VI Series, NTC Thermistors

Results:
2
Manufacturer
Series
B Value Tolerance
Length - Lead Wire
Resistance in Ohms @ 25°C
Operating Temperature
B0/50
Resistance Tolerance
B25/100
Grade
Mounting Type
B25/75
Qualification
Package / Case
Power - Max
B25/50
B25/85
Results remaining2
Applied Filters:
VI
Select
ImageProduct DetailPriceAvailabilityECAD ModelMounting TypePower - MaxOperating TemperatureLength - Lead WireGradeSeriesResistance in Ohms @ 25°CResistance ToleranceB Value ToleranceB0/50B25/50B25/75B25/85B25/100Package / CaseQualification
GA10K3A1AM
1+
$8.4270
5+
$7.9589
10+
$7.4907
Quantity
500 Available
Can ship immediately
Ships from: HK
PCB Symbol, Footprint & 3D Model
Free Hanging
-
-40°C ~ 125°C
-
-
VI
10k
±0.05°C
±0.5%
-
-
-
3976K
-
Bead
-
11026046-00
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Free Hanging
-
-40°C ~ 125°C
3.00" (76.20mm)
-
VI
2.252k
±0.05°C
±0.32%
-
-
-
3976K
-
Bead
-

About  NTC Thermistors

NTC thermistors, also known as Negative Temperature Coefficient thermistors, are specialized components designed to exhibit a change in resistance corresponding to variations in temperature. These devices demonstrate a negative coefficient behavior, meaning that their resistance diminishes as the temperature they are exposed to rises. Commonly characterized by specific attributes, NTC thermistors are typically specified in terms of their base resistance value at a designated temperature, often set at 25°C. Additionally, they are defined by B values, which represent the performance curve illustrating the relationship between temperature and resistance, calibrated across two predetermined reference points. This unique property of NTC thermistors makes them valuable for a wide array of temperature sensing and control applications. Their ability to accurately and responsively adjust resistance in accordance with temperature fluctuations enables their use in fields such as automotive, consumer electronics, and industrial equipment, where precise temperature monitoring and regulation are essential for optimal performance and safety.