Centrifuge Calculator

×g
rpm

A calculator saves arithmetic, but it should not hide the physics. For centrifuge, rotational and oscillatory quantities are tightly linked, but radians, revolutions, frequency, period, and linear speed are not interchangeable. This calculator keeps one defined relationship at the center of the result.

What this calculator does

The Centrifuge Calculator turns the physical quantities shown on the form into a focused relative centrifugal force. It is designed for quick scenario checks while keeping the inputs and units visible, so you can change one quantity and immediately see how the modeled result responds.

How to use it

Start with the fields that drive the current calculation: Radius, Revolutions per minute. Enter values in the units shown beside each field; the page converts supported units before applying the formula. Keep signs and angles consistent with the labels, then read the headline result together with any supporting metrics rather than copying the number without its unit.

How the calculation works

Relative centrifugal force is computed from rotor radius in centimeters and rpm: RCF = 11.18 × rcm × (rpm/1000)². If rpm is positive it takes precedence and RCF is derived; otherwise the relationship can be rearranged to estimate rpm from RCF.

Example

Using the default example on the page (Radius = 10 cm; Revolutions per minute = 10000 rpm), the calculator returns relative centrifugal force of 11,180 ×g. Change one input at a time and compare the direction of the change with the formula above; that is a quick way to catch a wrong unit, sign, or selected method before you rely on the number.

How to interpret the result

On the Centrifuge Calculator, the relative centrifugal force should be read in the rotational or oscillatory unit shown—radians, rad/s, hertz, seconds, or energy as appropriate. Check whether the page is reporting a linear quantity or an angular one; converting between them generally requires a radius or a 2π factor.

Limitations and notes

For the Centrifuge Calculator, ideal circular or harmonic models assume the entered parameters stay constant. Damping, nonlinear motion, flexible structures, changing radius, or nonuniform rotation can make measured behavior differ from the calculated value. The most important inputs to verify here are Radius, Revolutions per minute; an incorrect unit or an assumption outside those fields can move the result more than extra decimal places improve it.

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