766143330GP Allicdata Electronics
Allicdata Part #:

766-143-R33P-ND

Manufacturer Part#:

766143330GP

Price: $ 1.02
Product Category:

Resistors

Manufacturer: CTS Resistor Products
Short Description: RES ARRAY 7 RES 33 OHM 14SOIC
More Detail: 33 Ohm ±2% 160mW Power Per Element Isolated 7 Resi...
DataSheet: 766143330GP datasheet766143330GP Datasheet/PDF
Quantity: 21
1 +: $ 0.92250
10 +: $ 0.81855
25 +: $ 0.75906
50 +: $ 0.71442
100 +: $ 0.62514
250 +: $ 0.53583
500 +: $ 0.44652
1000 +: $ 0.38698
5000 +: $ 0.37507
Stock 21Can Ship Immediately
$ 1.02
Specifications
Number of Pins: 14
Height - Seated (Max): 0.069" (1.75mm)
Size / Dimension: 0.341" L x 0.154" W (8.65mm x 3.90mm)
Supplier Device Package: --
Package / Case: 14-SOIC (0.154", 3.90mm Width)
Mounting Type: Surface Mount
Applications: --
Operating Temperature: -55°C ~ 125°C
Temperature Coefficient: ±200ppm/°C
Power Per Element: 160mW
Series: 766
Resistor-Ratio-Drift: --
Resistor Matching Ratio: --
Number of Resistors: 7
Tolerance: ±2%
Resistance (Ohms): 33
Circuit Type: Isolated
Part Status: Active
Packaging: Tube 
Description

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Resistor Networks, Arrays

A 766143330GP application field, or a resistor network, is a circuit built using resistors that are arranged in order of magnitude to create an array of resistors. The primary purpose of a resistor network is to reduce the magnitude of an electrical signal while preserving its overall shape. In doing so, the network can produce a wide range of differential and other effects.

One of the most common types of resistor networks is the precision resistive bridge, which can be used to measure the resistance of electrical devices. Resistor networks can also be used to measure levels of voltage and frequency. In addition, other bridge-type networks are used to measure temperature, capacitance and inductance.

Another application of resistor networks is to serve as signal filters for high-frequency signals. These networks can be designed to block high-frequency signals and thus reduce or eliminate interference with signal transmission. Additionally, they can be used to reduce the amount of noise in electronic devices.

Resistor networks can also be used to increase the power output of a device. This type of network can be designed to produce a higher current than the normal operating current by connecting a larger number of resistors. The result is a higher peak voltage, which can be used to increase the power output of a device.

Finally, resistor networks can also be used to provide a level of protection against electromagnetic interference. By using resistors that are placed in a relatively short distance from each other, the network is able to reduce the level of interference from external sources and thus protect electronic components from damage.

The working principle behind resistor networks is actually quite simple. All resistors in the network are connected in such a way that the current across each resistor is measured. The magnitude of the current is then determined by measuring the voltage across the resistor. By knowing the total resistance of the network, it is possible to calculate the total magnitude of the current through the network.

When designing a resistor network, it is important to take into account factors such as the maximum current that the network will require, the voltage drop across each resistor, and the desired frequency of operation. When all these factors are considered, it is possible to determine the type of resistor that should be used in order to achieve the desired effect.

In summary, resistor networks are an important component in many electronic devices, and can provide a range of benefits in terms of noise reduction, power-output enhancement, and protection against interference. By understanding the working principle of these networks, it is possible to design effective networks that maximize the device’s capabilities.

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

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