RN60C2432CB14 Allicdata Electronics
Allicdata Part #:

RN60C2432CB14-ND

Manufacturer Part#:

RN60C2432CB14

Price: $ 0.63
Product Category:

Resistors

Manufacturer: Vishay Dale
Short Description: RES 24.3K OHM 1/4W .25% AXIAL
More Detail: 24.3 kOhms ±0.25% 0.25W, 1/4W Through Hole Resisto...
DataSheet: RN60C2432CB14 datasheetRN60C2432CB14 Datasheet/PDF
Quantity: 1000
100 +: $ 0.56700
300 +: $ 0.48600
500 +: $ 0.40500
1000 +: $ 0.35100
5000 +: $ 0.34020
Stock 1000Can Ship Immediately
$ 0.63
Specifications
Series: Military, MIL-R-10509/1, RN60
Packaging: Bulk 
Part Status: Active
Resistance: 24.3 kOhms
Tolerance: ±0.25%
Power (Watts): 0.25W, 1/4W
Composition: Metal Film
Features: Flame Retardant Coating, Military, Moisture Resistant, Safety
Temperature Coefficient: ±50ppm/°C
Operating Temperature: -65°C ~ 175°C
Package / Case: Axial
Supplier Device Package: Axial
Size / Dimension: 0.145" Dia x 0.344" L (3.68mm x 8.74mm)
Height - Seated (Max): --
Number of Terminations: 2
Failure Rate: --
Description

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The RN60C2432CB14 through hole resistor is a special purpose fixed resistor with a high-precision, low-noise design made for high-reliability applications. This type of resistor has become increasingly popular in the design of precision electronic components. The resistor is capable of operating with an accuracy of 0.1% or better in a wide range of temperature and environmental conditions, making it suitable for a variety of demanding applications.

The resistor consists of a tapered metal film on a ceramic substrate with patented heat treatment and low-noise design. The resistor has a temperature coefficient of resistance (TCR) of typically less than 10 ppm/°C at temperatures from -55°C to +150°C and allows for precise adjustments over this temperature range. This combined with its high stability and low noise performance make it ideal for applications where precision and reliability are needed.

The RN60C2432CB14 through hole resistor can be used in a wide variety of fields. It can be used for power supplies, motor control, telecommunication systems, signal processing, and industrial control systems, among others. Its low temperature coefficient of resistance makes it suitable for use in temperature-sensitive devices, as it is able to maintain a constant and precise resistance over a wide temperature range. This makes it an excellent choice for use in precision measurement systems and precision circuit designs.

The RN60C2432CB14 through hole resistor also has several features which make it an outstanding choice for applications where low-level and high-voltage signals need to be kept separate. The resistor has a low ESR, meaning it is able to pass low-level signals without introducing unwanted noise. Additionally, it has a high surge voltage rating, which is useful in applications where high, transient voltage spikes need to be handled with precision. The resistor is also able to withstand voltage spikes up to 100V.

The working principle of the RN60C2432CB14 through hole resistor is based on Ohm\'s law. Ohm\'s law states that the voltage across a resistor is equal to the current flowing through it multiplied by its resistance. This is the fundamental law upon which all electrical circuits are built. The amount of current flow through the resistor is in proportion to the voltage applied to it, and this is determined by its resistance value. This resistance value can be chosen to provide the precision current and voltage values needed for a particular application.

In summary, the RN60C2432CB14 through hole resistor is a high-precision, low-noise resistor designed for high-reliability applications. It has a low temperature coefficient of resistance, meaning it is able to maintain a constant and precise resistance over a wide temperature range. Additionally, it features a low ESR and a high surge voltage rating, making it suitable for use in precision measurement systems and precision circuit designs. The resistor operates on the principle of Ohm\'s law, where the voltage across the resistor is proportional to the current flowing through it multiplied by its resistance.

The specific data is subject to PDF, and the above content is for reference

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