766161391GPTR13 Allicdata Electronics
Allicdata Part #:

766161391GPTR13-ND

Manufacturer Part#:

766161391GPTR13

Price: $ 0.46
Product Category:

Resistors

Manufacturer: CTS Resistor Products
Short Description: RES ARRAY 15 RES 390 OHM 16SOIC
More Detail: 390 Ohm ±2% 80mW Power Per Element Bussed 15 Resis...
DataSheet: 766161391GPTR13 datasheet766161391GPTR13 Datasheet/PDF
Quantity: 1000
3000 +: $ 0.41749
Stock 1000Can Ship Immediately
$ 0.46
Specifications
Number of Pins: 16
Height - Seated (Max): 0.069" (1.75mm)
Size / Dimension: 0.390" L x 0.154" W (9.90mm x 3.90mm)
Supplier Device Package: --
Package / Case: 16-SOIC (0.154", 3.90mm Width)
Mounting Type: Surface Mount
Applications: --
Operating Temperature: -55°C ~ 125°C
Temperature Coefficient: ±100ppm/°C
Power Per Element: 80mW
Series: 766
Resistor-Ratio-Drift: --
Resistor Matching Ratio: --
Number of Resistors: 15
Tolerance: ±2%
Resistance (Ohms): 390
Circuit Type: Bussed
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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766161391GPTR13 Resistor Networks, Arrays are an important component of electronic circuitry and are used to regulate and control the current passing through electrical circuits. Most commonly, these resistor networks are employed to limit the voltage that can pass through a circuit. By utilizing a combination of resistors, variance between two points in a circuit can be controlled and limited accordingly.

The most basic configuration of a resistor network is to have two resistor networks in parallel. This configuration can be used to reduce the voltage across a circuit or can be used to increase it. By having two resistors in parallel, the maximum voltage passing through the circuit is reduced, but the current flowing through it is unchanged. The advantage of having two resistor networks in parallel is that the resulting voltage drop is limited, but there is still enough current for the circuit to operate normally. Another possible configuration is to have a single resistor network in serial. This configuration can be used to control the current passing through a circuit. By having a single resistor in series, the maximum current through the circuit is limited, but the voltage is left unchanged.

A variety of different types of resistor networks are available, such as those with two, four or eight resistors, as well as those with integrated capacitors and switches. Each type has its own advantages and disadvantages. For example, two resistor networks are not very efficient, but they are the easiest to install and require the least amount of maintenance. On the other hand, four and eight resistor networks are much more efficient but require more complicated wiring.

The working principle of resistor networks can be quite simple. All resistor networks utilize Ohm’s Law, which states that the voltage across a resistor is proportional to the current passing through it. This can be used to regulate the current and voltage in a circuit. By adding or subtracting resistors, the voltage and current in a circuit can be precisely regulated.

The most common applications of resistor networks and arrays include managing power within a circuit, limiting current through a circuit, regulating voltage and current levels, providing impedance compensation, stabilizing DC voltage levels, and signal conditioning. Resistor networks and arrays can also provide noise reduction in audio systems, as well as filtering in radio receivers and transmitters. In addition, resistor networks are extensively used in medical electronics, test and measurement equipment, and aerospace & defense applications.

In summary, resistor networks and arrays are an essential component of most types of electronic circuitry. By combining several resistors in different configurations, voltage and current flow can be accurately regulated and controlled. Resistor networks are widely used in a variety of applications, including managing power, limiting current, stabilizing DC voltage, and providing noise reduction.

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

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