SOMC16014K75FEA Allicdata Electronics
Allicdata Part #:

SOMC4.75KETR-ND

Manufacturer Part#:

SOMC16014K75FEA

Price: $ 0.56
Product Category:

Resistors

Manufacturer: Vishay Dale
Short Description: RES ARRAY 15 RES 4.75KOHM 16SOIC
More Detail: 4.75k Ohm ±1% 80mW Power Per Element Bussed 15 Res...
DataSheet: SOMC16014K75FEA datasheetSOMC16014K75FEA Datasheet/PDF
Quantity: 1000
2000 +: $ 0.50375
6000 +: $ 0.49783
Stock 1000Can Ship Immediately
$ 0.56
Specifications
Number of Pins: 16
Height - Seated (Max): 0.090" (2.29mm)
Size / Dimension: 0.440" L x 0.220" W (11.18mm x 5.59mm)
Supplier Device Package: --
Package / Case: 16-SOIC (0.220", 5.59mm Width)
Mounting Type: Surface Mount
Applications: --
Operating Temperature: -55°C ~ 150°C
Temperature Coefficient: ±100ppm/°C
Power Per Element: 80mW
Series: SOMC
Resistor-Ratio-Drift: --
Resistor Matching Ratio: --
Number of Resistors: 15
Tolerance: ±1%
Resistance (Ohms): 4.75k
Circuit Type: Bussed
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Introduction

The SOMC16014K75FEA is a resistive network that can be used in a variety of applications. It functions as a voltage divider network, allowing voltage to be divided between several different lines. It works as a switch to distribute input power to different branches while providing different voltages. This allows a designer to reduce the number of different power sources they need, and to easily implement power control between different branches.

Operation and Principle

The SOMC16014K75FEA consists of up to 8 resistors that are connected in a serial-parallel configuration. This allows the network to divide the input voltage into multiple different voltage levels. These different voltage levels can be used to power or control different circuits or components. The resistors are connected together in a serial-parallel configuration that allows the voltage at each node to be determined by the resistance values of the network. The resistance values can be adjusted so that the output voltage can be distributed to each different branch. The resistance values can also be adjusted to provide different current loads on the different branches.The operation of the SOMC16014K75FEA is dependent on the resistor values, which can range from 0 ohms to hundreds of kilohms. By changing the resistance values in the network, the output voltage can be adjusted to change the output power.

Applications

The SOMC16014K75FEA has numerous different applications. It is used in voltage regulation, power distribution, and current control applications. These applications are used in a variety of industries, including automotive, telecommunications, and industrial. In automotive applications, the SOMC16014K75FEA can be used to power electronic components such as lighting or air conditioning systems. By adjusting the resistance values in the network, the power distribution can be optimized for each component. This allows the power delivery to be precisely controlled. In telecommunications, the SOMC16014K75FEA is used to optimize the voltage delivery to multiple branches. This allows the power delivery to be accurately distributed to each branch, ensuring that each branch receives the voltage it needs. This can reduce power loss, which is important in telecommunications networks.In industrial applications, the SOMC16014K75FEA can be used to regulate voltage and current in different circuits and to provide precise power delivery. By adjusting the resistance values, the voltage and current can be precisely adjusted to power different components. This can improve efficiency in industrial networks.

Conclusion

The SOMC16014K75FEA resistor network is a versatile tool that can be used to distribute voltage into multiple different branches. It can be used to regulate voltage and current, to distribute power, and to control power delivery. It is used in a variety of applications, including automotive, telecommunications, and industrial. By adjusting the resistor values, the voltage and current can be precisely adjusted to power different components. This allows for precise control of power distribution and improved efficiency.

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

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