LB1975 [SANYO]

DC Fan Motor Driver; 直流风扇电机驱动器
LB1975
型号: LB1975
厂家: SANYO SEMICON DEVICE    SANYO SEMICON DEVICE
描述:

DC Fan Motor Driver
直流风扇电机驱动器

驱动器 风扇 光电二极管 输出元件 电动机控制 电机
文件: 总12页 (文件大小:93K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
Ordering number : ENN6087A  
Monolithic Digital IC  
LB1975  
DC Fan Motor Driver  
Overview  
Package Dimensions  
The LB1975 is a three-phase brushless motor driver IC  
suited for use in direct PWM driving of DC fan motors for  
air conditioners, water heaters, and other similar  
equipment. Since a shunt regulator circuit is built in,  
single power supply operation sharing the same power  
supply for the motor is supported.  
unit: mm  
3147C-DIP28H  
[LB1975]  
28  
15  
R1.7  
1
Features  
• Withstand voltage 45 V, output current 2.5 A  
• Direct PWM drive output  
14  
20.0  
• 3 built-in output top-side diodes  
• Built-in current limiter  
26.75  
• Built-in FG output circuit  
(1.81)  
1.78  
0.6  
1.0  
SANYO: DIP28H  
Any and all SANYO products described or contained herein do not have specifications that can handle  
applications that require extremely high levels of reliability, such as life-support systems, aircraft’s  
control systems, or other applications whose failure can be reasonably expected to result in serious  
physical and/or material damage. Consult with your SANYO representative nearest you before using  
any SANYO products described or contained herein in such applications.  
SANYO assumes no responsibility for equipment failures that result from using products at values that  
exceed, even momentarily, rated values (such as maximum ratings, operating condition ranges, or other  
parameters) listed in products specifications of any and all SANYO products described or contained  
herein.  
SANYO Electric Co.,Ltd. Semiconductor Company  
TOKYO OFFICE Tokyo Bldg., 1-10, 1 Chome, Ueno, Taito-ku, TOKYO, 110-8534 JAPAN  
21003AS (OT) / 52199RM (KI) No. 6087-1/12  
LB1975  
Specifications  
Absolute Maximum Ratings at Ta = 25°C  
Parameter  
Symbol  
CC max  
Conditions  
Ratings  
Unit  
V
V
7
Supply voltage  
Output current  
V
M max  
O max  
45  
V
I
2.5  
A
Maximum input current  
I
REG max VREG pin  
Pd max1 IC only  
With infinite heat sink  
10  
3
mA  
W
Allowable power dissipation  
Pd max2  
Topr  
20  
W
Operating temperature  
Storage temperature  
–20 to +100  
–55 to +150  
°C  
°C  
Tstg  
Allowable Operating Ranges at Ta = 25°C  
Parameter  
Symbol  
VCC  
VM  
Conditions  
Ratings  
4.5 to 6.7  
20 to 42  
1 to 5  
Unit  
V
Supply voltage range  
V
Input current range  
IREG  
VFG  
IFG  
VREG pin  
mA  
V
FG pin applied voltage  
FG pin output current  
0 to VCC  
0 to 10  
mA  
Pd max – Ta  
24  
20  
With infinite heat sink  
16  
12  
8
4
3
Independent IC  
0
–20  
0
20  
40  
60  
80  
100  
120  
Ambient temperature, Ta – ˚C  
No. 6087-2/12  
LB1975  
Electrical Characteristics at Ta = 25°C, V = 5 V, V = 30 V  
CC  
M
Ratings  
typ  
Parameter  
Symbol  
ICC  
Conditions  
Unit  
mA  
min  
10  
max  
18  
Supply current  
[Output Block]  
14  
VOsat1 (L) IO = 1.0 A, VO (sink)  
VOsat1 (H) IO = 1.0 A, VO (source)  
VOsat1 IO = 1.0 A, VO (sink) + VO (source)  
VOsat2 (L) IO = 2.0 A, VO (sink)  
VOsat2 (H) IO = 2.0 A, VO (source)  
VOsat2 IO = 2.0 A, VO (sink) + VO (source)  
IOLeak (L)  
1.1  
0.9  
2.0  
1.4  
1.2  
2.6  
1.4  
1.3  
2.6  
1.8  
1.7  
3.4  
100  
V
V
V
Output saturation voltage  
V
V
V
µA  
µA  
V
Output leak current  
IOLeak (H)  
–100  
VFH  
1
IO = 1.0 A  
IO = 2.0 A  
1.2  
2.1  
1.6  
2.6  
Upper side diode forward voltage  
VFH2  
V
[Hall Amplifier]  
Input bias current  
IHB  
VICM  
–4  
1.5  
60  
–1  
µA  
V
Common-mode input voltage range  
Hall input sensitivity  
Hysteresis width  
V
– 1.5  
CC  
VHIN  
mVp-p  
mV  
VIN (HA)  
VSLH  
23  
32  
16  
39  
25  
–6  
Input voltage (low to high)  
Input voltage (high to low)  
[FG Pin (speed pulse output)]  
Output low-level voltage  
Pull-up resistor value  
[Current Limiter]  
6
mV  
VSHL  
–25  
–16  
mV  
VFGL  
RFG  
IFG = 5 mA  
0.5  
V
7.5  
0.45  
150  
10  
12.5  
kΩ  
Limiter  
VRF  
0.50  
0.55  
V
[Thermal Shutdown]  
Thermal shutdown operating temperature  
Hysteresis width  
TSD  
Desigh target Value (junction temperature)  
Desigh target Value (junction temperature)  
180  
40  
°C  
°C  
TSD  
[Low-Voltage Protection]  
Operating voltage  
VLVSD  
3.5  
0.4  
3.8  
4.3  
0.5  
4.1  
4.5  
0.6  
V
V
V
Non-operating voltage  
Hysteresis width  
V
(OFF)  
LVSD  
VLSD  
[PWM Oscillator]  
Output high-level voltage  
Output low-level voltage  
Amplitude  
VOH (OSC)  
VOL (OSC)  
VOSC  
2.95  
1.38  
1.50  
19.6  
–110  
1.6  
3.10  
1.45  
1.65  
23.0  
–94  
2.1  
3.25  
1.59  
1.71  
27.6  
–83  
2.6  
V
V
Vp-p  
kHz  
µA  
Ocillator frequency  
Charge current  
fOSC  
C = 2200 pF  
ICHG  
Discharge resistance  
[VREG Pin]  
RDCHG  
kΩ  
Pin voltage  
VREG  
IREG = 1.5 mA  
6.6  
7.0  
7.2  
V
[VCTL Pin]  
V
CTL1  
Output duty 0%  
1.1  
3.2  
1.4  
3.5  
1.7  
3.8  
V
V
Input voltage  
VCTL  
2
Output duty 100%  
IB1 (CTL) VCTL = 0 V  
IB2 (CTL) VCTL = 5 V  
–82  
µA  
µA  
Input bias current  
92  
[VCTL Amplifier]  
Reference voltage  
VCREF  
2.23  
3.90  
0.60  
2.35  
4.20  
0.80  
2.46  
4.40  
1.10  
V
V
V
V
V
COUT1 VCTL = 0 V  
COUT2 VCTL = 5 V  
Output voltage  
[Start/Stop Pin]  
High-level input voltage range  
Low-level input voltage range  
Input open voltage  
V
IH (S/S)  
IL (S/S)  
IO (S/S)  
V
V
– 1.5  
0
VCC  
1.5  
V
V
V
CC  
CC  
V
V
– 0.5  
VCC  
Continued on next page.  
No. 6087-3/12  
LB1975  
Continued from preceding page.  
Ratings  
typ  
Parameter  
Symbol  
Conditions  
Unit  
min  
0.35  
max  
0.65  
Hysteresis width  
VIN (S/S)  
0.50  
0
V
High-level input current  
Low-level input current  
[Forward/Reverse Pin]  
High-level input voltage range  
Low-level input voltage range  
Input open voltage  
IIH (S/S) V (S/S) = VCC  
–10  
10  
µA  
µA  
I
IL (S/S) V (S/S) = 0 V  
–280  
–210  
V
IH (F/R)  
IL (F/R)  
IO (F/R)  
VIN (F/R)  
IH (F/R) V (F/R) = VCC  
V
V
– 1.5  
0
VCC  
1.5  
V
V
CC  
CC  
V
V
– 0.5  
0.35  
–10  
VCC  
0.65  
10  
V
Hysteresis width  
0.50  
0
V
High-level input current  
Low-level input current  
I
µA  
µA  
IIL (F/R)  
V (F/R) = 0 V  
–280  
–210  
Pin Assignment  
V
V
OSC (NC) V  
IN1IN1+ IN2IN2+ IN3IN3+ FG1 FG2 GND1  
COUT CTL  
CREF  
24  
28  
27  
26  
25  
23  
22  
21  
20  
19  
18  
17  
16  
15  
LB1975  
Top view  
1
2
3
4
5
6
7
8
9
10  
11  
12  
13  
14  
V
V
S/S F/R (NC) OUT1 OUT2 OUT3 (NC) (NC) GND3 GND2 RF  
V
M
CC  
REG  
A11950  
Truth Table  
Input  
IN2  
Forward/reverse control  
Output  
FG output  
IN1  
H
IN3  
H
F/R  
L
Source Sink  
OUT2 OUT1  
OUT1 OUT2  
OUT3 OUT1  
OUT1 OUT3  
OUT3 OUT2  
OUT2 OUT3  
OUT1 OUT2  
OUT2 OUT1  
OUT1 OUT3  
OUT3 OUT1  
OUT2 OUT3  
OUT3 OUT2  
FG1  
FG2  
1
2
3
4
5
6
L
L
L
L
H
L
H
H
L
L
L
L
L
H
L
H
L
H
H
H
L
H
L
L
H
H
H
H
L
H
L
L
H
H
H
L
L
H
H
F/R  
FG output  
FG1  
FG2  
Forward rotation Low  
Reverse rotation High  
0 V to 1.5 V  
VCC – 1.5 V to VCC  
No. 6087-4/12  
LB1975  
Duty – V  
characteristics  
CTL  
100  
80  
60  
40  
20  
0
V
1
V
2
CTL  
CTL  
Control voltage, V  
— V  
CTL  
Block Diagram and Peripheral Circuit  
V
S/S  
F/R  
FG1 FG2  
REG  
V
CC  
V
+
CC  
Reg  
LVSD  
TSD  
+
V
M
Hys.Amp  
V
M
+
IN1  
IN2  
IN3  
OUT1  
OUT2  
OUT3  
+
Logic  
+
31 k  
Amp  
RF  
Current  
limiter  
V
CTL  
V
40 kΩ  
CTL  
Rf  
PWM  
OSC  
+
0.5 V  
2.35 V  
V
CTL  
+
V
V
OSC  
GND1 GND2 GND3  
CREF  
COUT  
A11952  
No. 6087-5/12  
LB1975  
Pin Functions  
Pin No. Pin name  
Pin voltage  
Pin function  
Equivalent circuit  
Power supply for blocks other than  
the output block  
VCC  
1
4.5 V to 6.7 V  
2
VREG  
2
0.0 V to 7.3 V Shunt regulator output pin (7 V)  
A11953  
V
CC  
Start/stop control pin  
Low: start  
High or Open: stop  
20 kΩ  
0.0 V to VCC  
3
S/S  
Typical threshold voltage for  
VCC = 5 V:  
3.8 kΩ  
3
approx. 2.8 V (low to high)  
approx. 2.3 V (high to low)  
A11954  
V
CC  
Forward/reverse pin  
Low: forward  
High or Open: reverse  
20 kΩ  
0.0 V to VCC  
4
F/R  
Typical threshold voltage for  
VCC = 5 V:  
3.8 kΩ  
4
approx. 2.8 V (low to high)  
approx. 2.3 V (high to low)  
A11955  
V
V
CC  
M
6
7
8
OUT1  
OUT2  
OUT3  
Output pin 1  
Output pin 2  
Output pin 3  
14  
6
7
8
Output current detect pin. Connect  
resistor RF between this pin and  
200 Ω  
0.0 V to VCC  
13  
RF  
ground. Output current is limited to  
value set with VRF/Rf. (Current limiter  
operation)  
0.5 V  
13  
A11956  
VM  
14  
11  
Output block power supply  
Output block ground  
GND3  
Continued on next page.  
No. 6087-6/12  
LB1975  
Continued from preceding page.  
Pin No. Pin name  
Pin voltage  
Pin function  
Equivalent circuit  
15  
12  
GND1  
GND2  
Ground for blocks other than the  
output block  
V
CC  
10 kΩ  
Speed pulse output pin 1 with built-in  
pull-up resistor  
16 17  
17  
16  
FG1  
FG2  
0.0 V to VCC  
Speed pulse output pin 2 with built-in  
pull-up resistor  
A11957  
V
CC  
+
22  
23  
20  
21  
18  
19  
IN1  
IN1  
18  
20  
22  
19  
Hall input pin  
300 Ω  
300 Ω  
+
1.5 V to  
CC – 1.5 V  
IN2  
+
21  
23  
IN > IN : High input  
V
IN2  
+
IN < IN : Low input  
+
IN3  
IN3  
A11958  
V
CC  
2 V  
94 µA  
200 Ω  
2.1 kΩ  
This pin sets the PWM oscillation  
frequency. Connect a capacitor  
between this pin and ground.  
26  
1.0 V to VCC  
26  
OSC  
A11959  
31 kΩ  
V
CC  
Output duty cycle control pin  
• VCTL VCTL  
Duty cycle 0%  
0.0 V to 6.7 V • VCTL1 < VCTL < VCTL  
Duty cycle is controlled by VCTL  
• VCTL VCTL  
Duty cycle 100%  
1
VCTL  
27  
2
40 kΩ  
2.35 V  
27  
2
A11960  
Continued on next page.  
No. 6087-7/12  
LB1975  
Continued from preceding page.  
Pin No. Pin name  
Pin voltage  
Pin function  
Equivalent circuit  
V
CC  
100 µA  
0.0 V to  
VCTL amplifier internal reference  
voltage pin (2.35 V)  
VCREF  
24  
200 Ω  
V
CC – 2.0 V  
24  
23.5 kΩ  
A11961  
28  
31 kΩ  
V
CC  
0.7 V to  
VCOUT  
VCTL amplifier output pin  
28  
200 Ω  
V
CC – 0.7 V  
A11962  
No. 6087-8/12  
LB1975  
IC Description  
Direct PWM Drive  
This IC (LB1975) employs the direct PWM drive principle. Motor rotation speed is controlled by varying the output  
duty cycle according to an analog voltage input (V ). This eliminates the need to alter the motor power supply  
CTL  
voltage. Compared to previous ICs using the PAM principle (such as the Sanyo LB1690), this allows simplification of  
the power supply circuitry. The V input can be directly supplied by a microcontroller, motor speed can, therefore, be  
CTL  
controlled directly from the microcontroller.  
For PWM, the source-side output transistors are switched on and off so that the ON duty tracks the V  
input. The  
CTL  
output duty cycle can be controlled over the range of 0% to 100% by the V  
input.  
CTL  
PWM Frequency  
The PWM oscillator frequency f  
[Hz] is set by the capacitance C [pF] connected between the OSC pin and GND.  
PWM  
The following equation applies:  
8
f
1 / (1.97 × C) × 10  
PWM  
Because output transistor on/off switching is subject to a delay, setting the PWM frequency to a very high value will  
cause the delay to become noticeable. The PWM frequency therefore should normally be kept below 40 kHz (typ.),  
which is achieved with a capacitance C of 1300 pF or higher. For reference, the source-side output transistor switching  
delay time is about 2 µs for ON and about 4 µs for OFF.  
Output Diodes  
Because the PWM switching operation is carried out by the source-side output transistors, Schottky barrier diodes must  
be connected between the OUT pins and GND (OUT1 to OUT3). Use diodes with an average forward current rating in  
the range of 1.0 to 2.0 A, in accordance with the motor type and current limiting requirements.  
If no Schottky barrier diodes are connected externally, or if Schottky barrier diodes with high forward voltage (V ) are  
F
used, the internal parasitic diode between OUT and GND becomes active. When this happens, the output logic circuit  
may malfunction, resulting in feedthrough current in the output which can destroy the output transistors. To prevent this  
possibility, Schottky barrier diodes must be used and dimensioned properly.  
The larger the V of the externally connected Schottky barrier diodes, or the hotter the IC is, the more likely are the  
F
parasitic diodes between OUT and GND to become active and the more likely is malfunction to occur. The V of the  
F
Schottky barrier diodes must be determined so that output malfunction does not occur also when the IC becomes hot. If  
malfunction occurs, choose a Schottky barrier diode with lower V .  
F
Protection circuits  
• Low voltage protection circuit  
When the V voltage falls below a stipulated level (V  
), the low voltage protection circuit cuts off the source-side  
LVSD  
CC  
output transistors to prevent V related malfunction.  
CC  
• Thermal shutdown circuit (overheat protection circuit)  
When the junction temperature rises above a stipulated value (TSD), the thermal shutdown circuit cuts off the source-  
side output transistors to prevent IC damage due to overheating. Design the application heat characteristics so that the  
protection circuit will not be triggered under normal circumstances.  
• Current limiter  
The current limiter cuts off the source-side output transistors when the output current reaches a preset value (limiter  
value). This interrupts the source current and thereby limits the output current peak value. By connecting the  
resistance Rf between the RF pin and ground, the output current can be detected as a voltage. When the RF pin voltage  
reaches 0.5 V (typ.), the current limiter is activated. It performs on/off control of the source-side output transistors,  
thereby limiting the output current to the value determined by 0.5 /Rf.  
No. 6087-9/12  
LB1975  
Hall Input Circuit  
The Hall input circuit is a differential amplifier with a hysteresis of 32 mV (typ.). The operation DC level must be within  
the common-mode input voltage range (1.5V to V – 1.5 V). To prevent noise and other adverse influences, the input  
CC  
level should be at least 3 times the hysteresis (120 to 160 mVp-p). If noise at the Hall input is a problem, a noise-  
+
canceling capacitor (about 0.01 µF) should be connected across the Hall input IN and IN pins.  
FG Output Circuit  
The Hall input signal at IN1, IN2, and IN3 is combined and subject to waveform shaping before being output. The signal  
at FG1 has the same frequency as the FG1 Hall input, and the signal at FG2 has a frequency that is three times higher.  
Start/Stop Control Circuit  
The start/stop control circuit turns the source-side output transistors OFF (motor stop) when a High signal is input at the  
S/S pin or when the pin is Open. When a Low signal is input at the S/S pin, the source-side output transistors are turned  
ON, and the normal operation state is established (motor start).  
Forward/Reverse Switching  
This IC is designed under the assumption that forward/reverse switching is not carried out while the motor is running. If  
switching is carried out while the motor is running, reverse torque braking occurs, leading to a high current flow. If the  
current limiter is triggered, the source-side output transistors are switched off, and the sink-side output transistors go into  
the short brake condition. However, because the current limiter of this IC cannot control the current flowing in the sink-  
side output transistors, these may be destroyed by the short brake current. Therefore F/R switching while the motor is  
running is permissible only if the output current (I ) is limited to a maximum of 2.5 A using the motor coil resistance or  
O
other suitable means.  
F/R switching should be carried out only while a High signal is input to the S/S pin or the pin is Open (stop condition), or  
while the V  
pin conforms to the following condition: V  
V 1 (duty cycle 0%). In any other condition, F/R  
CTL  
CTL  
CTL  
switching will result in feedthrough current. The F/R pin should therefore be fixed to Low (forward) or High or Open  
(reverse) during use.  
V , V Power Supplies  
CC M  
When the power supply voltage (V , V ) rises very quickly when a power is first applied, a feedthrough current may  
CC  
M
occur at the output. If the current remains below about 0.2 A to 0.3 A, it does not pose a problem, but such a possibility  
should still be prevented by slowing down the voltage rise at power-on. Especially if the F/R pin is set to High or Open  
(reverse), a quick rise in V is likely to cause feedthrough current. This should be prevented by ensuring that V / t  
CC  
CC  
= 0.2 V/µs or less. Feedthrough current can also be prevented by first switching on V and then V during power-on.  
CC  
M
The sequence at power-down should be as follows. Provide a stop input to the S/S pin or a duty ratio 0% input to the  
pin. When the motor has come to a full stop, switch off V and then V . If power is switched off while the  
V
CTL  
M
CC  
motor is still rotating or a current is flowing in the motor coil (including motor restraint or inertia rotation), a  
counterelectromotive current or kickback current may flow on the V side, depending on the motor type and power-off  
M
procedure. If this current cannot be absorbed by the V power supply or a capacitor, V voltage may rise and exceed  
M
M
the absolute maximum V rating for the IC. Ensure that this does not happen through proper design of the V power  
M
M
supply or through use of a capacitor.  
Because the IC (LB1975) incorporates a shunt regulator, it can be used on a single power supply. In this case, supply  
(6.3 typ.) to the V pin via an external NPN transistor and resistor. When not using the regulator, leave the V  
V
CC  
REG  
REG  
pin open.  
No. 6087-10/12  
LB1975  
Power Supply Stabilizing Capacitors  
If the V line fluctuates drastically, the low-voltage protection circuit may be activated by mistake, or other  
CC  
malfunctions may occur. The V line must therefore be stabilized by connecting a capacitor of at least several µF  
CC  
between V and GND. Because a large switching current flows in the V line, wiring inductance and other factors can  
CC  
M
lead to V voltage fluctuations. As the GND line also fluctuates, the V line must be stabilized by connecting a  
M
M
capacitor of at least several µF between V and GND, to prevent exceeding V max or other problems. Especially when  
M
M
long wiring runs (V , V , GND) are used, sufficient capacitance should be provided to ensure power supply stability.  
M
CC  
V
CREF  
Pin, V  
Pin  
COUT  
These pins are always used in the Open condition. If chattering occurs in the PWM switching output, connect a capacitor  
(about 0.1 µF) between V  
and ground or between V  
and GND.  
CREF  
COUT  
IC Heat Dissipation Fins  
A heat sink may be mounted to the heat dissipation fins of this IC, but it may not be connected to GND. The sink should  
be electrically open.  
Sample calculation for internal power dissipation (approximate)  
The calculation assumes the following parameters:  
V
V
= 5 V  
= 30 V  
CC  
M
Source-side output transistor ON duty cycle 80% (PWM control)  
Output current I = 1 A (RF pin average current)  
O
• I power dissipation P1  
CC  
P1 = V × I = 5 V × 14 mA = 0.07 W  
CC  
CC  
• Output drive current power dissipation P2  
P2 = V × 11 mA = 30 V × 11 mA = 0.33 W  
M
• Source-side output transistor power dissipation P3  
P3 = V (source) × I × Duty (on) = 0.9 V × 1 A × 0.8 = 0.72 W  
O
O
• Sink-side output transistor power dissipation P4  
P4 = V (sink) × I = 1.1 V × 1 A = 1.10 W  
O
O
• Total internal power dissipation P  
P = P1 + P2 + P3 + P4 = 2.22 W  
IC temperature Rise Measurement  
Because the chip temperature of the IC cannot be measured directly, measurement according to one of the following  
procedures should always be carried out.  
• Thermocouple measurement  
A thermocouple element is mounted to the IC heat dissipation fin. This measurement method is easy to implement, but  
it will be subject to measurement errors if the temperature is not stable.  
• Measurement using internal diode characteristics of IC  
This is the recommended measurement method. It makes use of the parasitic diode incorporated in the IC between FG1  
and GND. Set FG1 to High and measure the voltage V of the parasitic diode to calculate the temperature.  
F
(Sanyo data: for I = –1 mA, V temperature characteristics are about –2 mV/°C)  
F
F
NC Pins  
Because NC pins are electrically open, they may be used for wiring purpose etc.  
No. 6087-11/12  
LB1975  
Specifications of any and all SANYO products described or contained herein stipulate the performance,  
characteristics, and functions of the described products in the independent state, and are not guarantees  
of the performance, characteristics, and functions of the described products as mounted in the customer’s  
products or equipment. To verify symptoms and states that cannot be evaluated in an independent device,  
the customer should always evaluate and test devices mounted in the customer’s products or equipment.  
SANYO Electric Co., Ltd. strives to supply high-quality high-reliability products. However, any and all  
semiconductor products fail with some probability. It is possible that these probabilistic failures could  
give rise to accidents or events that could endanger human lives, that could give rise to smoke or fire,  
or that could cause damage to other property. When designing equipment, adopt safety measures so  
that these kinds of accidents or events cannot occur. Such measures include but are not limited to protective  
circuits and error prevention circuits for safe design, redundant design, and structural design.  
In the event that any or all SANYO products (including technical data, services) described or contained  
herein are controlled under any of applicable local export control laws and regulations, such products must  
not be exported without obtaining the export license from the authorities concerned in accordance with the  
above law.  
No part of this publication may be reproduced or transmitted in any form or by any means, electronic or  
mechanical, including photocopying and recording, or any information storage or retrieval system,  
or otherwise, without the prior written permission of SANYO Electric Co., Ltd.  
Any and all information described or contained herein are subject to change without notice due to  
product/technology improvement, etc. When designing equipment, refer to the “Delivery Specification”  
for the SANYO product that you intend to use.  
Information (including circuit diagrams and circuit parameters) herein is for example only; it is not  
guaranteed for volume production. SANYO believes information herein is accurate and reliable, but  
no guarantees are made or implied regarding its use or any infringements of intellectual property rights  
or other rights of third parties.  
This catalog provides information as of February, 2003. Specifications and information herein are subject  
to change without notice.  
PS No. 6087-12/12  

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