XC9201DE0AKR [TOREX]

PWM Controlled Step-Down DC/DC Converters; PWM控制的降压型DC / DC转换器
XC9201DE0AKR
型号: XC9201DE0AKR
厂家: Torex Semiconductor    Torex Semiconductor
描述:

PWM Controlled Step-Down DC/DC Converters
PWM控制的降压型DC / DC转换器

转换器
文件: 总20页 (文件大小:336K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
05S_1XC9201/9202新規 02.09.12 15:16 ページ 535  
Series  
PWM Controlled Step-Down DC/DC Converters  
Input Voltage Range  
Output Voltage Range  
: 2.5V ~20V  
: 1.2V ~ 16V  
■Applications  
Mobile, Cordless phones  
Palm top computers, PDAs  
Portable games  
Oscillation Frequency Range : 100kHz ~  
600kHz  
Cameras, Digital cameras  
Laptops  
Output Current  
: up to 3.0A  
Ceramic Capacitor Compatible  
MSOP-8A Package  
5
■General Description  
The XC9201 series are step-up multiple current and voltage feedback  
DC/DC controller ICs. Current sense, clock frequencies and amp  
feedback gain can all be externally regulated.  
■Features  
Stable Operations via Current & Voltage Multiple Feedback  
Unlimited Options for Peripheral Selection  
Current Protection Circuit  
A stable power supply is possible with output currents of up to 3.0A.With  
output voltage fixed internally, VOUT is selectable in 0.1V steps within a  
1.2V - 16.0V range ( 2.5%).  
Ceramic Capacitor Compatible  
For output voltages outside this range, we recommend the FB version  
which has a 0.9V internal reference voltage. Using this version, the  
required output voltage can be set-up using 2 external resistors.  
Switching frequencies can also be set-up externally within a range of  
100~600 kHz and therefore frequencies suited to your particular  
application can be selected.  
With the current sense function, peak currents (which flow through the  
driver transistor and the coil) can be controlled. Soft-start time can be  
adjusted using external resistors and capacitors.  
During shutdown (CE pin =L), consumption current can be reduced to as  
little as 0.5µA (TYP.) or less and with U.V.L.O  
(Under Voltage Lock Out) built-in, the external transistor will be  
automatically shut off below the regulated voltage.  
■Typical Application Circuit  
■Typical Performance  
Characteristic  
22μH  
V
OUT:5.0V FOSC:330kHz  
XP132A11A1SR  
100  
80  
60  
40  
20  
1 EXT  
2 Isen  
Vss 8  
VOUT 7  
GAIN 6  
CLK 5  
U3FWJ44N  
33mΩ�  
3 VIN  
240kΩ�  
V
IN=5.4V  
7.2V  
10.0V  
12.0V  
15.0V  
4 CE/SS  
40μF+220μF  
94μF  
0.33μF  
1μF  
470pF  
10KΩ�  
220pF  
0
0.1  
1
10  
100  
1000 10000  
Output Current:IOUT(mA)�  
535  
05S_1XC9201/9202新規 02.09.12 15:16 ページ 536  
XC9201Series  
■Pin Configuration  
■Pin Assignment  
PIN NUMBER  
PIN NAME  
FUNCTION  
Driver  
EXT  
Isen  
8
7
6
5
1
2
3
4
VSS  
1
2
3
4
5
6
7
8
EXT  
VOUT/FB  
Isen  
Current Sense  
Power Input  
CE/Soft Start  
Clock Input  
VIN  
CC/GAIN  
CLK  
VIN  
CE/SS  
CE/SS  
CLK  
CC/GAIN  
VOUT/FB  
VSS  
Phase Compensation  
Voltage Sense  
Ground  
■Product Classification  
Ordering Information  
XC9201�  
SYMBOL  
DESCRIPTION  
DESIGNATOR  
C
D
VOUT  
FB  
Soft-start externally set-up  
Soft-start externally set-up  
5
Output Voltage : For voltages above 10V, see below :�  
10=A, 11=B, 12=C, 13=D, 14=E, 15=F, 16=H�  
Number  
e.g. VOUT=2.3V w=2, e=3 VOUT=13.5V w=D, e=5�  
FB products w=0, e=9 fixed  
Adjustable Frequency  
MSOP-8A  
A
K
R
L
Embossed tape. Standard Feed  
Embossed tape. Reverse Feed  
The standard output voltages of the XC9201C series are 2.5V, 3.3V, and 5.0V. �  
Voltages other than those listed are semi-custom.  
■Packaging Information  
MSOP-8A  
+0.08  
-0.02  
0.15  
3.00±0.10  
0.30 +-00..0028  
(0.65)  
536  
05S_1XC9201/9202新規 02.09.12 15:16 ページ 537  
XC9201  
Series  
■Marking  
qꢀRepresents the product series  
MSOP8A  
SYMBOL  
PRODUCT NAME  
XC9201 AK  
1
***  
*
q w e  
r t y  
wꢀRepresents the product type, DC/DC converter  
SYMBOL  
TYPE  
PRODUCT NAME  
XC9201C AK  
C
D
VOUT、CE PIN  
FB、CE PIN  
**  
*
XC9201D09AK  
*
eꢀRepresents integral number of output voltage,or FB type  
SYMBOL VOLTAGE  
SYMBOL VOLTAGE  
PRODUCT NAME  
PRODUCT NAME  
XC9201CA AK  
XC9201C1 AK  
1
2
3
4
5
6
7
8
9
0
1. X  
2. X  
A
B
C
D
E
F
10. X  
11. X  
12. X  
13. X  
14. X  
15. X  
16. X  
*
*
*
*
*
*
*
*
*
*
*
*
*
XC9201C2 AK  
XC9201CB AK  
*
*
XC9201C3 AK  
*
XC9201CC AK  
3. X  
*
*
*
5
XC9201C4 AK  
XC9201CD AK  
*
4. X  
*
XC9201C5 AK  
*
XC9201CE AK  
5. X  
*
*
XC9201C6 AK  
XC9201CF AK  
6. X  
*
*
*
XC9201C7 AK  
*
XC9201CH AK  
* *  
7. X  
H
XC9201C8 AK  
8. X  
*
XC9201C9 AK  
*
9. X  
XC9201D09AK  
FB products  
*
rꢀRepresents decimal number of output voltage  
SYMBOL  
VOLTAGE  
PRODUCT NAME  
XC9201C 0AK  
0
3
9
X. 0  
X. 3  
*
*
*
XC9201C 3AK  
*
XC9201D09AK  
FB products  
*
tꢀRepresents oscillator frequeney's control type  
SYMBOL  
A
TYPE  
PRODUCT NAME  
XC9201 AK  
Adjustable Frequency  
***  
*
537  
05S_1XC9201/9202新規 02.09.12 15:16 ページ 538  
XC9201Series  
■Block Diagram  
EXT timming�  
controll�  
logic  
Current�  
Limit�  
Protection  
VSS  
EXT  
VOUT  
R1  
R2  
Verr  
ISEN  
VIN  
Limitter comp.  
MIX  
PWM  
CC/GAIN  
Internal�  
Voltage�  
Regulator  
Ierr  
Ramp Wave,�  
Internal CLK�  
generator  
2.0V�  
to internal�  
circuit  
Sampling  
CE,UVLO�  
to internal�  
circuit  
CLK  
Chip Enable,�  
Soft Start up,�  
U.V.L.O.  
CE/SS  
0.9V  
5
Vref generator  
■Absolute Maximum Ratings  
Ta=25℃�  
UNITS  
R A T I N G S  
-0.3~VDD+0.3  
-0.3~+22  
-0.3~+22  
-0.3~+22  
-0.3~VDD+0.3  
-0.3~VDD+0.3  
-0.3~+22  
±100  
PARAMETER  
EXT Pin Voltage  
ISEN Pin Voltage  
VIN Pin Voltage  
SYMBOL  
VEXT  
VIsen  
VIN  
V�  
V�  
V�  
V�  
V�  
V�  
V�  
CE/SS Pin Voltage  
CLK Pin Voltage  
CC/GAIN Pin Voltage  
VCE  
VCLK  
VCC  
VOUT/FB Pin Voltage VOUT/FB  
EXT Pin Current  
IEXT  
Pd  
mA  
Continuous Total �  
Power Dissipation  
150  
mW  
℃�  
℃�  
Operating Ambient �  
Topr  
Tstg  
-40~+85  
-55~+125  
Temperature  
Storage Temperature  
538  
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XC9201  
Series  
■Electrical Characteristics  
XC9201C25AR  
Ta=25℃�  
SYMBOL  
PARAMETER  
CONDITIONS  
MAX. UNITS CIRCUITS  
MIN.  
2.438  
20  
TYP.  
2.500  
-�  
IOUT=300mA  
2.562  
-�  
V
V
q
q
q
t
w
w
w
e
Output Voltage  
VOUT  
VINmax  
VINmin  
VUVLO  
IDD1  
Maximum Operating �  
Voltage  
Minimum Operating �  
-�  
-�  
1.0  
2.200  
V
Voltage  
EXT voltage = High  
1.400� 2.0  
V
U.V.L.O. Voltage  
Supply Current 1  
Supply Current 2  
Stand-by Current  
115  
VIN=3.75V, CE=VIN=VOUT  
220  
235  
2.0  
380  
μA  
μA  
μA  
kHz  
IDD2  
VIN=20.0V, CE=VIN, VOUT=VSS  
VIN=3.75V, CE=VOUT=VSS  
RT=10.0kΩ, CT=220pF  
130�  
ISTB  
0.5�  
CLK Oscillation �  
Frequency  
FOSC  
330�  
280  
ΔFOSC  
ΔVIN・FOSC  
±5  
Frequency Input �  
VIN=2.5V~20V  
%
%
e
e
Stability  
VIN=3.75V  
ΔFOSC  
Frequency Temperature �  
Fluctuation  
±5�  
TOPR=-40~+85℃�  
ΔTOPR・FOSC  
Maximum Duty Cycle MAXDTY  
Minimum Duty Cycle MINDTY  
VOUT=VSS  
100  
%
r
r
y
y
t
t
5
VOUT=VIN  
150  
7
0
%
Current Limiter Voltage  
ISEN Current  
ILIM  
VIN pin voltage - ISEN pin voltage  
VIN=3.75V, ISEN=3.75V  
CE=VIN=20.0V, VOUT=0V  
CE=0V, VIN=20.0V, VOUT=0V  
Existance of CLK Oscillation,  
VOUT=0V, CE:Voltage applied  
Dissapearance of CLK Oscillation,  
90  
220  
13  
mV  
μA  
μA  
μA  
4.5  
IISEN  
ICEH  
CE "High" Current  
CE "Low" Current  
-0.1  
-0.1  
0�  
0.1  
0.1  
0�  
ICEL  
CE "High" Voltage  
CE "Low" Voltage  
VCEH  
0.6  
V
V
t
t
VCEL  
0.2  
VOUT=0V, CE:Voltage applied  
EXT=VIN-0.4V, CE=VOUT=VIN *1  
EXT=0.4V, CE=VIN, VOUT=VSS *1  
EXT "High"�  
REXTH  
REXTL  
EFFI  
5
27�  
40  
33  
20  
Ω�  
Ω�  
%
r
r
q
q
ON Resistance  
EXT "Low"�  
24�  
ON Resistance  
Efficiency (NOTE1)  
93�  
TSS  
10�  
Soft-start Time  
Connect CSS and RSS, CE : 0V 3.75V  
ms  
CC/GAIN Pin �  
Output Impedance  
RCCGAIN  
400�  
kΩ�  
u
VIN = 3.75V unless specified�  
*1 : On resistance = 0.4V / measurement current �  
NOTE1 : EFFI = {[(Output Voltage) x (Output Current)] ÷ [(Input Voltage) x (Input Current)]} x 100�  
NOTE2 : The capacity range of the condenser used to set the external CLK frequency is 180 300pF  
539  
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XC9201Series  
XC9201C33AR  
Ta=25℃�  
SYMBOL  
PARAMETER  
CONDITIONS  
MIN.  
3.218  
20  
TYP.  
3.300  
-�  
MAX. UNITS CIRCUITS  
IOUT=300mA  
3.382  
-�  
V
V
q
q
q
t
w
w
w
e
Output Voltage  
VOUT  
VINmax  
VINmin  
VUVLO  
IDD1  
Maximum Operating�  
Voltage  
Minimum Operating�  
-�  
-�  
1.0  
2.200  
V
Voltage  
EXT voltage = High  
1.400� 2.0  
V
U.V.L.O. Voltage  
Supply Current 1  
Supply Current 2  
Stand-by Current  
115  
VIN=5.0V, CE=VIN=VOUT  
220  
235  
2.0  
380  
μA  
μA  
μA  
kHz  
IDD2  
VIN=20.0V, CE=VIN, VOUT=VSS  
VIN=5.0V, CE=VOUT=VSS  
RT=10.0kΩ, CT=220pF  
130�  
ISTB  
0.5�  
CLK Oscillation �  
Frequency  
FOSC  
330�  
280  
Frequency�  
ΔFOSC  
ΔVIN・FOSC  
VIN=2.5V~20V  
±5  
%
%
e
e
Input Stability  
Frequency Temperature �  
VIN=5.0V  
ΔFOSC  
±5�  
Fluctuation  
Topr=-40~+85℃�  
ΔTOPR・FOSC  
Maximum Duty Cycle MAXDTY  
Minimum Duty Cycle MINDTY  
VOUT=VSS  
100  
%
r
r
y
y
t
t
VOUT=VIN  
150  
7
0
%
5
Current Limiter�  
ILIM  
VIN pin voltage - ISEN pin voltage  
VIN=5.0V, ISEN=5.0V  
90  
220  
13  
mV  
μA  
μA  
μA  
Voltage  
4.5  
ISEN Current  
IISEN  
ICEH  
CE "High" Current  
CE "Low" Current  
CE=VIN=20.0V, VOUT=0V  
CE=0V, VIN=20.0V, VOUT=0V  
Existance of CLK Oscillation,  
VOUT = 0V, CE : Voltage applied  
Dissapearance of CLK Oscillation,  
-0.1  
-0.1  
0�  
0.1  
0.1  
0�  
ICEL  
CE "High" Voltage  
CE "Low" Voltage  
VCEH  
0.6  
V
V
t
t
VCEL  
0.2  
VOUT = 0V, CE : Voltage applied  
EXT=VIN - 0.4V, CE=VOUT=VIN *1  
EXT=0.4V, CE=VIN, VOUT=VSS *1  
EXT "High"�  
REXTH  
REXTL  
EFFI  
5
24�  
33  
31  
20  
Ω�  
Ω�  
%
r
r
q
q
ON Resistance  
EXT "Low"�  
22�  
ON Resistance  
Efficiency (NOTE1)  
93�  
TSS  
10�  
Soft-start Time  
Connect CSS and RSS, CE : 0V → 5.0V  
ms  
CC/GAIN Pin �  
RCCGAIN  
400�  
kΩ�  
u
Output Impedance  
VIN = 5.0V unless specified�  
*1 : On resistance = 0.4V / measurement current �  
NOTE1 : EFFI = {[(Output Voltage) x (Output Current)] ÷ [(Input Voltage) x (Input Current)]} x 100�  
NOTE2 : The capacity range of the condenser used to set the external CLK frequency is 180 300pF  
540  
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XC9201  
Series  
XC9201C50AR  
Ta=25℃�  
PARAMETER  
SYMBOL  
CONDITIONS  
MIN.  
4.875  
20  
TYP.  
5.000  
-�  
MAX. UNITS CIRCUITS  
IOUT=300mA  
5.125  
-�  
V
V
q
q
q
t
w
w
w
e
Output Voltage  
VOUT  
VINmax  
VINmin  
VUVLO  
IDD1  
Maximum Operating�  
Voltage  
Minimum Operating�  
-�  
-�  
1.0  
2.200  
V
Voltage  
EXT voltage = High  
1.400� 2.0  
V
U.V.L.O. Voltage  
Supply Current 1  
Supply Current 2  
Stand-by Current  
115  
VIN=7.5V, CE=VIN=VOUT  
220  
235  
2.0  
380  
μA  
μA  
μA  
kHz  
IDD2  
VIN=20.0V, CE=VIN, VOUT=VSS  
VIN=7.5V, CE=VOUT=VSS  
RT=10.0kΩ, CT=220pF  
130�  
ISTB  
0.5�  
CLK Oscillation �  
Frequency  
FOSC  
330�  
280  
ΔFOSC  
ΔVIN・FOSC  
Frequency�  
VIN=2.5V~20V  
±5  
%
%
e
e
Input Stability  
Frequency Temperature �  
Fluctuation  
VIN=7.5V  
ΔFOSC  
±5�  
TOPR=-40~+85℃�  
ΔTOPR・FOSC  
MAXDTY  
MINDTY  
ILIM  
Maximum Duty Cycle  
Minimum Duty Cycle  
Current Limiter�  
Voltage  
VOUT=VSS  
100  
%
r
r
y
y
t
t
VOUT=VIN  
150  
7
0
%
5
VIN pin voltage - ISEN pin voltage  
VIN=7.5V, ISEN=7.5V  
90  
220  
13  
mV  
μA  
μA  
μA  
4.5  
ISEN Current  
IISEN  
ICEH  
CE "High" Voltage  
CE "Low" Voltage  
CE=VIN=20.0V, VOUT=0V  
CE=0V, VIN=20.0V, VOUT=0V  
Existance of CLK Oscillation,  
VOUT=0V, CE:Voltage applied  
Dissapearance of CLK Oscillation,  
-0.1  
-0.1  
0�  
0.1  
0.1  
0�  
ICEL  
VCEH  
CE "High" Voltage  
CE "Low" Voltage  
0.6  
V
V
t
t
VCEL  
0.2  
VOUT=0V、CE:Voltage applied  
VEXT=VIN-0.4V, CE=VOUT=VIN *1  
VEXT=0.4V, CE=VIN, VOUT=VSS *1  
EXT "High"�  
REXTH  
REXTL  
EFFI  
5
21�  
29  
27  
20  
Ω�  
Ω�  
%
r
r
q
q
ON Resistance  
EXT "Low"�  
20  
ON Resistance  
Efficiency (NOTE1)  
93�  
TSS  
10�  
Soft-start Time  
ms  
Connect CSS and RSS, CE : 0V → 7.5V  
CC/GAIN Pin �  
RCCGAIN  
400�  
kΩ�  
u
Output Impedance  
VIN = 7.5V unless specified�  
*1 : On resistance = 0.4V / measurement current �  
NOTE1 : EFFI = {[(Output Voltage) x (Output Current)] ÷ [(Input Voltage) x (Input Current)]} x 100�  
NOTE2 : The capacity range of the condenser used to set the external CLK frequency is 180 300pF  
541  
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XC9201Series  
XC9201D09AR  
Ta=25℃�  
SYMBOL  
PARAMETER  
CONDITIONS  
MIN.  
0.8775  
20  
TYP.  
0.900  
MAX. UNITS CIRCUITS  
IOUT=300mA  
0.9225  
V
V
q
q
q
t
w
w
w
e
FB Voltage  
VFB  
VINmax  
VINmin  
VUVLO  
IDD1  
Maximum Operating�  
Voltage  
Minimum Operating�  
2.200  
V
Voltage  
EXT voltage = High  
1.0  
1.400� 2.0  
V
U.V.L.O. Voltage  
Supply Current 1  
Supply Current 2  
Stand-by Current  
115  
VIN=4.0V, CE=VIN=FB  
220  
235  
2.0  
380  
μA  
μA  
μA  
kHz  
IDD2  
VIN=20.0V, CE=VIN, FB=VSS  
VIN=4.0V, CE=FB=VSS  
RT=10.0kΩ, CT=220pF  
130�  
ISTB  
0.5�  
CLK Oscillation �  
Frequency  
FOSC  
330�  
280  
Frequency�  
ΔFOSC  
ΔVIN・FOSC  
VIN=2.5V~20V  
±5  
%
%
e
e
Input Stability  
Frequency Temperature �  
VIN=4.0V  
ΔFOSC  
ΔTOPR・FOSC  
MAXDTY  
MINDTY  
ILIM  
±5�  
Fluctuation  
TOPR=-40~+85℃�  
Maximum Duty Cycle  
Minimum Duty Cycle  
Current Limiter�  
Voltage  
FB=VSS  
100  
%
r
r
y
y
t
t
FB=VIN  
150  
7
0
%
5
VIN pin voltage - ISEN pin voltage  
VIN=4.0V, ISEN=4.0V  
90  
220  
13  
mV  
μA  
μA  
μA  
4.5  
-0.1  
-0.1  
ISEN Current  
IISEN  
ICEH  
CE "High" Current  
CE "Low" Current  
CE=VIN=20.0V, FB=0V  
CE=0V, VIN=20.0V, FB=0V  
Existance of CLK Oscillation,  
FB=0V, CE:Voltage applied  
Dissapearance of CLK Oscillation,  
0�  
0.1  
0.1  
0�  
ICEL  
VCEH  
CE "High" Voltage  
CE "Low" Voltage  
0.6  
V
V
t
t
VCEL  
0.2  
FB=0V、CE:Voltage applied  
EXT=VIN-0.4V, CE=FB=VIN *1  
EXT=0.4V, CE=VIN, FB=VSS *1  
EXT "High"�  
REXTH  
REXTL  
EFFI  
5
27�  
40  
34  
20  
Ω�  
Ω�  
%
r
r
q
q
ON Resistance  
EXT "Low"�  
24�  
ON Resistance  
Efficiency (NOTE1)  
93�  
TSS  
10�  
Soft-start Time  
Connect CSS and RSS, CE : 0V → 4.0V  
ms  
CC/GAIN Pin �  
RCCGAIN  
400�  
kΩ�  
u
Output Impedance  
VIN = 4.0V unless specified�  
External components : RFB1 = 200k, RFB2 = 100k, CFB = 82pF�  
*1 : On resistance = 0.4V / measurement current �  
NOTE1 : EFFI = {[(Output Voltage) x (Output Current)] ÷ [(Input Voltage) x (Input Current)]} x 100�  
NOTE2 : The capacity range of the condenser used to set the external CLK frequency is 180 300pF  
542  
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XC9201  
Series  
■Typical Application Circuits  
XC9201C33AKR  
22μH  
3.3V�  
~1.5A  
1
2
EXT  
Isen  
VSS  
8
7
6
5
PMOS  
VOUT  
50mΩ�  
47μF  
SD  
3
4
VIN  
CC/GAIN  
CLK  
240kΩ�  
0.22μF  
470pF  
CE/SS  
7.2V  
47μF(OS) or�  
10μF(ceramic)×4  
220pF  
~30kΩ�  
1μF  
PMOS  
Coil  
: XP132A11A1SR(TOREX)  
: 22µH(CR105 SUMIDA)  
5
Resistor  
: 50mfor Isen (NPR1 KOWA), 30k(trimmer) for CLK, 240kfor SS  
Capacitors : 220pF( ceramic) for CLK, 470pF(ceramic) for CC/GAIN, 0.22µF(any) for SS,1µF(ceramic) for Bypass  
47µF(OS) or 10µF(ceramic) x 4 for CL, 47µF(tantalum) for CIN  
SD  
: U3FWJ44N(TOSHIBA)  
XC9201C50AKR  
22μH  
5.0V�  
~1.5A  
PMOS  
EXT  
Isen  
VSS  
1
2
8
7
VOUT  
20mΩ�  
SD  
6
3
4
VIN  
CC/GAIN  
CLK  
240kΩ�  
0.33μF  
470pF  
CE/SS  
5
47μF(OS)�  
+220μF(any)  
12.0V  
~30kΩ�  
220pF  
47μF�  
+220μF  
1μF  
PMOS  
: XP132A11A1SR(TOREX)  
Coil  
: 22µH(CDRH127 SUMIDA)  
Resistor  
: 20mfor Isen (NPR1 KOWA), 30k(trimmer) for CLK, 240kfor SS  
Capacitors : 220pF(ceramic) for CLK, 470pF(ceramic) for CC/GAIN, 0.33µF(any) for SS, 1µF(ceramic) for Bypass  
47µF(OS)+220µF(any) for CL, 47µF(tantalum)+220µF(any) for CIN  
SD  
: U3FWJ44N(TOSHIBA)  
543  
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XC9201Series  
XC9201D09AKR  
22μH  
2.5V�  
~3A  
39pF  
390kΩ�  
EXT  
Isen  
PMOS  
1
2
VSS  
8
7
VOUT  
20mΩ�  
SD  
220kΩ�  
6
3
4
VIN  
CC/GAIN  
CLK  
240kΩ�  
0.22μF  
470pF  
CE/SS  
5
47uF(OS)�  
+220μF(any)  
7.2V  
~30kΩ�  
220pF  
47μF�  
+220μF  
1μF  
PMOS  
Coil  
: XP132A11A1SR(TOREX)  
: 22µH(CDRH127 SUMIDA)  
Resistors  
: 20mfor Isen (NPR1 KOWA), 30k(trimmer) for CLK, 240kfor SS, 390kfor Output Voltage  
100k(trimmer) for Output Voltage  
5
Capacitors : 220pF(ceramic) for CLK, 470pF(ceramic) for CC/GAIN, 0.22µF(any) for SS, 1µF(ceramic) for Bypass  
39pF(ceramic) for FB,47µF(OS) for CL,47µF (tantalum)+220µF(any) for CIN  
SD  
: U3FWJ44N(TOSHIBA)  
XC9201D09AKR  
47μH  
12V�  
~1.5A  
56pF  
270kΩ�  
EXT  
Isen  
PMOS  
1
2
VSS  
FB  
8
7
50mΩ�  
SD  
22kΩ�  
6
3
4
VIN  
CC/GAIN  
CLK  
240kΩ�  
0.47μF  
470pF  
CE/SS  
5
47μF(OS)�  
+220μF  
20V  
~30kΩ�  
220pF  
47μF  
1μF  
PMOS  
Coil  
: XP132A11A1SR(TOREX)  
: 47µH(CR105 SUMIDA)  
Resistor  
: 50mfor Isen (NPR1 KOWA), 30k(trimmer) for CLK, 240kfor SS, 270kfor Output Voltage  
22k(trimmer) for Output Voltage  
Capacitors : 220pF(ceramic) for CLK, 470pF(ceramic) for CC/GAIN, 0.47µF(any) for SS, 1µF(ceramic) for Bypass  
100pF(ceramic) for FB, 47µF(OS) +220µF(any) for CL, 47µF(tantalum)+220µF(any) for CIN  
SD  
: U3FWJ44N(TOSHIBA)  
544  
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XC9201  
Series  
■Operation Description  
Step-down DC/DC converter controllers of the XC9201series carry out pulse width modulation (PWM) according to the multiple feedback signals  
of the output voltage and coil current.  
The internal circuits consist of different blocks that operate at VIN or the stabilized power (2.0 V) of the internal regulator. The output setting  
voltage of type C controller and the FB pin voltage (Vref = 0.9 V) of type D controller have been adjusted and set by laser-trimming.  
<Clock>  
With regard to clock pulses, a capacitor and resistor connected to the CLK pin generate ramp waveforms whose top and bottom are 0.7 V and  
0.15 V, respectively. The frequency can be set within a range of 100 to 600 kHz externally (refer to the "Functional Settings" section for further  
information). The clock pulses are processed to generate a signal used for synchronizing internal sequence circuits.  
<Verr amplifier>  
The Verr amplifier is designed to monitor the output voltage. A fraction of the voltage applied to internal resistors R1, R2 in the case of a type C  
controller, and the voltage of the FB pin in the case of a type D controller, are fed back and compared with the reference voltage. In response to  
feedback of a voltage lower than the reference voltage, the output voltage of the Verr amplifier increases.  
The output of the Verr amplifier enters the mixer via resistor (RVerr). This signal works as a pulse width control signal during PWM operations.  
By connecting an external capacitor and resistor through the CE/GAIN pin, it is possible to set the gain and frequency characteristics of Verr  
amplifier signals (refer to the "Functional Settings" section for further information).  
<Ierr amplifier>  
5
The Ierr amplifier monitors the coil current. The potential difference between the VIN and Isen pins is sampled at each switching operation.  
Then the potential difference is amplified or held, as necessary, and input to the mixer. The Ierr amplifier outputs a signal ensuring that the  
greater the potential difference between the VIN and Isen pins, the smaller the switching current. The gain and frequency characteristics of this  
amplifier are fixed internally.  
<Mixer and PWM>  
The mixer modulates the signal sent from Verr by the signal from Ierr. The modulated signal enters the PWM comparator for comparison with  
the sawtooth pulses generated at the CLK pin. If the signal is greater than the sawtooth waveforms, a signal is sent to the output circuit to turn  
on the external switch.  
<Current Limiter>  
The current flowing through the coil is monitored by the limiter comparator via the VIN and Isen pins. The limiter comparator outputs a signal  
when the potential difference between the VIN and Isen pins reaches 150 mV or more. This signal is converted to a logic signal and handled as  
a DFF reset signal for the internal limiter circuit. When a reset signal is input, a signal is output immediately at the EXT pin to turn off the MOS  
switch. When the limiter comparator sends a signal to enable data acceptance, a signal to turn on the MOS switch is output at the next clock  
pulse. If at this time the potential difference between the VIN and Isen pins is large, operation is repeated to turn off the MOS switch again. DFF  
operates in synchronization with the clock signal of the CLK pin.  
Limiter signal  
/RESET  
PWM/PFM switching signal  
CLK sync signal  
D
Q
Output signal to EXT pin  
CLK  
PWM/PFM switchinig signal  
<Soft Start>  
The soft start function is made available by attaching a capacitor and resistor to the CE/SS pin. The Vref voltage applied to the Verr amplifier is  
restricted by the start-up voltage of the CE/SS pin. This ensures that the Verr amplifier operates with its two inputs in balance, thereby  
preventing the ON-TIME signal from becoming stronger than necessary. Consequently, soft start time needs to be set sufficiently longer than  
the time set to CLK. The start-up time of the CE/SS pin equals the time set for soft start (refer to the "Functional Settings" section for further  
information).  
The soft start function operates when the voltage at the CE/SS pin is between 0V to 1.55V. If the voltage at the CE/SS pin doesn't start from 0V  
but from a mid level voltage when the power is switched on, the soft start function will become ineffective and the possibilities of large inrush  
currents and ripple voltages occurring will be increased.  
Undervoltage Lock Out (U.V.L.O.) is also provided. This function is activated to turn off the MOS switch attached to the EXT pin when the input  
voltage (VIN) decreases to approximately 1.4 V or below. The purpose of this function is to keep the external MOS switch from turning on when  
a voltage at which the IC operates unstably is applied. U.V.L.O. also restricts signals during soft start so that the external MOS switch does not  
turn on until the internal circuitry becomes stable.  
545  
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XC9201Series  
Functional Settings  
1. Soft Start  
CE and soft start (SS) functions are commonly assigned to the CE/SS pin. The soft start function is effective until the voltage at the CE pin  
reaches approximately 1.55 V rising from 0 V. Soft start time is approximated by the equation below according to values of Vcont, RSS, and  
CSS.  
T=-Css x Rss x ln((Vcont-1.55)/Vcont)  
Example: When Css=0.1µF,Rss=470k, and Vcont=5V, T=-0.1e-6 × 470e3 × In((5-1.55)/5)=17.44ms.  
CE/SS pin  
Rss  
〔Inside the IC〕�  
CE,�  
To Verr amplifier  
Vref circuit  
UVLO  
Vcont  
Css  
Set the soft start time to a value sufficiently longer than the period of a clock pulse.  
> Circuit example 1: N-ch open drain  
5
Vcont  
〔Inside the IC〕�  
Rss  
CE/SS pin  
ON/OFF signal  
Css  
> Circuit example 2: CMOS logic (low current dissipation)  
Vcont  
〔Inside the IC〕�  
Rss  
ON/OFF signal  
CE/SS pin  
Css  
> Circuit example 3: CMOS logic (low current dissipation), quick off  
Vcont  
〔Inside the IC〕�  
CE/SS pin  
Rss  
ON/OFF signal  
Css  
546  
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XC9201  
Series  
2.Oscillation Frequency  
The oscillation frequency of the internal clock generator is approximated by the following equation according to the values of the capacitor and  
resistor attached to the CLK pin. To stabilize the IC's operation, set the oscillation frequency within a range of 100kHz to 600kHz. Select a  
value for Cclk within a range of 180pF to 300pF and fix the frequency based on the value for Rclk.  
f=1/ (-Cclk x Rclk x ln 0.26)  
Example: When Cclk = 220 pF and Rclk = 10 k, f = 1/(-220e-12 x 10e3 x ln(0.26)) = 337.43 kHz.  
〔Inside the IC〕�  
CLK pin  
Rclk  
Cclk  
CLK Generater  
3.Gain and Frequency Characteristics of the Verr Amplifier  
The gain at output and frequency characteristics of the Verr amplifier are adjusted by the values of capacitor and resistor attached to the  
CC/GAIN pin. It is generally recommended to attach a C_GAIN of 220 to 1,000 pF without an R_GAIN. The greater the C_GAIN value, the  
more stable the phase and the slower the transient response. When using the IC with R_GAIN connected, it should be noted that if the R_GAIN  
resistance value is too high, abnormal oscillation may occur during transient response time. The size of R_GAIN should be carefully determined  
and connected.  
5
〔Inside the IC〕�  
CC/GAIN pin  
VOUT/FB  
Verr  
Vref  
RGAIN  
RVerr  
CC  
4.Current Limiting  
The current limiting value is approximated by the following equation according to resistor RSEN inserted between the VIN and ISEN pins. Double  
function, current FB input and current limiting, is assigned to the ISEN pin. The current limiting value is approximated by the following equation  
according to the value for RSEN.  
ILpeak_limit = 0.15 / RSEN  
Example: When RSEN = 100 m, ILpeak_limit = 0.15 / 0.1 = 1.5 A  
〔Inside the IC〕�  
Isen pin  
Rsen  
Limiter signal  
Comparator with��  
150-mV offset  
VIN pin  
Because of the feedback at the internal error amp with this IC (which is brought about as a result of the phase compensation of the voltage  
generated at RSEN, which is in turn caused by current flowing through the coil when the PMOS is working.), should the value of the RSEN resistor  
be too large, the feedback signal will also increase and intermittent oscillation may occur. We therefore recommend that you carefully check the  
value for RSEN should you have a problem with oscillation. During normal operations, a voltage will be generated at RSEN as a result of the coil's  
peak current. Please ensure that this voltage is less than the current limit voltage which is 90mV (min.).  
For RSEN resistor's rated power, please refer to the note on the RSEN resistor on page 18.  
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XC9201Series  
5. FB Voltage and Cfb  
With regard to the XC9201D series, the output voltage is set by attaching externally divided resistors. The output voltage is determined by the  
equation shown below according to the values of Rfb1 and Rfb2. In general, the sum of Rfb1 and Rfb2 should be 1 MEG or less.  
VOUT = 0.9 x (Rfb1 + Rfb2)/Rfb2  
The value of Cfb (phase compensation capacitor) is approximated by the following equation according to the values of Rfb1 and fzfb. The value  
of fzfb should be 10 kHz, as a general rule.  
Cfb = 1/(2 x π x Rfb1 x fzfb)  
Example: When Rfb1 = 455 kand Rfb2 = 100 k: VOUT = 0.9 x (455 k + 100 k)/100 k = 4.995 V  
: Cfb = 1/(2 x π x 455 k x 10 k) = 34.98 pF.  
〔Inside the IC〕�  
Output voltage  
Cfb  
Rfb1  
FB pin  
Verr  
Rfb2  
0.9V  
Verr amplifier  
5
■Directions for use  
Application Notes  
1. The 9201 series are designed for use with an output ceramic capacitor. If, however, the potential difference between input and output is too  
large, a ceramic capacitor may fail to absorb the resulting high switching energy and oscillation could occur on the output side. If the input-  
output potential difference is large, connect an electrolytic capacitor in parallel to compensate for insufficient capacitance.  
2. The EXT pin of the XC9201 series is designed to minimize the through current that occurs in the internal circuitry. However, the gate drive of  
external PMOS has a low impedance for the sake of speed. Therefore, if the input voltage is high and the bypass capacitor is attached away  
from the IC, the charge/discharge current to the external PMOS may lead to unstable operations due to switching operation of the EXT pin.  
As a solution to this problem, place the bypass capacitor as close to the IC as possible, so that voltage variations at the VIN and VSS pins  
caused by switching are minimized. If this is not effective, insert a resistor of several to several tens of ohms between the EXT pin and PMOS  
gate. Remember that the insertion of a resistor slows down the switching speed and may result in reduced efficiency.  
3. A PNP transistor can be used in place of PMOS. If using a PNP transistor, insert a resistor (Rb) and capacitor (Cb) between the EXT pin and  
the base of the PNP transistor in order to limit the base current without slowing the switching speed. Adjust Rb in a range of 500to 1kΩ  
according to the load and hFE of the transistor. Use a ceramic capacitor for Cb, complying with Cb < 1/ ( 2 x π x Rb x Fosc x 0.7), as a rule.  
〔Inside theIC〕�  
VIN  
EXT pin  
Rb  
Cb  
4. This IC incorporates a limit comparator to monitor the voltage produces across the RSEN resistor at the current peak of the coil. It functions as  
a limiter when, for example, the output is short-circuited. In such a case, the limit comparator senses that the voltage across the RSEN resistor  
has reached a current-limiting voltage (typically 150mV) and outputs a signal to turn off the external transistor. After sensing a current-limiting  
voltage, the limit comparator typically takes 200nsec before it turns off the external resistor. During this time, the voltage across the RSEN  
resistor can exceed the current-limiting voltage, especially when the difference between the input voltage and the output voltage is large and  
the coil inductance is small. Therefore, exercise great care in selecting absolute maximum ratings of the external transistor, coil, and  
Schottky diode.  
5. If the difference between the input voltage and the output voltage is large or small, the switching ON time or OFF time of this IC becomes  
short and actual operation can be critically influenced by values of peripheral components 'inductance of coil, resistance of CLK connection,  
capacitance of capacitor, etc.) Before use, it is recommended to evaluate this IC thoroughly with an actual unit.  
548  
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XC9201  
Series  
Recommended Pattern Layout  
q In order to stabilize VDD's voltage level, we recommend that a by-pass condenser (CDD) be connected as close as possible to the VIN & VSS  
pins.  
w In order to stabilize the GND voltage level which can fluctuate as a result of switching, we suggest that C_CLK's, R_CLK's & C_GAIN's GND  
be separated from Power GND and connected as close as possible to the VSS pin (by-pass condenser, CDD). Please use a multi layer board  
and check the wiring carefully.  
Pattern Layout Examples  
XC9201 Series (D Series)  
2 layer Evaluation Board  
L
P-MOS  
CDD  
CFB  
RFB1  
VDD Line  
1
2
3
4
5
6
7
CL  
SD  
IC GND  
5
RSEN  
CIN  
Power GND  
C_GAIN  
RFB2  
R_SS  
VIN  
8
R_CLK  
C_SS  
C_CLK  
Through Hole�  
1
2
3
4
5
6
7
8
R_CLK,C_CLK,C_GAIN,RFB2ꢀ�  
GND  
Through Hole�  
549  
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XC9201Series  
1 layer Evaluation Board  
L
P-MOS  
CDD  
CFB  
VDD Line  
RFB1  
1
2
3
4
5
6
7
8
CL  
IC GND  
SD  
RSEN  
Power GND  
R_SS  
C_SS  
CIN  
VIN  
RFB2  
R_CLK C_CLK C_GAIN  
Notes on Use  
5
Ensure that the absolute maximum ratings of the external components and the XC9201 DC/DC IC itself are not exceeded. We recommend  
that sufficient counter measures are put in place to eliminate the heat that may be generated by the external P-MOSFET as a result of  
switching losses.  
Try to use a P-MOSFET with as small a gate capacitance as possible in order to avoid overly large output spike voltages that may occur  
(such spikes occur in proportion to gate capacitance). The performance of the XC9201 DC/DC converter is greatly influenced by not only its  
own characteristics, but also by those of the external components it is used with. We recommend that you refer to the specifications of each  
component to be used and take sufficient care when selecting components.  
Wire external components as close to the IC as possible and use thick, short connecting wires to reduce wiring impedance. In particular,  
minimize the distance between the by-pass capacitor and the IC.  
Make sure that the GND wiring is as strong as possible as variations in ground potential caused by ground current at the time of switching  
may result in unstable operation of the IC. Specifically, strengthen the ground wiring in the proximity of the VSS pin.  
External Components  
RSENSE Resistor  
A low value resistor is defined as a resistor with a 10value or lower. For RSENSE, the XC9201 series uses a resistor with a value of either  
50mor 100m. Although resistors for RSENSE are classified as low resistance chip resistors or current limit resistors (which may give the  
impression that the RSENSE resistor is expensive), it is not necessary to use expensive low resistance chip resistors as general purpose chip  
resistors with values of 50mor 100mwill do the job just as well.  
When choosing the RSENSE resistor, it is important to confirm the resistor's power consumption which can be done using the following  
equation:  
W (Power Consumption) =I (Current) x V (Voltage)  
=I (Current) x I (Current) x R (Resistance)  
It is recommended that a resistor which has a power rating of more than 3 times the power consumption of RSENSE be selected (refer to the  
example given below) :  
(ex.) RSENSE = 100m, I = 1A  
I = 1A  
RSENSE = 100m(0.1)  
Power supply W = 1 x 1 x 0.1 = 0.1 [W]  
0.5W, 100mresistor should be used  
550  
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XC9201  
Series  
■Test Circuits  
・Fig. 1 (FB Type)  
・Fig. 1 (VOUT Type)  
47μH  
22μH  
PMOS  
RFB1  
PMOS  
CFB  
1 EXT  
Vss 8  
FB 7  
1 EXT  
2 Isen  
Vss 8  
VOUT 7  
GAIN 6  
SD  
SD  
2 Isen  
3 VIN  
100mΩ�  
100mΩ�  
R_SS  
RFB2  
RL  
GAIN 6  
RL  
V
3 VIN  
V
1μF  
240kΩ�  
4 CE/SS CLK 5  
20KΩ�  
4 CE/SS CLK 5  
10KΩ�  
1μF  
47μF  
47μF  
22μF  
20μF  
470pF  
470pF  
165pF  
220pF  
0.047μF  
C_SS  
XC9201C25A R_SS:188kΩ C_SS:0.1μF�  
XC9201C33A R_SS:270kΩ C_SS:0.1μF�  
XC9201C50A R_SS:430kΩ C_SS:0.1μF  
・Fig. 2  
・Fig. 3  
1 EXT  
Vss 8  
5
1 EXT  
Vss 8  
VOUT/FB 7  
2 Isen  
3 VIN  
VOUT/FB 7  
2 Isen  
3 VIN  
GAIN 6  
GAIN 6  
4 CE/SS CLK 5  
10KΩ�  
A
4 CE/SS CLK 5  
10KΩ�  
220pF  
OSC  
0.1μF  
0.1μF  
220pF  
・Fig. 4  
・Fig. 5  
H
1 EXT  
Vss 8  
1 EXT  
Vss 8  
A
VOUT/FB 7  
2 Isen  
3 VIN  
V
VOUT/FB 7  
2 Isen  
3 VIN  
L
GAIN 6  
GAIN 6  
0.1μF  
4 CE/SS CLK 5  
A
4 CE/SS CLK 5  
10KΩ�  
220pF  
V
10KΩ�  
0.1μF  
220pF  
・Fig. 6  
・Fig. 7  
1 EXT  
Vss 8  
1 EXT  
Vss 8  
VOUT/FB 7  
2 Isen  
3 VIN  
VOUT/FB 7  
2 Isen  
3 VIN  
GAIN 6  
GAIN 6  
A
V
4 CE/SS CLK 5  
1MΩ�  
4 CE/SS CLK 5  
10KΩ�  
220pF  
V
0.1μF  
0.1μF  
551  
05S_1XC9201/9202新規 02.09.12 15:16 ページ 552  
XC9201Series  
■Typical Performance Characteristics  
XC9201D09AKR  
(1) OUTPUT VOLTAGE vs. OUTPUT CURRENT  
VOUT 1.5V, FOSC : 330kHz  
VOUT 3.3V, FOSC : 330kHz  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
1.7  
1.6  
1.5  
1.4  
1.3  
3.5  
3.4  
3.3  
3.2  
3.1  
VIN=4.0V�  
6.0V�  
8.0V�  
10.0V�  
12.0V  
VIN=3.3V�  
5.0V�  
7.2V  
5
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
VOUT 5.0V, FOSC : 330kHz  
VOUT 12.0V, FOSC : 100kHz  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
L=68µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=10µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP132A11C0PR  
5.2  
5.1  
5.0  
4.9  
4.8  
12.2  
12.1  
12.0  
11.9  
11.8  
VIN=8.0V�  
10.0V�  
12.0V�  
15.0V  
VIN=18.0V  
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
552  
05S_1XC9201/9202新規 02.09.12 15:16 ページ 553  
XC9201  
Series  
(2) EFFICIENCY vs. OUTPUT CURRENT  
VOUT 1.5V, FOSC : 330kHz  
VOUT 3.3V, FOSC : 330kHz  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
100  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
100  
80  
60  
40  
20  
80  
60  
6.0V  
VIN=3.3V  
40  
VIN=4.0V 8.0V  
10.0V  
5.0V  
20  
7.2V  
12.0V  
0
0
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
5
VOUT 5.0V, FOSC : 330kHz  
VOUT 12.0V, FOSC : 100kHz  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
L=68µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=10µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP132A11C0PR  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
100  
80  
60  
40  
20  
100  
80  
60  
40  
20  
10.0  
VIN=8.0V  
12.0V  
15.0V  
VIN=18.0V  
0
0
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
553  
05S_1XC9201/9202新規 02.09.12 15:16 ページ 554  
XC9201Series  
(3) RIPPLE VOLTAGE vs. OUTPUT CURRENT  
VOUT 1.5V, FOSC : 330kHz  
VOUT 3.3V, FOSC : 330kHz  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
100  
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), CD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
100  
80  
60  
40  
20  
VIN=3.3V�  
5.0V�  
10.0V  
80  
7.2V  
12.0V  
8.0V  
60  
40  
20  
0
6.0V  
VIN=4.0V  
0
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
VOUT 5.0V, FOSC : 330kHz  
VOUT 12.0V, FOSC : 100kHz  
5
L=22µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
L=68µH, CL=40µF (Ceramic), CIN=30µF (Ceramic)��  
RSEN=50m, CDD=10µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP132A11C0PR  
100  
80  
60  
40  
20  
100  
80  
60  
40  
20  
VIN=18.0V  
15.0V  
12.0V  
10.0V  
VIN=8.0V  
0
0
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
VOUT 1.5V, FOSC : 330kHz  
VOUT 3.3V, FOSC : 330kHz  
L=22µH, CL=47µF (Tantalum), CIN=47µF (Tantalum)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
L=22µH, CL=47µF (Tantalum), CIN=47µF (Tantalum)��  
RSEN=50m, CDD=1µF (Ceramic), SD:U3FWJ44N��  
CGAIN=470pF (Ceramic), Tr:XP162A11C0PR  
100  
80  
60  
40  
20  
100  
80  
60  
40  
20  
12.0V  
10.0V  
8.0V  
7.2V  
6.0V  
5.0V  
VIN=4.0V  
VIN=3.3V  
0
0
0.1  
1
10  
100  
1000 10000  
0.1  
1
10  
100  
1000 10000  
Output Current : IOUT (mA)  
Output Current : IOUT (mA)  
*Note: If the input and output voltage differential is large or small, the time of ON and Off switching will be shorten.  
This gives external components such as inductance value of coil, connecting a resistor to CLK, condenser, will critically influence the  
actual operation.  
554  

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