论文标题
具有稳定的Wilson Fermions的特性,合奏和强子光谱
Properties, ensembles and hadron spectra with Stabilised Wilson Fermions
论文作者
论文摘要
在这一联合贡献中,我们宣布形成了“开放格计划”,https://openlat1.gitlab.io,研究稳定的Wilson Fermions(SWF)。它们是Wilson型费米子(Wilson Type Fermions)进行QCD计算的新途径,我们报告了对该框架的持续研究结果:调整三叶草的改进系数,并将晶格间距的范围扩大到$ a = 0.12 $ fm。我们修复了风味对称点$m_π= m_k = 412 $ meV at $ a = 0.055,064、0.077、0.094、0.094、0.12 $ fm,并通过固定夸克质量矩阵的痕迹将轨迹定义为物理点。目前,我们的触发质量范围降至$m_π\ sim200 $ meV。我们概述了调整目标和策略以及未来计划的合奏。对$f_π$和$m_π$进行了首次扩展研究。另外,还提出了在风味对称点上$ m_n $的初步连续性外推的结果。显示了进一步确定光和奇怪的强子手性依赖性的,这有助于检查动作的质量以进行精确测量。我们还研究了其他数量,例如流量计的可观察结果,以研究如何接近连续性极限。综上所述,我们观察到SWF使我们能够在质量,体积和晶格间距的大量参数上进行稳定的晶格模拟。我们的新计划的汇总资源使我们报告的进度成为可能,我们将通过开放的科学哲学分享生成的量规合奏。
In this joint contribution we announce the formation of the "OPEN LATtice initiative", https://openlat1.gitlab.io, to study Stabilised Wilson Fermions (SWF). They are a new avenue for QCD calculations with Wilson-type fermions and we report results on our continued study of this framework: Tuning the clover improvement coefficient, and extending the reach of lattice spacings to $a=0.12$ fm. We fix the flavor symmetric points $m_π=m_K=412$ MeV at $a=0.055,0.064, 0.077, 0.094, 0.12$ fm and define the trajectories to the physical point by fixing the trace of the quark mass matrix. Currently our pion mass range extends down to $m_π\sim200$ MeV. We outline our tuning goals and strategy as well as our future planned ensembles. First scaling studies are performed on $f_π$ and $m_π$. Additionally results of a preliminary continuum extrapolation of $m_N$ at the flavor symmetric point are presented. Going further a first determination of the light and strange hadron spectrum chiral dependence is shown, which serves to check the quality of the action for precision measurements. We also investigate other quantities such as flowed gauge observables to study how the continuum limit is approached. Taken together we observe the SWF enable us to perform stable lattice simulations across a large range of parameters in mass, volume and lattice spacing. Pooling resources our new initiative has made our reported progress possible and through it we will share generated gauge ensembles under an open science philosophy.