ADS8588SIPMR >
ADS8588SIPMR
Texas Instruments
IC ADC 16BIT SAR 64LQFP
4600 Pcs New Original In Stock
16 Bit Analog to Digital Converter 8 Input 8 SAR 64-LQFP (10x10)
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ADS8588SIPMR Texas Instruments
5.0 / 5.0 - (406 Ratings)

ADS8588SIPMR

Product Overview

1394529

DiGi Electronics Part Number

ADS8588SIPMR-DG

Manufacturer

Texas Instruments
ADS8588SIPMR

Description

IC ADC 16BIT SAR 64LQFP

Inventory

4600 Pcs New Original In Stock
16 Bit Analog to Digital Converter 8 Input 8 SAR 64-LQFP (10x10)
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 1 164.1640 164.1640
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ADS8588SIPMR Technical Specifications

Category Data Acquisition, Analog to Digital Converters (ADC)

Manufacturer Texas Instruments

Packaging Cut Tape (CT) & Digi-Reel®

Series -

Product Status Active

Number of Bits 16

Sampling Rate (Per Second) 200k

Number of Inputs 8

Input Type Single Ended

Data Interface Parallel, Serial

Configuration PGA-ADC

Ratio - S/H:ADC 0:1

Number of A/D Converters 8

Architecture SAR

Reference Type External, Internal

Voltage - Supply, Analog 4.75V ~ 5.25V

Voltage - Supply, Digital 2.3V ~ 5.25V

Features Simultaneous Sampling

Operating Temperature -40°C ~ 125°C

Package / Case 64-LQFP

Supplier Device Package 64-LQFP (10x10)

Mounting Type Surface Mount

Base Product Number ADS8588

Datasheet & Documents

Manufacturer Product Page

ADS8588SIPMR Specifications

HTML Datasheet

ADS8588SIPMR-DG

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 3 (168 Hours)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8542.39.0001

Additional Information

Other Names
296-45338-6
ADS8588SIPMR-DG
296-45338-1
296-45338-2
Standard Package
1,000

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5.0/5.0-(Show up to 5 Ratings)
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de desembre 02, 2025
5.0
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Frequently Asked Questions (FAQ)

Can the ADS8588SIPMR be safely used as a drop-in replacement for the ADS8588H in a 5V industrial control system, and what design risks should I consider during the migration?

While both the ADS8588SIPMR and ADS8588H are 16-bit SAR ADCs from Texas Instruments with similar pinouts and parallel/serial interfaces, the ADS8588SIPMR requires an external reference voltage, whereas the ADS8588H includes an internal reference. Direct replacement without modifying the reference circuitry will result in incorrect conversions or no output. You must ensure your system provides a stable, low-noise external reference (e.g., REF5050) within the 2.5V to 5V range. Additionally, verify that your analog front-end and digital supply sequencing meet the ADS8588SIPMR’s 4.75–5.25V analog and 2.3–5.25V digital requirements. Failing to address reference dependency and power sequencing can lead to measurement drift or startup failure in high-reliability applications.

How does the simultaneous sampling feature of the ADS8588SIPMR impact system design when monitoring multiple AC motor phases, and what layout precautions are critical to avoid cross-channel interference?

The ADS8588SIPMR’s eight independent SAR ADCs enable true simultaneous sampling across all channels, which is essential for accurate phase-to-phase voltage or current measurements in motor control systems. However, this performance is highly sensitive to PCB layout. To prevent crosstalk and timing skew, route each analog input with matched trace lengths, use ground shielding between channels, and place decoupling capacitors (100nF ceramic + 10µF tantalum) as close as possible to the AVDD pins. Avoid routing high-speed digital signals (e.g., SCLK or DB[15:0]) parallel to analog inputs. Poor layout can induce millivolt-level errors that corrupt phase-angle calculations, leading to inefficient motor operation or instability in field-oriented control algorithms.

What are the reliability implications of operating the ADS8588SIPMR at its maximum junction temperature of 125°C in an enclosed industrial enclosure with limited airflow?

Operating the ADS8588SIPMR continuously near its 125°C absolute maximum rating significantly reduces long-term reliability and increases the risk of thermal-induced offset drift. Although the device is rated for -40°C to 125°C, sustained operation above 105°C accelerates electromigration and package stress, potentially causing premature failure. In enclosed systems, implement thermal vias under the 64-LQFP package, consider a small heatsink or thermal pad, and monitor ambient temperature with an onboard sensor. TI’s reliability data shows a 2x reduction in MTBF for every 10°C rise above 100°C—so active thermal management is critical for mission-critical applications like power inverters or battery management systems.

Can I interface the ADS8588SIPMR directly with a 3.3V microcontroller using its serial interface, and what level-shifting or protection circuitry is required to avoid damage?

Yes, the ADS8588SIPMR supports 3.3V-compatible digital I/O on its serial interface (SCLK, SDOUT, etc.) as long as DVDD is supplied within 2.3V–5.25V. However, if your microcontroller operates at 3.3V and the ADC is powered at 5V (common when sharing analog rails), the ADC’s output signals may exceed the MCU’s absolute maximum input voltage. To prevent latch-up or long-term degradation, use a bidirectional level translator (e.g., TXB0108) or series resistors (100–330Ω) on all digital lines from the ADC to the MCU. Also ensure signal rise times meet timing specs—excessive capacitance from level shifters can violate t_SU or t_H requirements, causing data corruption during high-speed reads.

When replacing a legacy 12-bit ADC like the AD7656 with the ADS8588SIPMR in a data acquisition module, what calibration and signal chain adjustments are necessary to fully leverage its 16-bit resolution?

Upgrading from the 12-bit AD7656 to the 16-bit ADS8588SIPMR exposes previously hidden noise and nonlinearity in your signal chain. You must recalibrate the entire front end: ensure your op-amps (e.g., OPAx192) have sufficient bandwidth and low enough noise (<10nV/√Hz) to support 16-bit accuracy, and verify that your anti-aliasing filters have sharp enough roll-off to avoid out-of-band noise folding. The ADS8588SIPMR’s higher resolution also makes it sensitive to ground bounce and reference stability—use a dedicated low-noise reference (e.g., REF5040) and star grounding. Without these adjustments, you may only achieve 14–15 effective bits, negating the upgrade benefit. Perform end-to-end system calibration using precision voltage sources to correct offset, gain, and linearity errors.

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