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ADS8329 - ANALOG-TO-DIGITAL CONVERTER

Download the ADS8329 datasheet PDF. This datasheet also covers the ADS8330 variant, as both devices belong to the same analog-to-digital converter family and are provided as variant models within a single manufacturer datasheet.

Description

The ADS8329 is a low-power, 16-bit, 1-MSPS analog-to-digital converter (ADC) with a unipolar input.

The device includes a 16-bit capacitor-based SAR ADC with inherent sample-and-hold.

The ADS8330 is based on the same core and includes a 2-to-1 input MUX with programmable option of TAG bit output.

Features

  • 1.
  • 2 2.7-V to 5.5-V Analog Supply, Low Power:.
  • 15.5 mW (1 MHz, +VA = 3 V, +VBD = 1.8 V).
  • 1-MHz Sampling Rate 3 V ≤ +VA ≤ 5.5 V, 900-kHz Sampling Rate 2.7 V ≤ +VA ≤ 3 V.
  • Excellent DC Performance: ±1.0 LSB Typ, ±1.75 LSB Max INL ±0.5 LSB Typ, ±1 LSB Max DNL 16-Bit NMC Over Temperature ±0.5 mV Max Offset Error at 3 V ±1 mV Max Offset Error at 5 V.
  • Excellent AC Performance at fI = 10 kHz with 93 dB SNR, 105 dB SFDR,.
  • 102 dB THD.
  • Built-In C.

📥 Download Datasheet

Note: The manufacturer provides a single datasheet file (ADS8330-etcTI.pdf) that lists specifications for multiple related part numbers.

Full PDF Text Transcription (Reference)

The following content is an automatically extracted verbatim text from the original manufacturer datasheet and is provided for reference purposes only.

View original datasheet text
ADS8329 ADS8330 www.ti.com ................................................................................................................................................... SLAS516C – DECEMBER 2006 – REVISED JULY 2009 LOW-POWER, 16-BIT, 1-MHz, SINGLE/DUAL UNIPOLAR INPUT, ANALOG-TO-DIGITAL CONVERTERS WITH SERIAL INTERFACE FEATURES 1 •2 2.7-V to 5.5-V Analog Supply, Low Power: – 15.5 mW (1 MHz, +VA = 3 V, +VBD = 1.8 V) • 1-MHz Sampling Rate 3 V ≤ +VA ≤ 5.5 V, 900-kHz Sampling Rate 2.7 V ≤ +VA ≤ 3 V • Excellent DC Performance: ±1.0 LSB Typ, ±1.75 LSB Max INL ±0.5 LSB Typ, ±1 LSB Max DNL 16-Bit NMC Over Temperature ±0.
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