Motion Sensors - IMUs (Inertial Measurement Units)

Image Part Number Description / PDF Quantity Rfq
HG4930CS25

HG4930CS25

Honeywell Aerospace

SENSOR

0

LSM303D

LSM303D

STMicroelectronics

IMU ACCEL/MAG I2C/SPI 16LGA

0

LSM303DLM

LSM303DLM

STMicroelectronics

IMU ACCEL/MAG 3-AXIS I2C 28LGA

0

LSM303DLHCTR

LSM303DLHCTR

STMicroelectronics

IMU ACCEL/MAG 3-AXIS I2C 14LGA

0

ADIS16480AMLZ

ADIS16480AMLZ

Analog Devices, Inc.

IMU ACCEL/GYRO/MAG SPI 24ML

0

BMC156

BMC156

Bosch Sensortec

IMU ACCEL/MAG I2C/SPI 12LGA

0

MM7150-AB1

MM7150-AB1

Roving Networks / Microchip Technology

IMU ACCEL/GYRO/MAG 3-AXIS I2C

0

LSM303DTR

LSM303DTR

STMicroelectronics

IMU ACCEL/MAG I2C/SPI 16LGA

0

IMU380ZA-409

IMU380ZA-409

Aceinna Inc.

IMU ACCEL/GYRO/MAG 3-AXIS SPI

0

IMU480ZA-209

IMU480ZA-209

Aceinna Inc.

IMU ACCEL/GYRO/MAG 3-AXIS SPI

0

ADIS16488BMLZX

ADIS16488BMLZX

Analog Devices, Inc.

IMU ACCEL/GYRO/MAG SPI 24ML

0

LSM330DLCTR

LSM330DLCTR

STMicroelectronics

IMU ACCEL/GYRO I2C/SPI 28LGA

0

MM7150I-AB1

MM7150I-AB1

Roving Networks / Microchip Technology

IMU ACCEL/GYRO/MAG 3-AXIS I2C

0

MTI-10-2A5G4

MTI-10-2A5G4

Xsens

IMU ACCEL/GYRO/MAG UART/USB

0

MPU-9250

MPU-9250

TDK InvenSense

IMU ACCEL/GYRO/MAG I2C/SPI 24QFN

0

MTI-20-2A5G4

MTI-20-2A5G4

Xsens

IMU ACCEL/GYRO/MAG UART/USB

0

LSM303DLHC

LSM303DLHC

STMicroelectronics

IMU ACCEL/MAG 3-AXIS I2C 14LGA

0

FMT1010R

FMT1010R

Sanyo Semiconductor/ON Semiconductor

MEMS IMU MODULE INERTIAL + MAG

0

BMC050

BMC050

Bosch Sensortec

IMU ACCEL/MAG I2C/SPI 16LGA

0

HG4930BS25

HG4930BS25

Honeywell Aerospace

SENSOR

0

Motion Sensors - IMUs (Inertial Measurement Units)

1. Overview

Inertial Measurement Units (IMUs) are electronic devices that measure and report specific force, angular rate, and orientation. They combine multiple sensors (typically accelerometers, gyroscopes, and sometimes magnetometers) to provide six degrees of freedom (6-DoF) data. IMUs are critical in navigation systems, robotics, and motion tracking, enabling precise spatial awareness in applications ranging from aerospace to consumer electronics.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
6-Axis IMUCombines 3-axis accelerometer and 3-axis gyroscopeSmartphones, wearable devices
9-Axis IMUAdds 3-axis magnetometer for heading accuracyAR/VR headsets, navigation systems
Tactical-Grade IMUHigh-precision MEMS with temperature compensationUnmanned aerial vehicles (UAVs), industrial robotics
Consumer-Grade IMULow-cost, low-power MEMS sensorsIoT devices, gaming controllers

3. Structure and Components

A typical IMU consists of:

  • Accelerometer: Measures linear acceleration using micro-electromechanical systems (MEMS)
  • Gyroscope: Detects angular velocity via Coriolis effect in MEMS structures
  • Magnetometer (optional): Provides heading reference using Earth's magnetic field
  • Signal Conditioning Circuitry: Analog-to-digital converters and temperature sensors
  • Microcontroller: Executes sensor fusion algorithms (e.g., Kalman filters)

4. Key Technical Specifications

ParameterDescriptionImportance
Measurement RangeMaximum acceleration/angular rate detectableDetermines suitability for high-dynamic environments
Accuracy (Bias/Noise)Error margins under static/dynamic conditionsImpacts long-term stability and precision
Data Update RateSampling frequency (Hz)Higher rates improve real-time responsiveness
Power ConsumptionOperating current/voltage requirementsCrucial for battery-powered devices
Operating TemperatureFunctional temperature rangeAffects reliability in harsh environments

5. Application Fields

  • Autonomous Vehicles: Navigation, lane-keeping, collision avoidance
  • Consumer Electronics: Gesture control in smartphones and gaming consoles
  • Healthcare: Motion analysis in rehabilitation devices
  • Industrial: Predictive maintenance of rotating machinery
  • Aerospace: Flight control systems in drones and satellites

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
STMicroelectronicsLSM6DSOX6-axis IMU with AI motion recognition engine
Analog DevicesADIS16495Tactical-grade IMU with 40g range and 0.005 /hr bias instability
Invensense (TDK)ICM-206896-axis IMU with 8 MHz SPI interface for gaming applications
Bosch SensortecBMI270Low-power 6-axis IMU for wearables with step detection

7. Selection Guidelines

Key considerations:

  • Application Requirements: Consumer vs. industrial grade
  • Environmental Factors: Vibration, temperature extremes
  • Integration Complexity: Communication protocols (I2C/SPI), mounting constraints
  • Cost vs. Performance: Trade-offs between precision and budget
  • Calibration Needs: Factory calibration vs. field adjustment

8. Industry Trends

Emerging developments include:

  • Integration of AI accelerators for edge computing
  • Miniaturization through advanced MEMS packaging (e.g., 3D wafer-level bonding)
  • Multi-sensor fusion with GNSS and LiDAR for enhanced navigation
  • Increased adoption in medical wearables for fall detection
  • Advancements in fiber optic gyroscopes (FOGs) for defense applications

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