RLR20C4R30GRR36 Allicdata Electronics
Allicdata Part #:

RLR20C4R30GRR36-ND

Manufacturer Part#:

RLR20C4R30GRR36

Price: $ 0.86
Product Category:

Resistors

Manufacturer: Vishay Dale
Short Description: RES 4.3 OHM 2% 1/2W AXIAL
More Detail: 4.3 Ohms ±2% 0.5W, 1/2W Through Hole Resistor Axia...
DataSheet: RLR20C4R30GRR36 datasheetRLR20C4R30GRR36 Datasheet/PDF
Quantity: 1000
2500 +: $ 0.77625
5000 +: $ 0.76383
Stock 1000Can Ship Immediately
$ 0.86
Specifications
Series: Military, MIL-PRF-39017/02, RLR20
Packaging: Tape & Reel (TR) 
Part Status: Active
Resistance: 4.3 Ohms
Tolerance: ±2%
Power (Watts): 0.5W, 1/2W
Composition: Metal Film
Features: Military, Moisture Resistant, Weldable
Temperature Coefficient: ±100ppm/°C
Operating Temperature: -65°C ~ 150°C
Package / Case: Axial
Supplier Device Package: Axial
Size / Dimension: 0.138" Dia x 0.375" L (3.51mm x 9.53mm)
Height - Seated (Max): --
Number of Terminations: 2
Failure Rate: R (0.01%)
Description

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Through Hole Resistors

A through hole resistor is a type of discrete electronic component that is mounted on a printed circuit board and designed for usage in high current, low voltage applications. Through hole resistors come in a variety of shapes and sizes and are able to withstand high temperatures and prolonged use. Through hole resistors are generally composed of a small length of copper wire or a small amount of carbon that forms the core, as well as a number of layers of insulation to protect the component from short circuits and other electrical hazards. The core is then covered with a plastic or ceramic outer shell in order to provide additional insulation.

The RLR20C4R30GRR36 is a through hole resistor that provides reliable, low-cost performance for a variety of applications. This type of resistor can be used in power controllers, motor drivers, brushed motor applications, and many other kinds of analog and digital circuits. In order to understand the working principle of the RLR20C4R30GRR36, one must first understand Ohm\'s law, which states that the current (I) through a resistor is related to the voltage (V) across the resistor by the following equation: I=V/R. This equation states that the voltage across a resistor is inversely proportional to the amount of current flowing through it. Therefore, when the current flowing through a resistor increases, the voltage across the resistor must also increase.

Through hole resistors, such as the RLR20C4R30GRR36, can be used in a variety of applications, including temperature sensors, power controllers, noise reduction circuits, and more. In particular, it is well-suited for applications that require precise current control as well as low power consumption. For example, the RLR20C4R30GRR36 can be used in temperature sensors to prevent overheating of the sensor and to control the current flowing through the circuit. The resistor can also be used to reduce noise in digital circuits, as it acts as a low-pass filter and allows only the desired signal to pass.

Furthermore, the RLR20C4R30GRR36 can be used in motor driver circuits to control the current to the motor and prevent overheating. By controlling the current to the motor, the motor can be operated at the desired speed without exceeding its maximum operating temperature. In addition, through hole resistors such as the RLR20C4R30GRR36 can be used in power controllers to reduce power consumption and improve efficiency. By limiting the amount of power lost through heat and providing precise control of the current, power consumption can be reduced.

Overall, the RLR20C4R30GRR36 is a versatile and reliable through hole resistor that is well-suited for a variety of applications. By understanding the working principle of Ohm\'s law, one can determine how this type of resistor can be used to reduce power consumption, improve efficiency, and prevent overheating in a variety of circuits. The RLR20C4R30GRR36 is a reliable and cost-effective component that will help keep circuits running cool and efficient.

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

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