Aswathy Menon Kavumpadikkal Radhakrishnan , Suraj Prasad , Neelkamal Mallick , Raghunath Sahoo , Gergely Gábor Barnaföldi
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This paper attempts to study the clustered-nuclear-geometry dependence of anisotropic flow coefficients such as elliptic flow (<span><math><msub><mi>v</mi><mn>2</mn></msub></math></span>) and triangular flow (<span><math><msub><mi>v</mi><mn>3</mn></msub></math></span>), which are sensitive to the nuclear geometry of colliding nuclei. The study is performed in pO and OO collisions at <span><math><mrow><msqrt><msub><mi>s</mi><mrow><mrow><mi>N</mi></mrow><mi>N</mi></mrow></msub></msqrt><mo>=</mo><mn>9.61</mn></mrow></math></span> TeV and 7 TeV respectively, employing a hybrid model encompassing IP-Glasma + MUSIC + iSS + UrQMD. The results of the clustered nuclear geometry are compared with those of the Woods–Saxon nuclear profile. Both initial and final state anisotropies are estimated. This study is thus one of its first kind, where the study of anisotropic flow coefficients for pO and OO collisions is presented using a hybrid hydrodynamics model. While the effect of <span><math><mi>α</mi></math></span>-clustering in pO is found to be small, it is significant for each observable studied in OO collisions. It is also observed that the magnitude of this effect has a noteworthy dependence on the size of the <sup>4</sup>He.</div></div>","PeriodicalId":20162,"journal":{"name":"Physics Letters B","volume":"870 ","pages":"Article 139941"},"PeriodicalIF":4.5000,"publicationDate":"2025-10-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Probing the sensitivity of anisotropic flow coefficients to the initial nuclear structure in pO and OO collisions at the LHC\",\"authors\":\"Aswathy Menon Kavumpadikkal Radhakrishnan , Suraj Prasad , Neelkamal Mallick , Raghunath Sahoo , Gergely Gábor Barnaföldi\",\"doi\":\"10.1016/j.physletb.2025.139941\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>RHIC and LHC have injected <span><math><mrow><msup><mrow></mrow><mn>16</mn></msup><mrow><mi>O</mi></mrow></mrow></math></span> nuclei in their accelerator complexes with a focus on investigating collectivity and the origin of quark-gluon plasma signatures in small collision systems. 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引用次数: 0
摘要
RHIC和LHC在其加速器复合体中注入了160个原子核,重点是研究小型碰撞系统中夸克-胶子等离子体特征的集体性和起源。已知16O原子核内具有α-粒子簇(4He)。本文试图研究对碰撞核几何形状敏感的椭圆流(v2)和三角形流(v3)等各向异性流动系数的聚类核几何依赖关系。采用IP-Glasma + MUSIC + iSS + UrQMD的混合模型,在sNN分别为9.61 TeV和7 TeV的pO和OO碰撞中进行了研究。将聚簇核几何结果与Woods-Saxon核剖面结果进行了比较。估计了初始和末态各向异性。因此,这项研究是第一次使用混合流体力学模型研究pO和OO碰撞的各向异性流动系数。虽然α-聚类在pO中的影响很小,但在OO碰撞中研究的每个观测值都是显著的。我们还观察到,这种效应的大小与4He的大小有显著的依赖关系。
Probing the sensitivity of anisotropic flow coefficients to the initial nuclear structure in pO and OO collisions at the LHC
RHIC and LHC have injected nuclei in their accelerator complexes with a focus on investigating collectivity and the origin of quark-gluon plasma signatures in small collision systems. The nuclei are known to possess clusters of -particles () inside the nucleus. This paper attempts to study the clustered-nuclear-geometry dependence of anisotropic flow coefficients such as elliptic flow () and triangular flow (), which are sensitive to the nuclear geometry of colliding nuclei. The study is performed in pO and OO collisions at TeV and 7 TeV respectively, employing a hybrid model encompassing IP-Glasma + MUSIC + iSS + UrQMD. The results of the clustered nuclear geometry are compared with those of the Woods–Saxon nuclear profile. Both initial and final state anisotropies are estimated. This study is thus one of its first kind, where the study of anisotropic flow coefficients for pO and OO collisions is presented using a hybrid hydrodynamics model. While the effect of -clustering in pO is found to be small, it is significant for each observable studied in OO collisions. It is also observed that the magnitude of this effect has a noteworthy dependence on the size of the 4He.
期刊介绍:
Physics Letters B ensures the rapid publication of important new results in particle physics, nuclear physics and cosmology. Specialized editors are responsible for contributions in experimental nuclear physics, theoretical nuclear physics, experimental high-energy physics, theoretical high-energy physics, and astrophysics.