LPR450AL

LPR450AL

$2.67
  • Description:GYRO 500DEG/S 2MV 140HZ 28LGA
  • Series:-
  • Mfr:STMicroelectronics
  • Package:Tray

SKU:2dbf02ee192d Category: Brand:

  
  • Quantity
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Product Detailed Parameters

  • Description:GYRO 500DEG/S 2MV 140HZ 28LGA
  • Series:-
  • Mfr:STMicroelectronics
  • Package:Tray
  • Type:Analog
  • Axis:X (Pitch), Y (Roll)
  • Range °/s:±500
  • Sensitivity (LSB/(°/s)):-
  • Sensitivity (mV/°/s):2
  • Bandwidth:140Hz
  • Output Type:Analog Voltage
  • Voltage - Supply:2.7V ~ 3.6V
  • Current - Supply:6.8 mA
  • Features:-
  • Operating Temperature:-40°C ~ 85°C
  • Package / Case:28-TFLGA
  • Grade:-
  • Qualification:-

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LPR450AL

Buying Guide
Summary

STMicroelectronics LPR450AL is a component in Gyroscopes category typically evaluated for fit, operating limits, and supportability in production. Key specs include Description (GYRO 500DEG/S 2MV 140HZ 28LGA), Type (Analog), Packaging (Tray), Supply (2.7V ~ 3.6V), and Temperature (-40°C ~ 85°C).

Selection Notes
  • For LPR450AL, verify the bandwidth (140Hz) covers your signal chain requirements without excessive attenuation.
  • Confirm the output type (Analog Voltage) and any level/threshold requirements for your system.
  • Verify the operating temperature range (-40°C ~ 85°C) and derate as needed in your application.
Alternates & Substitutions
  • For Gyroscopes, compare the datasheet test conditions behind key specs and re-check the margins that were tightest during bring-up.
  • For any substitution, verify the datasheet conditions behind headline specs and validate the alternate under your worst-case operating corners.
  • Start by confirming the physical match (package/case 28-TFLGA, packaging Tray) so the swap does not create a footprint risk.
  • When in doubt, treat the swap as an ECO: define acceptance criteria, then validate under worst-case operating corners.
FAQ

What should I verify before using LPR450AL in production?
Confirm footprint/pinout, min/max ratings, operating temperature, and the datasheet test conditions behind key specifications.

Which supply current is specified for LPR450AL?
6.8 mA

What supply voltage range does LPR450AL require?
2.7V ~ 3.6V

Which output type is specified for LPR450AL?
Analog Voltage

Application Scenarios

Within practice, the question for STMicroelectronics LPR450AL in Gyroscopes is whether it stays inside the electrical/thermal envelope while remaining easy to validate and support. In practice, they often require careful filtering and placement to avoid resonance and EMI coupling from motors or switching regulators. A well-chosen motion sensor improves control quality and reduces calibration overhead in production. In real deployments, across outdoor equipment, shock events and temperature gradients demand stable calibration and robust mounting. Across drones and robotics, inertial sensors drive attitude estimation in fast maneuvers, where vibration isolation and filtering prevent false drift. In automotive safety, they support stability control in harsh EMI environments near high-current actuators and wiring harnesses. In real deployments, gyro designs emphasize bias stability, temperature drift, and calibration workflow so rate estimates remain stable across long runtimes. The payoff is a design that is easier to qualify, easier to service, and more stable across environments.

Compatibility Advice
  • In qualification work, verify noise and vibration susceptibility under real operating conditions, not only bench setups before release to production.
  • In practice, check bandwidth and latency so the control loop behavior is predictable in production during bring-up and production test.
Project Fit
  • Strongest fit when you can qualify STMicroelectronics LPR450AL for Gyroscopes integration on the assembled PCB, typically when you can control mounting and alignment so bias and cross-axis errors are measurable and stable. On the other hand, less ideal when integrating STMicroelectronics LPR450AL for Gyroscopes, mounting, alignment, and vibration exposure cannot be controlled, making outputs unstable across builds, because the integration depends on constraints that cannot be controlled across builds.
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