{"@context":"http://schema.org","@id":"https://doi.org/10.17182/hepdata.158359.v1","@reverse":{"isBasedOn":[{"@type":"ScholarlyArticle","identifier":{"@type":"PropertyValue","propertyID":"URL","value":"https://inspirehep.net/literature/2907010"}},{"@id":"https://doi.org/10.1103/ldcn-r2lq","@type":"JournalArticle"}]},"@type":"Dataset","additionalType":"Collection","author":{"@type":"Organization","name":"ATLAS Collaboration"},"creator":{"@type":"Organization","name":"ATLAS Collaboration"},"datePublished":"2025","description":"Anisotropic flow and radial flow are two key probes of the expansion dynamics and properties of the quark-gluon plasma (QGP). While anisotropic flow has been extensively studied, radial flow, which governs the system's radial expansion, has received less attention. Notably, experimental evidence for the global and collective nature of radial flow has been lacking. This Letter presents the first measurement of transverse momentum ($p_{\\mathrm{T}}$) dependence of radial flow fluctuations ($v_0(p_{\\mathrm{T}})$) over $0.5<p_{\\mathrm{T}}<10$ GeV, using a two-particle correlation method in Pb+Pb collisions at $\\sqrt{s_{\\mathrm{NN}}}=5.02$ TeV. The data reveal three key features supporting the collective nature of radial flow: long-range correlation in pseudorapidity, factorization in $p_{\\mathrm{T}}$, and centrality-independent shape in $p_{\\mathrm{T}}$. The comparison with a hydrodynamic model demonstrates the sensitivity of $v_0(p_{\\mathrm{T}})$ to bulk viscosity, a crucial transport property of the QGP. 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