Magnetic fields and the earliest stages of star cluster formation
Magnetic fields and the earliest stages of star cluster formation
批准号:
2893056
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --
中文摘要
恒星照亮了宇宙中的每一个星系,让我们能够研究它们在宇宙中的结构。尽管它们很重要,但恒星形成过程的许多方面仍然没有得到很好的约束。我们知道恒星的形成是大量星际冷分子气体云碎裂和坍塌的结果。然而,我们不知道是什么触发了这种坍塌,无论是由引力不稳定、湍流压缩、磁场扩散还是所有这三种因素的某种组合驱动的。通常描述星际分子云的湍流(通过测量谱线发射宽度)和重力(通过测量气体质量)。然而,磁场的观测要复杂得多。但在过去的几年里,由于技术的进步,在寒冷的星际云中推导出磁场的方向变得更加容易。这是通过观察弥漫在星际介质中的尘埃颗粒的亚毫米偏振发射来实现的。偏振光的方向直接告诉你磁场在天空平面上的方向。像JCMT上的POL2这样的仪器处于这种最先进的观测的前沿。最近,Peretto et al.(有待提交)表明,这些星团,即星团的祖先,动态地与其母分子云分离,这可能是它们全球坍塌的结果。然而,尚不清楚这种坍塌是否起源于磁场性质的变化。在这个博士项目的背景下,学生将分析全新的JCMT POL2观测到的一些团块(>;10),描述其中的磁场形态。较大尺度分子云中磁场的形态将由普朗克和GPIPS数据确定。将不同的磁场数据集连接起来,将使我们能够确定观察到的动态转变是否与磁场性质的转变相匹配,这可能表明它是团块坍塌的起因。在第二步,学生将在观测和云演化的数值模拟中描述团块磁场方向和气体速度梯度之间的关联,目的是确定磁场是否在最密集的区域受到重力的影响。攻读这一博士学位的学生将发现自己处于恒星形成研究的前沿,并将处于一个极好的位置,可以充分利用未来几年将开发的偏振仪器。
英文摘要
Stars light up every single galaxy across the Universe, allowing us to study their structure across the cosmos. Despite their importance, there are still many aspects of the star formation process that remain poorly constrained. We know that stars form as the result of the fragmentation and collapse of large interstellar clouds of cold molecular gas. However, we do not know what triggers that collapse, whether it is driven by gravitational instabilities, turbulent compression, magnetic field diffusion, or some combination of all three. The turbulence (via the measurement of the width of spectral line emission) and gravity (via the measurement of gas masses) of interstellar molecular clouds are routinely characterised. However, magnetic fields are a lot more complicated to observe. But in the past few years, as the result of technological advancements, it has become easier to derive the direction of magnetic fields in cold interstellar clouds. This is done by observing the sub-millimetre polarisation emission of dust grains that pervade the interstellar medium. The direction of the polarised light directly tells you in which direction the magnetic field is in the plane-of-the-sky. Instruments like POL2 on the JCMT is at the forefront of such state-of-the-art observations. Recently, Peretto et al. (to be submitted) showed that that clumps, i.e. the progenitors of stellar clusters, are dynamically decoupled from their parent molecular clouds, probably as the result of their global collapse. However, it is unclear if this collapse finds its origin in the change of magnetic field properties.In the context of this PhD project, the student will analyse brand new JCMT POL2 observations of a number of clumps (>10), characterise the magnetic field morphology in those. Morphology of the magnetic field in the larger scale molecular clouds will be determined by using Planck and GPIPS data. Connecting the different magnetic field datasets will allow us to determine whether or not the observed dynamical transition is matched by a transition in magnetic field properties which could be an indication that it is at the origin of the clump collapse.In a second step, the student will characterise the correlations between the clump magnetic field directions and gas velocity gradients, both in the observations and numerical simulations of cloud evolution, with the goal of determining whether magnetic fields are entrained by gravity in the densest regions or not. The student taking on this PhD will find themselves at the forefront of star formation research and will be in an excellent position to take full advantage of future polarisation instrumentations that will be developed in the next few years.
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会议论文
国内基金
海外基金
手性Salen配合物催化与底物诱导的不对称多组分Kabachnik-Fields反应
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批准号:21162008
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项目类别:地区科学基金项目
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资助金额:25.0万元
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批准年份:2011
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负责人:吴明书
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依托单位: