课题基金 / 基金详情

RUI: Observational Studies of Galactic and Extragalactic Supernova Remnants

RUI: Observational Studies of Galactic and Extragalactic Supernova Remnants
RUI:银河系和河外超新星遗迹的观测研究
批准号:
9618465
负责人:
Frank Winkler
金额:
$17.75万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-05-15 至 2003-04-30

项目摘要

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中文摘要
翻译
抽象的温克勒 超新星是大质量恒星(超过太阳质量的8倍)结束生命的灾难性事件。它们是目前宇宙中发生的最具能量的局部事件:一个典型的超新星爆炸在几秒钟内释放出大约10的44次方焦耳的能量,相当于太阳在其100亿年的整个生命过程中所消耗的能量。 毫不奇怪,如此巨大的能量释放会对发生超新星的星系的动力学产生深远的影响。超新星的冲击波被认为是当它们遇到密集的星际云时触发星星形成的插曲。此外,超新星负责宇宙中大部分重元素的产生和分布。元素周期表上从氦到铁的几乎所有元素都是在大质量恒星的核心通过核合成产生的,这些元素通过它们最初形成的恒星的超新星爆炸分布在宇宙中。 通过研究超新星及其遗留物,我们可以深入了解核合成的过程、宇宙化学成分的演变以及这种巨大能量释放对超新星宿主星系的影响。 河外超新星遗迹(SNRs)的样本比我们银河系中的样本有两个显著的优势:(1)对其他星系的观测远没有银河系那么受星际吸收的阻碍,在银河系中,只有不到三分之一的已知残余物被光学手段探测到,(2)另一个星系中的所有残余物都在相同的已知距离上,使它们之间的比较更有意义和可靠。 在大麦哲伦星云和小麦哲伦星云中进行的超新星搜索,最接近我们的银河系,以及在本星系群中最大的星系M31中进行的超新星搜索,应该会增加这些星系中SNR的样本数倍。 将使用基特峰和托洛洛山天文台小型施密特望远镜上的CCD照相机进行宽视场数字成像。 该技术已经导致识别超过100个SNR候选者。 这些超新星候选者将通过光谱学和高分辨率成像进行进一步研究,以确认它们实际上是否是SNRs,然后观察它们的特性。 扩大的河外信噪比样本将用于研究超新星的局部环境,探测星系中的元素丰度和丰度梯度,测量超新星事件的能量,并研究超新星对星系结构的影响。 详细的注意力将集中在少数年轻的SNRs上,在那里可以识别超新星的未污染喷出物。在更古老的遗迹中,数量要多得多,通过星际介质驱动的冲击可以探测星际气体的密度,结构和丰度。宽视场成像技术将被用于研究我们银河系中前所未有的细节的单个SNR。拟议的光学调查将与新的无线电和X射线数据相结合,以研究超新星的星际环境和冲击的基本物理学。这些对少数选定天体的详细研究将补充更广泛的河外巡天。 与本科生的重要合作是开展研究不可或缺的。
英文摘要
Abstract Winkler Supernovae are the cataclysmic events in which massive stars (more than about 8 times the mass of our Sun) end their lives. They are the most energetic localized events which now occur in the universe: a typical supernova explosion releases in a few seconds an energy of about 10 to the 44th Joules, comparable to what the Sun will expend throughout the entire course of its 10 billion year lifetime. Not surprisingly, such a prodigious release of energy can have profound effects on the dynamics of galaxies in which supernovae occur. The shock waves from supernovae are believed to trigger episodes of star formation when they encounter dense interstellar clouds. Furthermore, supernovae are responsible for the production and distribution of most of the heavy elements in the universe. Virtually all the elements from helium to iron, on the periodic table, were created by nucleosynthesis in the cores of massive stars, and these elements have been distributed around the cosmos through the supernova explosions of the stars in which they were originally formed. By studying supernovae and the remnants they leave behind, we can gain insight into the processes of nucleosynthesis, the evolution of the universe's chemical composition, and the effects of such prodigious energy release on the host galaxies of supernovae. Extragalactic samples of supernova remnants (SNRs) offer two significant advantages over ones in our Galaxy: (I) the view toward other galaxies is far less impeded by interstellar absorption than in the Milky Way, where fewer than a third of all known remnants have been detected at all by optical means, and (2) all the remnants in another galaxy are at the same, known distance, making comparisons among them much more meaningful and reliable. Supernovae searches to be conducted in the Large and Small Magellanic Clouds, nearest neighbors to our Milky Way, and in M31, the largest galaxy in the Local Group, should increase the samples of SNRs in t hese galaxies several-fold. Wide-field digital imaging through the use of CCD cameras on small Schmidt telescopes at Kitt Peak and Cerro Tololo observatories will be used. A technique which has already led to the identification of over 100 SNR candidates. These supernovae candidates will be further studied through spectroscopy and high-resolution imaging to confirm whether they are, in fact, SNRs and then their properties will be observed. The expanded extragalactic SNR samples will be used to study the local environments of supernovae, to probe elemental abundances and abundance gradients in galaxies, to measure the energy of supernova events, and to study the effects of supernovae on galactic structure. Detailed attention will be focused on the handful of young SNRs where uncontaminated ejecta from the supernova can be identified. In older remnants, which are much more numerous, shocks driven through the interstellar medium can probe the density, structure, and abundances of the interstellar gas. Wide-field imaging techniques will be used to study individual SNRs in our Galaxy in unprecedented detail. The proposed optical investigations will be combined with new radio and X-ray data to study the interstellar environments of supernovae and the fundamental physics of shocks. These detailed studies of a few selected objects will complement the broader extragalactic surveys. Significant collaboration with undergraduate students is integral to carrying out the research.
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RUI: Completing Studies of Supernova Remnants and the Interstellar Medium
  • 批准号:
    1714281
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $20.41万
  • 财政年份:
    2017
  • 负责人:
    Frank Winkler
  • 依托单位:
RUI: Supernova Ejecta, Shocks, and the Interstellar Medium
  • 批准号:
    0908566
  • 项目类别:
    Standard Grant
  • 资助金额:
    $29.98万
  • 财政年份:
    2009
  • 负责人:
    Frank Winkler
  • 依托单位:
RUI: Observational Studies of Supernova Remnants and the Interstellar Medium
  • 批准号:
    0307613
  • 项目类别:
    Standard Grant
  • 资助金额:
    $0.0万
  • 财政年份:
    2003
  • 负责人:
    Frank Winkler
  • 依托单位:
A Telescope and Instrumentation for a New Astronomy Curriculum
  • 批准号:
    9980946
  • 项目类别:
    Standard Grant
  • 资助金额:
    $15.57万
  • 财政年份:
    2000
  • 负责人:
    Frank Winkler
  • 依托单位:
海外基金