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Determining H_0 and q_0 from supernova data

机译:从超新星数据确定H_0和Q_0

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Since 1929 when Edwin Hubble showed that the Universe is expanding, extensive observations of redshifts and relative distances of galaxies have established the form of expansion law. Mapping the kinematics of the expanding universe requires sets of measurements of the relative size and age of the universe at different epochs of its history. There has been decades effort to get precise measurements of two parameters that provide a crucial test for cosmology models. The two key parameters are the rate of expansion, i.e., the Hubble constant (H_0) and the deceleration in expansion (q_0). These two parameters have been studied from the exceedingly distant clusters where redshift is large. It is indicated that the universe is made up by roughly 73% of dark energy, 23% of dark matter, and 4% of normal luminous matter; and the universe is currently accelerating. Recently, however, the unexpected faintness of the Type Ia supernovae (SNe) at low redshifts (z < 1) provides unique information to the study of the expansion behavior of the universe and the determination of the Hubble constant. In this work, we present a method based upon the distance modulus redshift relation and use the recent supernova Ia data to determine the parameters H_0 and q_0 simultaneously. Preliminary analysis from the data MLCS2k2 suggests the following ranges for H_0 and q_0, 54km/sec/Mpc < H_0 < 58km/sec/Mpc and 0.27 < q_0 < 0.38, which are different from the current theory.
机译:自1929年以来,当Edwin Hubble表示宇宙正在扩大,广泛观察到的红移和星系的相对距离建立了膨胀法的形式。映射扩展宇宙的运动学需要在其历史的不同时期的宇宙的相对大小和年龄的测量。几十年来努力获得两种参数的精确测量,为宇宙学模型提供了关键测试。这两个关键参数是扩展速率,即霍布尔常数(H_0)和扩展中的减速(Q_0)。已经从Redshift大的超遥远的群集研究了这两个参数。结果表明,宇宙的约73%的黑能量,23%的暗物质,占正常发光物的4%;宇宙目前正在加速。然而,最近,低红移IA型超新世界(SNE)的意外晕染(Z <1)提供了对宇宙扩张行为的研究以及霍布尔常数的研究提供了独特的信息。在这项工作中,我们介绍了一种基于距离模块红移关系的方法,并使用最近的超新星IA数据同时确定参数H_0和Q_0。数据MLCS2K2的初步分析表明以下范围为H_0和Q_0,54km / sec / MPC

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