XRP6124EVB [EXAR]

Non-Synchronous PFET Step-Down Controller; 非同步PFET降压控制器
XRP6124EVB
型号: XRP6124EVB
厂家: EXAR CORPORATION    EXAR CORPORATION
描述:

Non-Synchronous PFET Step-Down Controller
非同步PFET降压控制器

控制器
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中文:  中文翻译
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XRP6124  
Non-Synchronous PFET Step-Down Controller  
January 2011  
Rev. 1.1.0  
GENERAL DESCRIPTION  
APPLICATIONS  
The XRP6124 is a non synchronous step down  
(buck) controller for up to 5Amps point of  
loads. A wide 3V to 30V input voltage range  
allows for single supply operations from  
industry standard 3.3V, 5V, 12V and 24V  
power rails.  
Point of Load Conversions  
Audio-Video Equipments  
Industrial and Medical Equipments  
Distributed Power Architecture  
With a proprietary Constant On-Time (COT)  
control scheme, the XRP6124 provides  
extremely fast line and load transient response  
while the operating frequency remains nearly  
constant. It requires no loop compensation  
hence simplifying circuit implementation and  
reducing overall component count. The  
XRP76124 also implements an emulated ESR  
circuitry allowing usage of ceramic output  
capacitors and insuring stable operations  
without the use of extra external components.  
FEATURES  
5A Point-of-Load Capable  
Down to 1.2V Output Voltage Conversion  
Wide Input Voltage Range  
3V to 18V: XRP6124  
4.5V to 30V: XRP6124HV  
Constant On-Time Operations  
Constant Frequency Operations  
No External Compensation  
Built-in soft start prevents high inrush currents  
while under voltage lock-out and output short  
protections insure safe operations under  
abnormal operating conditions.  
Supports Ceramic Output Capacitors  
Built-in 2ms Soft Start  
Short Circuit Protection  
<1µA shutdown current  
The XRP6124 is available in a RoHS compliant,  
green/halogen free space-saving 5-pin SOT23  
package.  
RoHS Compliant, Green/Halogen Free  
5-pin SOT23 Package  
TYPICAL APPLICATION DIAGRAM  
Figure 1: XRP6124 Application Diagram  
Exar Corporation  
www.exar.com  
48720 Kato Road, Fremont CA 94538, USA  
Tel. +1 510 668-7000 – Fax. +1 510 668-7001  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
ABSOLUTE MAXIMUM RATINGS  
OPERATING RATINGS  
These are stress ratings only and functional operation of  
the device at these ratings or any other above those  
indicated in the operation sections of the specifications  
below is not implied. Exposure to absolute maximum  
rating conditions for extended periods of time may affect  
reliability.  
Input Voltage Range VIN (XRP6124)................3.0V to 18V  
Input Voltage Range VIN (XRP6124HV)............4.5V to 30V  
Junction Temperature Range....................-40°C to 125°C  
Thermal Resistance θJA .....................................191°C/W  
VIN (XRP6124)............................................-0.3V to 20V  
VIN (XRP6124HV)........................................-0.3V to 32V  
GATE ......................................................VIN-GATE<8V  
FB, EN .....................................................-0.3V to 5.5V  
Storage Temperature.............................. -65°C to 150°C  
Power Dissipation................................ Internally Limited  
Lead Temperature (Soldering, 10 sec) ...................300°C  
ESD Rating (HBM - Human Body Model).................... 2kV  
ELECTRICAL SPECIFICATIONS  
Specifications are for an Operating Junction Temperature of TJ = 25°C only; limits applying over the full Operating Junction  
Temperature range are denoted by a “•”. Minimum and Maximum limits are guaranteed through test, design, or statistical  
correlation. Typical values represent the most likely parametric norm at TJ = 25°C, and are provided for reference purposes  
only. Unless otherwise indicated, VIN = 3.0V to 18V, TJ = –40°C to 125°C.  
Parameter  
Min.  
Typ.  
Max.  
Units  
Conditions  
UVLO Turn-On Threshold  
UVLO Turn-On Threshold  
UVLO Hysteresis  
2.5  
3.8  
2.8  
4.2  
0.1  
3.0  
4.5  
V
V
XRP6124  
XRP6124HV  
V
3.0  
4.5  
18  
30  
V
XRP6124  
Operating Input Voltage Range  
V
XRP6124HV  
Shutdown VIN Current  
Operating VIN Current  
1.5  
0.5  
0.8  
0.8  
3
µA  
mA  
V
EN=0V, VIN=12V  
1
VFB=1.2V and after fault  
0.792  
0.784  
0.808  
0.816  
Reference Voltage  
V
VSC_TH, Feedback pin Short  
Circuit Latch Threshold  
0.50  
0.55  
0.65  
V
TON, Switch On-Time  
TON, Switch On-Time  
TOFF_MIN, Minimum Off-Time  
Soft Start Time  
0.4  
0.4  
0.5  
0.5  
250  
2
0.6  
0.6  
350  
µs  
µs  
ns  
ms  
V
VIN=12V, XRP6124  
VIN=24V, XRP6124HV  
VIN=12V  
EN Turn-On Threshold  
EN Turn-Off Threshold  
EN Bias Current  
2
1
V
0.01  
6
0.1  
µA  
Gate Driver Pull-Down  
Resistance  
9
8
Gate Driver Pull-up Resistance  
tr, gate rise time  
5
ns  
ns  
V
45  
35  
6.4  
CGATE=1nF  
CGATE=1nF  
VIN=12V  
VIN=3.0V  
tf, gate fall time  
VIN - GATE voltage difference  
VIN - GATE voltage difference  
5.5  
2.6  
8
V
© 2011 Exar Corporation  
2/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
BLOCK DIAGRAM  
Figure 2: XRP6124 Block Diagram  
PIN ASSIGNMENT  
E N  
GND  
FB  
VIN  
1
2
3
5
4
XRP6124  
GATE  
Figure 3: XRP6124 Pin Assignment  
PIN DESCRIPTION  
Name  
Pin Number  
Description  
EN  
GND  
FB  
1
2
3
Enable Pin. Actively pull high to enable the part.  
Ground  
Feedback pin  
Gate Pin. Connect to gate of PFET. This pin pulls the gate of the PFET approximately  
6V below Vin in order to turn on the FET. For 6V>VIN>3V the gate pulls to within 0.4V  
of ground. Therefore a PFET with a gate rating of 2.6V or lower should be used.  
GATE  
VIN  
4
5
Input Voltage  
ORDERING INFORMATION  
Temperature  
Packing  
Quantity  
Part Number  
Range  
Marking  
Package  
Note 1  
Note 2  
XRP6124ES0.5-F  
XRP6124ESTR0.5-F  
XRP6124HVES0.5-F  
XRP6124HVESTR0.5-F  
XRP6124EVB  
-40°CTJ125°C  
-40°CTJ125°C  
-40°CTJ125°C  
-40°CTJ125°C  
5-pin SOT23  
Bulk  
Halogen Free  
0.5µs/18V max  
0.5µs/18V max  
0.5µs/30V max  
0.5µs/30V max  
5-pin SOT23 2.5K/Tape & Reel Halogen Free  
5-pin SOT23 Bulk Halogen Free  
5-pin SOT23 2.5K/Tape & Reel Halogen Free  
XRP6124 Evaluation Board  
“YY” = Year – “WW” = Work Week – “X” = Lot Number  
© 2011 Exar Corporation  
3/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
TYPICAL PERFORMANCE CHARACTERISTICS  
All data taken at TJ = TA = 25°C, unless otherwise specified – Curves are based on Schematic and BOM from Application  
Information section of this datasheet. Refer to figure 20 for XRP6124 and to figure 21 for XRP6124HV.  
Fig. 4: Efficiency versus IOUT, VIN=12V  
Fig. 5: Efficiency versus IOUT, VIN=24V  
Fig. 7: TON versus VIN  
Fig. 6: TON versus VIN  
Fig. 8: Load Regulation  
Fig. 9: Load Regulation  
© 2011 Exar Corporation  
4/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
XRP6124ES0.5-F  
Fig. 10: Line Regulation  
Fig. 11: Line Regulation  
XRP6124ES0.5-F  
XRP6124HVES0.5-F  
VOUT  
VOUT  
AC coupled  
10mV/div  
AC coupled  
20mV/div  
LX  
20V/div  
LX  
10V/div  
IL  
IL  
2A/div  
2A/div  
2µs/div  
1µs/div  
Fig. 13: Steady state, VIN=24V, VOUT=5.0V, IOUT=3A  
Fig. 12: Steady state, VIN=12V, VOUT=3.3V, IOUT=3A  
XRP6124ES0.5-F  
XRP6124HVES0.5-F  
90mV  
180mV  
VOUT  
AC coupled  
100mV/div  
VOUT  
AC coupled  
200mV/div  
IOUT  
1A/div  
IOUT  
1A/div  
10µs/div  
20µs/div  
Fig. 14: Load step transient response, 1.4A-3A-1.4A  
Fig. 15: Load step transient response, 1.4A-3A-1.4A  
© 2011 Exar Corporation  
5/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
XRP6124ES0.5-F  
XRP6124HVES0.5-F  
180mV  
90mV  
VOUT  
AC coupled  
100mV/div  
VOUT  
AC coupled  
200mV/div  
IOUT  
1A/div  
IOUT  
1A/div  
50µs/div  
50µs/div  
Fig. 16: Load step transient response corresponding to a  
CCM-DCM transition, 0.05A-1.6A-0.05A  
Fig. 17: Load step transient response corresponding to a  
CCM-DCM transition, 0.05A-1.6A-0.05A  
Fig. 18: Shutdown current versus VIN, VEN=0V  
Fig. 19: Shutdown current versus VIN, VEN=0V  
© 2011 Exar Corporation  
6/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
THEORY OF OPERATION  
VOUT  
fs =  
VIN ×TON  
THEORY OF OPERATION  
Since for each voltage option, the product of  
The XRP6124 utilizes a proprietary Constant  
On-Time (COT) control with emulated ESR.  
The on-time is internally set and automatically  
adjusts during operation, inversely with the  
voltage VIN, in order to maintain a constant  
frequency. Therefore the switching frequency  
is independent of the inductor and capacitor  
VIN and TON is the constant K shown in table 1,  
then switching frequency is determined by  
VOUT as shown in table 2.  
Switching frequency fs(kHz)  
VOUT  
size,  
unlike  
hysteretic  
controllers.  
The  
XRP6124ES0.5-F  
XRP6124HVES0.5-F  
emulated ESR ramp allows the use of ceramic  
capacitors for output filtering.  
1.2  
1.5  
1.8  
2.5  
3.3  
5.0  
12  
200  
250  
300  
417  
550  
833  
---  
100  
125  
150  
208  
275  
417  
1000  
At the beginning of each cycle, the XRP6124  
turns on the P-Channel FET for a fixed  
duration. The on-time is internally set and  
adjusted by VIN. At the end of the on-time the  
FET is turned off, for a predetermined  
minimum off time TOFF-MIN (nominally 250ns).  
After the TOFF-MIN has expired the voltage at  
feedback pin FB is compared to a voltage  
ramp at the feedback comparators positive  
input. Once VFB drops below the ramp voltage,  
the FET is turned on and a new cycle starts.  
This voltage ramp constitutes an emulated  
ESR and makes possible the use of ceramic  
capacitors, in addition to other capacitors, as  
output filter for the buck converter.  
Table 2: Switching frequency fs  
for the XRP6124 voltage options  
Where it is advantageous, the high-voltage  
option may be used for low-voltage  
applications. For example a 12VIN to 5VOUT  
conversion using a low-voltage option will  
result in switching frequency of 833kHz as  
shown in table 2. If it is desired to increase  
the converter efficiency, then switching losses  
can be reduced in half by using a high-voltage  
option operating at a switching frequency of  
417kHz.  
VOLTAGE OPTIONS  
The XRP6124 is available in two voltage  
options as shown in table 1. The low-voltage  
and high-voltage options have TON of 0.5µs at  
12VIN and 24VIN respectively. Note that TON is  
inversely proportional to VIN. The constant of  
proportionality K, for each voltage option is  
shown in table 1. Variation of TON versus VIN is  
shown graphically in figures 6 and 7.  
Maximum Output Current IOUT(A)  
VOUT  
XRP6124ES0.5-F  
XRP6124HVES0.5-F  
3.3VIN  
5.0VIN  
12VIN  
18VIN  
24VIN  
---  
---  
4
1.2  
1.5  
1.8  
2.5  
3.3  
5.0  
12  
5
5
5
5
4
4
---  
4
5
5
4
4
4
4
4
4
4
---  
---  
---  
4
3
4
4
Voltage  
Part Number  
TON (µs)  
K=TONxVIN  
---  
---  
3
3
3
rating (V)  
(μs.V)  
---  
2
2
3-18  
XRP6124ES0.5-F 0.5 @ 12VIN  
XRP6124HVES0.5-F 0.5 @ 24VIN  
6
Table 3: Maximum recommended IOUT  
4.5-30  
12  
SHORT-CIRCUIT PROTECTION  
Table 1 : XRP6124 voltage options  
The purpose of this feature is to prevent an  
accidental short-circuit at the output from  
damaging the converter. The XRP6124 has a  
For a buck converter the switching frequency  
fs can be expressed in terms of VIN, VOUT and  
TON as follows:  
short-circuit  
comparator  
that  
constantly  
monitors the feedback node, after soft-start is  
© 2011 Exar Corporation  
7/12 Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
finished. If the feedback voltage drops below  
XRP6124 will latch up. In applications where  
an independent enable signal is not available,  
a Zener diode can be used to derive VEN from  
VIN.  
0.55V, equivalent to output voltage dropping  
below 69% of nominal, the comparator will  
trip causing the IC to latch off. In order to  
restart the XRP6124, the input voltage has to  
be reduced below UVLO threshold and then  
increased to its normal operating point.  
DISCONTINUOUS CONDUCTION MODE, DCM  
Because XRP6124 is  
a
non-synchronous  
controller, when load current IOUT is reduced to  
less than half of peak-to-peak inductor current  
ripple ΔIL, the converter enters DCM mode of  
operation. The switching frequency fs is now  
IOUT dependent and no longer governed by the  
relationship shown in table 2. As IOUT is  
decreased so does fs until a minimum  
switching frequency, typically in the range of  
few hundred Hertz, is reached at no load. This  
contributes to good converter efficiency at  
light load as seen in figures 4 and 5. The  
reduced fs corresponding to light load,  
however, increases the output voltage ripple  
and causes a slight increase in output voltage  
as seen in figures 8 and 9. Another effect of  
reduced fs at light load is slow down of  
SOFT-START  
To limit in-rush current the XRP6124 has an  
internal soft-start. The nominal soft-start time  
is 2ms and commences when VIN exceeds the  
UVLO threshold. As explained above, the  
short-circuit comparator is enabled as soon as  
soft-start is complete. Therefore if the input  
voltage has a very slow rising edge such that  
at the end of soft-start the output voltage has  
not reached 69% of its final value then the  
XRP6124 will latch-off.  
ENABLE  
By applying a logic-level signal to the enable  
pin EN the XRP6124 can be turned on and off.  
Pulling the enable below 1V shuts down the  
controller and reduces the VIN leakage current  
to 1.5µA nominal as seen in figure 18. Enable  
signal should always be applied after the input  
voltage or concurrent with it. Otherwise  
transient response when  
a
load step  
transitions from a high load to a light load.  
This is shown in figures 16 and 17.  
APPLICATION INFORMATION  
SETTING THE OUTPUT VOLTAGE  
FEED-FORWARD CAPACITOR CFF  
Use an external resistor divider to set the  
output voltage. Program the output voltage  
from:  
CFF, which is placed in parallel with R1,  
provides  
a
low-impedance/high-frequency  
path for the output voltage ripple to be  
transmitted to FB. It also helps get an  
optimum transient response. An initial value  
for CFF can be calculated from:  
V
OUT  
R1 = R2×  
1  
0.8  
1
CFF =  
where:  
2×π × fs ×0.1× R1  
R1 is the resistor between VOUT and FB  
where:  
R2 is the resistor between FB and GND  
(nominally 2k)  
fs is the switching frequency from table 2  
0.8V is the nominal feedback voltage.  
This value can be adjusted as necessary to  
provide an optimum load step transient  
response.  
© 2011 Exar Corporation  
8/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
ESR of the capacitor has to be selected such  
that the output voltage ripple requirement  
OUTPUT INDUCTOR  
Select the output inductor L1 for inductance L,  
DC current rating IDC and saturation current  
rating ISAT. IDC should be larger than regulator  
output current. ISAT, as a rule of thumb, should  
be 50% higher than the regulator output  
current. Calculate the inductance from:  
VOUT(ripple), nominally 1% of VOUT, is met.  
Voltage ripple VOUT(ripple) is composed mainly of  
two components: the resistive ripple due to  
ESR and capacitive ripple due to COUT charge  
transfer. For applications requiring low voltage  
ripple, ceramic capacitors are recommended  
because of their low ESR which is typically in  
the range of 5m. Therefore VOUT(ripple) is  
mainly capacitive. For ceramic capacitors  
calculate the VOUT(ripple) from:  
VOUT  
L =  
(
VIN VOUT  
)
ΔIL × fs×VIN  
Where:  
ΔIL  
8×COUT × fs  
ΔIL is peak-to-peak inductor current ripple  
nominally set to 30% of IOUT  
VOUT(ripple)  
=
fS is nominal switching frequency from table 2  
Where:  
COUT is the value calculated above  
OUTPUT CAPACITOR COUT  
If tantalum or electrolytic capacitors are used  
then VOUT(ripple) is essentially a function of ESR:  
Select the output capacitor for voltage rating,  
capacitance COUT and Equivalent Series  
Resistance ESR. The voltage rating, as a rule  
of thumb, should be twice the output voltage.  
When calculating the required capacitance,  
usually the overriding requirement is current  
load-step transient. If the unloading transient  
requirement (i.e., when IOUT transitions from a  
high to a low current) is met, then usually the  
loading transient requirement (when IOUT  
transitions from a low to a high current) is met  
as well. Therefore calculate the COUT  
capacitance based on the unloading transient  
requirement from:  
VOUT(ripple) = ΔIL × ESR  
INPUT CAPACITOR CIN  
Select the input capacitor for voltage rating,  
RMS current rating and capacitance. The  
voltage rating, as a rule of thumb, should be  
50% higher than the regulator’s maximum  
input voltage. Calculate the capacitor’s current  
rating from:  
ICIN,RMS = IOUT × D×  
(
1D  
)
2
IHigh2 ILOW  
COUT = L×  
2
(
VOUT +Vtransient  
2 VOUT  
)
Where:  
IOUT is regulator’s maximum current  
D is duty cycle (D=VOUT/VIN)  
Where:  
L is the inductance calculated in the preceding  
step  
Calculate the CIN capacitance from:  
IHigh is the value of IOUT prior to unloading. This  
is nominally set equal to regulator current  
rating.  
IOUT ×VOUT  
×
(
VIN VOUT  
)
CIN =  
fs×VIN 2 ×ΔVIN  
ILow is the value of IOUT after unloading. This is  
nominally set equal to 50% of regulator  
current rating.  
Where:  
ΔVIN is the permissible input voltage ripple,  
nominally set to 1% of VIN.  
Vtransient is the maximum permissible voltage  
transient corresponding to the load step  
mentioned above. Vtransient is typically specified  
from 3% to 5% of VOUT  
.
© 2011 Exar Corporation  
9/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
TYPICAL APPLICATIONS  
12V TO 3.3V / 3A CONVERSION  
VIN 6V to 18V  
1
5
EN  
VIN  
XRP6124ES  
CIN, X5R  
22uF, 25V  
2
3
GND  
FB  
M1  
IRF9335  
4
GATE  
L1, 4.7uH  
DR74-4R7-R  
VOUT 3.3V/3A  
D1  
MBRA340  
CFF  
1nF  
C
OUT, X5R  
R1, 1%  
6.34k  
2x22uF, 10V  
R2, 1%  
2k  
Fig. 20: 12V to 3.3V/3A regulator  
24V TO 5V / 3A CONVERSION  
VIN 8V to 30V  
1
5
EN  
VIN  
XRP6124HVES  
CIN, X5R  
10uF, 50V  
2
3
GND  
M1  
DMP4050SSS  
4
FB  
GATE  
L1, 8.2uH  
HCM0730  
VOUT 5.0V/3A  
D1  
MBRA340  
CFF  
0.47nF  
COUT, X5R  
2x22uF, 16V  
R1, 1%  
10.5k  
R2, 1%  
2k  
Fig. 21: 24V to 5V/3A regulator  
© 2011 Exar Corporation  
10/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
PACKAGE SPECIFICATION  
5-PIN SOT23  
© 2011 Exar Corporation  
11/12  
Rev. 1.1.0  
XRP6124  
Non-Synchronous PFET Step-Down Controller  
REVISION HISTORY  
Revision  
Date  
Description  
1.0.0  
1.1.0  
01/26/2011  
01/31/2011  
Initial release of datasheet  
Corrected typo (changed V to I) on formula under Input Capacitor CIN paragraph  
FOR FURTHER ASSISTANCE  
Email:  
customersupport@exar.com  
Exar Technical Documentation:  
http://www.exar.com/TechDoc/default.aspx?  
EXAR CORPORATION  
HEADQUARTERS AND SALES OFFICES  
48720 Kato Road  
Fremont, CA 94538 – USA  
Tel.: +1 (510) 668-7000  
Fax: +1 (510) 668-7030  
www.exar.com  
NOTICE  
EXAR Corporation reserves the right to make changes to the products contained in this publication in order to improve  
design, performance or reliability. EXAR Corporation assumes no responsibility for the use of any circuits described herein,  
conveys no license under any patent or other right, and makes no representation that the circuits are free of patent  
infringement. Charts and schedules contained here in are only for illustration purposes and may vary depending upon a  
user’s specific application. While the information in this publication has been carefully checked; no responsibility, however,  
is assumed for inaccuracies.  
EXAR Corporation does not recommend the use of any of its products in life support applications where the failure or  
malfunction of the product can reasonably be expected to cause failure of the life support system or to significantly affect its  
safety or effectiveness. Products are not authorized for use in such applications unless EXAR Corporation receives, in  
writing, assurances to its satisfaction that: (a) the risk of injury or damage has been minimized; (b) the user assumes all  
such risks; (c) potential liability of EXAR Corporation is adequately protected under the circumstances.  
Reproduction, in part or whole, without the prior written consent of EXAR Corporation is prohibited.  
© 2011 Exar Corporation  
12/12  
Rev. 1.1.0  

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Synchronous Step-Down Controller with DDR Memory Termination
EXAR

XRP6142ELTR1-0-F

Switching Controller, Voltage-mode, 3 X 3 MM, GREEN, MO-220VEED, QFN-16
EXAR