
Allicdata Part #: | CMF65806K00BEEA-ND |
Manufacturer Part#: |
CMF65806K00BEEA |
Price: | $ 0.30 |
Product Category: | Resistors |
Manufacturer: | Vishay Dale |
Short Description: | RES 806K OHM 1.5W 0.1% AXIAL |
More Detail: | 806 kOhms ±0.1% 1.5W Through Hole Resistor Axial F... |
DataSheet: | ![]() |
Quantity: | 1000 |
2500 +: | $ 0.26676 |
5000 +: | $ 0.26163 |
12500 +: | $ 0.25547 |
Specifications
Series: | CMF |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Resistance: | 806 kOhms |
Tolerance: | ±0.1% |
Power (Watts): | 1.5W |
Composition: | Metal Film |
Features: | Flame Retardant Coating, Moisture Resistant, Safety |
Temperature Coefficient: | ±25ppm/°C |
Operating Temperature: | -55°C ~ 175°C |
Package / Case: | Axial |
Supplier Device Package: | Axial |
Size / Dimension: | 0.180" Dia x 0.562" L (4.57mm x 14.27mm) |
Height - Seated (Max): | -- |
Number of Terminations: | 2 |
Failure Rate: | -- |
Description
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Through hole resistors are a common passive electrical component which are built into circuits to keep signals and power at safe levels. This article will explain the application field and working principle of CMF65806K00BEEA, a particular type of through-hole resistor. CMF65806K00BEEA is a 8-Tolerance-Type low power resistor of the 6.8-Ohm variety, with a maximum peak power of 125W. This particular type of resistor is used mainly for small amplifiers, signal conditioning, and power monitoring applications. The construction of the CMF65806K00BEEA consists of two conductive wires on opposite ends of the resistor, and an insulating material in between them, called the resistive element. This element is usually made of some type of ceramic material or a combination of ceramic and metal. The electrical properties of the CMF65806K00BEEA are determined by the size of the resistor and its resistive element. The larger the resistor, the higher the resistance, and the smaller the resistive element, the lower the resistance. The resistance of the resistor is also determined by the type of material used for its resistive element. For example, ceramic materials generally have higher resistance than metal types. The CMF65806K00BEEA also uses a temperature coefficient which is a measure of the variation in its resistance with temperature. When the temperature changes, the resistance of the resistor can either increase or decrease depending on the direction of the changes. In most cases, the resistor exhibits a positive temperature coefficient, meaning its resistance increases with temperature. The CMF65806K00BEEA also has a power rating, which is the maximum power that can be passed through the resistor without damaging it. This rating is based largely on the size of the resistive element and its composition. When the power level exceeds the rated power level, the resistor can become damaged due to overheating. The CMF65806K00BEEA is used mainly for small amplifiers, signal conditioning, and power monitoring applications. These types of applications require a resistor that can withstand high power levels, has low noise levels, and that has a high degree of accuracy. The CMF65806K00BEEA resistor meets all these criteria and is therefore an ideal choice for such applications. The working principle of the CMF65806K00BEEA is simple. When a current passes through it, it creates a voltage drop across the resistive element. This voltage drop is then sent to the load, which can be an amplifier, signal conditioning device, or power monitoring device. The current that passes through the CMF65806K00BEEA resistor is determined by its resistance value. The higher the resistance, the lower the current that passes through it. So by varying the size and composition of the resistive element, the resistors can be used to precisely manipulate the flow of current. To sum up, the CMF60806K00BEEA is an 8-Tolerance-Type low power resistor which is primarily used for small amplifiers, signal conditioning, and power monitoring applications. Its construction consists of two conductive wires on opposite ends of the resistor and an insulating material in between them. Its resistance value is determined by the size and composition of the resistive element, and it has a positive temperature coefficient. Its power rating determines the maximum power that can be passed through the resistor without damaging it. Lastly, its working principle is based on the voltage drop across the resistive element, which is then sent to the load.
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