CPCC0315R00KE66 Allicdata Electronics
Allicdata Part #:

CPCC0315R00KE66-ND

Manufacturer Part#:

CPCC0315R00KE66

Price: $ 0.13
Product Category:

Resistors

Manufacturer: Vishay Dale
Short Description: RES 15 OHM 3W 10% RADIAL
More Detail: 15 Ohms ±10% 3W Through Hole Resistor Radial Flame...
DataSheet: CPCC0315R00KE66 datasheetCPCC0315R00KE66 Datasheet/PDF
Quantity: 1000
1000 +: $ 0.11447
5000 +: $ 0.10823
Stock 1000Can Ship Immediately
$ 0.13
Specifications
Series: CPCC
Packaging: Bulk 
Part Status: Active
Resistance: 15 Ohms
Tolerance: ±10%
Power (Watts): 3W
Composition: Wirewound
Features: Flame Proof, Safety
Temperature Coefficient: ±400ppm/°C
Operating Temperature: -65°C ~ 275°C
Package / Case: Radial
Supplier Device Package: Radial Lead
Size / Dimension: 0.472" L x 0.315" W (12.00mm x 8.00mm)
Height - Seated (Max): 0.984" (24.99mm)
Number of Terminations: 2
Failure Rate: --
Description

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Through Hole Resistors are components typically used in an electrical or electronic circuit for controlling the flow of current. They are also commonly used to alter the current’s voltage, and to act as a test point in a circuit, allowing technicians to measure the voltage, current, or resistance of the circuit. This type of component is popularly used in many kinds of industrial applications. One of the more advanced and recently released resistors in the market is the CPCC0315R00KE66.

CPCC0315R00KE66 is a through-hole resistor manufactured by Caddock electron components. It has a maximum power dissipation rating of 300mW (at +25°C ambient temperature). It features a three-terminal, three-dimensional, non-inductive construction. This makes it suitable for use in very high-frequency applications, such as switching power supplies and power amplifiers. It is also characterized by its low noise, low temperature coefficient and low-inductance parasitics.

The CPCC0315R01KE66 has a temperature coefficient of 0.001 percent per degree Celsius. In comparison, this is nearly twice as low as a conventional wirewound resistor. This ensures excellent power dissipation, stronger protection against changes in impedance with temperature changes, higher breakdown voltage ratings, and superior thermal performance.

This resistor also features a high-precision construction for increased accuracy and consistent performance. Its small size makes it suitable for use in densely populated boards, and its superior stability in environmental changes ensure reliable operation, even in extreme conditions. It also boasts a long working life, thanks to its long-term reliability and its ability to withstand harsh environmental and electric conditions.

In terms of working principle, through-hole resistors are based on the Ohm’s Law which states that the current flowing through a conductor is directly proportional to the voltage applied across it works with a potential difference applied across a resistance leads to a current flow. This flow of current is then proportional to the resistance value. The CPCC0315R00KE66 is a precision, through-hole resistor that follows this principle.

As a three-terminal, three-dimensional, non-inductive component, it is well-suited for use in high-frequency circuits. It can combine with passive capacitors and other thru-hole resistors to create great attenuators or voltage dividers, as well as limit the current to a certain level by using a low-ohmic resistor. Given its high stability, this component is ideal for use in applications that need long-term precision and consistency, such as opto-electronics and medical instrumentation.

To sum it up, CPCC0315R00KE66 is a through-hole resistor manufactured by Caddock electron components that features a three-terminal, three-dimensional, non-inductive construction. It has a maximum power dissipation rating of 300mW (at +25°C ambient temperature) and a temperature coefficient of 0.001 percent per degree Celsius. Its high-precision construction ensures accuracy and consistent performance, while its small size and superior stability in environmental changes make it suitable for use in many different applications. Finally, it works based on the principle of Ohm’s Law in which the current flowing through a conductor is proportional to the voltage applied across it.

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

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