PaperPanorama

Nuclear Experiment·nucl-ex

Fri·Jul 16, 2021

2 papers—0 primary·2 cross-listed·reconstructed*

  1. 01*

    Checking Non-Flow Assumptions and Results via PHENIX Published Correlations in , Au, Au, HeAu at = 200 GeV

    J.L. Nagle🇺🇸 · R. Belmont🇺🇸 · S.H. Lim🇰🇷 · B. Seidlitz🇺🇸

    Recently the PHENIX Collaboration has made available two-particle correlation Fourier coefficients for multiple detector combinations in minimum bias p+p and 0-5% central p+Au, d+Au, 3He+Au collisions at 200 GeV [1]. Using these coefficients for three sets of two-particle correlations, azimuthal anisotropy coefficients and are extracted for midrapidity charged hadrons as a function of transverse momentum. In this paper, we use the available coefficients to explore various non-flow hypotheses as well as compare the results with theoretical model calculations. The non-flow methods fail basic closure tests with AMPT and PYTHIA/ANGANTYR, particularly when including correlations with particles in the low multiplicity light-projectile going direction. In data, the non-flow adjusted results are modestly lower in p+Au and the adjusted results are more significantly higher in p+Au and d+Au. However, the resulting higher values for the ratio in p+Au at RHIC compared to p+Pb at the LHC is additional evidence for a significant over-correction. Incorporating these additional checks, the conclusion that these flow coefficients are dominated by initial geometry coupled with final-state interactions (e.g.~hydrodynamic expansion of quark-gluon plasma) remains true, and explanations based on initial-state glasma are ruled out. The detailed balance between intrinsic and fluctuation-driven geometry and the exact role of weakly versus strongly-coupled pre-hydrodynamic evolution remains an open question for triangular flow, requiring further theoretical and experimental investigation.

    ↳ nucl-thnucl-exPRC(2022)·11 citations
  2. 02*

    Dielectric Strength of Noble and Quenched Gases for High Pressure Time Projection Chambers

    L. Norman🇺🇸 · K. Silva🇺🇸 · B.J.P. Jones🇺🇸 · A.D. McDonald🇺🇸 · M. R. Tiscareno🇺🇸 · K. Woodruff🇺🇸

    Dielectric breakdown strength is one of the critical performance metrics for gases and mixtures used in large, high pressure gas time projection chambers. In this paper we experimentally study dielectric breakdown strengths of several important time projection chamber working gases and gas-phase insulators over the pressure range 100 mbar to 10 bar, and gap sizes ranging from 0.1to 10 mm. Gases characterized include argon, xenon, CO2, CF4, and mixtures 90-10 argon-CH4,90-10 argon-CO2and 99-1 argon-CF4. We develop a theoretical model for high voltage breakdown based on microphysical simulations that use PyBoltz electron swarm Monte Carlo results as input to Townsend- and Meek-like discharge criteria. This model is shown to be highly predictive at high pressure, out-performing traditional Paschen-Townsend and Meek-Raether models significantly. At lower pressure-times-distance, the Townsend-like model is an excellent description for noble gases whereas the Meek-like model provides a highly accurate prediction for insulating gases.

    ↳ physics.ins-dethep-exnucl-exEPJC(2022)·8 citations

* Reconstructed cohort: no mailing for this day survives in the archive. Papers are grouped by their submission times and arXiv's announcement cut-off, assuming announcement without delay; positions follow identifier order. Validated at ~91% exact-day agreement against the archived era.