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10K Thermistor Resistance Chart

10K Thermistor Resistance Chart - Bapi thermistors are thermally sensitive resistors known for exhibiting a large change in resistance with only a small change in temperature. Web thermistors work by translating temperature into resistance, with resistance decreasing as temperature increases (sometimes referred to as a ‘negative temperature coefficient’, or ntc, thermistors). The mounting package may further Of teflon encased thermistors add 100 to part no. Only thermistors with ±0.2°c interchangeability are available encased in teflon as standard parts. ±0.15°c @ 0°c (±0.28°f @ 32°f). 10k thermistors can be used at much higher temperatures, but will suffer poorer temperature stability performance because of the lower sensitivity. Web resistance table for thermistors (ntc) °c. The heat dissipation constant is an expression in milliwatts of the power required to raise the temperature of a thermistor 1°c above the ambient. Web the 10k value is the reference resistance of your thermistor at 25 o c only.

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T(°C) R(Kω) T(°C) R(Kω) T(°C)

Only thermistors with ±0.2°c interchangeability are available encased in teflon as standard parts. Temperature/resistance figures are the same for both types. Bapi thermistors are thermally sensitive resistors known for exhibiting a large change in resistance with only a small change in temperature. 5,000 feet [1,525 m] for 24 ga wire and up.

Resistance @ 25°C = 10Kω Bb25/50 =3950K.

Web in the typical control range (0°c to 40°c), 10k thermistors offer good sensitivity to changes in temperature, and this is the range in which most 10k thermistors are typically used. ±0.22°c @ 25°c (±0.4°f @ 77°f); Web the amount that the resistance characteristics of a thermistor will change. Over a ten year span, bapi thermistors will not change more than 0.1°c.

Of Teflon Encased Thermistors Add 100 To Part No.

Bapi thermistors are thermally sensitive resistors known for exhibiting a large change in resistance with only a small change in temperature. 10k thermistors can be used at much higher temperatures, but will suffer poorer temperature stability performance because of the lower sensitivity. The graph below illustrates the resistance of the thermistor as a function of the temperature: The resistance of the thermistor will change according to temperature, and should track with the following table.

Web Data In Brown Refer To Thermistors With ±0.1°C Interchangeability.

The graph shows the change in the resistance with respect to the temperature, the curve is for ntc type thermistors. The mounting package may further Web thermistors work by translating temperature into resistance, with resistance decreasing as temperature increases (sometimes referred to as a ‘negative temperature coefficient’, or ntc, thermistors). Please note that the controller may not be able to use the full temperature range shown in the table.

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