TD62501PG [TOSHIBA]

7ch Single Driver; 7CH单驱动器
TD62501PG
型号: TD62501PG
厂家: TOSHIBA    TOSHIBA
描述:

7ch Single Driver
7CH单驱动器

晶体 驱动器 小信号双极晶体管 开关 光电二极管
文件: 总12页 (文件大小:249K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
TD62501~507PG/FG  
TOSHIBA Bipolar Digital Integrated Circuit Silicon Monolithic  
TD62501PG,TD62501FG,TD62502PG,TD62502FG,TD62503PG,TD62503FG,TD62504PG  
TD62504FG,TD62505PG,TD62505FG,TD62506PG,TD62506FG,TD62507PG,TD62507FG  
7ch Single Driver  
TD62501PG/FG, TD62502PG/FG, TD62503PG/FG, TD62504PG/FG  
TD62501PG, TD62502PG, TD62503PG,  
Common emitter  
TD62504PG, TD62505PG, TD62506PG,  
TD62505PG/FG, TD62506PG/FG  
TD62507PG/FG  
Common collector  
Isolated  
TD62507PG  
The TD62501PG/FG Series are comprised of seven or five NPN  
transistor arrays.  
For proper operation, the substrate (SUB) must be connected to  
the most negative voltage.  
Applications include relay, hammer, lamp and display (LED)  
drivers.  
The suffix (G) appended to the part number represents a Lead  
(Pb)-Free product.  
TD62501FG, TD62502FG, TD62503FG,  
TD62504FG, TD62505FG, TD62506FG,  
TD62507FG  
Features  
Output current (single output) 200 mA (max)  
High sustaining voltage output 35 V (min)  
Inputs compatible with various types of logic.  
TD62501PG/FG, TD62505PG/FG and TD62507PG/FG  
: Using external resistor··· General Purpose  
TD62502PG/FG  
Weight  
: R = 10.5 kΩ + 7 V Zener Diode··· 14 to 25 V P-MOS  
IN  
DIP16-P-300-2.54A: 1.11g (typ.)  
SOP16-P-225-1.27: 0.16g (typ.)  
TD62503PG/GF, TD62506PG/FG  
: R = 2.7 k··· TTL, 5 V C-MOS  
IN  
TD62504PG/FG: R = 10.5 k··· 6 to 15 V P-MOS, C-MOS  
IN  
Package Type-PG: DIP-16 pin  
Package Type-FG: SOP-16 pin  
1
2006-06-14  
TD62501~507PG/FG  
Pin Assignment (top view)  
TD62501PG/FG, TD62502PG/FG  
TD62503PG/FG, TD62504PG/FG  
TD62505PG/FG, TD62506PG/FG  
O1 O2 O3 O4 O5 O6 O7 NC  
O1 O2 O3 O4 O5 O6 O7COM-C  
16 15 14 13 12 11 10  
9
16 15 14 13 12 11 10  
9
1
2
3
4
5
6
7
8
1
2
3
4
5
6
7
8
I1  
I2  
I3  
I4  
I5  
I6  
I7 COM-E  
I1  
I2  
I3  
I4  
I5  
I6  
I7 SUB  
TD62507PG/FG  
*: NC pin assignment  
E5 B5 C4 E4 B4 B3 E3 C3  
The NC pin is not assigned to an internal chip of  
these products; hence, no need to assign  
necessarily. If it is needed, Toshiba recommends  
that you connect the NC pin to the common emitter  
(GND).  
16 15 14 13 12 11 10  
9
1
2
3
4
5
6
7
8
C5 C1 E1 B1 SUB C2 E2 B2  
Schematics (each driver)  
TD62501PG/FG  
Output  
Input  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
Common  
emitter  
TD62502PG/FG  
Output  
7 V  
10.5 kΩ  
Input  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
Common  
emitter  
TD62503PG/FG  
TD62504PG/FG  
Output  
R
1
Input  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
Common  
emitter  
TD62503PG/FG  
TD62504PG/FG  
R
1
R
1
= 2.7 k,  
= 10.5 kΩ  
: Parasitic diodes  
Note: The input and output parasitic diodes cannot be used as clamp diodes.  
2
2006-06-14  
TD62501~507PG/FG  
Schematics (Each driver)  
TD62505PG/FG  
Common  
collector  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
SUB  
Output  
TD62506PG/FG  
Common  
collector  
2.7 kΩ  
Input  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
SUB  
Output  
TD62507PG/FG  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
(*)  
GND (SUB)  
: Parasitic diodes  
Note: The input and output parasitic diodes cannot be used as clamp diodes.  
Absolute Maximum Ratings  
=
(Ta 25°C)  
Characteristics  
Symbol  
Rating  
Unit  
Collector-emitter voltage  
Collector-base voltage  
Collector current  
V
V
35  
50  
V
V
CEO  
CBO  
I
200  
mA/ch  
C
V
V
I
(Note 1)  
(Note 2)  
(Note 3)  
0.5 to 45  
0.5 to 30  
25  
IN  
Input voltage  
V
IN  
IN  
Input current  
mA  
V
Isolation voltage  
V
35  
SUB  
PG  
1.0  
Power dissipation  
FG  
P
W
D
0.625 (Note 4)  
40 to 85  
55 to 150  
Operating temperature  
Storage temperature  
T
opr  
°C  
°C  
T
stg  
Note 1: TD62506PG/FG  
Note 2: TD62502PG/FG, TD62503PG/FG, TD62504PG/FG  
Note 3: TD62501PG/FG, TD62505PG/FG, TD62507PG/FG  
Note 4: On Glass Epoxy PCB (30 × 30 × 1.6 mm Cu 50%)  
3
2006-06-14  
TD62501~507PG/FG  
Recommended Operating Conditions (Ta = −40 to 85°C)  
Characteristics  
Symbol  
Condition  
Min  
Typ.  
Max  
Unit  
Collector-emitter voltage  
Collector-base voltage  
Collector current  
V
V
0
0
35  
50  
V
V
CEO  
CBO  
I
0
150  
35  
mA/ch  
V
C
Input voltage  
TD62506PG/FG  
V
0
IN  
TD62502PG/FG  
TD62503PG/FG  
TD62504PG/FG  
TD62502PG/FG  
TD62503PG/FG  
TD62504PG/FG  
TD62501PG/FG  
TD62505PG/FG  
TD62507PG/FG  
PG  
14.0  
2.4  
7.0  
0
25  
Input voltage  
(Output on)  
V
I
I
= 1 mA, I = 10 mA  
V
V
25  
IN (ON)  
IN  
C
25  
7.0  
0.4  
0.8  
Input voltage  
(Output off)  
V
10 µA  
0
IN (OFF)  
C
0
Input current  
I
0
10  
mA  
W
IN  
0.360  
0.325  
Power dissipation  
P
D
FG  
(Note 1)  
Note 1: 30 × 30 × 1.6 mm Cu 50%  
Electrical Characteristics  
=
(Ta 25°C)  
Test  
Circuit  
Characteristics  
Symbol  
Test Condition  
= 25 V, V = 0 V  
Min  
Typ.  
Max  
Unit  
Output leakage current  
I
1
V
10  
µA  
CEX  
CE  
IN  
I
I
= 1 mA, I = 10 mA  
0.2  
IN  
IN  
C
Collector-emitter saturation voltage  
V
2
2
V
CE (sat)  
= 3 mA, I = 150 mA  
C
0.8  
(Note 1)  
(Note 2)  
DC Current transfer ratio  
(Note 3)  
70  
50  
h
FE  
V
V
= 10 V, I = 10 mA  
CE  
C
Turn-on delay  
t
4
4
50  
ns  
ns  
ON  
= 35 V, R = 3.3 kΩ  
OUT  
L
C
= 15 pF  
L
Turnoff delay  
t
200  
OFF  
Note 1: Except TD62502PG/FG Only  
Note 2: Only TD62501PG/FG, TD62505PG/FG, TD62506PG/FG, TD62507PG/FG  
Note 3: Only TD62502PG/FG, TD62503PG/FG, TD62504PG/FG  
4
2006-06-14  
TD62501~507PG/FG  
Test Circuit  
1. I  
2. h , V  
3. V  
IN (ON)  
CEX  
FE  
CE (sat)  
I
IN  
I
I
IN  
I
C
C
V
CE  
Open  
V
, V  
V
IN (ON)  
CE CE (sat)  
V
I
C
IN  
I
CEX  
h
FE  
=
I
IN  
4. t , t  
ON OFF  
Input  
V
OUT  
= 35 V  
t
t
f
r
V
IH  
R
= 3.3 kΩ  
90%  
50%  
90%  
50%  
L
R
1
C
B
Pulse  
Input  
Output  
= 15 pF  
(Note 3)  
generator  
10%  
10%  
E
(Note 2)  
C
0
L
50 µs  
(Note 1)  
t
t
OFF  
ON  
V
OH  
Output  
50%  
50%  
V
OL  
Note 1: Pulse width 50 µs, Duty cycle 10%  
Output impedance 50 , tr 5 ns, tf 10 ns  
Note 2: See below  
Input Condition  
Type Number  
R
1
V
IH  
TD62501PG/FG  
TD62502PG/FG  
TD62503PG/FG  
TD62504PG/FG  
TD62505PG/FG  
TD62506PG/FG  
TD62507PG/FG  
2.7 kΩ  
0 Ω  
3 V  
15 V  
3 V  
0 Ω  
0 Ω  
10 V  
3 V  
2.7 kΩ  
0 Ω  
3 V  
2.7 kΩ  
3 V  
Note 3: C includes probe and jig capacitance  
L
Precautions for Using  
This IC does not integrate protection circuits such as overcurrent and overvoltage protectors.  
Thus, if excess current or voltage is applied to the IC, the IC may be damaged. Please design the IC so that  
excess current or voltage will not be applied to the IC.  
Utmost care is necessary in the design of the output line, V  
CC  
and GND line since IC may be destroyed due to  
short-circuit between outputs, air contamination fault, or fault by improper grounding.  
5
2006-06-14  
TD62501~507PG/FG  
I
– I  
I
– V  
CE  
C
B
C
120  
100  
80  
60  
40  
20  
0
120  
100  
80  
60  
40  
20  
0
0.7  
TD62501PG/FG  
TD62505PG/FG  
TD62507PG/FG  
Emitter grounded  
Ta = 25°C  
TD62501PG/FG  
TD62505PG/FG  
TD62507PG/FG  
Emitter grounded  
Ta = 25°C  
0.6  
0.5  
V
= 3 V  
0.4  
CE  
0.3  
0.2  
I
B
= 0.1 mA  
0
0.2  
0.4  
0.6  
(mA)  
0.8  
0.8  
100  
0
10  
20  
30  
Base current  
I
Collector-emitter voltage  
V
(V)  
B
CE  
V
BE  
– I  
P – Ta  
D
B
1.0  
0.8  
0.6  
0.4  
0.2  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0
(1) Type-PG FREE AIR  
(2) Type-FG ON PCB  
30 × 30 × 1.6 mm Cu 50%  
On glass Epoxy PCB  
(1)  
(3) Type-FG FREE AIR  
V
CE  
= 3 V  
(2)  
(3)  
TD62501PG/FG  
TD62505PG/FG  
TD62507PG/FG  
Emitter grounded  
Ta = 25°C  
0
0.2  
0.4  
0.6  
0
25  
50  
75  
100  
125  
150  
Base current  
I
(mA)  
Ambient temperature Ta (°C)  
B
V
– I  
h
– I  
CE (sat)  
C
FE C  
1
10000  
TD62501PG/FG  
TD62505PG/FG  
TD62507PG/FG  
Ta = 25°C  
TD62501PG/FG  
TD62505PG/FG  
TD62507PG/FG  
Ta = 25°C  
0.3  
0.1  
3000  
1000  
I
C
/I = 25  
B
I
C
/I = 10  
B
V
CE (sat)  
0.03  
0.01  
300  
100  
h
(V  
FE CE  
= 10 V)  
0.003  
0.001  
30  
10  
0.1  
0.3  
1
3
10  
30  
0.1  
0.3  
1
3
10  
30  
100  
Collector current  
I
C
(mA)  
Collector current  
I
(mA)  
C
6
2006-06-14  
TD62501~507PG/FG  
TD62501PG/FG  
I
– V  
TD62502PG/FG  
I
– V  
IN IN  
IN  
IN  
8
6
4
2
0
4
3
2
1
0
Ta = 25°C  
I
= 25 mA  
50  
OUT  
100  
Ta = 25°C  
I
= 25 to 100 mA  
OUT  
0
0.2  
0.4  
0.6  
0.8  
1.0  
0
10  
20  
30  
40  
50  
Input voltage  
V
(V)  
Input voltage  
V
(V)  
IN  
IN  
TD62503PG/FG  
I
– V  
TD62504PG/FG  
I
– V  
IN IN  
IN  
IN  
4
3
2
1
0
4
3
2
1
0
Ta = 25°C  
Ta = 25°C  
I
= 25 to 100 mA  
I
= 25 to 100 mA  
OUT  
OUT  
0
4
8
12  
16  
20  
0
10  
20  
30  
40  
50  
Input voltage  
V
(V)  
Input voltage  
V
(V)  
IN  
IN  
I
– V  
CE (sat)  
C
120  
100  
80  
60  
40  
20  
0
2 mA  
1 mA  
700 µA  
I
IN  
= 500 µA  
Ta = 25°C  
1.2  
0
0.2  
0.4  
0.6  
0.8  
1.0  
1.4  
Output saturation voltage  
V
CE (sat)  
7
2006-06-14  
TD62501~507PG/FG  
Package Dimensions  
Weight: 1.11 g (typ.)  
8
2006-06-14  
TD62501~507PG/FG  
Package Dimensions  
Weight: 0.16 g (typ.)  
9
2006-06-14  
TD62501~507PG/FG  
Notes on Contents  
1. Equivalent Circuits  
The equivalent circuit diagrams may be simplified or some parts of them may be omitted for explanatory  
purposes.  
2. Test Circuits  
Components in the test circuits are used only to obtain and confirm the device characteristics. These  
components and circuits are not guaranteed to prevent malfunction or failure from occurring in the  
application equipment.  
IC Usage Considerations  
Notes on Handling of ICs  
(1) The absolute maximum ratings of a semiconductor device are a set of ratings that must not be  
exceeded, even for a moment. Do not exceed any of these ratings.  
Exceeding the rating(s) may cause the device breakdown, damage or deterioration, and may result  
injury by explosion or combustion.  
(2) Use an appropriate power supply fuse to ensure that a large current does not continuously flow in  
case of over current and/or IC failure. The IC will fully break down when used under conditions that  
exceed its absolute maximum ratings, when the wiring is routed improperly or when an abnormal  
pulse noise occurs from the wiring or load, causing a large current to continuously flow and the  
breakdown can lead smoke or ignition. To minimize the effects of the flow of a large current in case of  
breakdown, appropriate settings, such as fuse capacity, fusing time and insertion circuit location, are  
required.  
(3) If your design includes an inductive load such as a motor coil, incorporate a protection circuit into the  
design to prevent device malfunction or breakdown caused by the current resulting from the inrush  
current at power ON or the negative current resulting from the back electromotive force at power OFF.  
IC breakdown may cause injury, smoke or ignition.  
Use a stable power supply with ICs with built-in protection functions. If the power supply is unstable,  
the protection function may not operate, causing IC breakdown. IC breakdown may cause injury,  
smoke or ignition.  
(4) Do not insert devices in the wrong orientation or incorrectly.  
Make sure that the positive and negative terminals of power supplies are connected properly.  
Otherwise, the current or power consumption may exceed the absolute maximum rating, and  
exceeding the rating(s) may cause the device breakdown, damage or deterioration, and may result  
injury by explosion or combustion.  
In addition, do not use any device that is applied the current with inserting in the wrong orientation  
or incorrectly even just one time.  
(5) Carefully select external components (such as inputs and negative feedback capacitors) and load  
components (such as speakers), for example, power amp and regulator.  
If there is a large amount of leakage current such as input or negative feedback condenser, the IC  
output DC voltage will increase. If this output voltage is connected to a speaker with low input  
withstand voltage, overcurrent or IC failure can cause smoke or ignition. (The over current can cause  
smoke or ignition from the IC itself.) In particular, please pay attention when using a Bridge Tied  
Load (BTL) connection type IC that inputs output DC voltage to a speaker directly.  
10  
2006-06-14  
TD62501~507PG/FG  
Points to Remember on Handling of ICs  
(1) Heat Radiation Design  
In using an IC with large current flow such as power amp, regulator or driver, please design the  
device so that heat is appropriately radiated, not to exceed the specified junction temperature (Tj) at  
any time and condition. These ICs generate heat even during normal use. An inadequate IC heat  
radiation design can lead to decrease in IC life, deterioration of IC characteristics or IC breakdown. In  
addition, please design the device taking into considerate the effect of IC heat radiation with  
peripheral components.  
(2) Back-EMF  
When a motor rotates in the reverse direction, stops or slows down abruptly, a current flow back to  
the motor’s power supply due to the effect of back-EMF. If the current sink capability of the power  
supply is small, the device’s motor power supply and output pins might be exposed to conditions  
beyond absolute maximum ratings. To avoid this problem, take the effect of back-EMF into  
consideration in system design.  
11  
2006-06-14  
TD62501~507PG/FG  
About solderability, following conditions were confirmed  
Solderability  
(1) Use of Sn-37Pb solder Bath  
· solder bath temperature = 230°C  
· dipping time = 5 seconds  
· the number of times = once  
· use of R-type flux  
(2) Use of Sn-3.0Ag-0.5Cu solder Bath  
· solder bath temperature = 245°C  
· dipping time = 5 seconds  
· the number of times = once  
· use of R-type flux  
RESTRICTIONS ON PRODUCT USE  
060116EBA  
The information contained herein is subject to change without notice. 021023_D  
TOSHIBA is continually working to improve the quality and reliability of its products. Nevertheless, semiconductor  
devices in general can malfunction or fail due to their inherent electrical sensitivity and vulnerability to physical  
stress. It is the responsibility of the buyer, when utilizing TOSHIBA products, to comply with the standards of  
safety in making a safe design for the entire system, and to avoid situations in which a malfunction or failure of  
such TOSHIBA products could cause loss of human life, bodily injury or damage to property.  
In developing your designs, please ensure that TOSHIBA products are used within specified operating ranges as  
set forth in the most recent TOSHIBA products specifications. Also, please keep in mind the precautions and  
conditions set forth in the “Handling Guide for Semiconductor Devices,” or “TOSHIBA Semiconductor Reliability  
Handbook” etc. 021023_A  
The TOSHIBA products listed in this document are intended for usage in general electronics applications  
(computer, personal equipment, office equipment, measuring equipment, industrial robotics, domestic appliances,  
etc.). These TOSHIBA products are neither intended nor warranted for usage in equipment that requires  
extraordinarily high quality and/or reliability or a malfunction or failure of which may cause loss of human life or  
bodily injury (“Unintended Usage”). Unintended Usage include atomic energy control instruments, airplane or  
spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments,  
medical instruments, all types of safety devices, etc. Unintended Usage of TOSHIBA products listed in this  
document shall be made at the customer’s own risk. 021023_B  
The products described in this document shall not be used or embedded to any downstream products of which  
manufacture, use and/or sale are prohibited under any applicable laws and regulations. 060106_Q  
The information contained herein is presented only as a guide for the applications of our products. No  
responsibility is assumed by TOSHIBA for any infringements of patents or other rights of the third parties which  
may result from its use. No license is granted by implication or otherwise under any patent or patent rights of  
TOSHIBA or others. 021023_C  
The products described in this document are subject to the foreign exchange and foreign trade laws. 021023_E  
12  
2006-06-14  

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