What happens when you throw a stone in still water? You find circles propagating outwards, and it feels as if the water is moving. The reason is the water surface getting disturbed. But when a cork is placed on that disturbed water surface, it moves up and down rather than moving outwards with the circles. Here the water remains stagnant, and some elastic force or pattern is causing the disturbances. Clearly, the motion of one is influenced by the other. This influencing force or pattern propagating without the actual flow of matter is known as waves. There are different kinds of waves which we will discuss further in this waves introduction topic.
A wave is a pattern of disturbances propagating through a medium, usually in space and time. It carries and transports energy while propagating from one point to another without any net movement of particles. Waves exchange energy in all our communications as it involves the transmission of signals.
All communications involve different types of waves possessing different sets of characteristics. Based on the direction of energy and orientation of particle motion, waves are of three types :
The disturbances in mechanical waves propagate from one point to the other, but the orientation of the particles produces lesser oscillations about their mean position. The practical example of this applies to a stationary train connected to numerous bogies with a spring coupling. An engine is attached at one end of a train. When a push is exercised to the adjacent bogie, the same push is transported to the next one. This way, all the remaining bogies feel the same push without displacing the entire train. This way, waves exchange position without the actual transfer of the matter, in this case, the whole train.
Now, the question arises that how are these waves caused? The illustration of this example will fetch the answer. At the point when we pull a string in a vertical direction, the development and propagation of the waves are conceivable in light of the fact that the whole string is under tension. The little disturbance which is given at one side is the tension itself and it gets propagated to its adjoining particles and keeps on continuing. So this pulse will get transferred along the length of the string. The oscillation of the particles is at right angles to the propagation of the wave and the elements of the string oscillate about their mean position. Thus, the resulting disturbances on the string is a sinusoidal wave.
An illustration of longitudinal waves is given through the next example. When a long pipe is loaded up with air, it has a piston towards one side. A solitary abrupt to and fro movement of the piston will produce a rarefaction and compression in the air. There will be lower density in rarefaction and a higher density in compression. If the to and fro movement is persistent and occasional, a sinusoidal wave will be created propagating in the air along the length of the pipe.
Key differences of Transverse and Longitudinal waves
Concluding the introduction of the wave, here are some key points that you should always remember.