20310509101

20310509101

  • Description:SENSOR CURRENT HALL 500A AC
  • Series:-
  • Mfr:HARTING
  • Package:Bulk

SKU:aae502b059d6 Category: Brand:

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Product Detailed Parameters

  • Description:SENSOR CURRENT HALL 500A AC
  • Series:-
  • Mfr:HARTING
  • Package:Bulk
  • For Measuring:AC/DC
  • Sensor Type:Hall Effect, Closed Loop
  • Current - Sensing:500A
  • Number of Channels:1
  • Output:Ratiometric, Voltage
  • Sensitivity:-
  • Frequency:-
  • Linearity:±0.1%
  • Accuracy:±1%
  • Voltage - Supply:15V ~ 24V
  • Response Time:1µs
  • Current - Supply (Max):35mA
  • Operating Temperature:-40°C ~ 85°C
  • Grade:-
  • Qualification:-
  • Polarization:Bidirectional
  • Mounting Type:Chassis Mount
  • Package / Case:Module, Single Pass Through
  • Supplier Device Package:-

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20310509101

Buying Guide
Summary

HARTING 20310509101 is selected in Current Sensors category when calibration, drift, and environment constraints must be validated early. Key specs include Description (SENSOR CURRENT HALL 500A AC), Temperature (-40°C ~ 85°C), Package/case (Module, Single Pass Through), and Mounting (Chassis Mount).

Selection Notes
  • For 20310509101, confirm the operating temperature range (-40°C ~ 85°C) meets your deployment conditions.
  • Check Linearity (±0.1%) against the datasheet conditions and your system-level constraints.
  • Confirm the mounting type (Chassis Mount) matches your assembly process and reliability requirements.
Alternates & Substitutions
  • In Current Sensors, confirm that alternates preserve startup states and fault behavior so system behavior does not change quietly.
  • Confirm the real operating corners (supply 15V ~ 24V, temperature -40°C ~ 85°C) and avoid swaps that only work at typical conditions.
  • Confirm compliance/qualification needs (for example RoHS/REACH or grade) before approving a second source for production.
  • Confirm startup states and fault behavior are equivalent so the alternate does not change system behavior during brownouts or resets.
FAQ

Who is the manufacturer of 20310509101?
HARTING

How do I validate sensor performance for 20310509101?
Test with real fixtures and environmental conditions, then confirm calibration, drift, and noise behavior meet your requirements.

Which package/case is listed for 20310509101?
Module, Single Pass Through

What is the Current - Supply (Max) of 20310509101?
35mA

Application Scenarios

Across production Current Sensors builds, parts like HARTING 20310509101 are shortlisted for predictable behavior, clear documentation, and stable supply. Integration often involves placement strategy, airflow considerations, and calibration workflows tied to the target environment. Reliable environmental sensing enables better automation decisions and reduces operational risk. In practice, environmental sensing focuses on drift, response time, contamination exposure, and compensation so readings remain meaningful over life. Once the boundary conditions are set, validation shifts to board-level measurements across the real operating corners. Across smart buildings, environmental sensors drive HVAC optimization across dusty airflow and changing installation conditions. Within industrial process lines, temperature and gas monitoring protects operators near ovens, tanks, or clean rooms with strict calibration rules. Across consumer devices, light and temperature sensing enables adaptive control in compact enclosures with tight power budgets. Within practice, predictable margins and repeatable validation are what keep field behavior consistent.

Compatibility Advice
  • Verify environmental stress assumptions (temperature, humidity, contamination) so sensing remains repeatable over life with the final enclosure and cabling.
Project Fit
  • Works best when you can qualify HARTING 20310509101 for Current Sensors integration on the assembled PCB, when you can validate drift and response time in the real airflow and enclosure environment.
  • Not ideal when integrating HARTING 20310509101 for Current Sensors, calibration and drift cannot be supported but long-term accuracy is still expected, because the behavior cannot be verified in a repeatable way.
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