{"title":"Exploring cosmological effects of a constant jerk parameter in FLRW universe within \\(f(T)\\) gravity","authors":"Syed Mudassir Syed Iqbal, G. U. Khapekar","doi":"10.1007/s10509-025-04428-5","DOIUrl":null,"url":null,"abstract":"<div><p>In this paper, we investigate the evolution of the FLRW universe by analyzing the constant jerk parameter <span>\\(j\\)</span> within the framework of <span>\\(f(T)\\)</span> gravity. Using a model-independent parametrization approach, we assume <span>\\(j\\)</span> as constant and derive an expression for the Hubble parameter as </p><div><div><span> $$\\begin{aligned} H(z)=H_{0}\\left [\\xi _{1}\\left (z+1\\right )^{\\frac{3+\\sqrt{8j+1}}{2}}+ \\left (1{-\\xi }_{1}\\right )\\left (z+1\\right )^{\\frac{3-\\sqrt{8j+1}}{2}} \\right ]^{\\frac{1}{2}} \\end{aligned}$$ </span></div></div><p> We estimate model parameters via a Chi-square test coupled with Markov Chain Monte Carlo (MCMC) simulations, based on 52 Observational Hubble Data (OHD) points and 1701 Pantheon+SHOES data points. This method yields the best fit values: <span>\\(\\xi _{1}={0.39}_{-0.08}^{+0.12}\\)</span>, <span>\\(j={0.67}_{-0.19}^{+0.19}\\)</span>, <span>\\(H_{0}={66.08}_{-2.78}^{+2.83} \\; km/s/Mpc\\)</span> for OHD dataset and <span>\\(\\xi _{1}={0.37}_{-0.03}^{+0.03}\\)</span>, <span>\\(j={0.67}_{-0.38}^{+0.40}\\)</span>, <span>\\(H_{0}={72.80}_{-0.29}^{+0.31}\\)</span> <span>\\(km/s/Mpc\\)</span> for Pantheon+SHOES dataset. The value of <span>\\(H_{0}\\)</span> obtained in our analysis closely resembles the value estimated by the Planck Collaboration in 2018, <span>\\(H_{0}=67.4\\pm 0.5\\; km/s/Mpc\\)</span>. Our analysis of the deceleration parameter <span>\\(q\\)</span> reveals a transition from an early decelerating phase to a present accelerating expansion, with <span>\\(q_{0}\\approx -0.3887\\)</span> <span>\\((OHD)\\)</span> and <span>\\(q_{0}\\approx -0.4139\\)</span> <span>\\((Pantheon+SHOES)\\)</span>. Additionally, we examine dynamic parameter such as energy density, pressure, and equation of state parameter within the model <span>\\(f\\left (T\\right )=T+\\eta T^{\\beta }\\)</span>, where <span>\\(\\eta \\)</span> and <span>\\(\\beta \\)</span> are an arbitrary real constant. The equation of state parameter <span>\\(\\omega \\)</span> in our model demonstrates a smooth transition from the radiation-dominated era to the matter-dominated era and finally to the dark energy era. The present-day values of <span>\\(\\omega _{0} \\approx -0.6196\\)</span> <span>\\((OHD)\\)</span> and <span>\\(\\omega _{0} \\approx -0.6548\\)</span> <span>\\((Pantheon+SHOES)\\)</span> suggests that the universe is currently in a quintessence phase, where dark energy behaves as a dynamical component rather than a cosmological constant <span>\\(\\omega = -1\\)</span>. This behavior indicates that our model is physically acceptable and aligns with the general features of cosmic evolution. Notably, the strong energy condition (SEC) is violated at present <span>\\(\\left (z =0\\right )\\)</span> and is projected to remain violated in the future <span>\\(\\left (z < 0\\right )\\)</span>, driving the observed accelerated expansion of the universe. Also, this study offers insights into the impact of a constant jerk parameter on cosmic evolution and expansion dynamics within the framework of modified gravity, with a specific focus on the <span>\\(f\\left (T\\right )\\)</span> gravity model.</p></div>","PeriodicalId":8644,"journal":{"name":"Astrophysics and Space Science","volume":"370 4","pages":""},"PeriodicalIF":1.8000,"publicationDate":"2025-04-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Astrophysics and Space Science","FirstCategoryId":"101","ListUrlMain":"https://link.springer.com/article/10.1007/s10509-025-04428-5","RegionNum":4,"RegionCategory":"物理与天体物理","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"ASTRONOMY & ASTROPHYSICS","Score":null,"Total":0}
引用次数: 0
Abstract
In this paper, we investigate the evolution of the FLRW universe by analyzing the constant jerk parameter \(j\) within the framework of \(f(T)\) gravity. Using a model-independent parametrization approach, we assume \(j\) as constant and derive an expression for the Hubble parameter as
We estimate model parameters via a Chi-square test coupled with Markov Chain Monte Carlo (MCMC) simulations, based on 52 Observational Hubble Data (OHD) points and 1701 Pantheon+SHOES data points. This method yields the best fit values: \(\xi _{1}={0.39}_{-0.08}^{+0.12}\), \(j={0.67}_{-0.19}^{+0.19}\), \(H_{0}={66.08}_{-2.78}^{+2.83} \; km/s/Mpc\) for OHD dataset and \(\xi _{1}={0.37}_{-0.03}^{+0.03}\), \(j={0.67}_{-0.38}^{+0.40}\), \(H_{0}={72.80}_{-0.29}^{+0.31}\)\(km/s/Mpc\) for Pantheon+SHOES dataset. The value of \(H_{0}\) obtained in our analysis closely resembles the value estimated by the Planck Collaboration in 2018, \(H_{0}=67.4\pm 0.5\; km/s/Mpc\). Our analysis of the deceleration parameter \(q\) reveals a transition from an early decelerating phase to a present accelerating expansion, with \(q_{0}\approx -0.3887\)\((OHD)\) and \(q_{0}\approx -0.4139\)\((Pantheon+SHOES)\). Additionally, we examine dynamic parameter such as energy density, pressure, and equation of state parameter within the model \(f\left (T\right )=T+\eta T^{\beta }\), where \(\eta \) and \(\beta \) are an arbitrary real constant. The equation of state parameter \(\omega \) in our model demonstrates a smooth transition from the radiation-dominated era to the matter-dominated era and finally to the dark energy era. The present-day values of \(\omega _{0} \approx -0.6196\)\((OHD)\) and \(\omega _{0} \approx -0.6548\)\((Pantheon+SHOES)\) suggests that the universe is currently in a quintessence phase, where dark energy behaves as a dynamical component rather than a cosmological constant \(\omega = -1\). This behavior indicates that our model is physically acceptable and aligns with the general features of cosmic evolution. Notably, the strong energy condition (SEC) is violated at present \(\left (z =0\right )\) and is projected to remain violated in the future \(\left (z < 0\right )\), driving the observed accelerated expansion of the universe. Also, this study offers insights into the impact of a constant jerk parameter on cosmic evolution and expansion dynamics within the framework of modified gravity, with a specific focus on the \(f\left (T\right )\) gravity model.
本文通过在引力框架内分析常数急动参数j,研究了FLRW宇宙的演化。使用依赖于模型的参数化方法,我们假设\(j\)为常数,并导出哈勃参数的表达式为$$\beggin{aligned}H(z)=H_{0}\left[\neneneba xi _{1}\lift(z+1\right)^{\frac{3+\sqrt{8j+1}}}}}\end{aligned}$$我们基于52个观测哈勃数据(OHD)点和1701个Pantheon+SHOES数据点,通过平方检验和马尔可夫链蒙特卡洛(MCMC)模拟来估计模型参数。此方法产生最佳拟合值:\(\neneneba xi _{1}={0.39}_{-0.08}^{+0.12}\),\(j={0.67}_{-0.19}^{+0.19}\),\(H_{0}={66.08}_{-2.78}^{+2.83} \;km/s/Mpc\)和\(\neneneba xi _{1}={0.37}_{-0.03}^{+0.03}\),\(j={0.67}_{-0.38}^{+0.40}\),\(H_{0}={72.80}_Pantheon+SHOES数据集的{-0.29}^{+0.31}\)\(km/s/Mpc\)。在我们的分析中获得的\(H_{0}\)值与普朗克合作组织在2018年估计的\(H_{0}=67.4\pm 0.5\km/s/Mpc\)值非常相似。我们对减速参数\(q\)的分析揭示了从早期减速阶段到目前加速膨胀的转变,其中\。此外,我们研究了模型\(f\left(T\right)=T+\eta T^{\beta}\)中的动态参数,如能量密度、压力和状态方程参数,其中\(\eta\)和\(\beta\)是任意实数常数。我们模型中的状态参数方程ω展示了从辐射主导时代到物质主导时代,最后到暗能量时代的平稳过渡。目前的ω_{0}约-0.6196(OHD)和ω_{0}约-0.6548(Pantheon+SHOES)的值表明,宇宙目前处于一个精髓阶段,暗能量表现为一个动力学分量,而不是一个宇宙常数(ω=-1)。这种行为表明,我们的模型在物理上是可以接受的,并且与宇宙进化的一般特征相一致。值得注意的是,强能量条件(SEC)目前被违反了(\left(z=0\right)\),并且预计在未来仍将被违反(\left。此外,这项研究还提供了在修正引力框架内恒定急动参数对宇宙演化和膨胀动力学的影响的见解,特别关注引力模型。
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