Data Acquisition - Analog to Digital Converters (ADC)

Image Part Number Description / PDF Quantity Rfq
ADS574AU

ADS574AU

Burr-Brown (Texas Instruments)

SAR ADC, 12-BIT, PARALLEL ACCESS

48415

ADS8344EG4

ADS8344EG4

Burr-Brown (Texas Instruments)

ADS8344 16-BIT, 8-CHANNEL SERIAL

31

ADS1213E

ADS1213E

Burr-Brown (Texas Instruments)

ADS1213 22-BIT ANALOG-TO-DIGITAL

1320

ADS7812P

ADS7812P

Burr-Brown (Texas Instruments)

ADC, SUCCESSIVE APPROXIMATION, 1

12

ADS800E

ADS800E

Burr-Brown (Texas Instruments)

ADC, PROPRIETARY METHOD, 12-BIT

10753

ADS931E

ADS931E

Burr-Brown (Texas Instruments)

ADS931 8-BIT, 30-MSPS ADC (ADC)

2842

ADS7816PC

ADS7816PC

Burr-Brown (Texas Instruments)

SAR ADC, 12-BIT, SERIAL ACCESS

25783

ADS7800JP

ADS7800JP

Burr-Brown (Texas Instruments)

SAR ADC, 12-BIT, PARALLEL ACCESS

32563

ADS7816UCG4

ADS7816UCG4

Burr-Brown (Texas Instruments)

ADC, SUCCESSIVE APPROXIMATION, 1

0

ADS824E

ADS824E

Burr-Brown (Texas Instruments)

ADC, PROPRIETARY METHOD, 10-BIT

3807

ADS774KE

ADS774KE

Burr-Brown (Texas Instruments)

SAR ADC, 12-BIT, PARALLEL ACCESS

6938

ADS7817UC

ADS7817UC

Burr-Brown (Texas Instruments)

ADS7817 12-BIT DIFFERENTIAL INPU

13567

ADS1286U

ADS1286U

Burr-Brown (Texas Instruments)

ADC, SUCCESSIVE APPROXIMATION, 1

100

ADS902E/1K

ADS902E/1K

Burr-Brown (Texas Instruments)

ADC, PROPRIETARY METHOD, 10-BIT

5000

ADS7812UB

ADS7812UB

Burr-Brown (Texas Instruments)

ADS7812 LOW-POWER, SERIAL 12-BIT

11195

ADS7812PB

ADS7812PB

Burr-Brown (Texas Instruments)

ADS7812 LOW-POWER, SERIAL 12-BIT

3854

ADC700AH

ADC700AH

Burr-Brown (Texas Instruments)

SAR ADC, 16-BIT, SERIAL/PARALLEL

18

ADS574AU/1K

ADS574AU/1K

Burr-Brown (Texas Instruments)

SAR ADC, 12-BIT, PARALLEL ACCESS

5326

ADS7816PB

ADS7816PB

Burr-Brown (Texas Instruments)

SAR ADC, 12-BIT, SERIAL ACCESS

9935

ADS805U

ADS805U

Burr-Brown (Texas Instruments)

ADC, PROPRIETARY METHOD, 12-BIT

4742

Data Acquisition - Analog to Digital Converters (ADC)

1. Overview

Analog-to-Digital Converters (ADCs) are semiconductor devices that convert continuous analog signals into discrete digital values. This core functionality enables digital systems to process real-world signals such as temperature, pressure, audio, and sensor data. ADCs are fundamental components in modern electronics, serving critical roles in communication systems, medical equipment, industrial automation, and consumer electronics. Their performance directly impacts system accuracy, speed, and overall efficiency.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Successive Approximation ADCMedium-speed, high accuracy, moderate power consumptionIndustrial control systems, precision measurement
Integrating ADCHigh noise rejection, low speed, excellent linearityDigital multimeters, weigh scales
Pipeline ADCHigh-speed operation with moderate resolutionWireless communication base stations, video processing
Delta-Sigma ( ) ADCHigh resolution, low noise, oversampling architectureAudio processing, precision sensor interfaces
Flash ADCExtremely high-speed conversion, limited resolutionRadar systems, high-speed oscilloscopes

3. Structure and Components

Typical ADC architecture includes: - Sample-and-Hold Circuit: Captures and stabilizes input signal - Quantizer: Maps analog values to discrete levels - Encoder: Converts quantized values to binary code - Reference Voltage Circuit: Provides stable voltage Modern ADCs integrate additional components like programmable gain amplifiers and digital filters. Fabricated using CMOS or BiCMOS processes, they come in packages like QFP, TSSOP, and BGA with pin counts ranging from 8 to 256.

4. Key Technical Specifications

ParameterDescriptionImportance
ResolutionNumber of digital output bitsDetermines measurement precision
Sampling RateMaximum conversion speed (SPS)Defines signal bandwidth capability
Signal-to-Noise Ratio (SNR)Dynamic range measurementImpacts signal fidelity
Integral Nonlinearity (INL)Deviation from ideal transfer functionCritical for measurement accuracy
Power ConsumptionOperating current/voltage requirementsAffects system efficiency and thermal design

5. Application Fields

  • Telecommunications: 5G base stations, optical transceivers
  • Medical Equipment: MRI scanners, patient monitoring systems
  • Industrial Automation: PLC systems, precision sensors
  • Consumer Electronics: Smartphones, wearables
  • Automotive: LiDAR systems, battery management

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Specifications
TI (Texas Instruments)ADS928324-bit ADC, 2MSPS, 2LSB INL
Analog DevicesAD762116-bit SAR ADC, 3MSPS, 85dB SNR
Maxim IntegratedMAX1190516-bit pipeline ADC, 125MSPS
STMicroelectronicsLTC2389-1818-bit SAR ADC, 1MSPS, rail-to-rail input

7. Selection Guidelines

Key considerations include: - Application Requirements: Match resolution/speed to system needs - Environmental Conditions: Temperature range, vibration resistance - Cost Constraints: Balance performance with budget - Supply Chain: Availability, package compatibility - Support Features: Required interfaces (SPI, I2C), calibration capabilities

8. Industry Trends

Emerging trends include: - Development of 32-bit ADCs for precision applications - Integration with AI acceleration for edge computing - Energy-efficient designs for IoT devices - High-temperature ADCs for automotive applications - Advanced packaging technologies (3D stacking) - Software-defined radio ADCs with tunable bandwidth

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