ACS704 Allegro Micro Systems, Inc., ACS704 Datasheet

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ACS704

Manufacturer Part Number
ACS704
Description
Manufacturer
Allegro Micro Systems, Inc.
Datasheet

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ACS704ELC005-DS, Rev. 7
Supply Voltage, V
Reverse Supply Voltage, V
Output Voltage, V
Reverse Output Voltage, V
Output Current Source, I
Output Current Sink, I
Operating Temperature,
Storage Temperature, T
Nominal Operating Temperature, T
Overcurrent Transient Tolerance*, I
*
1 pulse every 100 seconds.
100 total pulses, 250 ms duration each, applied at a rate of
Pin 1: IP+
AB SO LUTE MAX I MUM RAT INGS
Pin 2: IP+
Pins 6 and 7 are internally connected in shipping
product. For compatibility with future devices,
leave pin 6 floating.
Maximum Junction, T
Pin 3: IP–
Range E............................................ –40 to 85ºC
Pin 4: IP–
with Voltage Isolation and a Low-Resistance Current Conductor
OUT
CC
Package LC
.......................................... 16 V
Fully Integrated, Hall Effect-Based Linear Current Sensor
........................................ 16 V
OUT(Sink)
S
OUT(Source)
...................... –65 to 170°C
TÜV America
Certificate Number:
U8V 04 12 54214 005
J(max)
ROUT
RCC
........................ –16 V
.......................10 mA
....................... 165°C
...................... –0.1 V
A
................. 3 mA
P
Pin 8: VCC
................ 60 A
Pin 7: VOUT
Pin 6: N.C.
Pin 5: GND
ACS704ELC-005
The Allegro ACS704 family of current sensors provides economical and
precise solutions for current sensing in industrial, automotive, commercial, and
communications systems. The device package allows for easy implementation
by the customer. Typical applications include motor control, load detection and
management, switched-mode power supplies, and overcurrent fault protection.
The device consists of a precision, low-offset linear Hall sensor circuit with
a copper conduction path located near the surface of the die. Applied current
flowing through this copper conduction path generates a magnetic field which is
sensed by the integrated Hall IC and converted into a proportional voltage. Device
accuracy is optimized through the close proximity of the magnetic signal to the
Hall transducer. A precise, proportional voltage is provided by the low-offset,
chopper-stabilized BiCMOS Hall IC, which is programmed for accuracy at the
factory.
The output of the device has a positive slope (>V
flows through the primary copper conduction path (from pins 1 and 2, to pins 3
and 4), which is the path used for current sensing. The internal resistance of this
conductive path is typically 1.5 mΩ, providing low power loss. The thickness
of the copper conductor allows survival of the device at up to 5× overcurrent
conditions. The terminals of the conductive path are electrically isolated from the
sensor leads (pins 5 through 8). This allows the ACS704 family of sensors to be
used in applications requiring electrical isolation without the use of opto-isolators
or other costly isolation techniques.
The ACS704 is provided in a small, surface mount SOIC8 package. The leadframe
is plated with 100% matte tin, which is compatible with standard lead (Pb) free
printed circuit board assembly processes. Internally, the flip-chip uses high-
temperature Pb-based solder balls, currently exempt from RoHS. The device is
fully calibrated prior to shipment from the factory.
Features and Benefits
• Small footprint, low-profile SOIC8 package
• 1.5 mΩ internal conductor resistance
• Excellent replacement for sense resistors
• 800 V
• 4.5 to 5.5 V, single supply operation
• 50 kHz bandwidth
• 133 mV/A output sensitivity and 15 A dynamic range
• Output voltage proportional to ac and dc currents
• Factory-trimmed for accuracy
• Extremely stable output offset voltage
• Near-zero magnetic hysteresis
• Ratiometric output from supply voltage
Use the following complete part number when ordering:
RMS
minimum isolation voltage between pins 1-4 and 5-8
ACS704ELC-005
Part Number
115 Northeast Cutoff, Box 15036
Worcester, Massachusetts 01615-0036 (508) 853-5000
www.allegromicro.com
SOIC8 surface mount
CC
Package
/ 2) when an increasing current

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