ADC10D1500CIUT/NOPB vs ADS5400IPZP

Part Number
ADC10D1500CIUT/NOPB
ADS5400IPZP
Category Data Acquisition - Analog to Digital Converters (ADC) Data Acquisition - Analog to Digital Converters (ADC)
Manufacturer Texas Instruments Texas Instruments
Description IC ADC 10BIT FOLD INTERP 292BGA IC ADC 12BIT PIPELINED 100HTQFP
Package Tray -Reel®
Series - -
Features Simultaneous Sampling Temperature Sensor
Operating Temperature -40°C ~ 70°C -40°C ~ 85°C
Mounting Type Surface Mount Surface Mount
Package / Case 292-BBGA 100-TQFP Exposed Pad
Supplier Device Package 292-BGA (27x27) 100-HTQFP (14x14)
Reference Type Internal External, Internal
Sampling Rate (Per Second) 1.5G 1G
Data Interface LVDS - Parallel LVDS - Parallel
Number of Bits 10 12
Voltage - Supply, Analog 1.8V ~ 2V 3.135V ~ 3.465V, 5V
Voltage - Supply, Digital 1.8V ~ 2V 3.135V ~ 3.465V
Number of Inputs 2 1
Input Type Differential Differential
Configuration MUX-S/H-ADC S/H-ADC
Ratio - S/H:ADC 1:1 1:1
Number of A/D Converters 2 1
Architecture Folding Interpolating Pipelined
  • 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 are DAC and ADC?

    ADC and DAC are two important concepts in digital electronics. ADC stands for "analog-to-digital converter", which can convert analog signals into digital signals. DAC stands for "digital-to-analog converter", which can convert digital signals into analog signals. Both converters play an important role in many electronic products, such as mobile phones, televisions, stereos, etc.

  • 3. How many types of ADC are there?

    The types of ADC (Analog-to-Digital Converter) mainly include:
    1. Integral ADC: Its working principle is to convert the input voltage into time (pulse width signal) or frequency (pulse frequency), and then obtain the digital value by the timer/counter. The advantage of the integral ADC is that it can obtain high resolution with a simple circuit and has strong anti-interference ability, but the disadvantage is that the conversion rate is extremely low because the conversion accuracy depends on the integration time.
    2. Successive approximation type (SAR ADC): The successive approximation ADC is one of the most common architectures. Its basic principle is to convert by gradually approximating the value of the analog input signal. The advantages of the successive approximation ADC are high speed and low power consumption. It is cheap at low resolution, but expensive at high precision.
    3. Parallel comparison type/serial-parallel comparison type ADC: The parallel comparison type AD uses m

  • 4. What is the difference between the input and output of an ADC?

    The input of ADC (Analog-to-Digital Converter) is analog quantity and the output is digital quantity.
    The main function of ADC is to convert continuous analog signal into discrete digital signal. In electronic systems, analog signal usually refers to continuously changing voltage or current, such as the signal obtained from microphone or sensor. The amplitude and frequency of these analog signals can change continuously, while digital signals are composed of a series of discrete values, usually expressed in binary form.
    Input: The input of ADC receives analog signals, which can be in the form of continuously changing physical quantities such as voltage and current. The amplitude and frequency of analog signals can change continuously, such as the voltage range from 0V to 5V.
    Output: The output of ADC is digital signal, which is composed of a series of discrete values, usually expressed in binary form. The advantage of digital signals is that they can be calculated and processed quic

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