Dark Coincidences: Small-Scale Solutions with Refracted Gravity and MOND

被引:2
|
作者
Cesare, Valentina [1 ]
机构
[1] Natl Inst Astrophys, Astrophys Observ Catania, Via St Sofia 78, CT, I-95123 Catania, Italy
关键词
modified gravity; dark matter; galaxy dynamics; acceleration scale; scaling relations; LSB galaxies; globular clusters; TULLY-FISHER RELATION; DISCREPANCY-ACCELERATION RELATION; DWARF SPHEROIDAL GALAXY; GLOBULAR-CLUSTERS; NEWTONIAN DYNAMICS; ROTATION CURVES; COSMOLOGICAL CONSTANT; VELOCITY DISPERSION; LAMBDA-CDM; STAR-CLUSTERS;
D O I
10.3390/universe9010056
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
General relativity and its Newtonian weak field limit are not sufficient to explain the observed phenomenology in the Universe, from the formation of large-scale structures to the dynamics of galaxies, with the only presence of baryonic matter. The most investigated cosmological model, the lambda CDM, accounts for the majority of observations by introducing two dark components, dark energy and dark matter, which represent similar to 95% of the mass-energy budget of the Universe. Nevertheless, the lambda CDM model faces important challenges on the scale of galaxies. For example, some very tight relations between the properties of dark and baryonic matters in disk galaxies, such as the baryonic Tully-Fisher relation (BTFR), the mass discrepancy-acceleration relation (MDAR), and the radial acceleration relation (RAR), which see the emergence of the acceleration scale a(0) (SIC)' 1.2 x 10(-10) m s(-2), cannot be intuitively explained by the CDM paradigm, where cosmic structures form through a stochastic merging process. An even more outstanding coincidence is due to the fact that the acceleration scale a(0), emerging from galaxy dynamics, also seems to be related to the cosmological constant lambda. Another challenge is provided by dwarf galaxies, which are darker than what is expected in their innermost regions. These pieces of evidence can be more naturally explained, or sometimes even predicted, by modified theories of gravity, that do not introduce any dark fluid. I illustrate possible solutions to these problems with the modified theory of gravity MOND, which departs from Newtonian gravity for accelerations smaller than a0, and with Refracted Gravity, a novel classical theory of gravity introduced in 2016, where the modification of the law of gravity is instead regulated by a density scale.
引用
收藏
页数:30
相关论文
共 50 条
  • [21] Imprints of nonthermal Wino dark matter on small-scale structure
    Ibe, Masahiro
    Kamada, Ayuki
    Matsumoto, Shigeki
    PHYSICAL REVIEW D, 2013, 87 (06)
  • [22] Dark Matter annihilation in small-scale clumps in the Galactic halo
    V. S. Berezinsky
    V. I. Dokuchaev
    Yu. N. Eroshenko
    Physics of Atomic Nuclei, 2004, 67 : 1195 - 1197
  • [23] Dark matter annihilation in small-scale clumps in the galactic halo
    Berezinsky, VS
    Dokuchaev, VI
    Eroshenko, YN
    PHYSICS OF ATOMIC NUCLEI, 2004, 67 (06) : 1195 - 1197
  • [24] QUANTITATIVE-EVALUATION OF EFFECT OF GRAVITY ON SMALL-SCALE MODELING
    DANCYGIER, AN
    JOURNAL OF ENGINEERING MECHANICS-ASCE, 1995, 121 (07): : 773 - 778
  • [25] A FIELD EXPERIMENT ON THE SMALL-SCALE MODEL OF A GRAVITY OFFSHORE PLATFORM
    BOCCOTTI, P
    OCEAN ENGINEERING, 1995, 22 (06) : 615 - 627
  • [26] Decaying cold dark matter model and small-scale power
    Cen, RY
    ASTROPHYSICAL JOURNAL, 2001, 546 (02): : L77 - L80
  • [27] Small-scale clumps in the galactic halo and dark matter annihilation
    Berezinsky, V
    Dokuchaev, V
    Eroshenko, Y
    PHYSICAL REVIEW D, 2003, 68 (10)
  • [28] Small-scale perturbations in a general mixed dark matter cosmology
    Hu, W
    Eisenstein, DJ
    ASTROPHYSICAL JOURNAL, 1998, 498 (02): : 497 - 503
  • [29] Constraining the Small-Scale Clustering of Dark Matter with Stellar Streams
    Bovy, Jo
    ILLUMINATING DARK MATTER, 2019, 56 : 9 - 18
  • [30] Solving the small-scale structure puzzles with dissipative dark matter
    Foot, Robert
    Vagnozzi, Sunny
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2016, (07):