767161271GP Allicdata Electronics
Allicdata Part #:

767161271GP-ND

Manufacturer Part#:

767161271GP

Price: $ 0.52
Product Category:

Resistors

Manufacturer: CTS Resistor Products
Short Description: RES ARRAY 15 RES 270 OHM 16SOIC
More Detail: 270 Ohm ±2% 100mW Power Per Element Bussed 15 Resi...
DataSheet: 767161271GP datasheet767161271GP Datasheet/PDF
Quantity: 1000
1032 +: $ 0.46622
Stock 1000Can Ship Immediately
$ 0.52
Specifications
Number of Pins: 16
Height - Seated (Max): 0.093" (2.36mm)
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 ~ 125°C
Temperature Coefficient: ±100ppm/°C
Power Per Element: 100mW
Series: 767
Resistor-Ratio-Drift: --
Resistor Matching Ratio: --
Number of Resistors: 15
Tolerance: ±2%
Resistance (Ohms): 270
Circuit Type: Bussed
Part Status: Active
Packaging: Tube 
Description

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GP (General Purpose) resistors are composed of resistor networks, arrays, and discrete components. They are designed to provide the right resistance value in various applications, and to reduce the cost and complexity of components in embedded systems. GP resistors come in both linear and non-linear technologies, including integrated resistor networks, resistors with non-linear characteristics, and combinations of both.

Resistor Networks

GP resistor networks typically contain several resistors connected in different configurations to create a single resistance value. The resistors can be connected in series, parallel, combined series and parallel, multiplexed, and as various combinations of these configurations. Each configuration has specific advantages and disadvantages that can be taken into account when selecting the right GP resistor for an application. For example, if a relatively high resistance is needed but space is limited, then a multiplexed resistor network might be used.

Many resistor networks also contain passive elements like capacitors and inductors in order to provide additional control over the current and/or voltage. This makes them suitable for use in a variety of applications, from telecoms to power supplies. In addition, they can be used in multiplexing, low-noise amplification, and other signal processing applications.

Arrays

GP resistor arrays are composed of several discrete resistors connected together in various configurations to form a larger resistance value. They are often referred to as “interconnection blocks,” and are commonly used for high-performance applications. Arrays can be designed to provide virtually any resistance values needed, including those needed for high-current applications and isolated signal applications.

Like resistor networks, arrays also contain passive elements to increase the accuracy and improve the performance of the circuit. For example, some resistor arrays contain additional capacitors or inductors to help control the flow of current or voltage, while others contain switches to allow for multiple configurations. Additionally, some arrays also contain other elements to provide isolation or temperature compensation.

Working Principle

GP resistors generally make use of either linear or non-linear technologies, with different effects depending on the type of application. In most cases, the resistor will rely on Ohm’s law, which states that the current is equal to the voltage divided by the resistance. However, in some cases, the resistor will use non-linear principles in order to achieve the desired effect.

For example, resistors with non-linear characteristics are designed to provide a variable resistance value depending on the input voltage or current. This is particularly useful in circuits where the load is not constant, such as those found in many modern audio systems. By varying the resistance based on the input signal, the power requirements of the system can be more efficiently managed.

In addition, some resistors can be used to create complex waveforms or filter signals. This is because the resistance value of the resistor will affect how quickly and easily the signal passes through it. By changing the resistance value of the resistor, the amplitude, frequency, and direction of the signal can be controlled, which can be useful for a variety of applications.

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

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