![MAX472EPA Allicdata Electronics](https://files.allicdata.com/upload/common/default.jpg)
Allicdata Part #: | MAX472EPA-ND |
Manufacturer Part#: |
MAX472EPA |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Maxim Integrated |
Short Description: | IC OPAMP CURRENT SENSE 8DIP |
More Detail: | Current Sense Amplifier 1 Circuit 8-PDIP |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Voltage - Input Offset: | 140µV |
Base Part Number: | MAX472 |
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 (±): | 3 V ~ 36 V |
Current - Output / Channel: | 1.5mA |
Current - Supply: | 20µA |
Series: | -- |
Current - Input Bias: | 20µA |
Slew Rate: | -- |
Output Type: | -- |
Number of Circuits: | 1 |
Amplifier Type: | Current Sense |
Part Status: | Obsolete |
Packaging: | Tube |
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The MAX472EPA is an integrated circuit designed to be used in the field of linear amplifiers, instrumentation, and operational amplifiers (Op Amps), the latter of which, a subset, also referred to as buffer amps. As a linear amplifier, the MAX472EPA is designed to increase the power of a signal without distorting its waveform. At the same time as providing a greater power, the greater transfer of power is also done with great accuracy, which is an important aspect of amplifying digital signals. In terms of its application to instrumentation, this IC can monitor, store and process information generated by an instrument in order to control the instrument and provide feedback. Lastly, the MAX472EPA can also be utilized in the proper functioning of an Op Amp, or Buffer Amp, which is an IC that is used to buffer an incoming signal so that the signal can be accurately and amplified without distortion.
In order to understand the MAX472EPA, it is important to have an understanding of its primary components. The IC is composed of two main sections, the first being a high-voltage operational amplifier, along with four trans-impedance amplifiers that are coupled with each other using a serial resistive network. The operational amplifier has the tasks of providing high level of voltage gain and limiting the bass response. It can also be used to sample and hold signals, perform precision measurements, and provide wide dynamic range control. The trans-impedance amplifiers are used to boost the signal level by utilizing the current from the amplifier\'s output. The serial resistive network is used to limit the DC offset, or the offset between the input and output signals.
Another key component of the MAX472EPA is its digital-to-analog (DAC) conversion. The DAC helps to ensure that the analog input signals are accurately amplified and converted into digital signals. This is accomplished by the DAC converting the incoming analog signal into its digital equivalent, where it is then converted to its appropriate digital code. Through this process, the signal is then able to reach the analog input of the integrated circuit. In addition, the digital output of the IC can be used to feed the signal back into itself, which leads to a higher speed response from the operational amplifier.
When it comes to the working principle of the MAX472EPA, the transfer of power between the input and output comes from the operational amplifier. The integrated circuit takes a fraction of the input signal and amplifies it by a factor of the gain, which is the ratio between the input and output. This gain is determined by the voltage between the input and output, as well as the current flowing through the amplifier. The voltage and current are adjusted by the trans-impedance amplifiers and the serial resistive network. The gain is also adjusted through the DAC and the feedback loop, which allows the operational amplifier to optimize its gain to increase the power output. In essence, the higher the power is amplified, the greater the response and accuracy of the signal will be.
In summary, the MAX472EPA is an integrated circuit used in the field of linear amplifiers, instrumentation, and operational amplifiers (Op Amps). As an amplifier, the IC is designed to take an incoming signal and amplify it by a factor of the gain, with the gain being determined by the voltage between the input and output and the current flowing through the amplifier. The circuit’s digital-to-analog (DAC) conversion takes the incoming analog signal and converts it into its digital equivalent, which can then be amplified by the operational amplifier. Lastly, a feedback loop is utilized in order to optimize the gain of the amplifier, which allows the signal to reach an even higher response and accuracy level before being outputted as an amplified signal.
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