Allicdata Part #: | CA0001R1100JR88-ND |
Manufacturer Part#: |
CA0001R1100JR88 |
Price: | $ 0.44 |
Product Category: | Resistors |
Manufacturer: | Vishay Dale |
Short Description: | RES 0.11 OHM 1W 5% AXIAL |
More Detail: | 110 mOhms ±5% 1W Through Hole Resistor Axial Wire... |
DataSheet: | CA0001R1100JR88 Datasheet/PDF |
Quantity: | 1000 |
250 +: | $ 0.40014 |
Series: | CA |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Resistance: | 110 mOhms |
Tolerance: | ±5% |
Power (Watts): | 1W |
Composition: | Wirewound |
Features: | -- |
Temperature Coefficient: | ±600ppm/°C |
Operating Temperature: | -65°C ~ 275°C |
Package / Case: | Axial |
Supplier Device Package: | Axial |
Size / Dimension: | 0.170" Dia x 0.460" L (4.32mm x 11.68mm) |
Height - Seated (Max): | -- |
Number of Terminations: | 2 |
Failure Rate: | -- |
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Through Hole Resistors are one of the most common passive components used in today\'s circuits and employ a wide variety of different construction techniques to achieve the desired electrical characteristics and mechanical stability. The CA0001R1100JR88 is a through-hole resistor constructed using a combination of resistive elements and a dielectric material. It is suitable for applications up to 10W and is available in different tolerances and power ratings.
The CA0001R1100JR88 features a very compact size, measuring just 4 x 6mm with leads spaced at 2.54mm, making it ideal for various applications demanding high performance in a very small form factor. It is also capable of operating over a wide temperature range, from -55C to +125C, making it suitable for use in many industrial applications. The resistor is also capable of handling up to 10W of power at its rated voltage, making it a viable option for higher power applications.
The CA0001R1100JR88 is based on a combination of resistive elements including metal oxide film resistors, tantalum nitride, and carbon composite layer resistors. At the heart of the design is a ceramic dielectric material that serves to stabilize the individual resistive elements and provide mechanical stability and electrical isolation. The dielectric material also helps to reduce electrical interference and stray capacitance that can occur in a given circuit application. The combination of the resistive elements and ceramic dielectric material provide the CA0001R1100JR88 with excellent performance characteristics that make it suitable for a wide variety of applications.
The CA0001R1100JR88 is a through-hole resistor that has a wide range of applications. It can be used in high power applications such as DC-DC converters, power supplies, and motor control systems. It is also suitable for smaller applications where size is a consideration such as in audio amplifiers, cellular phone handsets, and other consumer electronics and communication devices. It is also used in solutions for industrial, automotive, and medical electronics applications.
The working principle behind the CA0001R1100JR88 is very simple. The resistor consists of a combination of resistive elements connected in series across a ceramic dielectric material. The resistive elements are selected and configured to represent a specific resistance value when connected and the ceramic dielectric material provides electrical isolation and mechanical stability. When a current is applied to the device, it will dissipate some of the energy as heat in accordance with Ohms law and the resistance will then set the voltage across the resistor.
In conclusion, the CA0001R1100JR88 is a through-hole resistor suitable for a wide range of applications. It is constructed using a combination of resistive elements and high-grade ceramic dielectric material that provides excellent performance characteristics. The resistor offers good electrical isolation and can operate over a wide temperature range, making it suitable for use in many industrial applications. The device is capable of handling up to 10W of power at its rated voltage and has a compact form factor that makes it a great option for more space-constrained applications. Lastly, it operates according to the principle that a current applied to it will be converted into a voltage in accordance with Ohms law.
The specific data is subject to PDF, and the above content is for reference
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