期刊文献+

Gravitational wave astronomy: the current status 被引量:4

Gravitational wave astronomy:the current status
原文传递
导出
摘要 In the centenary year of Einstein's General Theory of Relativity, this paper reviews the current status of gravitational wave astronomy across a spectrum which stretches from attohertz to kilohertz frequencies. Sect. 1 of this paper reviews the historical development of gravitational wave astronomy from Einstein's first prediction to our current understanding the spectrum. It is shown that detection of signals in the audio frequency spectrum can be expected very soon, and that a north-south pair of next generation detectors would provide large scientific benefits. Sect. 2 reviews the theory of gravitational waves and the principles of detection using laser interferometry. The state of the art Advanced LIGO detectors are then described. These detectors have a high chance of detecting the first events in the near future. Sect. 3 reviews the KAGRA detector currently under development in Japan,which will be the first laser interferometer detector to use cryogenic test masses. Sect. 4 of this paper reviews gravitational wave detection in the nanohertz frequency band using the technique of pulsar timing. Sect. 5 reviews the status of gravitational wave detection in the attohertz frequency band, detectable in the polarisation of the cosmic microwave background, and discusses the prospects for detection of primordial waves from the big bang. The techniques described in sects. 1–5 have already placed significant limits on the strength of gravitational wave sources. Sects. 6 and 7 review ambitious plans for future space based gravitational wave detectors in the millihertz frequency band. Sect. 6 presents a roadmap for development of space based gravitational wave detectors by China while sect. 7 discusses a key enabling technology for space interferometry known as time delay interferometry. In the centenary year of Einstein's General Theory of Relativity, this paper reviews the current status of gravitational wave as- tronomy across a spectrum which stretches from attohertz to kilohertz frequencies. Sect. 1 of this paper reviews the historical development of gravitational wave astronomy from Einstein's first prediction to our current understanding the spectrum. It is shown that detection of signals in the audio frequency spectrum can be expected very soon, and that a north-south pair of next generation detectors would provide large scientific benefits. Sect. 2 reviews the theory of gravitational waves and the principles of detection using laser interferometry. The state of the art Advanced LIGO detectors are then described. These detectors have a high chance of detecting the first events in the near future. Sect. 3 reviews the KAGRA detector currently under development in Japan, which will be the first laser interferometer detector to use cryogenic test masses. Sect. 4 of this paper reviews gravitational wave detection in the nanohertz frequency band using the technique of pulsar timing. Sect. 5 reviews the status of gravitational wave detection in the attohertz frequency band, detectable in the polarisation of the cosmic microwave background, and discusses the prospects for detection of primordial waves from the big bang. The techniques described in sects. 1-5 have already placed signifi- cant limits on the strength of gravitational wave sources. Sects. 6 and 7 review ambitious plans for future space based gravitational wave detectors in the millihertz frequency band. Sect. 6 presents a roadmap for development of space based gravitational wave detectors by China while sect. 7 discusses a key enabling technology for space interferometry known as time delay interferometry.
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2015年第12期3-43,共41页 中国科学:物理学、力学、天文学(英文版)
基金 supported by the US National Science Foundation(Grant No.PHY-0757058) supported by the National Natural Science Foundation of China(Grant Nos.11443008 and 11503003) a Returned Overseas Chinese Scholars Foundation grant,and Fundamental Research Funds for the Central Universities(Grant No.2015KJJCB06) supported by the National Space Science Center,Chinese Academy of Sciences(Grant Nos.XDA04070400 and XDA04077700) Partial supports from the National Natural Science Foundation of China(Grant Nos.11305255,11171329 and 41404019)
关键词 gravitational waves ground based detectors pulsar timing spaced based detectors CMB 引力波探测器 天文学 激光干涉测量 宇宙微波背景 使能技术 爱因斯坦 广义相对论 脉冲星计时
  • 相关文献

参考文献6

二级参考文献205

  • 1肖云,夏哲仁,王兴涛.用GRACE星间速度恢复地球重力场[J].测绘学报,2007,36(1):19-25. 被引量:22
  • 2王世仪 施宙聪 等.26km外差式光纤连结干涉仪杂讯之研究.计量工程学会第四届计量学术研讨会论文集[M].新竹,1995,5.55-62.
  • 3廖安琪.次奈瓦级与皮瓦级弱光锁相之研究.清华大学物理研究所硕士论文[M].,2000..
  • 4Ni W T 2010 Mod. Phys. Lett. A 25 922.
  • 5Classification of Gravitational Waves http://astrod.wikispaces.com/file Iview/GW-classification. pdf.
  • 6Hanson D, Hoover S, Crites A, et al. (SPTpol Collaboration) 2013 Phys. Rev. Lett. 111141301.
  • 7Ade PAR, Akiba Y, Anthony A E, et al. (POLARBEAR Collaboration) 2014 Astrophys. J. 794 171.
  • 8Ade PAR, Aikin R W, Barkats D, et al. (BICEP2 Collaboration) 2014 Phys. Rev. Lett. 112241101.
  • 9Ade PAR, Aghanim N, Armitage-Caplan C, et al. (Planck Collabora- tion) 2014 Astron. Astrophys. 571 A 16.
  • 10Naess S, Hasselfield M, McMahon J, et al. 2014 lCAP 10 007.

共引文献45

同被引文献21

引证文献4

二级引证文献6

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部