Magnets - Sensor Matched

Image Part Number Description / PDF Quantity Rfq
M11/B8

M11/B8

Standex Electronics

MAGNET 0.315"DIA X 1.5"L BRASS

0

M9105/F26

M9105/F26

Sensata Technologies – BEI Sensors

MAGNET SUPPORT FRONT MOUNT

0

57070-000

57070-000

Wickmann / Littelfuse

MAGNET 0.219"DIA X 1.5"L PLASTIC

0

CL18

CL18

Carlo Gavazzi

MAGNETIC UNIT

20

CM6PID13X2M

CM6PID13X2M

TDK Corporation

MAGNET POLYPHENYLENE SULFIDE PPS

0

CM9BID13X2M

CM9BID13X2M

TDK Corporation

MAGNET POLYAMIDE PA12

0

M21P/2

M21P/2

Standex Electronics

MAGNET 1.122"L X 0.246"W PBT

0

M9105/K08

M9105/K08

Sensata Technologies – BEI Sensors

FEMALE MAGNET SUPPORT 8 MM

0

57140-000

57140-000

Wickmann / Littelfuse

MAGNET 0.906"L X 0.236"W PLASTIC

3025

M11/M5

M11/M5

Standex Electronics

MAGNET 0.980"DIA X 0.20"L SS

0

3498

3498

Pololu Corporation

MAG ENC DISC 20D GEARMTRS

1133

57125-000

57125-000

Wickmann / Littelfuse

MAGNET 1.125"L X 0.259"W PLASTIC

137

57025-000

57025-000

Wickmann / Littelfuse

MAGNET 0.245"DIA X 1"L PLASTIC

6500

8810/013

8810/013

Sensata Technologies – BEI Sensors

RARE EARTH MAGNET

0

PRM

PRM

Comus International

ALCOMAX UNPLATED 6MM X 18.0MM RO

270

M9105/KE3

M9105/KE3

Sensata Technologies – BEI Sensors

FEMALE MAGNET SUPPORT 9.52MM

10

M11/B12

M11/B12

Standex Electronics

MAGNET 0.472"DIA X 1.5"L BRASS

0

M9105/K06

M9105/K06

Sensata Technologies – BEI Sensors

FEMALE MAGNET SUPPORT 6 MM

2

M05

M05

Standex Electronics

MAGNET 0.910"L X 0.55"W PBT

0

SI-MAGB1MM

SI-MAGB1MM

Banner Engineering

CODED MAG USE WITH SI-MAGB1SM

17

Magnets - Sensor Matched

1. Overview

Sensor matched magnets are specialized magnetic components designed to work in conjunction with sensors or transducers to detect, measure, or respond to physical phenomena. These magnets are engineered to produce precise magnetic fields that align with the operational requirements of specific sensor types, ensuring optimal performance in terms of sensitivity, accuracy, and reliability. They play a critical role in modern technologies such as automation systems, electric vehicles, robotics, and medical devices, where accurate signal transmission and environmental interaction are essential.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Hall Effect Sensor MagnetsGenerate stable magnetic fields for Hall voltage detectionSpeed sensors in automotive transmissions
Magnetoresistive Sensor MagnetsOptimized for anisotropic magnetoresistance (AMR) or giant magnetoresistance (GMR)Hard drive read heads, position sensors
Inductive Sensor MagnetsDesigned for electromagnetic induction in AC applicationsProximity sensors in industrial machinery
Reed Switch MagnetsProvide precise actuation of reed contactsSecurity systems, fluid level sensors
MEMS Sensor MagnetsMiniaturized for micro-electromechanical systemsSmartphones, wearable fitness trackers

3. Structure and Components

A typical sensor matched magnet system consists of:

  • Magnetic Core: Made from rare earth materials (e.g., NdFeB, SmCo) or ferrites for high coercivity
  • Sensor Interface: Integrated circuitry for signal conditioning and processing
  • Encapsulation: Protective coating (epoxy, plastic) to prevent corrosion and mechanical damage
  • Magnetic Circuit Design: Pole pieces and flux concentrators to direct field lines
The design prioritizes field uniformity, thermal stability, and mechanical robustness to maintain performance under varying environmental conditions.

4. Key Technical Specifications

ParameterDescriptionImportance
Sensitivity (mV/Gauss)Output signal strength per unit magnetic fieldDetermines minimum detectable signal
Operating Temperature ( C)Functional temperature rangeImpacts reliability in harsh environments
Frequency Response (Hz)Bandwidth of detectable field changesCritical for dynamic applications like vibration sensing
Hysteresis Error (%)Deviation between increasing/decreasing field measurementsAffects measurement consistency
Material Coercivity (Oe)Resistance to demagnetizationEnsures long-term field stability

5. Application Fields

Major industries utilizing sensor matched magnets include:

  • Automotive: ABS systems, crankshaft position sensors
  • Industrial Automation: Conveyor belt speed monitors, robotic arm positioners
  • Consumer Electronics: Flip cover sensors in tablets, e-compasses in smartphones
  • Medical Devices: MRI machine gradient coils, implantable sensor systems
  • Renewable Energy: Wind turbine blade angle sensors, solar panel tracking systems
Example: In electric vehicles, these magnets enable precise rotor position detection for efficient motor control.

6. Leading Manufacturers and Products

ManufacturerProduct SeriesTechnical Advantages
TE ConnectivityMicronas HAL 3xxx seriesProgrammable sensitivity for automotive applications
HoneywellSS490 seriesHigh-temperature stability up to 150 C
Infineon TechnologiesTLE5012B E1182GMR-based angle sensor with <0.1 accuracy
STMicroelectronicsLSM6DSOXIntegrated MEMS magnetometer with AI-based sensor fusion

7. Selection Recommendations

Key considerations for selection:

  • Application Requirements: Determine if static or dynamic field detection is needed
  • Environmental Factors: Consider vibration levels, temperature extremes, and exposure to chemicals
  • Integration Constraints: Assess size limitations and compatibility with existing sensor architectures
  • Cost vs. Performance: Balance precision requirements with budget, e.g., NdFeB magnets offer higher performance than ferrites
Example: For a high-precision CNC machine, select a magnet with <0.05% hysteresis error and IP67 environmental rating to ensure accuracy in dusty workshops.

8. Industry Trends

Future developments include:

  • Miniaturization: Sub-mm magnets for biomedical implants and IoT edge devices
  • Smart Integration: Embedded signal processing circuitry within magnets
  • New Materials: Cobalt-free alloys for cost reduction and sustainability
  • Wireless Compatibility: Magnets with integrated Bluetooth LE for IIoT applications
  • AI Optimization: Machine learning algorithms for adaptive magnetic field compensation
The market is projected to grow at 7.2% CAGR through 2030, driven by electric vehicle and industrial IoT adoption.

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