Datasheets
DS96176CN by:

LINE TRANSCEIVER, PDIP8, PLASTIC, DIP-8

Part Details for DS96176CN by Texas Instruments

Results Overview of DS96176CN by Texas Instruments

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Applications Telecommunications

DS96176CN Information

DS96176CN by Texas Instruments is a Line Driver or Receiver.
Line Driver or Receivers are under the broader part category of Drivers And Interfaces.

A driver controls the current or voltage delivered to components like LCDs or motors, while an interface component connects systems for data transfer and control. Read more about Drivers And Interfaces on our Drivers And Interfaces part category page.

Part Details for DS96176CN

DS96176CN CAD Models

DS96176CN Part Data Attributes

DS96176CN Texas Instruments
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DS96176CN Texas Instruments LINE TRANSCEIVER, PDIP8, PLASTIC, DIP-8
Pbfree Code No
Rohs Code No
Part Life Cycle Code Obsolete
Ihs Manufacturer TEXAS INSTRUMENTS INC
Part Package Code DIP
Package Description PLASTIC, DIP-8
Pin Count 8
Reach Compliance Code not_compliant
ECCN Code EAR99
HTS Code 8542.39.00.01
Samacsys Manufacturer Texas Instruments
Additional Feature COMMON I/O; 1 RECEIVER ACTIVE UNDER SHUTDOWN; TRISTATABLE RECEIVER
Differential Output YES
Driver Number of Bits 1
High Level Input Current-Max 0.00002 A
Input Characteristics DIFFERENTIAL SCHMITT TRIGGER
Interface IC Type LINE TRANSCEIVER
Interface Standard EIA-422-A; EIA-485
JESD-30 Code R-PDIP-T8
JESD-609 Code e0
Length 9.817 mm
Moisture Sensitivity Level 1
Number of Functions 1
Number of Terminals 8
Operating Temperature-Max 70 °C
Operating Temperature-Min
Out Swing-Min 1.5 V
Output Low Current-Max 0.016 A
Package Body Material PLASTIC/EPOXY
Package Code DIP
Package Equivalence Code DIP8,.3
Package Shape RECTANGULAR
Package Style IN-LINE
Qualification Status Not Qualified
Receive Delay-Max 25 ns
Receiver Number of Bits 1
Seated Height-Max 5.08 mm
Supply Current-Max 40 mA
Supply Voltage-Max 5.25 V
Supply Voltage-Min 4.75 V
Supply Voltage-Nom 5 V
Surface Mount NO
Technology BIPOLAR
Temperature Grade COMMERCIAL
Terminal Finish TIN LEAD
Terminal Form THROUGH-HOLE
Terminal Pitch 2.54 mm
Terminal Position DUAL
Transmit Delay-Max 25 ns
Width 7.62 mm

Alternate Parts for DS96176CN

This table gives cross-reference parts and alternative options found for DS96176CN. The Form Fit Function (FFF) tab will give you the options that are more likely to serve as direct pin-to-pin alternates or drop-in parts. The Functional Equivalents tab will give you options that are likely to match the same function of DS96176CN, but it may not fit your design. Always verify details of parts you are evaluating, as these parts are offered as suggestions for what you are looking for and are not guaranteed.

Part Number Manufacturer Composite Price Description Compare
DS96176CN/NOPB Texas Instruments Check for Price RS-485/RS-422 Differential Bus Transceiver 8-PDIP 0 to 70 DS96176CN vs DS96176CN/NOPB
DS96176CN/NOPB National Semiconductor Corporation Check for Price IC LINE TRANSCEIVER, PDIP8, PLASTIC, DIP-8, Line Driver or Receiver DS96176CN vs DS96176CN/NOPB
DS96176CJ Texas Instruments Check for Price LINE TRANSCEIVER, CDIP8, DIP-8 DS96176CN vs DS96176CJ
DS96176CN National Semiconductor Corporation Check for Price IC LINE TRANSCEIVER, PDIP8, PLASTIC, DIP-8, Line Driver or Receiver DS96176CN vs DS96176CN

DS96176CN Related Parts

DS96176CN Frequently Asked Questions (FAQ)

  • A 4-layer PCB with a solid ground plane and a separate power plane is recommended. Keep the signal traces short and away from the power plane to minimize noise and EMI.

  • Use a thermal management strategy such as heat sinks, thermal interfaces, or thermal vias to keep the junction temperature below 125°C. Ensure proper airflow and avoid thermal hotspots.

  • Use a combination of ceramic and electrolytic capacitors for decoupling, with a total capacitance of at least 10uF. Place decoupling capacitors close to the device and use a low-ESR capacitor for the 1.8V supply.

  • Use a high-quality clock source with a low jitter specification. Ensure the clock signal has a clean, stable amplitude and a 50% duty cycle. Use a clock buffer or repeater if necessary.

  • Use controlled impedance traces and terminate signals with a 50Ω resistor to minimize reflections. Use a signal integrity analysis tool to optimize trace lengths and routing.

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