ULQ2003L Allegro MicroSystems Darlington Array Data Sheet
Download PDF datasheet for Allegro MicroSystems ULQ2003L High-Voltage High-Current Darlington Array (EN) 10 pages 29304F 2000 zip
Description
This PDF datasheet is for the Allegro ULQ2003L Darlington Array.
Allegro MicroSystems ULQ2003L High-Voltage High-Current Darlington Array
Ideally suited for interfacing between low-level logic circuitry and multiple peripheral power loads, the Series ULQ20xxL high-voltage, high-current Darlington arrays feature continuous load current ratings to 500 mA for each of the seven drivers. At an appropriate duty cycle depending on ambient temperature and number of drivers turned ON simultaneously, typical power loads totaling over 230 W (350 mA x 7, 95 V) can be controlled. Typical loads include relays, solenoids, stepping motors, magnetic print hammers, multiplexed LED and incandescent displays, and heaters. All devices feature open-collector outputs with integral clamp diodes.
The ULQ2003L has series input resistors selected for operation directly with 5 V TTL or CMOS. These devices will handle numerous interface needs – particularly those beyond the capabilities of standard logic buffers.
The ULQ2003L is the standard Darlington arrays. The outputs are capable of sinking 500 mA and will withstand at least 50 V in the OFF state. Outputs may be paralleled for higher load current capability.
These Darlington arrays are furnished in 16-lead surface-mountable SOICs (suffix “L”). All devices are pinned with outputs opposite inputs to facilitate ease of circuit board layout. All devices are rated for operation over the temperature range of -40 deg C to +85 deg C.
(PDF) DATASHEET (ENGLISH)
CONTENTS
INTERNAL DIAGRAM
PINOUT
ABSOLUTE MAXIMUM RATINGS
– Output Voltage
– Input Voltage
– Continuous Output Current
– Continuous Input Current
– Power Dissipation
– Operating Temperature Range
– Storage Temperature Range
FEATURES
DEVICE PART NUMBER DESIGNATION
PARTIAL SCHEMATICS
ELECTRICAL CHARACTERISTICS
TEST FIGURES
ALLOWABLE COLLECTOR CURRENT AS A FUNCTION OF DUTY CYCLE
INPUT CURRENT AS A FUNCTION OF INPUT VOLTAGE
SATURATION VOLTAGE AS A FUNCTION OF COLLECTOR CURRENT
COLLECTOR CURRENT AS A FUNCTION OF INPUT CURRENT
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