Motion Sensors - Accelerometers

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MMA5248LCWR2

MMA5248LCWR2

NXP Semiconductors

PSI5 ACCELEROMETER QFN 16

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PXLS63130AESR2

PXLS63130AESR2

NXP Semiconductors

PSI5 PROTOCOL Z 1 AXIS ACCELERO

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FXLS60322AESR2

FXLS60322AESR2

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XTRINSIC 2 AXIS MED/MED XY ACCEL

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PXLS60322AESR2

PXLS60322AESR2

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XTRINSIC 2 AXIS MED/MED XY ACCEL

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PXLS84322AESR2

PXLS84322AESR2

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2 AXIS MED/MED XY

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PXLS60130AESR2

PXLS60130AESR2

NXP Semiconductors

XTRINSIC 1 AXIS ACCELEROMETER

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FXLS60433AESR2

FXLS60433AESR2

NXP Semiconductors

XTRINSIC 2 AXIS HIGH/HIGH XZ ACC

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PXLS61322AESR2

PXLS61322AESR2

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XTRINSIC 2 AXIS MED/MED XY SPI32

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PXLS60120AESR2

PXLS60120AESR2

NXP Semiconductors

XTRINSIC 1 AXIS ACCELEROMETER

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PXLS84733AESR2

PXLS84733AESR2

NXP Semiconductors

2 AXIS HI/HI YZ

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PXLS63333AES

PXLS63333AES

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XTRINSIC 2 AXIS HIGH/HIGH XY PSI

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PXLS80722AESR2

PXLS80722AESR2

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2 AXIS MED/MED YZ

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PXLS60422AES

PXLS60422AES

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XTRINSIC 2 AXIS MED/MED XZ ACCEL

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MMA5224ALCWR2

MMA5224ALCWR2

NXP Semiconductors

ACCELEROMETER PSI5 16QFN

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PXLS60433AESR2

PXLS60433AESR2

NXP Semiconductors

XTRINSIC 2 AXIS HIGH/HIGH XZ ACC

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MMA2631NKGCWR2

MMA2631NKGCWR2

NXP Semiconductors

ACCELEROMETER 312G PCM 16QFN

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PXLS70533AESR2

PXLS70533AESR2

NXP Semiconductors

2 AXIS HIGH/HIGH YZ ACCELEROMETE

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PXLS84722AESR2

PXLS84722AESR2

NXP Semiconductors

2 AXIS MED/MED YZ

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PXLS64422AES

PXLS64422AES

NXP Semiconductors

XTRINSIC 2 AXIS MED/MED XZ ACCEL

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PXLS81422AESR2

PXLS81422AESR2

NXP Semiconductors

2 AXIS MED/MED XZ

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Motion Sensors - Accelerometers

1. Overview

Accelerometers are motion sensors that measure acceleration forces (static or dynamic) along one or multiple axes. These devices convert mechanical motion into electrical signals, enabling quantitative analysis of vibration, tilt, shock, and dynamic movement. As core components in modern sensing systems, accelerometers play critical roles in consumer electronics, industrial automation, automotive safety systems, and aerospace navigation.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Capacitive MEMSHigh sensitivity, low power consumption, digital outputSmartphones, wearable devices
PiezoelectricSelf-powered, excellent frequency responseVibration analysis, impact detection
PiezoresistiveHigh shock tolerance, analog outputAutomotive crash testing, industrial monitoring
Servo (Force-Balance)Ultra-high precision, low noiseInertial navigation, seismic monitoring
Optical MEMSImmune to electromagnetic interferenceHigh-precision scientific instruments

3. Structure and Components

Typical accelerometers consist of: - Seismic mass with specific inertial properties - Elastic suspension elements (springs or beams) - Displacement detection circuit (capacitive, piezoelectric, or resistive) - Temperature compensation circuitry - Signal conditioning electronics - Protective housing (metal/ceramic/polymer) Modern MEMS devices integrate microstructures on silicon substrates with digital interfaces (I2C/SPI).

4. Key Technical Specifications

ParameterDescriptionImportance
Measurement Range 2g to 500gDetermines application suitability
Resolution0.1mg to 10mgImpacts measurement precision
Frequency ResponseDC to 10kHzAffects dynamic signal capture
Nonlinearity 0.1% to 1% FSMeasurement accuracy indicator
Temperature Range-40 C to +150 CEnvironmental reliability
Power Consumption5 A to 10mABattery life consideration

5. Application Fields

  • Consumer Electronics: Smartphones (screen rotation), gaming controllers
  • Automotive: Airbag deployment, electronic stability control (ESC)
  • Industrial: Predictive maintenance systems, vibration monitoring
  • Healthcare: Fall detection devices, rehabilitation equipment
  • Aerospace: Flight control systems, structural health monitoring
  • Case Study: iPhone's ADXL345 MEMS accelerometer enables step counting and orientation detection

6. Leading Manufacturers

ManufacturerRepresentative ProductKey Features
Analog DevicesADXL3453-axis, 13-bit resolution, I2C interface
STMicroelectronicsLSM6DSO6-axis IMU, AI-enabled edge computing
Bosch SensortecBMI270Low-power wearable sensor, 16Hz noise
TE ConnectivityKX134-1211 400g high-shock measurement
HoneywellQA-750Tactical-grade servo accelerometer

7. Selection Guidelines

  • Determine required measurement axes (1D/2D/3D)
  • Match range/sensitivity with application requirements
  • Assess environmental conditions (temperature, vibration)
  • Select appropriate output interface (analog/digital)
  • Evaluate power consumption constraints
  • Consider calibration requirements and long-term stability

8. Industry Trends

Key development directions include: - MEMS technology advancement towards atomic-scale sensitivity - Integration with gyroscopes and AI processing (smart sensors) - Wireless sensor network compatibility - Increased adoption in autonomous vehicles and IoT edge devices - Development of ultra-low-power wake-up accelerometers - Fiber optic accelerometer systems for aerospace applications - Enhanced shock survivability for industrial harsh environments

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