AD629ANZ Allicdata Electronics
Allicdata Part #:

AD629ANZ-ND

Manufacturer Part#:

AD629ANZ

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Analog Devices Inc.
Short Description: IC OPAMP DIFF 500KHZ 8DIP
More Detail: Differential Amplifier 1 Circuit 8-PDIP
DataSheet: AD629ANZ datasheetAD629ANZ Datasheet/PDF
Quantity: 166
Stock 166Can Ship Immediately
Specifications
Voltage - Input Offset: 200µV
Base Part Number: AD629
Supplier Device Package: 8-PDIP
Package / Case: 8-DIP (0.300", 7.62mm)
Mounting Type: Through Hole
Operating Temperature: -40°C ~ 85°C
Voltage - Supply, Single/Dual (±): 5 V ~ 36 V, ±2.5 V ~ 18 V
Current - Output / Channel: 25mA
Current - Supply: 900µA
Series: --
-3db Bandwidth: 500kHz
Slew Rate: 2.1 V/µs
Output Type: --
Number of Circuits: 1
Amplifier Type: Differential
Part Status: Active
Packaging: Tube 
Description

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The AD629ANZ is a family of integrated, pre-calibrated instrumentation amplifiers manufactured by the Analog Devices Corporation. These amps are designed for use in a variety of applications including vibration control, strain gauge, bridge transducer, load cell, and temperature transducer measurements.

The AD629ANZ operates in a linear-amplifier fashion, using a differential input/output structure. This allows it to accurately process signals without distortion and produce higher signal-to-noise ratios than traditional op amps. The AD629ANZ also features high-power, flexible output buffer stages that can deliver up to ±24V output and up to ±1.5A output current.

The AD629ANZ has a variety of features that make it well-suited for instrumentation applications. First and foremost, the amplifier has low-noise inputs, which enable users to accurately measure low-level signals without interference. The amplifier also has high common-mode rejection, which allows users to filter out unwanted background noise from the signal. Additionally, the AD629ANZ has high input impedance and low input bias current, making it capable of measuring even the smallest signals. Finally, the amplifier has high-fidelity output, allowing for accurate conversion of the signal from the input to the output.

The AD629ANZ is designed to function in a buffer amplifier configuration. With this setup, the amplifier acts as an intermediary between the input and output stages of a system. This allows the device to amplify the signal without changing its overall shape or fidelity. As a result, the output of the buffered amplifier is more accurate and reliable than that of a standard op-amp.

The AD629ANZ application field is useful in a wide range of instrumentation, precision, measurement, and control systems. It is especially well-suited for medical applications, such as ECG and EEG monitoring, where accurate measurement of low-level signals is essential. Additionally, the amplifier is commonly used in cellular phone transmitters, RF detectors, and pressure sensors.

The working principle of an AD629ANZ is to detect and amplify a weak input signal. The amplifier does this by using a differential input/output structure. The differential inputs allow for the amplifier to accurately measure a wide range of signals without distortion, enabling users to accurately read small signals. The differential outputs, meanwhile, allow users to accurately measure the gain and phase of the input signal. The amplified signal then passes through the buffer amplifier, which further amplifies the signal without changing its overall shape.

In summary, the AD629ANZ is an ideal choice for a variety of instrumentation and precision measurement applications. The amplifier’s linear-amplifier design, low-noise inputs, high common-mode rejection, and high fidelity output allow for accurate measurement of low-level signals, even in noisy environments. Additionally, the buffer amplifier configuration provides further amplification of the signal without changing its shape. With these features, the AD629ANZ can be used for a wide range of instrumentation and precision measurement applications.

The specific data is subject to PDF, and the above content is for reference

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