ICL7652CWE Allicdata Electronics
Allicdata Part #:

ICL7652CWE-ND

Manufacturer Part#:

ICL7652CWE

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Maxim Integrated
Short Description: IC OPAMP CHOPPER 450KHZ 16SOIC
More Detail: Zero-Drift Amplifier 1 Circuit 16-SOIC
DataSheet: ICL7652CWE datasheetICL7652CWE Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Current - Input Bias: 15pA
Base Part Number: ICL7652
Supplier Device Package: 16-SOIC
Package / Case: 16-SOIC (0.295", 7.50mm Width)
Mounting Type: Surface Mount
Operating Temperature: 0°C ~ 70°C
Voltage - Supply, Single/Dual (±): 5 V ~ 16 V, ±2.5 V ~ 8 V
Current - Supply: 2mA
Voltage - Input Offset: 700µV
Series: --
Gain Bandwidth Product: 450kHz
Slew Rate: 0.5 V/µs
Output Type: --
Number of Circuits: 1
Amplifier Type: Zero-Drift
Part Status: Discontinued at Digi-Key
Packaging: Tube 
Description

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ICL7652CWE Application Field and Working Principle

The ICL 7652 CWE (Compensation With Extra Pins) is a dual-channel, instrumentation amplifier designed for a wide range of applications including the amplification of voltage sources in test and measurement. The ICL 7652 CWE is designed to be used in systems that require high precision, low noise and low distortion with a flat frequency response.

The ICL 7652 CWE has three main features: one that is a reference-controlled compensation, one that includes an additional feedback control pin, and one that provides self-balancing power supply oscillators. The reference-controlled compensation feature allows the user to adjust the gain of the amplifier so that it is proportional to the reference level, while the additional feedback control pin allows the user to add more gain or additional filtering. The self-balancing power supply oscillators allow the user to reduce power supply noise and ripple. The ICL 7652 CWE also includes a temperature compensated operation, allowing it to provide stable results in a variety of temperature conditions.

The ICL 7652 CWE is designed to operate over a wide range of input voltages and can be used for linear and/or non-linear applications such as current-to-voltage conversion, voltage-to-current conversion, signal conditioning, and V/I recovery. The ICL 7652 CWE is also designed to be used in applications where an accurate and repeatable output is required.

Working Principle

The working principle of the ICL 7652 CWE is based on the instrumentation amplifier input stage architecture. The input stage consists of two differential inputs that are connected to the output stage through matched resistors and a differential amplifier. The output stage is composed of a differential amplifier and feedback control network, which provide higher gain, higher noise rejection, and a low output impedance. In addition, the output stage includes a secondary compensation network with adjustable gain and frequency response.

The gain of the ICL 7652 CWE is set by connecting its reference input pin to a fixed reference voltage. The gain is proportional to the applied reference voltage. The feedback network ensures that the output has a constant gain over frequency, and the additional feedback control pin can be used to adjust the gain further if needed. The ICL 7652 CWE also contains self-balancing power supply oscillators that reduce power supply noise and ripple.

Conclusion

The ICL 7652 CWE is a precision, dual-channel instrumentation amplifier designed for a wide range of applications. It provides high precision, low noise and low distortion with a flat frequency response. The ICL 7652 CWE has a temperature-compensated operation and offers reference-controlled compensation, additional feedback control pins, and self-balancing power supply oscillators that reduce power supply noise and ripple. The ICL 7652 CWE is a versatile amplifier ideal for linear and/or non-linear applications such as current-to-voltage conversion, voltage-to-current conversion, signal conditioning, and V/I recovery.

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

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