Intermediate

Redshift & Recessional Velocity Calculator

Convert a shifted spectral line into a redshift z and the recessional velocity of a distant galaxy.

nm

Wavelength of the spectral line as measured

nm

Lab wavelength of the same line
Enter z directly to override wavelengths
Recessional velocity (relativistic)
19 298,60km/s

Redshift z = 0,06659

Velocity as a fraction of the speed of light: Low z (v ≈ cz)
Redshift z
0,06659
Low-z velocity (v = cz)
19 961,8 km/s
Relativistic velocity
19 298,6 km/s
Fraction of c
0,0644
Step by step
  1. 1

    Redshift z

    (700 − 656,3) ÷ 656,3 = 0,06659
  2. 2

    Relativistic factor (1+z)²

    (1 + 0,06659)² = 1,137604
  3. 3

    Recessional velocity

    299 792,458 × (1,1376 − 1) ÷ (1,1376 + 1) = 19 298,60
    Relativistic Doppler formula — always stays below the speed of light.
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Pikavastaus

Miten tämä laskin toimii?

Redshift z = (λ_obs − λ_emit) / λ_emit compares an observed spectral line to its rest wavelength. Small redshifts give velocity v = cz; for larger z use the relativistic Doppler form v = c·((1+z)²−1)/((1+z)²+1), with c = 299,792.458 km/s, so the speed always stays below light speed.

Kaava
z = (λ_obs − λ_emit) / λ_emit; v = c·((1+z)² − 1) / ((1+z)² + 1)
How this is calculated

Redshift z measures how much a spectral line has been stretched toward longer (redder) wavelengths. Enter the observed wavelength λ_obs and the rest (laboratory) wavelength λ_emit of the same emission or absorption line, both in the same units (nanometres here), and z is found from z = (λ_obs − λ_emit) / λ_emit. Alternatively, type a known z directly and it overrides the wavelength inputs.

Velocity follows from z. For small redshifts the simple Doppler approximation v = c·z is accurate, where c = 299,792.458 km/s. As z grows this overestimates the speed and can exceed c, so the relativistic Doppler relation v = c·((1+z)² − 1) / ((1+z)² + 1) is used for the headline result; it always stays below the speed of light. The meter shows v as a fraction of c.

Assumptions: this treats the shift as a special-relativistic Doppler effect, which is the standard textbook conversion. True cosmological recession velocities from the expansion of space depend on a chosen cosmological model and can differ at very high z. Edge cases: λ_emit must be non-zero, and z must be greater than −1 (a blueshift, z < 0, is allowed and yields a negative, approaching, velocity).

Usein kysytyt kysymykset

The linear v = cz is a good approximation only for small redshifts (roughly z < 0.1). For larger z it overestimates the speed and eventually exceeds c, so use the relativistic Doppler formula, which is reported as the main result.

Yes. If the observed wavelength is shorter than the rest wavelength, z is negative (a blueshift) and the velocity comes out negative, indicating the object is approaching rather than receding.

No. This is the special-relativistic Doppler conversion of redshift to velocity. Cosmological recession velocities from the expansion of the universe require a specific cosmological model and differ from this at high z.

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APA

TG we-Calculate Editorial Team. (2026). Redshift & Recessional Velocity Calculator [Online calculator]. TG we-Calculate. https://we-calculate.com/fi/calculator/redshift-velocity-calculator

Chicago

TG we-Calculate Editorial Team. "Redshift & Recessional Velocity Calculator." TG we-Calculate. 2026. https://we-calculate.com/fi/calculator/redshift-velocity-calculator.

IEEE

TG we-Calculate Editorial Team, "Redshift & Recessional Velocity Calculator," TG we-Calculate, 2026. [Online]. Available: https://we-calculate.com/fi/calculator/redshift-velocity-calculator

BibTeX

@misc{wecalculate_redshift_velocity_calculator, title = {Redshift & Recessional Velocity Calculator}, author = {{TG we-Calculate Editorial Team}}, howpublished = {\url{https://we-calculate.com/fi/calculator/redshift-velocity-calculator}}, year = {2026}, note = {TG we-Calculate} }

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