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Tandem 64-tap digital potentiometer (digipot) 16-TSSOP -40 to 85
Tip: Data for a part may vary between manufacturers. You can filter for manufacturers on the top of the page next to the part image and part number.
TPL8002-25PWR by Texas Instruments is a Digital Potentiometer.
Digital Potentiometers are under the broader part category of Converters.
A converter is an electrical circuit that transforms electric energy into a different form that will support a elecrical load needed by a device. Read more about Converters on our Converters part category page.
Part # | Distributor | Description | Stock | Price | Buy | |
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DISTI #
296-25791-1-ND
|
DigiKey | IC DGT POT 2.5KOHM 64TAP 16TSSOP Min Qty: 1 Lead time: 6 Weeks Container: Cut Tape (CT), Digi-Reel®, Tape & Reel (TR) | Temporarily Out of Stock |
|
$0.9418 / $1.9300 | Buy Now |
DISTI #
595-TPL8002-25PWR
|
Mouser Electronics | Digital Potentiometer ICs TANDEM 64TAP Dig Pot RoHS: Compliant | 795 |
|
$0.9160 / $1.9500 | Buy Now |
|
Quest Components | DIGITAL POTENTIOMETER, 2 FUNC, 2500OHM, 2-WIRE SERIAL CONTROL INTERFACE, 64 POSITIONS, PDSO16 | 24 |
|
$2.5000 / $4.0000 | Buy Now |
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TPL8002-25PWR
Texas Instruments
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Datasheet
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TPL8002-25PWR
Texas Instruments
Tandem 64-tap digital potentiometer (digipot) 16-TSSOP -40 to 85
|
Pbfree Code | Yes | |
Rohs Code | Yes | |
Part Life Cycle Code | Active | |
Ihs Manufacturer | TEXAS INSTRUMENTS INC | |
Part Package Code | TSSOP | |
Package Description | TSSOP-16 | |
Pin Count | 16 | |
Reach Compliance Code | compliant | |
ECCN Code | EAR99 | |
HTS Code | 8542.39.00.01 | |
Samacsys Manufacturer | Texas Instruments | |
Bandwidth-Nom | 8 kHz | |
Control Interface | 2-WIRE SERIAL | |
Converter Type | DIGITAL POTENTIOMETER | |
JESD-30 Code | R-PDSO-G16 | |
JESD-609 Code | e4 | |
Length | 5 mm | |
Moisture Sensitivity Level | 1 | |
Negative Supply Voltage-Nom | -4 V | |
Number of Functions | 2 | |
Number of Positions | 64 | |
Number of Terminals | 16 | |
Operating Temperature-Max | 85 °C | |
Operating Temperature-Min | -40 °C | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | TSSOP | |
Package Equivalence Code | TSSOP16,.25 | |
Package Shape | RECTANGULAR | |
Package Style | SMALL OUTLINE, THIN PROFILE, SHRINK PITCH | |
Peak Reflow Temperature (Cel) | 260 | |
Qualification Status | Not Qualified | |
Resistance Law | LOGARITHMIC | |
Resistance Tolerance-Max | 30% | |
Seated Height-Max | 1.2 mm | |
Supply Current-Max | 0.1 mA | |
Supply Voltage-Nom | 4 V | |
Surface Mount | YES | |
Temperature Grade | INDUSTRIAL | |
Terminal Finish | Nickel/Palladium/Gold (Ni/Pd/Au) | |
Terminal Form | GULL WING | |
Terminal Pitch | 0.65 mm | |
Terminal Position | DUAL | |
Time@Peak Reflow Temperature-Max (s) | 30 | |
Total Resistance-Nom | 2500 Ω | |
Width | 4.4 mm |
A good PCB layout for the TPL8002-25PWR should include a solid ground plane, wide power traces, and a thermal relief pattern under the device. TI provides a recommended layout in the datasheet, but it's essential to follow good thermal design practices to ensure optimal performance.
To ensure reliable operation in high-temperature environments, it's crucial to follow proper thermal management practices, such as providing adequate airflow, using a heat sink, and ensuring good thermal interface material (TIM) between the device and heat sink. Additionally, consider derating the device's power output at high temperatures.
The high current rating of the TPL8002-25PWR requires careful PCB design to ensure reliable operation. This includes using thick copper traces, wide power planes, and adequate via stitching to handle the high current. It's also essential to consider the thermal impact of high current on the PCB.
To protect the TPL8002-25PWR from overvoltage and overcurrent conditions, consider adding external protection components such as TVS diodes, zener diodes, or fuses. Additionally, implement overvoltage and overcurrent detection circuits to shut down the device in fault conditions.
To minimize EMI and ensure EMC compliance, follow good PCB design practices such as using a solid ground plane, minimizing loop areas, and using shielding and filtering components. Additionally, consider using a common-mode choke and EMI filters to reduce emissions.