SR10-0.20-1% Allicdata Electronics

SR10-0.20-1% Resistors

Allicdata Part #:

SR10-0.20-FTR-ND

Manufacturer Part#:

SR10-0.20-1%

Price: $ 1.50
Product Category:

Resistors

Manufacturer: Caddock Electronics Inc.
Short Description: RES 0.2 OHM 1W 1% SR10
More Detail: 200 mOhms ±1% 1W Through Hole Resistor SR10 Curren...
DataSheet: SR10-0.20-1% datasheetSR10-0.20-1% Datasheet/PDF
Quantity: 1000
250 +: $ 1.36080
Stock 1000Can Ship Immediately
$ 1.5
Specifications
Series: SR
Packaging: Tape & Reel (TR) 
Part Status: Active
Resistance: 200 mOhms
Tolerance: ±1%
Power (Watts): 1W
Composition: Metal Element
Features: Current Sense, Moisture Resistant, Non-Inductive
Temperature Coefficient: -50/ +100ppm/°C
Operating Temperature: -15°C ~ 105°C
Package / Case: SR10
Supplier Device Package: SR10
Size / Dimension: 0.365" L x 0.090" W (9.27mm x 2.29mm)
Height - Seated (Max): 0.385" (9.78mm)
Number of Terminations: 4
Failure Rate: --
Description

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Through Hole Resistors, such as the SR10-0.20-1%, are an essential component of many electronic devices used in industries, laboratories, and research facilities. They are passive electronic components used to create resistance to electric energy and current flow. Resistors play an important role in controlling and limiting the current flow of electric circuits, which allows engineers to modify, evaluate, and control the flow of electricity with precision.

The SR10-0.20-1% is a through-hole resistor with a 10 ohm resistance, a tolerance of 0.20, and a 1% maximum deviation from the typical resistance of 10 ohms. It has an operating temperature range of -55°C to +125°C and a linear power rating of 0.075 watts (W). In terms of size, the SR10-0.20-1% has a length of 5mm and a diameter of 2.2mm. It is a compact component designed for through-hole mounting and is a common component in many electronic products, including radios, computers, and laptops.

In terms of function, resistors are used to reduce the current flow of electric circuits and for regulating the power in the circuit. They are also used to create noise, attenuation, and signal isolation. By limiting the current flow of electric circuits, engineers are able to reduce the noise of the circuitry and prevent heat from building up in the system. Resistors can also be used to create negative feedback loops or regulate the frequency of oscillators, which are widely used in various electronic circuits.

In terms of applications, the SR10-0.20-1% is a widely used component in the aerospace, automotive, and telecommunications industries. It is widely used in the design and manufacturing of high-performance precision products, such as navigation systems, radar warning systems, and communication systems. The component is also used in the implementation of circuits that use complex algorithms and require a large number of resistors. In short, the SR10-0.20-1% is a highly reliable and widely used component in many industries and applications.

Finally, the working principle of the SR10-0.20-1% can be explained using Ohm’s law. According to Ohm’s law, the voltage across a resistor is directly proportional to the current flowing through it. Therefore, the resistance is calculated according to the resistance value of the SR10-0.20-1%, which determines the voltage across the resistor. This voltage can then be used to determine the current flow through the resistor, allowing engineers to regulate the current with precision. In addition, the operating temperature and power rating of the SR10-0.20-1% help engineers to limit the power that the component is exposed to, preventing the component from overheating or incurring any damage.

In conclusion, the SR10-0.20-1% is a highly reliable through-hole resistor with excellent thermal and electrical properties and a wide variety of industrial and research applications. It is designed for through-hole mounting and can be used to create resistance to electric energy and current flow, allowing engineers to control the current flow with precision. The working principle of this through-hole resistor can be explained using Ohm’s law which explains how the voltage across a resistor is directly proportional to the current flowing through.

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

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