Collector Charging Time Solution

STEP 0: Pre-Calculation Summary
Formula Used
Collector Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Base Transit Time+Emitter Charging Time)
τc = τec-(τscr+τb+τe)
This formula uses 5 Variables
Variables Used
Collector Charging Time - (Measured in Second) - Collector charging time refers to the time taken for the minority carriers in the base region of a BJT to be swept out of the collector region after the transistor is turned off.
Emitter Collector Delay Time - (Measured in Second) - Emitter collector delay time is defined as the transit time across the base-collector depletion region or space.
Base Collector Delay Time - (Measured in Second) - Base Collector Delay Time refers to the additional time taken by the signal to propagate through space charged region of base collector junction.
Base Transit Time - (Measured in Second) - Base transit time is the average time the minority carriers need to traverse the quasi-neutral region in the base.
Emitter Charging Time - (Measured in Second) - Emitter charging time is defined as drift in the motion of the charged particles induced by a field when you forward bias the emitter junction you get a large diffusion.
STEP 1: Convert Input(s) to Base Unit
Emitter Collector Delay Time: 5295 Microsecond --> 0.005295 Second (Check conversion ​here)
Base Collector Delay Time: 5.5 Microsecond --> 5.5E-06 Second (Check conversion ​here)
Base Transit Time: 10.1 Microsecond --> 1.01E-05 Second (Check conversion ​here)
Emitter Charging Time: 5273 Microsecond --> 0.005273 Second (Check conversion ​here)
STEP 2: Evaluate Formula
Substituting Input Values in Formula
τc = τec-(τscrbe) --> 0.005295-(5.5E-06+1.01E-05+0.005273)
Evaluating ... ...
τc = 6.40000000000016E-06
STEP 3: Convert Result to Output's Unit
6.40000000000016E-06 Second -->6.40000000000016 Microsecond (Check conversion ​here)
FINAL ANSWER
6.40000000000016 6.4 Microsecond <-- Collector Charging Time
(Calculation completed in 00.020 seconds)

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Bipin Tripathi Kumaon Institute of Technology (BTKIT), Dwarahat
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15 BJT Microwave Devices Calculators

Maximum Frequency of Oscillations
​ Go Maximum Frequency of Oscillations = sqrt(Common Emitter Short Circuit Gain Frequency/(8*pi*Base Resistance*Collector Base Capacitance))
Emitter Base Charging Time
​ Go Emitter Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Collector Charging Time+Base Transit Time)
Base Collector Delay Time
​ Go Base Collector Delay Time = Emitter Collector Delay Time-(Collector Charging Time+Base Transit Time+Emitter Charging Time)
Collector Charging Time
​ Go Collector Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Base Transit Time+Emitter Charging Time)
Base Transit Time
​ Go Base Transit Time = Emitter Collector Delay Time-(Base Collector Delay Time+Collector Charging Time+Emitter Charging Time)
Emitter to Collector Delay Time
​ Go Emitter Collector Delay Time = Base Collector Delay Time+Collector Charging Time+Base Transit Time+Emitter Charging Time
Collector Base Capacitance
​ Go Collector Base Capacitance = Cut-off Frequency in BJT/(8*pi*Maximum Frequency of Oscillations^2*Base Resistance)
Base Resistance
​ Go Base Resistance = Cut-off Frequency in BJT/(8*pi*Maximum Frequency of Oscillations^2*Collector Base Capacitance)
Avalanche Multiplication Factor
​ Go Avalanche Multiplication Factor = 1/(1-(Applied Voltage/Avalanche Breakdown Voltage)^Doping Numerical Factor)
Saturation Drift Velocity
​ Go Saturated Drift Velocity in BJT = Emitter to Collector Distance/Average Time to Traverse Emitter to Collector
Emitter to Collector Distance
​ Go Emitter to Collector Distance = Maximum Applied Voltage in BJT/Maximum Electric Field in BJT
Total Charging Time
​ Go Total Charging Time = Emitter Charging Time+Collector Charging Time
Cut-off Frequency of Microwave
​ Go Cut-off Frequency in BJT = 1/(2*pi*Emitter Collector Delay Time)
Total Transit Time
​ Go Total Transit Time = Base Transit Time+Collector Depletion Region
Hole Current of Emitter
​ Go Hole Current of Emitter = Base Current+Collector Current

Collector Charging Time Formula

Collector Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Base Transit Time+Emitter Charging Time)
τc = τec-(τscr+τb+τe)

What is Frequency range of microwave?

Microwave frequencies range between 109 Hz (1 GHz) to 1000 GHz with respective wavelengths of 30 to 0.03 cm. Within this spectral domain are a number of communication systems applications that are important in both the military and civilian sectors.

How to Calculate Collector Charging Time?

Collector Charging Time calculator uses Collector Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Base Transit Time+Emitter Charging Time) to calculate the Collector Charging Time, The collector charging time, also known as the storage time, refers to the time taken for the minority carriers in the base region of a bipolar junction transistor (BJT) to be swept out of the collector region after the transistor is turned off. Collector Charging Time is denoted by τc symbol.

How to calculate Collector Charging Time using this online calculator? To use this online calculator for Collector Charging Time, enter Emitter Collector Delay Time ec), Base Collector Delay Time scr), Base Transit Time b) & Emitter Charging Time e) and hit the calculate button. Here is how the Collector Charging Time calculation can be explained with given input values -> 6.4E+6 = 0.005295-(5.5E-06+1.01E-05+0.005273).

FAQ

What is Collector Charging Time?
The collector charging time, also known as the storage time, refers to the time taken for the minority carriers in the base region of a bipolar junction transistor (BJT) to be swept out of the collector region after the transistor is turned off and is represented as τc = τec-(τscrbe) or Collector Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Base Transit Time+Emitter Charging Time). Emitter collector delay time is defined as the transit time across the base-collector depletion region or space, Base Collector Delay Time refers to the additional time taken by the signal to propagate through space charged region of base collector junction, Base transit time is the average time the minority carriers need to traverse the quasi-neutral region in the base & Emitter charging time is defined as drift in the motion of the charged particles induced by a field when you forward bias the emitter junction you get a large diffusion.
How to calculate Collector Charging Time?
The collector charging time, also known as the storage time, refers to the time taken for the minority carriers in the base region of a bipolar junction transistor (BJT) to be swept out of the collector region after the transistor is turned off is calculated using Collector Charging Time = Emitter Collector Delay Time-(Base Collector Delay Time+Base Transit Time+Emitter Charging Time). To calculate Collector Charging Time, you need Emitter Collector Delay Time ec), Base Collector Delay Time scr), Base Transit Time b) & Emitter Charging Time e). With our tool, you need to enter the respective value for Emitter Collector Delay Time, Base Collector Delay Time, Base Transit Time & Emitter Charging Time and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
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