HVR2500008873FR500 Allicdata Electronics
Allicdata Part #:

PPCQF887KTR-ND

Manufacturer Part#:

HVR2500008873FR500

Price: $ 0.03
Product Category:

Resistors

Manufacturer: Vishay BC Components
Short Description: RES 887K OHM 1/4W 1% AXIAL
More Detail: 887 kOhms ±1% 0.25W, 1/4W Through Hole Resistor Ax...
DataSheet: HVR2500008873FR500 datasheetHVR2500008873FR500 Datasheet/PDF
Quantity: 1000
5000 +: $ 0.02883
10000 +: $ 0.02819
25000 +: $ 0.02723
50000 +: $ 0.02670
125000 +: $ 0.02644
Stock 1000Can Ship Immediately
$ 0.03
Specifications
Series: HVR25
Packaging: Tape & Reel (TR) 
Part Status: Active
Resistance: 887 kOhms
Tolerance: ±1%
Power (Watts): 0.25W, 1/4W
Composition: Metal Film
Features: Flame Retardant Coating, High Voltage, Pulse Withstanding, Safety
Temperature Coefficient: ±200ppm/°C
Operating Temperature: -55°C ~ 155°C
Package / Case: Axial
Supplier Device Package: Axial
Size / Dimension: 0.098" Dia x 0.256" L (2.50mm x 6.50mm)
Height - Seated (Max): --
Number of Terminations: 2
Failure Rate: --
Description

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Through hole resistors are an important component used in many electrical and electronic systems. The HVR2500008873FR500, in particular, is a unique type of through hole resistor with a specific application field and working principle.

The HVR2500008873FR500 is a high power variable resistor designed for use in high temperatures, up to 2000˚C. It has a resistance range of 0.5 ohm to 10 megohms and is designed for use with rated power dissipation of 25 watts. This resistor is suitable for applications in automotive, aerospace, and industrial systems.

The HVR2500008873FR500 has a unique structure, which consists of a metal or ceramic core encased in a ceramic tube with two connectors at each end. The connectors are usually made of nickel or titanium and have various size and shape options to facilitate different uses. The core of the resistor is made from various materials such as carbon, metal, or ceramic and is filled with a suitable electrolyte.

The construction of the resistor enables it to have an electrical connection and ensures that the right amount of power reaches the load. The core material absorbs the electrical noise in the resistor, which helps to reduce the interference in the system. This also reduces the current loss due to eddy currents, in which an induced current flows in the opposite direction to the main current.

In addition to having a high heat dissipation capacity, the HVR2500008873FR500 also has a high resistance precision, making it suitable for precision control. It also has a small size, lightweight design, and a long service life, making it an ideal choice for various applications.

The HVR2500008873FR500 resistor is typically used in motor controls, power supplies, relay applications, and various kinds of switches. This resistor is also used in high temperature applications such as power heating systems and components used in high pressure compressors.

The HVR2500008873FR500 is capable of controlling current that is higher than its rated wattage, making it an ideal choice for many applications. Its thermal characteristics also make it suitable for high temperature applications. Additionally, its low cost ensures that it is a cost-effective solution to a range of electrical and electronic engineering applications.

The working principle of the HVR2500008873FR500 is based on Ohm’s law. The resistor converts electrical energy to heat energy according to the power and temperature of the current applied. The heat energy dissipated to the surrounding causes the resistance to change according to the temperature. As a result, the resistor can be used to control the amount of current or voltage flowing through it, depending on its resistance.

The HVR2500008873FR500 is a high power variable resistor designed for use in high temperature applications. It is suitable for precision control and high temperature applications and has a long service life. Additionally, its small size and lightweight feature makes it suitable for various applications. The working principle of the resistor is based on Ohm’s law, which leads to a change in resistance according to the current passing through it.

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

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