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ACS712 Current Sensor: Datasheet, Pinout, Circuit [Video]

  • Contents

The ACS712 is a fully integrated, hall effect-based linear current sensor with 2.1kVRMS voltage isolation and a integrated low-resistance current conductor. Technical terms aside, it’s simply put forth as a current sensor that uses its conductor to calculate and measure the amount of current applied.

 

In the blog today, we are going to discuss ACS712 current sensor from its pinout, features, alternative device to its application circuits, working principle, and CAD models and so on, the component datasheet is at the bottom of the page as always.

 

How to use Allegro ACS712 AC/DC Current Sensor with Arduino


Catalog

ACS712 General Description

ACS712 Pinout and Functions

ACS712 Features and Benefits

ACS712 Functional Block Diagram

ACS712 CAD Models

ACS712 Typical Application Circuits

How does ACS712 Work

ACS712 Package

ACS712 Alternatives

ACS712 Manufacturer

Component Datasheet


ACS712 General Description

 

The Allegro ACS712 provides economical and precise solutions for AC or DC current sensing in industrial, 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 precise, 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 after packaging.

 

The output of the device has a positive slope (>VIOUT(Q)) when an increasing current 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 1.2 mΩ typical, 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 IC leads (pins 5 through 8). This allows the ACS712 current sensor IC to be used in applications requiring electrical isolation without the use of opto-isolators or other costly isolation techniques.

 

The ACS712 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 device is Pb-free, except for flip-chip high-temperature Pb-based solder balls, currently exempt from RoHS. The device is fully calibrated prior to shipment from the factory.


ACS712 Pinout and Functions

ACS712 Pinout

 

ACS712 Functions


ACS712 Features and Benefits

  • Low-noise analog signal path

  • Device bandwidth is set via the new FILTER pin

  • 5 µs output rise time in response to step input current

  • 80 kHz bandwidth

  • Total output error 1.5% at TA= 25°C

  • Small footprint, low-profile SOIC8 package

  • 2 mΩ internal conductor resistance

  • 1 kVRMSminimum isolation voltage from pins 1-4 to pins 5-8

  • 0 V, single supply operation

  • 66 to 185 mV/A output sensitivity

  • Output voltage proportional to AC or DC currents

  • Factory-trimmed for accuracy

  • Extremely stable output offset voltage

  • Nearly zero magnetic hysteresis

  • Ratiometric output from supply voltage


ACS712 Functional Block Diagram

ACS712 Functional Block Diagram


ACS712 CAD Models

ACS712 part symbol

ACS712 footprint

ACS712 3d model


ACS712 Typical Application Circuits

  • Application Circuit 1

The ACS712 outputs an analog signal, VOUT. that varies linearly with the uni- or bi-directional AC or DC primary sampled current, IP, within the range specified. CF is recommended for noise management, with values that depend on the application.

ACS712 Typical Application Circuit

  • Application Circuit 2  Peak Detecting Circuit

Application Circuit 2  Peak Detecting Circuit

  • Application Circuit 3

This configuration increases gain to 610 mV/A(tested using the ACS712ELC-05A).

ACS712 Application Circuit

  • Application Circuit 4

Rectified Output. 3.3 V scaling and rectification application for A-to-D converters. Replaces current transformer solutions with simpler ACS circuit. C1 is a function of the load resistance and filtering desired. R1 can be omitted if the full range is desired.

ACS712 Application Circuit

  • Application Circuit 5

10 A Overcurrent Fault Latch. Fault threshold set by R1 and R2. This circuit latches an overcurrent fault and holds it until the 5 V rail is powered down.

ACS712 Application Circuit


How does ACS712 Work

Now that we’ve had an idea of what the ACS712 is capable of, we’ll take a look at its working principle. Well, when it comes to how a current sensor works, it can either be done through direct or indirect sensing. For the ACS712, it uses indirect sensing.

  • For current sensors that work by direct sensing, ohm’s law is being applied to measure the drop in voltage when flowing current is detected.

 

Here’s how the ACS712 work (Simplified):

  • Current flows through the onboard hall sensor circuit in its IC
  • The hall effect sensor detects the incoming current through its magnetic field generation
  • Once detected, the hall effect sensor generates a voltage proportional to its magnetic field that’s then used to measure the amount of current

ACS712 Package

ACS712 Package  ACS712 Package


ACS712 Alternatives

  • Grove – 10A DC Current Sensor (ACS725)

acs725ACS725

With some users of the ACS712 not recommending it as your current sensor option due to its low sensitivity and bad linearity, we’ve come forth to provide our alternative recommendation: the Grove – 10A DC Current Sensor that’s based on ACS725!

 

Based on the ACS725, this DC current sensor module is an economical and precise solution to your current sensing needs with capabilities of measuring up to 10A of DC current with a base sensitivity of 264mV/A!When drawing comparisons to the ACS712, the Grove – 10A DC Current Sensor (ACS725) has the following performance advantages:

 

    • Higher-bandwith; 120KHz compared to 80kHz of the ACS712
    • Higher sensitivity; 264mV/A compared to 66 – 185mV/A of the ACS712
    • Grove-interface; Easy plug-and-play pairing with your Arduino/Raspberry Pi Board instead of having to solder and use breadboards

 

  • Grove – ±5A DC/AC Current Sensor (ACS70331)

ACS70331 3D MOdelACS70331 (3D Model)

If you’re looking for a current sensor that supports both AC and DC yet retaining performance advantages over the ACS712, the above Grove – ±5A DC/AC Current Sensor (ACS70331) is your pick!

 

Based on Allegro’s high sensitivity current sensor IC; ACS70331EESATR-005B3, it’s suitable for <5A current sensing applications, alongside its base sensitivty of 200mV/A!

 

Its features include:

 

  • 1 MHz bandwidth with response time <550 ns
  • Low noise: 8 mA(rms) at 1 MHz
  • 1.1 mΩ primary conductor resistance results in low power loss
  • High DC PSRR enables use with low accuracy power supplies or batteries (3 to 4.5 V operation)

ACS712 Manufacturer

Allegro MicroSystems is redefining the future of power and sensing technologies. From green energy to advanced mobility and motion control systems, their team is passionate about developing intelligent solutions that move the world forward and give our customers a competitive edge. With global engineering, manufacturing and support, Allegro is a trusted partner to both large enterprises and regional market leaders worldwide.


Component Datasheet

ACS712 Datasheet

 

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