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Engineering reference – source controlled

Single-Frequency Vibration Displacement Converter

Convert the displacement magnitude of one scalar sinusoidal vibration component to velocity and acceleration magnitudes at that same frequency. Units and RMS, peak and peak-to-peak descriptors remain explicit.

One scalar sine componentExact unit conversionsNo ISO severity verdict
Do not use a broadband overall or shaft orbit as one sine. A multi-frequency waveform has a different frequency weighting for velocity and acceleration. A two-axis shaft orbit is not one scalar displacement. This calculator accepts only one identified sinusoidal component along one stated measurement axis.

Single-component displacement record

All fields are required. Displacement may be zero; frequency must be positive. Decimal point and decimal comma are accepted. Grouped numbers, exponents and unit suffixes are rejected.

One scalar sinusoidal component only.
1 mil = 25.4 µm exactly; 1 in = 0.0254 m exactly.
The sqrt(2) relations below apply to a sine wave only.
Frequency of the same displacement component.
RPM/60 is valid only for the rotational order being converted.
Absolute casing motion, relative shaft motion and a two-axis orbit are not interchangeable quantities.
Required confirmations
No result until the form is submitted.
Velocity magnitude, RMS
For the same scalar sinusoidal component.
Displacement, RMS
Normalized descriptor.
Displacement, peak
sqrt(2) x RMS; sine only.
Displacement, peak-to-peak
2 x peak; sine only.
Velocity, peak
sqrt(2) x velocity RMS.
Acceleration, RMS
omega² x displacement RMS.
Acceleration, peak
sqrt(2) x acceleration RMS.
Acceleration, RMS in g_n
aRMS / 9.80665 m/s².
Acceleration, peak in g_n
aPeak / 9.80665 m/s².
Component frequency
Hz and r/min shown together.
Not a clearance, stress or condition assessment. The result inherits sensor/probe calibration, runout compensation, mounting, filters, integration/differentiation, window, bandwidth, leakage, phase and operating-state limitations. Relative shaft displacement, absolute shaft/casing motion and orbit measurements require their own applicable procedures.

Equations, descriptors and units

Normalize the displacement descriptor

input RMS: xRMS = x
input peak: xRMS = x / sqrt(2)
input peak-to-peak: xRMS = x / (2 sqrt(2))

These descriptor factors apply to one sine wave. The page first converts the selected displacement unit to metres, then normalizes it to RMS.

Single sinusoidal component

omega = 2 pi f
vRMS = omega xRMS
aRMS = omega² xRMS
peak = sqrt(2) RMS
peak-to-peak = 2 peak

Velocity leads displacement by 90 degrees and acceleration is 180 degrees from displacement for the stated sine convention. This page reports magnitudes only; it does not reconstruct a time waveform or preserve phase.

Exact unit factors and conventional standard acceleration

1 µm = 10^-6 m
1 mm = 10^-3 m
1 mil = 0.001 in = 25.4 µm
1 in = 0.0254 m
a[g_n] = a[m/s²] / 9.80665

The metre and inch conversion is exact. BIPM records the conventional standard acceleration as 980.665 cm/s², equal to 9.80665 m/s². A value in g_n is a reference ratio and not a severity category.

Why the former general recommendations were removed

  • A broadband overall displacement cannot be converted with one representative frequency. Each complex frequency component has its own omega weighting.
  • “Displacement below 10 Hz, velocity from 10 to 1000 Hz, acceleration above 1000 Hz” is not a universal ISO rule. Quantity and band depend on the machine, measurement purpose, sensor/probe response, point, direction and applicable procedure.
  • Peak = sqrt(2) x RMS and peak-to-peak = 2 x peak are sine-wave relationships, not general rules for shocks, runout, non-sinusoidal motion or an orbit.
  • RPM is a rotational rate. It equals the component frequency only for the 1x rotational order; harmonics, blade/vane pass, gear mesh and bearing components have other frequencies.
  • A displacement magnitude alone cannot establish shaft-to-bearing clearance, stress, rub risk, orbit shape, phase, machine condition or acceptance.

Standard and source record

ИзточникStatus checked 16 Jul 2026What it supports hereWhat it does not support
ISO 20816-1:2016, Edition 1Published; stage 90.92, to be revised; ISO/FDIS 20816-1 is under development.General machine-vibration measurement/evaluation framework and the need to define quantities, measurement types and scope.It is not the source of these elementary sine equations and does not make this an ISO severity or shaft-clearance calculator.
ISO 2041:2018, Edition 4Published and confirmed in 2024; stage 90.93.Current mechanical-vibration, shock and condition-monitoring vocabulary record.A vocabulary standard is not a machine alarm or clearance table.
Brüel & Kjær, Measuring Vibration, br0094, pp. 5-7Official manufacturer full-text primer; relevant printed pages visually checked.Sine RMS/peak/peak-to-peak descriptors, scalar sinusoidal displacement/velocity/acceleration relationships, phase relationships and frequency weighting.Historical practical discussion is not imported as a current universal ISO band or limit.
BIPM SI Brochure, 9th edition, version 4.01, June 2026, Appendix 1 p. 154Current official SI brochure version at the audit date.Conventional standard acceleration g_n = 980.665 cm/s² = 9.80665 m/s².g_n conversion does not establish vibration severity.
NEEDS_LICENSED_SOURCE: the full normative texts of ISO 20816-1:2016 and ISO 2041:2018 are not licensed in this audit record. No clause number, alarm boundary, clearance, measurement band or “ISO conversion formula” is invented. The retained equations are classified as single-frequency simple-harmonic-motion mathematics supported by the cited full manufacturer primer.

Worked sine example

For one scalar 25 Hz sinusoidal component with displacement 100 µm peak-to-peak: xPeak = 50 µm, xRMS = 35.35533906 µm, vRMS = 5.553603673 mm/s, vPeak = 7.853981634 mm/s, aRMS = 0.872358025 m/s² and aPeak = 1.233700550 m/s². The button loads these values but leaves every scope confirmation unchecked. This is an arithmetic example, not an acceptance limit.

Често задавани въпроси

Can I use overall displacement and running speed?

Only when the value is demonstrably one scalar sinusoidal component at that frequency. A broadband overall or waveform containing harmonics requires component-wise or validated time-domain processing.

Is peak-to-peak always twice peak?

For one centered sine wave, yes. It is not a general relation for arbitrary waveforms, runout, transients or a two-dimensional orbit.

Does the result comply with ISO 20816?

No compliance verdict is produced. An evaluation needs the applicable part, machine scope, absolute or relative quantity, descriptor, frequency band, measurement point/direction, support and operating state.

Can the result be compared directly with shaft clearance?

No. Probe geometry, runout, scale factor, reference position, orbit, phase, thermal position and the applicable machinery procedure must be considered. This page calculates one scalar component magnitude only.

Why is g_n written with a subscript?

It identifies the conventional standard acceleration 9.80665 m/s² used as a reference ratio, not location-dependent free-fall acceleration and not a severity class.

Scientific audit revision: 16 July 2026. English source page; translations are reviewed only after the source is verified.
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