
Allicdata Part #: | MAX5541ESA+T-ND |
Manufacturer Part#: |
MAX5541ESA+T |
Price: | $ 4.77 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Maxim Integrated |
Short Description: | IC DAC 16BIT MONOTONIC SER 8SOIC |
More Detail: | 16 Bit Digital to Analog Converter 1 8-SOIC |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | $ 4.77000 |
10 +: | $ 4.62690 |
100 +: | $ 4.53150 |
1000 +: | $ 4.43610 |
10000 +: | $ 4.29300 |
Reference Type: | External |
Base Part Number: | MAX5541 |
Supplier Device Package: | 8-SOIC |
Package / Case: | 8-SOIC (0.154", 3.90mm Width) |
Operating Temperature: | -40°C ~ 85°C |
Architecture: | R-2R |
INL/DNL (LSB): | ±4, ±0.5 |
Voltage - Supply, Digital: | 5V |
Voltage - Supply, Analog: | 5V |
Series: | -- |
Data Interface: | SPI |
Differential Output: | No |
Output Type: | Voltage - Unbuffered |
Settling Time: | 1µs (Typ) |
Number of D/A Converters: | 1 |
Number of Bits: | 16 |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Data Acquisition, which is typically abbreviated as DAQ, is an important field in which one acquires electrical signals, process them, and store them in a digital form. Digital to Analog Converters, or DACs, are a subfield of Data Acquisition that are mainly used to convert digital signals into analog signals or analog variables. One example of a DAC is the MAX5541ESA+T device, which has many applications and works based on a variety of principles.
The MAX5541ESA+T DAC is an 8-bit, single-ended device that can provide an output voltage range between 0V and 2.56V. It utilizes a fully integrated, low-voltage, CMOS technology to minimize noise. The device can also handle operating voltages ranging from 1.65 V to 5.5V. The device is designed to have good linearity and low offset and can be used in audio applications and systems that require precision analog to digital conversion.
The MAX5541ESA+T DAC can be used in a variety of applications such as medical imaging systems, control systems, automotive systems, communication systems, industrial systems, and consumer electronics. In medical imaging systems, the DAC can be used to convert digital signals into an analog representation of an image, enabling a medical practitioner to view a digital image on a monitor. In control systems, the DAC can be used to generate a control signal based on a digital input, which can then be used to control the operation of a device. In automotive systems, the DAC can be used to convert digital signals from sensors into an analog representation that can be used to control the operation of the car’s engine, transmission, and other systems. In communication systems, the DAC can be used to convert digital signals from a transmitter or receiver into an analog representation that can be used in voice or data transmission. In industrial systems, the DAC can be used to convert digital signals from sensors into an analog representation that can be used for process control. Finally, in consumer electronics applications, the DAC can be used to convert digital signals from a music player or video game into an analog representation that can be used to drive an output device such as speakers or a monitor.
The MAX5541ESA+T DAC can operate based on two main principles. The first principle is the Direct Digital Synthesis (DDS) technique, in which the analog signal is generated from a digital control word. This requires the use of a reference clock signal, and then the generated analog signal must be filtered to remove any unwanted frequency components. The second technique is the Switched Current Source (SCS) technique, in which the output is generated by switching between two or more current sources. The current sources are generally tuned using a voltage-controlled oscillator, and the generated analog signal must then be filtered to remove any unwanted frequency components.
The MAX5541ESA+T is an example of a DAC that is used to convert digital signals into analog signals or analog variables. The device is designed to have good linearity and low offset and can be used in audio applications and systems that require precision analog to digital conversion. The device can be used in a variety of applications such as medical imaging systems, control systems, automotive systems, communication systems, industrial systems, and consumer electronics. Additionally, the device can operate based on two main principles: the Direct Digital Synthesis (DDS) technique and the Switched Current Source (SCS) technique.
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