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expanding universe (Topic)

1 Hubble’s Law

A cornerstone of cosmology is the observation of an expanding universe. In 1929, Hubble published a relation involving the constant of proportionality H0, now known as the Hubble constant [1]. In its simplest form Hubble’s law is

⃗v = H0 ⃗r.

Hubble’s original estimates were approximately 500 to 530 km s1 Mpc1. Modern distance measurements give much smaller values. The Hubble space telescope (HST) Key Project combined several distance-calibration methods and reported [3]

H   = 72 ± 8 km s− 1Mpc −1.
  0

As an example, consider recession-velocity data from the SIMBAD Astronomical Database together with distances from papers associated with the HST Key Project. For sufficiently small redshift, the nonrelativistic approximation is

z ≈  v.
     c

A selection of galaxies is listed below.





Object (NGC)v (km/s)Distance (Mpc)Reference




925 553 9.29 [4]
1326A 1718 18.7 [5]
1365 1662 18.3 [6]
1425 1508.1 22.2 [7]
2090 924.6 12.3 [8]
3031 -42 3.63 [9]
3198 663 14.5 [10]
3319 742.5 14.3 [11]
3351 778.5 10.05 [12]
3621 727 6.3 [13]
4321 1575 16.1 [14]
4414 718.5 19.1 [15]
4535 1964.4 16.0 [16]
4548 493.2 15.9 [17]
4725 1209.9 12.6 [18]
5457 241 7.4 [19]
7331 819.6 15.1 [20]




An unconstrained least-squares fit of velocity versus distance for these selected data gives a slope of approximately

               −1     −1
H0  ≈ 78.2 km s   Mpc   .

The nonzero fitted intercept reflects the scatter and local peculiar velocities in this small sample.

PIC

Hubble’s law does not imply that we are at the center of the universe. To illustrate this, consider a square grid with the velocity field

⃗v = H ⃗r,

using H = 0.25 in arbitrary units.

PIC

Now choose the grid point at (1, 1) as a new origin. Its original velocity is

⃗v0 = H ⃗r0.

The velocity measured relative to this new origin is

⃗v′ = ⃗v − ⃗v0.

PIC

Since

  ′                               ′
⃗v  = H ⃗r − H ⃗r0 = H (⃗r − ⃗r0) = H⃗r ,

the new observer sees exactly the same Hubble law.

PIC

Thus every comoving point in an ideal homogeneous Hubble flow sees the other points receding according to the same linear law. No special spatial center is selected by the expansion.

2 References

[1] E. Hubble, “A Relation between Distance and Radial Velocity among Extra-Galactic Nebulae,” Proceedings of the National Academy of Sciences, 15, 168–173 (1929).

[2] A. Liddle, An Introduction to Modern Cosmology, 2nd ed., John Wiley & Sons, West Sussex (2003).

[3] W. Freedman, B. Madore, B. Gibson et al., “Final Results from the Hubble Space Telescope Key Project to Measure the Hubble Constant,” The Astrophysical Journal, 553, 47–72 (2001).

[4] N. Silbermann, P. Harding, and B. Madore, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale VI. The Cepheids in NGC 925,” The Astrophysical Journal, 470, 1–37 (1996).

[5] C. Prosser, R. Kennicutt, and F. Bresolin, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XXII. The Discovery of Cepheids in NGC 1326A,” The Astrophysical Journal, 525, 80–104 (1999).

[6] N. Silbermann, P. Harding, and L. Ferrarese, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XIV. The Cepheids in NGC 1365,” The Astrophysical Journal, 515, 1–28 (1999).

[7] J. Mould, S. Hughes, and P. Stetson, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XXI. The Cepheid Distance to NGC 1425,” The Astrophysical Journal, 528, 665–676 (2000).

[8] R. Phelps, S. Sakai, and W. Freedman, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale IX. The Discovery of Cepheids and a New Distance to NGC 3198,” The Astrophysical Journal, 500, 763–788 (1998).

[9] W. Freedman, S. Hughes, and B. Madore, “The Hubble Space Telescope Extragalactic Distance Scale Key Project I. The Discovery of Cepheids and a New Distance to M81,” The Astrophysical Journal, 427, 628–655 (1994).

[10] D. Kelson, G. Illingworth, and A. Saha, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XIX. The Discovery of Cepheids in NGC 2090,” The Astrophysical Journal, 514, 614–636 (1999).

[11] S. Sakai, L. Ferrarese, and R. Kennicutt, “The Hubble Space Telescope Extragalactic Distance Scale Key Project XXIII. The Discovery of Cepheids in NGC 3319,” The Astrophysical Journal, 523, 540–558 (1999).

[12] J. Graham, R. Phelps, and W. Freedman, “The Hubble Space Telescope Extragalactic Distance Scale Key Project VII. The Discovery of Cepheids in the Leo I Group Galaxy NGC 3351,” The Astrophysical Journal, 477, 535–559 (1997).

[13] D. Rawson, L. Macri, and J. Mould, “The Extragalactic Distance Scale Key Project VIII. The Discovery of Cepheids and a New Distance to NGC 3621 Using the Hubble Space Telescope,” The Astrophysical Journal, 490, 517–556 (1997).

[14] L. Ferrarese, W. Freedman, and R. Hill, “The Extragalactic Distance Scale Key Project IV. The Discovery of Cepheids and a New Distance to M100 Using the Hubble Space Telescope,” The Astrophysical Journal, 464, 568–599 (1996).

[15] A. Turner, L. Ferrarese, and A. Saha, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XI. The Cepheids in NGC 4414,” The Astrophysical Journal, 505, 207–229 (1998).

[16] L. Macri, J. Huchra, and P. Stetson, “The Extragalactic Distance Scale Key Project XVIII. The Discovery of Cepheids and a New Distance to NGC 4535 Using the Hubble Space Telescope,” The Astrophysical Journal, 521, 155–178 (1999).

[17] J. Graham, L. Ferrarese, and W. Freedman, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XX. The Discovery of Cepheids in the Virgo Cluster Galaxy NGC 4548,” The Astrophysical Journal, 516, 626–646 (1999).

[18] B. Gibson, S. Hughes, and P. Stetson, “The Hubble Space Telescope Key Project on the Extragalactic Distance Scale XVII. The Cepheid Distance to NGC 4725,” The Astrophysical Journal, 512, 48–64 (1999).

[19] D. Kelson, G. Illingworth, and W. Freedman, “The Extragalactic Distance Scale Key Project III. The Discovery of Cepheids and a New Distance to M101 Using the Hubble Space Telescope,” The Astrophysical Journal, 463, 26–59 (1996).

[20] S. Hughes, H. Mingsheng, and J. Hoessel, “The Hubble Space Telescope Extragalactic Distance Scale Key Project X. The Cepheid Distance to NGC 7331,” The Astrophysical Journal, 501, 32–53 (1998).


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Keywords:  expanding universe Hubble

Cross-references: field, square, universe, velocity, space telescope, relation
There are 6 references to this object.

This is version 16 of expanding universe, born on 2006-07-08, modified 2026-09-09.
Object id is 194, canonical name is ExpandingUniverse.
Accessed 3608 times total.

Classification:
Physics Classification98.80.Es (Observational cosmology )
 98.62.Py (Distances, redshifts, radial velocities; spatial distribution of galaxies )
 98.80.Bp (Origin and formation of the Universe)
 98.80.-k (Cosmology (see also section 04 General relativity and gravitation; for origin and evolution of galaxies, see 98.62.Ai; for elementary particle and nuclear processes, see 95.30.Cq; for dark matter, see 95.35.+d; for superclusters and large-scale structure)
Pending Errata and Addenda
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