
Allicdata Part #: | RWR71S5000FSB12-ND |
Manufacturer Part#: |
RWR71S5000FSB12 |
Price: | $ 2.64 |
Product Category: | Resistors |
Manufacturer: | Vishay Dale |
Short Description: | RES 500 OHM 2W 1% WW AXIAL |
More Detail: | 500 Ohms ±1% 2W Through Hole Resistor Axial Milita... |
DataSheet: | ![]() |
Quantity: | 1000 |
100 +: | $ 2.39760 |
300 +: | $ 2.17283 |
500 +: | $ 2.02297 |
1000 +: | $ 1.87312 |
Series: | Military, MIL-PRF-39007, RWR71S |
Packaging: | Bulk |
Part Status: | Active |
Resistance: | 500 Ohms |
Tolerance: | ±1% |
Power (Watts): | 2W |
Composition: | Wirewound |
Features: | Military, Moisture Resistant |
Temperature Coefficient: | ±20ppm/°C |
Operating Temperature: | -55°C ~ 250°C |
Package / Case: | Axial |
Supplier Device Package: | Axial |
Size / Dimension: | 0.187" Dia x 0.812" L (4.75mm x 20.62mm) |
Height - Seated (Max): | -- |
Number of Terminations: | 2 |
Failure Rate: | S (0.001%) |
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Through Hole Resistors are commonly used in electronic and power electronic components. RWR71S5000FSB12 is an example of a through hole resistor, and it is widely used in a variety of applications. This article will discuss the application fields of the RWR71S5000FSB12 and its working principle.
The RWR71S5000FSB12 through hole resistor is typically employed for voltage divider circuits, snubber circuits, switching loads and power circuits. This type of resistor is also commonly used as voltage-drop sensing resistors, often forming part of a voltage-sensing circuit used in power supply designs. Moreover, in power electronic systems, the RWR71S5000FSB12 through hole resistor is often employed in protection and voltage-regulation circuits. Additionally, these resistors are also frequently utilized in various types of protection boards and amplifiers.
The RWR71S5000FSB12 through hole resistor is a sturdy, reliable, and often highly efficient device. It exhibits good resistance to thermal shock, and has high tolerance for humidity and temperature changes. This is important when used in areas where power fluctuation is a factor. Furthermore, the device has a relatively low dissipative power rating and excellent overall performance. Additionally, the RWR71S5000FSB12 through hole resistor has a high accuracy and low power consumption, making it an ideal choice for many applications.
The RWR71S5000FSB12 through hole resistor works on the principle of an electrical resistance. It operates by creating a voltage drop across its two ends when a small electrical current passes through it. This voltage drop is proportional to the size of the resistance. The resistor is composed of two semi-conductor plates (terminals) separated by an insulator, also known as the dielectric. The semi-conductor plates are covered with a thin insulating film to prevent arcing. The distance between the plates, as well as the size of the dielectric, determines the resistance of the resistor.
In operation, when a small current passes through the resistor, the voltage drop created across its terminals can be measured using an ohmmeter or other type of digital ammeter. As the current intensity increases, it can cause the resistor to heat up, and the resistance of the resistor will decrease. The heat dissipation of the resistor can be controlled by selecting the appropriate size and type of dielectric. Additionally, by changing the size of the wire and the distance between the two semi-conductor plates, the resistance of the resistor can be adjusted as needed.
In conclusion, the RWR71S5000FSB12 through hole resistor is an important component used in a wide range of electronic and power electronic applications. It works on the principle of an electrical resistance, and is composed of two semi-conductor plates separated by an insulator. The resistor has a high accuracy and low power consumption, making it an ideal choice for many applications. Furthermore, it has good resistance to thermal shock and has a high tolerance for humidity and temperature changes, making it an excellent choice for use in areas where power fluctuation is a factor.
The specific data is subject to PDF, and the above content is for reference
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