ADS8558IPM vs ADS8318IBDRCT

Part Number
ADS8558IPM
ADS8318IBDRCT
Category Data Acquisition - Analog to Digital Converters (ADC) Data Acquisition - Analog to Digital Converters (ADC)
Manufacturer Texas Instruments Texas Instruments
Description IC ADC 12BIT SAR 64LQFP IC ADC 16BIT SAR 10VSON
Package Tube Cut Tape (CT)
Series - microPOWER™
Features Simultaneous Sampling -
Operating Temperature -40°C ~ 125°C -40°C ~ 85°C
Mounting Type Surface Mount Surface Mount
Package / Case 64-LQFP 10-VFDFN Exposed Pad
Supplier Device Package 64-LQFP (10x10) 10-VSON (3x3)
Reference Type External, Internal External
Sampling Rate (Per Second) 730k 500k
Data Interface SPI, Parallel SPI
Number of Bits 12 16
Voltage - Supply, Analog 5V 5V
Voltage - Supply, Digital 2.7V ~ 3.6V, 5V 2.375V ~ 5.5V
Number of Inputs 6 1
Input Type Single Ended Differential
Configuration S/H-ADC S/H-ADC
Ratio - S/H:ADC 1:1 1:1
Number of A/D Converters 1 1
Architecture SAR SAR
  • 1. How does ADC convert analog to digital?

    The technology that converts analog sound signals into digital signals is called analog-to-digital conversion technology (Analog to Digital Converter, referred to as ADC). The function of ADC is to convert continuously changing analog signals into discrete digital signals. The process of analog-to-digital conversion can be completed by steps such as sampling, holding, quantization, and encoding.

  • 2. What is analog data acquisition?

    Analog data acquisition refers to the process of converting continuously changing signals of physical quantities into digital signals so that computers can process and record these signals. This process involves the use of an analog quantity collector, which is a hardware device that can convert analog signals of physical quantities into digital signals and then transmit them to a computer for processing and recording.

  • 3. Why do we need analog-to-digital converters?

    The reasons why we need analog-to-digital converters mainly include the following:
    Digital system processing: Many computers and electronic devices are digital systems, which are more suitable for processing digital signals. Analog signals are difficult to process in digital systems, and after analog-to-digital conversion, the signals can be represented, stored and processed in digital form.
    Noise immunity: Digital signals are more noise-resistant than analog signals. Digital signals can be protected and restored by means such as error correction codes, while analog signals are easily interfered by noise.
    Accuracy: Digital signals are more accurate because they can be represented with higher resolution. Analog signals have accuracy limitations, and analog-to-digital conversion can improve the resolution of the signal.
    Application scenarios: Analog-to-digital converters are widely used in many fields, including automatic control systems, audio and video processing, sensor interfaces

  • 4. What is the difference between ADC and DAC?

    The main difference between ADC and DAC is that they process different types of signals and conversion directions.
    The main function of an ADC (analog-to-digital converter) is to convert analog signals into digital signals. This process involves sampling, quantization, and encoding, where sampling is the periodic measurement of the value of an analog signal at a certain sampling rate, quantization is the conversion of the sampled continuous values ​​into a finite number of discrete levels, and encoding is the conversion of the quantized discrete levels into binary code. The output of the ADC is a digital signal that can be processed and stored by a computer or other digital circuit for various applications such as digital signal processing, data logging, and communications. Common applications in life include microphones, digital thermometers, digital cameras, etc., which convert the actual perceived analog information into digital signals for further processing and analysis12.
    DAC (

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