Temperature Sensors - NTC Thermistors

Image Part Number Description / PDF Quantity Rfq
DC95Y103Z

DC95Y103Z

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 10KOHM 3690K BEAD

0

AL03006-5818-97-G1

AL03006-5818-97-G1

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 10KOHM 3992K DO35

44190

03006-535K-145-G100

03006-535K-145-G100

Thermometrics (Amphenol Advanced Sensors)

THERM NTC 1MOHM 4661K DO213AA

0

EC95H303W

EC95H303W

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 30KOHM 3936K BEAD

1000

JIC-F103WN-L301

JIC-F103WN-L301

Thermometrics (Amphenol Advanced Sensors)

THERM NTC 10KOHM 3969K PROBE

68

NHQM223B400T10

NHQM223B400T10

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 22KOHM 4100K 0805

0

BR55PB104K

BR55PB104K

Thermometrics (Amphenol Advanced Sensors)

NTC THERMISTORS DIA 55MILS ADJ L

132

RL2005-2203-120-D1

RL2005-2203-120-D1

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 4KOHM 4356K DISC

0

3006-165.9-55-G100

3006-165.9-55-G100

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 250OHM DO213AA

0

AL03006-1248-73-G1

AL03006-1248-73-G1

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 2KOHM 3499K DO35

715

RL1004-2910-97-D1

RL1004-2910-97-D1

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 5KOHM 3972K DISC

4505

RL2004-16.4-59-D1

RL2004-16.4-59-D1

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 25OHM 3096K DISC

2830

NHQM333B400T5

NHQM333B400T5

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 33KOHM 4000K 0805

0

03006-331.8-55-G100

03006-331.8-55-G100

Thermometrics (Amphenol Advanced Sensors)

THERM NTC 250OHM 2983K DO213AA

0

NHQ202B410T10

NHQ202B410T10

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 2KOHM 4100K 1206

0

TH420J34GBSN

TH420J34GBSN

Thermometrics (Amphenol Advanced Sensors)

THERM NTC 200KOHM 3450K AXIAL

6000

NHQ503B400T10

NHQ503B400T10

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 50KOHM 4000K 1206

1221

NHQ153B400T5

NHQ153B400T5

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 15KOHM 4000K 1206

0

RL2005-5536-122-D1

RL2005-5536-122-D1

Thermometrics (Amphenol Advanced Sensors)

THERMISTOR NTC 10KOHM 4365K DISC

0

NHQMM154B425T10

NHQMM154B425T10

Thermometrics (Amphenol Advanced Sensors)

THERM NTC 150KOHM 4250K 0603

0

Temperature Sensors - NTC Thermistors

1. Overview

NTC (Negative Temperature Coefficient) thermistors are temperature-sensitive resistors whose resistance decreases with increasing temperature. This semiconductor ceramic device utilizes metal oxide materials to achieve precise temperature measurement and control. As a fundamental component in thermal management systems, NTC thermistors play critical roles in modern electronics, automotive engineering, and industrial automation due to their high sensitivity ( : 2000-5000 K) and accuracy ( 0.1 C to 5 C).

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Bead ThermistorsSmall size ( 0.5-5mm), fast response (<50ms), glass-encapsulatedMedical probes, liquid temperature monitoring
Disk ThermistorsHigher power rating, epoxy-coated, axial leadsPower supply thermal protection, HVAC systems
Chip ThermistorsSMD packaging, low profile (0.6-3.2mm), RoHS compliantSmartphone thermal management, wearable devices
Glass-EncapsulatedHermetic seal, corrosion resistance, operating temp: -50 C to +300 CAutomotive battery monitoring, aerospace sensors

3. Structure and Composition

Typical NTC thermistor construction includes:

  • Semiconductive ceramic core (Mn-Ni-Co-Ox system)
  • Platinum alloy electrode layers (sintered or plated)
  • Protective epoxy/glass encapsulation (IP67 rated)
  • Lead wires (Cu/Ni alloy, 26-34 AWG)

Manufacturing process involves powder synthesis at 1500 C, isostatic pressing, and controlled atmosphere sintering to achieve desired R-T characteristics.

4. Key Technical Specifications

ParameterDescriptionSignificance
Rated Resistance (R25)Resistance at 25 C (100 -10M range)System compatibility, signal conditioning design
B-Value (K)Material constant (2000-5000K)Determines sensitivity across operating range
ToleranceResistance deviation ( 1% to 15%)Affects measurement accuracy
Operating Temp Range-100 C to +600 C (varies by type)Environmental suitability
Dissipation FactormW/ C (self-heating coefficient)Power consumption and stability considerations

5. Application Fields

Primary industries utilizing NTC thermistors:

  • Industrial: Process control ( 0.5 C accuracy), motor protection
  • Consumer Electronics: Battery management (Li-ion charging), smart thermostats
  • Medical: Patient monitoring (Class F accuracy), lab equipment
  • Automotive: Battery pack thermal monitoring (ISO 14001 compliance), ECU protection

Notable application example: Tesla Model S battery management system uses 48-channel NTC array for cell temperature monitoring ( 1 C accuracy).

6. Leading Manufacturers and Products

ManufacturerKey ProductsTechnical Highlights
Murata ElectronicsNXFT SeriesAutomotive-grade (AEC-Q200), 0.5 C accuracy, -50 C to +150 C range
TE ConnectivityNTCLE SeriesMedical certification (IEC 60601), 3.2mm chip format
Vishay BeyschlagNTCAl SeriesAluminum housing, 50W power handling, IP68 rating

7. Selection Guidelines

Key considerations for NTC thermistor selection:

  1. Resistance-Temperature curve matching application requirements
  2. Environmental factors: humidity (IP rating), vibration (automotive shock specs)
  3. Electrical parameters: operating current (self-heating effects)
  4. Form factor constraints (SMD vs through-hole)
  5. Calibration requirements (standard vs customized R-T tables)

Recommend verifying long-term stability (aging rate <0.2%/year) and RoHS compliance for production applications.

8. Industry Trends

Emerging developments include:

  • Micro-NTC fabrication (MEMS-based, <0.1mm chips)
  • High-temperature stability improvements (up to 600 C operation)
  • Integration with wireless sensor networks (Zigbee/LoRa compatibility)
  • AI-enhanced linearization algorithms (reducing external circuit complexity)

Market growth projected at 8.2% CAGR through 2027 driven by EV battery management demands.

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