the VCC capacitor as close as  
possible to the chip VCC and GND. Make  
the trace length of VCC pin to the VCC  
capacitor anode to the VCC capacitor  
cathode to the chip GND as short as  
possible.  
VOUT  
8× fS2 ×L1 ×C2  
VOUT  
(9)  
ΔVOUT  
=
× 1−  
V
IN  
For tantalum or electrolytic capacitors, the ESR  
dominates the impedance at the switching  
frequency. For simplification, the output ripple  
can be approximated with Equation (10):  
3. Place the ceramic input capacitor close to  
IN and GND. Keep the connection of the  
input capacitor and IN as short and wide as  
possible.  
VOUT  
VOUT  
(10)  
ΔVOUT  
=
× 1−  
×RESR  
fS ×L1  
V
IN  
The characteristics of the output capacitor  
affect the stability of the regulation system. The  
MP2235S can be optimized for a wide range of  
capacitance and ESR values.  
4. Route SW and BST away from sensitive  
analog areas such as FB.  
5. Place the T-type feedback resistor (R5)  
close to the chip to ensure the trace (which  
connects to FB) is as short as possible.  
NOTES:  
External Bootstrap Diode  
In particular conditions, the BST voltage may  
become insufficient. During these conditions, an  
external bootstrap diode can enhance the  
efficiency of the regulator and avoid insufficient  
BST voltage at light-load PFM operation.  
Insufficient BST voltage is more likely to occur  
during either of the following conditions:  
9) The recommended layout is based on Figure 10 on page 17.  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
15  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
Design Example  
Table 2 is a design example following the  
application guidelines for the following  
specifications:  
Table 2—Design example  
VIN  
VOUT  
IOUT  
12 V  
3.3 V  
3 A  
The detailed application schematic is shown in  
Figure 11. The typical performance and circuit  
waveforms have been shown in the “Typical  
Performance Characteristics” section. For more  
device applications, please refer to the related  
evaluation board datasheets.  
Top Layer  
GND  
EN/SYNC  
Vout Sense  
Bottom Layer  
Figure 9Recommended PCB layout  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
16  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
TYPICAL APPLICATION CIRCUITS  
Figure 10—12VIN, 5 V/3 A output  
Figure 11—12VIN, 3.3 V/3 A output  
Figure 12—12VIN, 2.5 V/3 A output  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
17  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
Figure 13—12VIN, 1.8 V/3 A output  
Figure 14—12VIN, 1.2 V/3 A output  
Figure 15—12VIN, 1 V/3 A output  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
18  
MP2235S –3 A, 16 V, 800 kHz SYNCHRONOUS STEP-DOWN CONVERTER  
PACKAGE INFORMATION  
TSOT23-8  
See note 7  
EXAMPLE  
TOP MARK  
IAAAA  
PIN 1 ID  
RECOMMENDED LAND PATTERN  
TOP VIEW  
SEATING PLANE  
SEE DETAIL ''A''  
FRONT VIEW  
SIDE VIEW  
NOTE:  
1) ALL DIMENSIONS ARE IN MILLIMETERS.  
2) PACKAGE LENGTH DOES NOT INCLUDE MOLD  
FLASH, PROTRUSION OR GATE BURR.  
3) PACKAGE WIDTH DOES NOT INCLUDE  
INTERLEAD FLASH OR PROTRUSION.  
4) LEAD COPLANARITY (BOTTOM OF LEADS  
AFTER FORMING) SHALL BE 0.10 MILLIMETERS  
MAX.  
DETAIL ''A''  
5) JEDEC REFERENCE IS MO-193, VARIATION BA.  
6) DRAWING IS NOT TO SCALE.  
7) PIN 1 IS LOWER LEFT PIN WHEN READING TOP  
MARK FROM LEFT TO RIGHT, (SEE EXAMPLE TOP  
MARK)  
NOTICE: The information in this document is subject to change without notice. Users should warrant and guarantee that third  
party Intellectual Property rights are not infringed upon when integrating MPS products into any application. MPS will not  
assume any legal responsibility for any said applications.  
MP2235S Rev.1.0  
4/15/2015  
www.MonolithicPower.com  
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.  
© 2015 MPS. All Rights Reserved.  
19  

相关型号:

MP2240

High-Efficiency, 3A, 16V, 800kHz Synchronous, Step-Down Converter
MPS

MP2240GJ

High-Efficiency, 3A, 16V, 800kHz Synchronous, Step-Down Converter
MPS

MP2249

1MHz, 6V, 3A, Low-Voltage Synchronous Step-Down Converter
MPS

MP2249DN

1MHz, 6V, 3A, Low-Voltage Synchronous Step-Down Converter
MPS

MP2249DQT

1MHz, 6V, 3A, Low-Voltage Synchronous Step-Down Converter
MPS

MP2259

1A, 16V, 1.4MHz Step-Down Converter
MPS

MP2259DJ

1A, 16V, 1.4MHz Step-Down Converter
MPS

MP2259DJ-LF

Switching Regulator, Current-mode, 1.8A, 1400kHz Switching Freq-Max, PDSO6, ROHS COMPLIANT, MO-193AB, TSOT-23, 6 PIN
MPS

MP2259DJ-LF-Z

Switching Regulator, Current-mode, 1.8A, 1400kHz Switching Freq-Max, PDSO6, ROHS COMPLIANT, MO-193AB, TSOT-23, 6 PIN
MPS

MP2259DJ-Z

Switching Regulator, Current-mode, 1.8A, 1400kHz Switching Freq-Max, PDSO6, MO-193AB, TSOT-23, 6 PIN
MPS

MP2259DT

1A, 16V, 1.4MHz Step-Down Converter
MPS

MP2259DT-LF

暂无描述
MPS