Showing posts with label basic. Show all posts
Showing posts with label basic. Show all posts

Sunday, 10 May 2020

Common Base configuration of BJT (Voltage amplification)


In this type of configuration we have, the Base terminal of BJT is common with both input and output. Where input is provided to the Emitter and output is collected from the collector. The circuit of the configuration is shown in the figure below. This configuration is used for the voltage gain and current buffer. And we have an input impedance that is low and output impedance is high.

Application

Common base the configuration is not used for the low-frequency input signal and for low frequency operating circuit. Though it is used when there is low input impedance is connected or present. Such as preamplifier, in a where we have low signal and we have to strengthen it out. So there we use a common base configuration.
While mainly it is used for very high frequency and ultra-high frequency. It is because its input capacitance does not affect by the amplification process. Due to which high frequency does not degrade or change.

Circuit:













As you can see in the figure, that base is common with input and output, while Emitter is connected to the input, and the collector is connected to the output. There is a battery connected between base and emitter, to forward-biased base-emitter junction. To forward bias we need to connect the positive side of the battery to the P side of BJT and negative side of the battery to the N side of BJT (In PNP case emitter is P side and Base is N side). There is another battery connected between collector and base to reverse biased the collector-base junction. To do this we have connected the positive side with the base and negative side with the collector.

Working:




Current Gain

Let’s first see the current flow in this configuration. We all know that current flows from the positive terminal of the battery to the negative terminal of the battery. So, in this case, current IE flows from VBE towards the emitter, from there some of the current flows towards the base region which is IB and remaining all the current goes towards the collector. So we can recall the equation,



IE = IB + IC


IE is the input current and IC is the output current. So this equation shows that output current IC can never be greater than input current IE. So current gain could never be greater than 1. It will be “1” or “less than 1”.

Current Gain equation will be

$$ α= I_C/I_E , where\ "α"\ is \ current\ gain $$

Using this equation we can find out the current gain of a circuit.


Voltage gain

Now let’s see how it provides us the voltage gain (amplification).

As we have the current gain$$  α=I_C/I_E $$ 
And resistance gain              $$ = R_L/R_I_N , $$ So using Ohm’s law(V=IR), We get,
Voltage gain= Current gain x Resistance gain
Voltage gain = $$ I_C/I_E × R_L/R_I_N = {I_C R_L}/{I_E R_I_N} $$

So this equation shows that we can get the desired voltage gain by changing the amount of input and output resistance.

Input characteristics

Now let’s see what the input characteristics of the common base configuration are. Means when we change input voltages VBE what effects does it has on input current IE. And keeping the output voltage VCB constant. We will plot a graph having VBE on the x-axis as we are changing VEB that’s why it is on the x-axis. While IE will be on the y-axis. We will see that there is no current across input when VEB is 0 to 0.6V. Because the starting voltage of the diode is 0.7V. So when VEB cross 0.6 V. The IE will start to grow up and will grow larger with small increase in voltage VEB. So one case was with VCB voltage was kept constant at 5V. Now observe another case with VCB at 7V, and then with 10V. And at last plot a graph of all 3 cases as shown in the figure below.


Output characteristics

Now observe the output characteristics. We will change the output voltage VCB and observe the change in output current IC, with input current IE will remain constant. So VCB is on the x-axis because we will be changing it and IC on the y-axis because it will be changed. We will observe that when we keep IE constant at 0 and will change VCB, it will have no effect on the IC. IC will remain zero at every value of VCB (0V, 3V, 5V etc). While when we keep IE constant at 1mA and change VCB, then we will see IC will come near to 1mA will remain constant for further increase in VCB. Now keep IE constant at 2mA, we will see that after changing VCB, IC will come near to IE, means near to 2mA and will go constant for further increase in VCB.Will draw plot for all the experiments. And we observe that IC will never be greater than IC. As equation 1 tells that.





Saturday, 30 December 2017

Electric Charge density, definition, explanation

Definition:

"Electric charge density is the amount of charge on unit volume space or surface or area."


Explanation:

Electric charge density is the density of charge on unit area, the charge could be less or  more, and charge could be positive or negative.
as shown in figure 1 below, in which there is positive charge on surface but less and on figure 2, there is more positive charge.
So area in figure 2 have more electric charge density than figure 1.
The area or volume could be one dimensional, two dimensional and three dimensional. 


Formula:

The electric charge density can be written in the form,
Where p is the charge density and q is the amount of charge and v is the volume of space and unit area. we can replace the v by A, when there is unit area.

Friday, 1 December 2017

Transformer, Definition, Explanation, working, construction, types

Definition:-

"Transformer is an electrical device that converts low voltage into high voltage or high voltage into low voltage."


Explanation:-

Transform the current or voltage, it is used to get high voltage when input is of low voltage and to get low voltage from high voltage.

Transform works on the principal of Mutual Induction, according to which "When alternating current flows through one winding of coil, due changing nature of ac current, there produce an emf across winding and magnetic flux around winding. When another winding of coil comes near the first winding, there is effect of magnetic flux of first winding on second winding and due to AC current as it changes continuously produces changing magnetic flux of first winding and due to this change there causes the EMF in second winding and hence current starts to flow through second winding, so this process is known as mutual Inductance". Transformer works on this principle. As there is no connection between two coils(we just bring the second nearer to the first), the current transfer will be very small as compared to first. So we use Core to link these two winding, because of this current loss is so small.

Construction:-

 It consists of following,
1.Primary coil
2.Secondary coil
3.Core
4.AC current source

Working:-

Whenever we supplies ac current to primary coil then due to changing nature of ac current there produces change in magnetic flux around this winding. And due to this changing current starts to flow through core and reached to the secondary winding and through this secondary winding goes to external circuit, When we need to change low voltage to high voltage then we have to increase the winding of secondary coil. This type of transformer is known as Step up Transformer. If we want to change the high voltage into low voltage, than we have to decrease the winding of secondary coil. This type of transformer is known as Step down Transformer.


Tuesday, 28 November 2017

Electric Motor(AC)

Definition:-

"An electric device that converts an AC electric source into mechanical energy is known as AC electric motor"

The device that converts Electrical energy into mechanical energy for our use, we called that device electric motor.

Explanation:-

The above diagram is of ac motor that converts an ac source into mechanical energy. The problem we face in ac motor is that, ac current changes its direction after half cycle. So it is not possible for conducting coil to move in one direction for complete cycle of  ac current. To overcome this problem, we use split rings instead of commutator, so that we could reverse the direction of current. and coil could move in one direction.

Construction:-

It consists of,

1.Magnet
2.Conducting loop
3.Split rings
4.Carbon brushes
5.Ac source

Working:-

AC motor works on the same principle, as DC motor works. When we connect ac current source to the carbon brushes then through split rings current starts to flow through the wire( or conducting loop) so because there is also magnet field through wire and now current flowing through it, So according to Fleming's left hand rule, the coil will start to move. When ac current will change its direction split rings will change their direction and so coil will get same directed current and coil will move in one direction.

Centripetal force

Definition:

"Centripetal force is a force, which keeps a body moving in a circular path and that force acting towards the center of that circular path."

Explanation:

A body never automatically or itself moves in a circular path it, there is always a reason or some force that causes it to move in a circular path and that force in general is known as a centripetal force. and that force is always directed towards  center. it means force is from the center of circular path that causes it to move in a circular path.

Example:

You tries to move a string in a circular path. one end of it is in your hand and other is tied with a stone. and consider that stone is a body. you provide force from your hand which is at the center of circular path in which stone(body) is moving.

Formula:

 

This equation shows that force depends on the mass of body and the velocity by which it is moving in path and the distance(r) between the center of circular path and body.



Sunday, 26 November 2017

What is motion? Types of motion

Motion:-

When a body does not change its position with time it is said that it is in rest but when it changes it is called that body is in motion.


Types of Motion:-

There are few basic types of motion:
1. Translational motion
2. Rotational motion
3. Random motion
4. Circular motion

Translational:-

A body covering some distance while moving whether it is on straight line or curved line, but distance covering is necessary. it is known as translational motion.
i.e. You driving a car towards your destination the road sometimes will not be straight turns will come but you will cover distance.


Rotational:-

A body moving on its axis and its all parts have different directions. no matter in which direction it moves but move on its axis is known as rotational motion.
i.e. A beblayde moving on its axis, a fan blades moving.

Random Motion:

When a body moves randomly, it is known as random motion.
Random motion means when body doesn't follow a specific path just a zig zag type path to move then this movement is known as random motion.
i.e. Fly, Mosquitoes etc,  flying around you randomly is an example of random motion.

Circular Motion:

When a body moves in a circular path, it is known as circular motion.
it is simple type of motion when body moves in a closed circular path it is known as circular motion.
i.e. a racing car moving on a circular racing track.