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  • NTC Thermistors(76)
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    TT4-G10KC8-T180-OM52-500

    GLASS 10K OHM 1%, B 3435, M8 SCR

    TEWA Sensors LLC

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    TT4-G10KC3-T180-OM52-500

    GLASS 10K OHM 1%, B 3977, M8 SCR

    TEWA Sensors LLC

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    TT4-5KC3-T105-C650-1500

    NTC 5K OHM 1%, 6X50MM CAP, LENGT

    TEWA Sensors LLC

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    TT4-G10KC8-T180-C312-200

    GLASS 10K OHM 1%, B 3435, IN SS

    TEWA Sensors LLC

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    TT7-0.88KC7-1

    LEAD FRAME NTC 0.88K 1% OHM, B

    TEWA Sensors LLC

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    TT7-0.73KC7-1

    LEAD FRAME NTC 0.73K OHM, B 3560

    TEWA Sensors LLC

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    TT7-4.7KC3-4

    LEAD FRAME NTC 4.7K 1% OHM, B

    TEWA Sensors LLC

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    TT4-10KC3-T105-OM55-1500

    10K OHM 1%, B 3977, 6X73 WITH FL

    TEWA Sensors LLC

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    TTS-30KC6-BZ

    THERMISTOR NTC 30KOHM 4260K BEAD

    TEWA Sensors LLC

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    TTS-30KC6-BG

    THERMISTOR NTC 30KOHM 4260K BEAD

    TEWA Sensors LLC

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    TTS-100KC6-BG

    THERM NTC 100KOHM 4260K BEAD

    TEWA Sensors LLC

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    TTS-2.2KC3-BG

    THERM NTC 2.252KOHM 3977K BEAD

    TEWA Sensors LLC

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    TTS-1KC3-BG

    THERMISTOR NTC 1KOHM 3977K BEAD

    TEWA Sensors LLC

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    TT02-10KC3-T105-1500

    THERM NTC 10KOHM 3977K PROBE

    TEWA Sensors LLC

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    TT6-10KC8-9-50

    THIN FILM (0.6MM) NTC 10K OHM,

    TEWA Sensors LLC

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    TT4-G10KC8-T200-1500

    NTC 10K OHM 1%, B 3435, 5X40 CAP

    TEWA Sensors LLC

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    TT4-10KC8-T105-OM55-1500

    10K OHM 1%, B 3435, 6X73 WITH FL

    TEWA Sensors LLC

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    TT4-1KC7-T105-C650-1500

    NTC 1K OHM 1%, 6X50MM CAP, LENGT

    TEWA Sensors LLC

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    TT4-4.7KC3-T105-C650-1500

    NTC 4.7K OHM 1%, 6X50MM CAP, LEN

    TEWA Sensors LLC

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    TT4-2.2KC3-T105-C650-1500

    NTC 2.2K OHM 2%, 6X50MM CAP, LEN

    TEWA Sensors LLC

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    Description of NTC Thermistors

    NTC thermistors, refered to Negative Temperature Coefficient thermistors, are components whose resistance decreases with an increase in temperature. Due to this characteristic, they are extensively uses for various purposes such as temperature measurement, temperature compensation, preventing overheating, and controlling surge currents.  NTC thermistors exhibit higher resistance at lower temperatures, which gradually decreases as the temperature rises.

    NTC thermistors

    Working Principles of NTC Thermistors

    NTC thermistors are temperature-sensitive resistor elements using semiconductor ceramics. In semiconductors, an increase in heat leads to a higher number of free electrons and holes. Consequently, the resistance of semiconductors decreases because the increase in the number of charge carriers outweighs the reduction in their movement speed caused by the vibration of the crystal lattice.

    Furthermore, due to the narrow energy bandgap in semiconductors, applying external heat causes electrons in the valence band to transition to the conduction band, enabling electricity conduction. In conclusion, as the temperature rises, the resistance decreases.

    Frequently Asked Questions

    What causes NTC thermistor failure?

    The primary reasons for such failures typically stem from mechanical separation between the resistor element and the lead material, which can be attributed to factors such as handling damage, excessive heat exposure and thermal mismatch. The second most prevalent failure mode involves a drift in the resistance value or a change in parameters as the thermistor ages.

    What are the disadvantages of NTC thermistor?

    One drawback of an NTC thermistor is that its output exhibits linearity only within a limited temperature range so it becomes non-linear across a broader temperature spectrum.

    How to connect an NTC thermistor?

    As the thermistor sensor functions as a resistor, the 2-wire sensor is polarity-insensitive, allowing you to connect either pin to the Analog Pin and the other pin to the Ground Pin interchangeably.

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