Beginning from the premise that the universe is static, and that the cosmological redshift is due to a nonconservative tired light effect, the following examines evidence supporting the prediction that photons will progressively blueshift when transiting through the gravity wells of galaxies, galaxy clusters, and superclusters. The presence of such a nonvelocity blueshift effect is seen to make a substantial contribution to Virgo cluster galaxy spectra, sufficient to dramatically decrease the cluster’s velocity dispersion and assessed virial mass and eliminate the need to assume the presence of large quantities of dark matter. The effect is also shown to account for the Fingers-of-God effect and Kaiser pancaking effect seen when the spectra of cluster galaxies are plotted in redshift space. The opposite effect, excessive redshifting of photons passing through cosmic voids is able to explain void elongation in redshift space, and also the subnormal luminosity of void galaxies. The proposed cosmological blueshifting phenomenon also explains the downturn of the slope of the Hubble Flow in the vicinity of the Local Group which projects a negative apparent velocity for photons propagating near the Milky Way. It also offers an explanation for the blueshift of the Andromeda galaxy spectra and for Arp’s findings that the spectra of primary galaxies in a cluster tend to be blueshifted relative to their companion galaxies. These photon energy phenomena are anticipated by the physics of subquantum kinetics which predicts that photons traversing long distances through intergalactic space should undergo nonconservative tired-light redshifting, and that photons passing through gravity potential wells should undergo progressive blueshifting. The latter effect may be visualized as a negative nonvelocity Hubble constant.
Arp, H. (1987) Quasars, Redshifts, and Controversies. Cambridge University Press, Cambridge. https://doi.org/10.1017/CBO9780511564857
LaViolette, P.A. (1986) Is the Universe Really Expanding? Astrophysical Journal, 301, 544-553. https://doi.org/10.1086/163922
LaViolette, P.A. (2021) Expanding or Static Universe: Emergence of a New Paradigm. International Journal of Astronomy & Astrophysics, in press.
LaViolette, P.A. (1985) An Introduction to Subquantum Kinetics: I. An Overview of the Methodology. International Journal of General Systems, 11, 281-293. https://doi.org/10.1080/03081078508934918
LaViolette, P.A. (1985) An Introduction to Subquantum Kinetics: II. An Open Systems Description of Particle and Fields. International Journal of General Systems, 11, 295-328. https://doi.org/10.1080/03081078508934919
LaViolette, P.A. (1985) An Introduction to Subquantum Kinetics: III. The Cosmology of Subquantum Kinetics. International Journal of General Systems, 11, 329-345. https://doi.org/10.1080/03081078508934920
LaViolette, P.A. (2012) Subquantum Kinetics: A Systems Approach to Physics and Cosmology. 4th Edition, Starlane Publications, Niskayuna.
LaViolette, P.A. (2012) The Cosmic Ether: Introduction to Subquantum Kinetics. Physics Procedia, 38, 326-349. https://doi.org/10.1016/j.phpro.2012.08.032
LaViolette, P.A. (2004) Genesis of the Cosmos. Bear & Co., Rochester, VT.
Yu-Lan, F. (1959) A Short History of Chinese Philosophy. Macmillan, New York, 695-697.
Gmitro, J.I. and Scriven, L.E. (1966) A Physiochemical Basis for Pattern and Rhythm. In: Warren, K., Ed., Intracellular Transport, Academic Press, New York, 221-255. https://doi.org/10.1016/B978-1-4831-9872-9.50016-0
Zwicky, F. (1929) On the Red Shift of Spectral Lines through Interstellar Space. Proceedings of the National Academy of Science, 15, 773-779. https://doi.org/10.1073/pnas.15.10.773
Tammann, G.A. and Reindl, B. (2013) Alan Sandage and the Distance Scale. In: Proceedings of the International Astronomical Union, Volume 8, Symposium No. 289, 13-25. https://doi.org/10.1017/S1743921312021059
Marosi, L.A. (2014) Hubble Diagram Test of 280 Supernovae Redshift Data. Journal of Modern Physics, 5, 29-33. https://doi.org/10.4236/jmp.2014.51005
Marosi, L.A. (2019) Extended Hubble Diagram on the Basis of Gamma Ray Bursts Including the High Redshift Range of z = 0.0331 - 8.1. International Journal of Astronomy & Astrophysics, 9, 1-11. https://doi.org/10.4236/ijaa.2019.91001
Cosmological Redshift
Subquantum Kinetics
LaViolette, P.A. (2021) The Origin of Gravity and Its Effects: According to the Subquantum Kinetics Paradigm. In: Krasnoholovets, V., Ed., The Origin of Gravity from the First Principles, Nova Science Publishers, Hauppauge, Chapter 7. (In Press)
Mei, S., Blakeslee, J.P., Côté, P., et al. (2007) The ACS Virgo Cluster Survey. XIII. SBF Distance Catalog and the Three-Dimensional Structure of the Virgo Cluster. Astrophysical Journal, 655, 144-168. https://doi.org/10.1086/509598
Tonry, J.L. (2000) The Surface Brightness Fluctuation Survey of Galaxy Distances. II. Local and Large-Scale Flows. Astrophysical Journal, 530, 625-651. https://doi.org/10.1086/308409
Cappi, A. (1995) Gravitational Redshift in Galaxy Clusters. Astronomy & Astrophysics, 301, 6-10.
Stiavelli, M. and Setti, G. (1993) Nonequilibrium Motions in Galaxies and Gravitational Redshift. Monthly Notices of the Royal Astronomy Society, 262, L51-L54. https://doi.org/10.1093/mnras/262.1.L51
Arp, H. (1994) Companion Galaxies: A Test of the Assumption That Velocities Can Be Inferred from Redshifts. Astrophysical Journal, 430, 74-82. https://doi.org/10.1086/174383
Kaiser, N. (1987) Clustering in Real Space and in Redshift Space. Monthly Notices of the Royal Astronomy Society, 227, 1-21. https://doi.org/10.1093/mnras/227.1.1
Ryden, B.S. and Melott, A.L. (1996) Voids in Real Space and Redshift Space. Astrophysical Journal, 470, 160-171. https://doi.org/10.1086/177857
Masatoshi, S. and Lee, J. (2012) Voids in Redshift Space. arXiv: 1203.0869.
Ryden, B.S. (1995) Measuring q 0 from the Distortion of Voids in Redshift Space. Astrophysical Journal, 452, 25-32. https://doi.org/10.1086/176277
Hoyle, F., Rojas, R.R., Vogeley, M.S. and Brinkmann, J. (2005) The Luminosity Function of Void Galaxies in the Sloan Digital Sky Survey. Astrophysical Journal 620, 618-628. https://doi.org/10.1086/427176
Murawski, W. (1983) An Intergalactic Absorbing Cloud in the Neighborhood of the North Galactic Pole. Acta Cosmologica, 12, 7-26.
LaViolette, P.A. (1992) The Planetary-Stellar Mass-Luminosity Relation: Possible Evidence of Energy Nonconservation? Physics Essays, 5, 536-543.
Tully, R.B., Shaya, E.J., Karachentsev, I.D., et al. (2008) Our Peculiar Motion Away from the Local Void. Astrophysical Journal, 676, 184-205. https://doi.org/10.1086/527428
Karachentsev, I.D., Kashibadze, O.G., Makarov, D.I. and Tully, R.B. (2009) The Hubble Flow around the Local Group. Monthly Notices of the Royal Astronomy Society, 393, 1265-1274. https://doi.org/10.1111/j.1365-2966.2008.14300.x
Sandage, A. (1999) Bias Properties of Extragalactic Distance Indicators. VIII H0 from Distance-Limited Luminosity Class and Morphological Type-Specific Luminosity Functions for SB, SBC, and SC Galaxies Calibrated Using Cepheids. Astrophysical Journal, 527, 479-487. https://doi.org/10.1086/308123
Karachentsev, I.D., Chernin, A.D. and Teerikorpi, P. (2003) The Hubble Flow: Why Does the Cosmological Expansion Preserve Its Kinematical Identity from a Few Mpc Distance to the Observation Horizon? Astrophysics, 46, 399-414. https://doi.org/10.1023/B:ASYS.0000003255.06980.c0
Arp, H. and Sulentic, J.W. (1985) Analysis of Groups of Galaxies with Accurate Redshifts. Astrophysical Journal, 291, 88-111. https://doi.org/10.1086/163044
Arp, H. (1986) A Corrected Velocity for the Local Standard of Rest by Fitting to the Mean Redshift of Local Group Galaxies. Astronomy & Astrophysics, 156, 207-212.
Arp, H. (1982) Characteristics of Companion Galaxies. Astrophysical Journal, 256, 54-74. https://doi.org/10.1086/159883
Bottinelli, L. and Gouguenheim, L. (1973) Redshifts of Companion Galaxies. Astronomy & Astrophysics, 26, 85-89.
Arp, H.T. (1990) The Hubble Relation: Differences between Galaxy Types Sb and Sc. Astrophysics & Space Science, 167, 183-219. https://doi.org/10.1007/BF00659347
Russell, D.G. (2005) Evidence for Intrinsic Redshifts in Normal Spiral Galaxies. Astrophysics & Space Science 298, 577-602. https://doi.org/10.1007/s10509-005-2317-x