MF0207FTE52-4K53 Allicdata Electronics
Allicdata Part #:

MF0207FTE52-4K53-ND

Manufacturer Part#:

MF0207FTE52-4K53

Price: $ 0.01
Product Category:

Resistors

Manufacturer: Yageo
Short Description: RES MF 0.6W 1% AXIAL
More Detail: 4.53 kOhms ±1% 0.6W Through Hole Resistor Axial M...
DataSheet: MF0207FTE52-4K53 datasheetMF0207FTE52-4K53 Datasheet/PDF
Quantity: 1000
5000 +: $ 0.00459
Stock 1000Can Ship Immediately
$ 0.01
Specifications
Series: MF0
Packaging: Tape & Box (TB) 
Part Status: Active
Resistance: 4.53 kOhms
Tolerance: ±1%
Power (Watts): 0.6W
Composition: Metal Film
Features: --
Temperature Coefficient: ±50ppm/°C
Operating Temperature: -55°C ~ 155°C
Package / Case: Axial
Supplier Device Package: Axial
Size / Dimension: 0.094" Dia x 0.248" L (2.40mm x 6.30mm)
Height - Seated (Max): --
Number of Terminations: 2
Description

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Through Hole Resistors are an essential component of many electronic devices. MF0207FTE52-4K53 is a high-end, four-terminal, through-hole resistor from Yageo. It is a precision resistor that provides accuracy and reliability in complex applications. This resistor is designed to meet the needs of a wide range of industries, making it one of the most popular and widely used resistors in the market.

The four-terminal construction of the MF0207FTE52-4K53 allows for better heat distribution, making it an ideal choice for temperature sensitive applications. In addition, its superior thermal shock, thermal cycling, and overload protection make it a reliable choice. The four-terminal construction also allows for superior flexibility in constructing networks and circuits with the resistor. Its size and construction make it well-suited for applications with space constraints, such as automotive and aerospace. Its build also enables better temperature stability.

The MF0207FTE52-4K53 is ideal for applications in the industrial, automotive, aerospace, military, and consumer markets. It can be used in a variety of circuits such as power supplies, motor drives, power control systems, communications, digital circuits, and audio systems. This four-terminal resistor is generally used in high-precision applications such as laser feedback systems and measuring devices. Its wide operating temperature range (between -40°C to +125°C) makes it a reliable option for industrial and automotive applications.

The MF0207FTE52-4K53 is designed with a three-layer construction, comprising of two layers of ceramic material with a layer of resistor material in between. This results in minimal temperature coefficient of resistance. The resistor material provides high precision and stability. It also features a high stability drift, low temperature coefficient, and low voltage coefficient. Additionally, this four-terminal resistor is designed to withstand voltage spikes thanks to its superior withstand voltage (250Vdc).

The working principle of the MF0207FTE52-4K53 is simple. When an electric current flows through the resistor, it’s resistance to the current flow causes an opposition to that flow. This voltage drop between the terminals of the resistor is called voltage drop or potential drop. This drop across the terminals of the resistor is the main working principle of the resistor. The value of the voltage drop depends on the resistance of the resistor material, the current flow, and the temperature of the resistor. This voltage drop helps to determine the current flow in the circuit and ultimately affects the performance of the circuit.

In conclusion, the MF0207FTE52-4K53 is a four-terminal, through-hole resistor, designed to suit the needs of many industries. It features a three-layer construction, thermal shock and overload protection, and superior flexibility in constructing networks and circuits. Its wide operating temperature range makes it an ideal choice for temperature sensitive applications, while its high stability drift, low temperature coefficient, and low voltage coefficient make it a reliable option for high-precision applications. Its main working principle is voltage drop, which helps to determine the current flow in the circuit and ultimately affects the performance of the circuit.

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

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