
Allicdata Part #: | AD620BNZ-ND |
Manufacturer Part#: |
AD620BNZ |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Analog Devices Inc. |
Short Description: | IC OPAMP INSTR 1MHZ 8DIP |
More Detail: | Instrumentation Amplifier 1 Circuit 8-PDIP |
DataSheet: | ![]() |
Quantity: | 1275 |
Voltage - Input Offset: | 15µV |
Base Part Number: | AD620 |
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 (±): | 4.6 V ~ 36 V, ±2.3 V ~ 18 V |
Current - Output / Channel: | 18mA |
Current - Supply: | 900µA |
Series: | -- |
Current - Input Bias: | 500pA |
-3db Bandwidth: | 1MHz |
Slew Rate: | 1.2 V/µs |
Output Type: | -- |
Number of Circuits: | 1 |
Amplifier Type: | Instrumentation |
Part Status: | Active |
Packaging: | Tube |
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The AD620BNZ is an innovative component designed to work with low power levels and provide greater accuracy, stability and low noise in a variety of applications. This instrumentation amplifier offers a novel solution for measuring low power signals and for making linear adjustments on a wide range of circuitry.
What is an instrumentation amplifier?
Instrumentation amplifiers (IA) are specifically designed for measuring low-power signals in a variety of situations. They are ideal for laboratory, industrial and medical applications where accuracy, stability and low noise are critical. Instrumentation amplifiers are used for precision amplification and buffering of sensor signals, making linear adjustments on a wide range of circuitry, and providing a source of clean and stable power for comparison to an analog signal.
What is the AD620BNZ?
The AD620BNZ is a low-power instrumentation amplifier which provides a measure of flexibility and accuracy that is not found in other IA components. It is a precision difference amplifier that can be used to measure low-level signals such as strain, pressure and temperature. It is stable, accurate and offers three adjustable-gain ranges to suit a variety of different applications.
Features and Specifications of the AD620BNZ
The AD620BNZ has a variety of features that make it an ideal choice for a wide range of applications including industrial, medical and laboratory use. It features low power consumption, single supply operation and adjustable gain. It also includes adjustable gain, adjustable offset and a wide range of CMRRR (common mode rejection ratio) and PSRR (power supply rejection ratio) values.
Applications of the AD620BNZ
The AD620BNZ is well suited for use in instrumentation and industrial applications where precision, accuracy and stability are essential. It is ideal for use in medical and laboratory applications, including patient monitoring systems, electrocardiography, physiological control and other measuring applications. Its adjustable gain, low power consumption and advanced noise rejection ratio make it an ideal component for a variety of other applications such as pressure and temperature sensors and industrial process control.
Working Principle of the AD620BNZ
The AD620BNZ amplifier works on the principle of differential amplification of low-level signals. The differential inputs are amplified by a differential pair, and the amplified output is expressed in terms of the common-mode voltage. The gain of the amplifier is determined by an internal gain adjust terminal which can be used to set the gain of the amplifier from 0 to 10 V/V. The device also includes high common-mode rejection ratio and power-supply rejection ratio which help reject common-mode output noise and power supply jitter from the amplified output signal.
Conclusion
The AD620BNZ is a useful component in a range of instrumentation, medical and industrial applications where accuracy, stability and low noise is important. It is able to measure low power signals and adjust their linearity across a wide range of circuitry, making it suitable for applications where precision and accuracy are key. The low power consumption, adjustable gain and high common-mode rejection ratio make it a reliable and robust component suitable for a variety of measuring, monitoring and control applications.
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