3656BG

3656BG

  • Description:IC OPAMP ISOLATION 1 CIRC 20CDIP
  • Series:-
  • Mfr:Texas Instruments
  • Package:Tube

SKU:e885b4059ace Category: Brand:

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Product Detailed Parameters

  • Description:IC OPAMP ISOLATION 1 CIRC 20CDIP
  • Series:-
  • Mfr:Texas Instruments
  • Package:Tube
  • Amplifier Type:Isolation
  • Number of Circuits:1
  • Output Type:-
  • Slew Rate:0.1V/µs
  • Gain Bandwidth Product:-
  • Current - Input Bias:100 nA
  • Voltage - Input Offset:1 mV
  • Current - Supply:14mA
  • Current - Output / Channel:5 mA
  • Voltage - Supply Span (Min):17 V
  • Voltage - Supply Span (Max):32 V
  • Operating Temperature:-25°C ~ 85°C
  • Grade:-
  • Qualification:-
  • Mounting Type:Through Hole
  • Package / Case:20-CDIP (0.900", 22.86mm)
  • Supplier Device Package:20-CDIP
  • -3db Bandwidth:30 kHz

Download product information

3656BG

Buying Guide
Summary

Texas Instruments 3656BG is an electronic component in Instrumentation, Op Amps, Buffer Amps category. Key specs: description: IC OPAMP ISOLATION 1 CIRC 20CDIP; packaging: Tube; temperature: -25°C ~ 85°C; package/case: 20-CDIP (0.900", 22.86mm); mounting: Through Hole; circuits: 1; frequency: 30 kHz.

Selection Notes
  • For 3656BG, confirm package/case 20-CDIP (0.900", 22.86mm), mounting Through Hole to ensure footprint compatibility.
  • For 3656BG, validate the operating temperature range (-25°C ~ 85°C) against your environment.
  • For 3656BG, confirm the operating frequency (30 kHz) and any related tolerance requirements.
FAQ

What information do you need to quote 3656BG?
Send the part number (3656BG), quantity, target delivery date, and any required packaging or documentation.

Who is the manufacturer/brand for 3656BG?
Texas Instruments

What is the operating temperature range of 3656BG?
-25°C ~ 85°C

What is the package/case of 3656BG?
20-CDIP (0.900", 22.86mm)

Application Scenarios
Texas Instruments 3656BG in the Instrumentation, Op Amps, Buffer Amps category is typically selected when engineers need predictable, spec-driven behavior in a production design. Engineers pay close attention to grounding, reference integrity, interface timing, and output/input loading so end-to-end fidelity is preserved on the PCB. They condition, convert, or interface signals so systems can capture or generate analog information with defined accuracy, latency, and noise behavior. Engineers validate gain-setting, filtering, and EMI robustness because common-mode interference is usually the dominant error source. In medical instruments, low-drift in-amps condition biopotential and low-level sensor signals where noise and offset stability dominate the error budget. In data acquisition front ends, in-amps provide precise gain before conversion when channel matching and repeatability across production units are required. Overall, it strengthens system robustness by aligning electrical, thermal, and mechanical constraints with real deployment conditions.
3656BG3656BG

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