Parameters of oscillatory processes are well-known physical concepts – amplitude and period. Thus, under repeated hesitation understand the periodic law the process of change in a physical quantity about its mean or zero value. Let's say that this law is sinusoidal. So, if the function process F(x) is expressed by a formula of the form F(x)=K*sin(x), then we have just such an oscillating function which, remember, up and down, up and down…
Take on the chart for a specified function, in principle, any value of Y, denote it by U1, and, moving along the X-axis, find the next point y2 with a value equal to y1. If now the X-axis from points Y2 to delay period equal to T = (U2 - U1), we get the point U3 and it will be equal to U1 and U2. The shape of the graph between these points is repeated exactly for all subsequent periods equal to T. Thus, we found a parameter T for the process described by the formula F(x) = K * sin(x), which has a remarkable property: the variation of the argument X within T lead to a change of the function F(x) in the whole range of its values. Since changes in the X-axis is unlimited in time, in other words, the number of cycles T indefinitely many, then we have a cyclic, i.e. repeatable, a change in the function. The cycle duration T is called the period of oscillation and is measured in seconds. But the technique is more common use of units of measurement, called the frequency, denoted by f and calculated f = 1 / T, and its unit is called Hertz (Hz). Frequency 1 Hz – is one oscillation per second.
We are surrounded by “hesitant” world. Fluctuations is sound, the electric current in the wires, vibration mechanisms, the light, the tides, the rotation of the planets and… do not count them in the number of these oscillations. They are quite conventional boundaries of their frequency, they say ‘your range”. For example, the oscillation frequency audible to the human audible frequency range from 16 Hz to 20 kHz (1 kHz = 1000 Hz) and the frequency range of the sounds of spoken language is enclosed in the range of 100 – 4000 Hz. A well-known fact that not all people hear the full range of sounds – for many 12-15 kHz is already the limit of audibility. In the technique, ultrasonic vibrations are applied 100, 200 kHz and above. The details of the mechanisms can oscillate in a large frequency range – and the proportion of Hz and tens of kHz. But the widest range of electromagnetic vibrations – and from a fraction to many thousand million Hz. In this global spectrum plot of light waves are very small, but they are perceived by our organs of sight. Different frequency of oscillation in the spectrum of light waves determines the color of visible light - from red to violet.
However, back to “normal”. Very often turns out to be convenient to use a slightly modified unit. This workaround allows to simplify many formulas and make them more visible. And this is due to the fact that the sinusoidal nature of the oscillatory functions involves the ability to use variables in units of measuring angles-radians or degrees. But, in the calculations "creeps" the constant 2π, which, together with the frequency is present in many mathematical expressions. Then decided to introduce a modified unit of frequency and gave him the name “cyclical oscillation frequency”. The essence of this unit in that it is frequency is determined by the number of oscillations per time 2 * π seconds, i.e. of 6.28 seconds. Cyclic frequency is calculated by the formula ω = 2 * π * f. Belonging to the cyclic frequency is expressed by its unit of measurement-the radian per second.
Vibrating system has some parameters that characterize her personality. Take our good old pendulum and slightly solemn, bring him into a state of oscillation process – tick-tock, tick-tock. For this you just need to push it and… to leave alone. What will we see? The pendulum has swung quite a long time without additional application of force, its oscillation frequency does not change, but the amplitude slowly decreases due to the presence of friction forces in real devices. Such fluctuations, when, after the initial push, the motion of a pendulum or any other oscillating system, is determined only by its parameters, called own. If we assume that this stopping force is equal to zero, and it is quite simple - everything is in our hands, the pendulum, it is called math, will oscillate forever, and the period of oscillation can be calculated by the well-known, now classical, the formula T= 2 * π * √ l / g.
From its analysis we can draw an important conclusion: the natural frequency of the pendulum is determined by only the internal parameters of the system – the length of the string and the acceleration of the force of gravity.
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DE: https://tostpost.com/de/bildung/31387-studieren-pendel---schwingungsfrequenz.html
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JA: https://tostpost.com/ja/education/16005-study-the-pendulum-oscillation-frequency.html
KK: https://tostpost.com/kk/b-l-m/32019-izuchaem-mayatnik---terbelu-zhi-l-g.html
PL: https://tostpost.com/pl/edukacja/33087-badamy-wahad-o---cz-stotliwo-drga.html
PT: https://tostpost.com/pt/educa-o/32818-estudamos-o-p-ndulo-a-frequ-ncia-de-vibra-o.html
TR: https://tostpost.com/tr/e-itim/28427-al-ma-sarka---sal-n-m-frekans.html
UK: https://tostpost.com/uk/osv-ta/32243-vivcha-mo-mayatnik---chastota-kolivan.html
ZH: https://tostpost.com/zh/education/7593-study-the-pendulum-oscillation-frequency.html
Alin Trodden - author of the article, editor
"Hi, I'm Alin Trodden. I write texts, read books, and look for impressions. And I'm not bad at telling you about it. I am always happy to participate in interesting projects."
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