MAX520BCWE Allicdata Electronics
Allicdata Part #:

MAX520BCWE-ND

Manufacturer Part#:

MAX520BCWE

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Maxim Integrated
Short Description: IC DAC QUAD 2WIRE 8BIT R-R16SOIC
More Detail: 8 Bit Digital to Analog Converter 4 16-SOIC
DataSheet: MAX520BCWE datasheetMAX520BCWE Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Reference Type: External
Base Part Number: MAX520
Supplier Device Package: 16-SOIC
Package / Case: 16-SOIC (0.295", 7.50mm Width)
Operating Temperature: 0°C ~ 70°C
Architecture: R-2R
INL/DNL (LSB): ±1 (Max), ±1 (Max)
Voltage - Supply, Digital: 5V
Voltage - Supply, Analog: 5V
Series: --
Data Interface: I²C
Differential Output: No
Output Type: Voltage - Unbuffered
Settling Time: 2µs (Typ)
Number of D/A Converters: 4
Number of Bits: 8
Part Status: Active
Packaging: Tube 
Description

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Data Acquisition - Digital to Analog Converters (DAC) are a key component in many digital devices, and the MAX520BCWE is a versatile and reliable example of this type of device. As one of the most popular ICs on the market, the MAX520BCWE offers a wide range of functions and advantages that make it ideal for many applications.

The MAX520BCWE is a monolithic 8-bit voltage-output digital-to-analog converter (DAC) with an integrated voltage reference. It features a low cost, 8-pin DIP package with a single power supply operation from 4.75 V to 5.25 V. This device can operate using a 3-wire serial interface, an internal latch, and a software shutdown feature for low power consumption. The device also includes a double-buffered input register which allows data to be written to the input register without affecting the DAC output.

The MAX520BCWE provides excellent output performance and accuracy with a maximum differential nonlinearity of ±1LSB and temperature coefficient of 50ppm/°C. It can achieve 2.5V of unipolar voltage output with an output settling time of 1µs. The device also features an internal voltage reference voltage accuracy of ±2.5mV for a wide temperature range of –40°C to 125°C.

The MAX520BCWE can be used in a wide range of applications including industrial control, motor control, consumer electronics, and automotive electronics. It is particularly well-suited to applications such as pulse width modulation (PWM) or voltage-controlled voltage source (VCVS) conversions. It can be used as a voltage-output DAC in any analog application where a low-cost, low-power converter is needed. It is also ideal for use in signal conditioning and signal manipulation.

The MAX520BCWE is a versatile device and its working principle is based on the concept of a resistive voltage divider. The device is a monolithic integrated circuit comprised of a combination of bipolar transistors and resistors. The device converts a digital code into a voltage signal by controlling the amount of current that flows through a series of resistors. The digital code is used to determine the total resistance in the divider, which determines the output voltage.

The MAX520BCWE works by having each bit of the digital code input into the input latch control which helps latch the digital code into the DAC’s register. The digital code is then decoded to two digital signals which control the DAC output voltage. The DAC output voltage is the combination of the voltage values across the resistors in the resistor ladder network.

The working of the MAX520BCWE is quite simple once the input steps of decoding the digital code and latching it in the register have been completed. The output of the DAC is connected to a voltage reference, usually a 5V, and the voltage is determined by the resistor ladder network. The voltage scale depends on the set of resistors; each resistance value can represent a fixed voltage. The resistors are connected in series, dispersed with several resistors between the larger ones, to increase the resolution of the DAC.

The MAX520BCWE is a great device that offers a wide range of features and advantages for its users. It can be used for many different applications and offers excellent output performance and accuracy. It is a low-cost and low-power device with a single power supply operation, and its simple design enables it to be used in a variety of applications.

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

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