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20pcs. of 104 Ceramic Capacitor 0.1uF 100nF Low Voltage DIP Ceramic Disc Capacitors

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If there is only two number, it means there is no multiplier, Then you just read the value of the first two numbers in picofarads.

After capacitance, the next most important spec is the breakdown voltage. If the capacitor bears a second value, it will typically be its breakdown voltage, expressed as a number followed by V, such as “25V” or “100V.” Modern capacitors use the numerical markings we outlined above, but older capacitors employed a (now obsolete) color coding system. If you come across these capacitors, try looking up a capacitor color code guide like the one here to decipher the codes for capacitance, breakdown voltage, and other values. Other Capacitor Values Therefore, a disk capacitor could be constructed that was smaller than electrolytic capacitors of similar capacitance. This was very attractive for applications requiring a very small capacitor. Ceramic disc capacitor markings When Any capacitor has 104 printed- It has a multiplier of 4 (Third number of code ). 10 is multiplied by 10×10 4 =10000. Then its value is 10×10000= 100000PF Capacitor code table/chartWhen the first two numbers are multiplied with the multiplier, the resulting value is the value of the capacitor in picofarads. High voltage capacitors are sometimes referred to as power capacitors. Like other high voltage capacitors, they are designed to withstand high voltages for short durations. They are used in applications where the capacitors are charged and discharged (or sometimes discharged only) at high voltages. Conclusion

Finally, the leads are connected by soldering or wire-bonding to complete the electrical connections and to protect them from corrosion. Ceramic disk capacitors are manufactured in different shapes such as round, rectangular, cylindrical, and metalized chips. What is Ceramic Capacitor 104? Ceramic Capacitor 104 is a ceramic capacitor with values ​​ranging from 1 pF to 220,000 F. Its maximum voltage is 50 V and its minimum voltage is 16 V. It has a negative temperature coefficient which means that as the temperature increases, its capacitance will decrease with a rate of 0.005%/cCelsius degree rise Component manufacturers indicate tolerance with a letter code that refers to variances as small as +/- 0.5pF (indicated as A) up to -20/+80% (written as Z). The capacitor tolerance chart below shows some common tolerance letter codes:

Example Markings and Values

Q: How do I interpret a three-digit capacitor code value? A: In a three-digit capacitor code, the first two digits represent the significant figures, and the third digit represents the multiplier. To determine the capacitance, combine the first two digits and multiply them by 10 raised to the power of the third digit. For example, a code of “104” translates to 10 x 10 However, when the capacitance is lower than 100 µF, we can usually find a 3-digit capacitor code that defines the value. The rule is simple: The first and second digits tell us about the capacity in pF (picofarads), while the third one is a multiplier factor (the power of 10) - for the number n, the capacitance is multiplied by 10ⁿ. It's just another way to use scientific notation to describe big numbers. The last digit is usually within the range of 0-6.

Some small capacitance capacitors can be marked with an R between numbers. If the code is 3R9 then R is an indicator of values Less than 10pF and has nothing to do with resistance. 3R9 would be 3.9pF capacitor voltage code table Every capacitor usually has two numbers that characterize it. These are its capacitance and voltage rating. The latter tells us the maximum voltage at which the element will still work correctly. The producers often write the capacity directly, so when you see a capacitor with 220 µF 25 V, it simply means that it has a capacity of 220 µF and works safely with voltages up to 25 V. Ceramic Disc Capacitor 104 is a type of capacitor used in electronic devices to regulate voltage or power. Ceramic capacitors are constructed from a thin disk of ceramic material, which has a large surface area and a high dielectric constant.Usually, ceramic capacitors are constructed by depositing a ceramic or metal film on a ceramic or metal substrate. The depositing of the film is generally done using a printing process, which is most commonly an electrostatic printing process.

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