RM2012A-102/103-PBVW10 Allicdata Electronics
Allicdata Part #:

RM20A1.0K/10KPTR-ND

Manufacturer Part#:

RM2012A-102/103-PBVW10

Price: $ 0.28
Product Category:

Resistors

Manufacturer: Susumu
Short Description: RES NETWORK 2 RES MULT OHM 0805
More Detail: 1k, 10k Ohm ±0.1% 50mW Power Per Element Voltage D...
DataSheet: RM2012A-102/103-PBVW10 datasheetRM2012A-102/103-PBVW10 Datasheet/PDF
Quantity: 1000
1000 +: $ 0.25137
Stock 1000Can Ship Immediately
$ 0.28
Specifications
Number of Pins: 4
Height - Seated (Max): 0.022" (0.55mm)
Size / Dimension: 0.079" L x 0.049" W (2.00mm x 1.25mm)
Supplier Device Package: 0805
Package / Case: 0805 (2012 Metric), Long Side Terminals
Mounting Type: Surface Mount
Applications: Automotive AEC-Q200
Operating Temperature: -55°C ~ 155°C
Temperature Coefficient: ±25ppm/°C
Power Per Element: 50mW
Series: RM
Resistor-Ratio-Drift: --
Resistor Matching Ratio: --
Number of Resistors: 2
Tolerance: ±0.1%
Resistance (Ohms): 1k, 10k
Circuit Type: Voltage Divider
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Resistor Networks, Arrays, and the RM2012A-102/103-PBVW10 are part of the discrete element classification of resistors. These types of resistors are often used in electronic circuits to control the voltage or current levels. The RM2012A-102/103-PBVW10 is a precision resistor network that can be used for various applications. This article will discuss the application fields and working principles of the RM2012A-102/103-PBVW10.

Resistor networks are composed of multiple resistors that are connected together in a particular way. The resistance value of a network is determined by the way the resistors are connected and the values of the individual resistors. In the case of the RM2012A-102/103-PBVW 10, the resistors are arranged in an array that is 2x2 and 12x12 in size. This array is composed of 48 individual resistors that have resistance values ranging from 0.001 Ohms to 10,000 Ohms.

The RM2012A-102/103-PBVW10 is designed to have low power dissipation and high accuracy. It is also highly reliable, with an excellent temperature coefficient. In addition, the RM2012A-102/103-PBVW10 has a high dynamic range of operation and can be used in a wide variety of applications. These include any circuit that needs precise voltage and/or current control. Some of the typical applications of this resistor network are voltage regulation, current sensing, and level shifting.

The RM2012A-102/103-PBVW10 has several features that make it an ideal choice for such applications. First of all, it has a very low noise floor, which allows for precise current and voltage control. It also has low power dissipation, making it more efficient than traditional resistor networks. Moreover, it has excellent temperature stability, ensuring that the resistor network will perform well in a variety of environmental conditions. Finally, it has a high-precision construction which allows for excellent accuracy and repeatability.

The working principle of the RM2012A-102/103-PBVW10 is based on the fact that the resistance of a resistor is proportional to its temperature coefficient. When the temperature of a resistor changes, the resistance of the resistor changes accordingly. The RM2012A-102/103-PBVW10 takes advantage of this fact by combining multiple resistors with different temperature coefficients into one resistive network. This network is then arranged in a precise pattern which ensures that the resistance of the network becomes a function of the temperature coefficient. By carefully controlling the temperature coefficient of each resistor, the resistance of the network can be precisely controlled, allowing for very precise control of the applied current or voltage.

In conclusion, the RM2012A-102/103-PBVW10 is a precision resistor network that can be used for a variety of applications. It is composed of an array of 48 resistors that have resistance values ranging from 0.001 Ohms to 10,000 Ohms. The RM2012A-102/103-PBVW10 has a low power dissipation, high accuracy, and excellent temperature stability. Its working principle is based on the fact that the resistance of a resistor is proportional to its temperature coefficient. By precisely controlling the temperature coefficient of each resistor, the resistance of the network can be controlled, allowing for very precise control of applied current or voltage.

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

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