Time-delay interferometric ranging for space-borne gravitational-wave detectors

被引:33
|
作者
Tinto, M
Vallisneri, M
Armstrong, JW
机构
[1] CALTECH, Jet Prop Lab, Pasadena, CA 91109 USA
[2] CALTECH, Space Radiat Lab, Pasadena, CA 91125 USA
来源
PHYSICAL REVIEW D | 2005年 / 71卷 / 04期
关键词
D O I
10.1103/PhysRevD.71.041101
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Space-borne interferometric gravitational-wave detectors, sensitive in the low-frequency (mHz) band, will fly in the next decade. In these detectors, the spacecraft-to-spacecraft light-travel times will necessarily be unequal and time varying, and (because of aberration) will have different values on up- and down-links. In such unequal-armlength interferometers, laser-phase noise will be canceled by taking linear combinations of the laser-phase observables measured between pairs of spacecraft, appropriately time shifted by the light propagation times along the corresponding arms. This procedure, known as time-delay interferometry (TDI), requires an accurate knowledge of the light-time delays as functions of time. Here we propose a high-accuracy technique to estimate these time delays, and we study its use in the context of the Laser Interferometer Space Antenna (LISA) mission. We refer to this ranging technique, which relies on the TDI combinations themselves, as time-delay interferometric ranging (TDIR). For every TDI combination, we show that, by minimizing the rms power in that combination (averaged over integration times similar to10(4) s) with respect to the time-delay parameters, we obtain estimates of the time delays accurate enough to cancel laser noise to a level well below the secondary noises. Thus TDIR allows the implementation of TDI without the use of dedicated interspacecraft ranging systems, with a potential simplification of the LISA design. In this paper we define the TDIR procedure formally, and we characterize its expected performance via simulations with the Synthetic LISA software package.
引用
收藏
页码:041101 / 1
页数:5
相关论文
共 50 条
  • [21] Detecting gravitational lensing in hierarchical triples in galactic nuclei with space-borne gravitational-wave observatories
    Yu, Hang
    Wang, Yijun
    Seymour, Brian
    Chen, Yanbei
    PHYSICAL REVIEW D, 2021, 104 (10)
  • [22] Resolving Galactic binaries using a network of space-borne gravitational wave detectors
    Zhang, Xue-Hao
    Zhao, Shao-Dong
    Mohanty, Soumya D.
    Liu, Yu-Xiao
    PHYSICAL REVIEW D, 2022, 106 (10)
  • [23] Romer time-delay determination of the gravitational-wave propagation speed
    Finn, Lee Samuel
    Romano, Joseph D.
    PHYSICAL REVIEW D, 2013, 88 (02):
  • [24] Twin mirrors for laser interferometric gravitational-wave detectors
    Sassolas, Benoit
    Benoit, Quentin
    Flaminio, Raffaele
    Forest, Daniele
    Franc, Janyce
    Galimberti, Massimo
    Lacoudre, Aline
    Michel, Christophe
    Montorio, Jean-Luc
    Morgado, Nazario
    Pinard, Laurent
    APPLIED OPTICS, 2011, 50 (13) : 1894 - 1899
  • [25] ETpathfinder: a cryogenic testbed for interferometric gravitational-wave detectors
    Utina, A.
    Amato, A.
    Arends, J.
    Arina, C.
    de Baar, M.
    Baars, M.
    Baer, P.
    van Bakel, N.
    Beaumont, W.
    Bertolini, A.
    van Beuzekom, M.
    Biersteker, S.
    Binetti, A.
    ter Brake, H. J. M.
    Bruno, G.
    Bryant, J.
    Bulten, H. J.
    Busch, L.
    Cebeci, P.
    Collette, C.
    Cooper, S.
    Cornelissen, R.
    Cuijpers, P.
    van Dael, M.
    Danilishin, S.
    Diksha, D.
    van Doesburg, S.
    Doets, M.
    Elsinga, R.
    Erends, V
    van Erps, J.
    Freise, A.
    Frenaij, H.
    Garcia, R.
    Giesberts, M.
    Grohmann, S.
    Van Haevermaet, H.
    Heijnen, S.
    van Heijningen, J., V
    Hennes, E.
    Hennig, J-S
    Hennig, M.
    Hertog, T.
    Hild, S.
    Hoffmann, H-D
    Hoft, G.
    Hopman, M.
    Hoyland, D.
    Iandolo, G. A.
    Ietswaard, C.
    CLASSICAL AND QUANTUM GRAVITY, 2022, 39 (21)
  • [26] THE FREQUENCY-RESPONSE OF INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    MEERS, BJ
    PHYSICS LETTERS A, 1989, 142 (8-9) : 465 - 470
  • [27] THERMAL LENSING IN RECYCLING INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    STRAIN, KA
    DANZMANN, K
    MIZUNO, J
    NELSON, PG
    RUDIGER, A
    SCHILLING, R
    WINKLER, W
    PHYSICS LETTERS A, 1994, 194 (1-2) : 124 - 132
  • [28] Radiation pressure and stability of interferometric gravitational-wave detectors
    Chickarmane, V
    Dhurandhar, SV
    Barillet, R
    Hello, P
    Vinet, JY
    APPLIED OPTICS, 1998, 37 (15): : 3236 - 3245
  • [29] SIMULATION OF THERMAL EFFECTS IN INTERFEROMETRIC GRAVITATIONAL-WAVE DETECTORS
    HELLO, P
    VINET, JY
    PHYSICS LETTERS A, 1993, 178 (5-6) : 351 - 356
  • [30] Quantum correlation measurements in interferometric gravitational-wave detectors
    Martynov, D. V.
    Frolov, V. V.
    Kandhasamy, S.
    Izumi, K.
    Miao, H.
    Mavalvala, N.
    Hall, E. D.
    Lanza, R.
    Abbott, B. P.
    Abbott, R.
    Abbott, T. D.
    Adams, C.
    Adhikari, R. X.
    Anderson, S. B.
    Ananyeva, A.
    Appert, S.
    Arai, K.
    Aston, S. M.
    Ballmer, S. W.
    Barker, D.
    Barr, B.
    Barsotti, L.
    Bartlett, J.
    Bartos, I.
    Batch, J. C.
    Bell, A. S.
    Betzwieser, J.
    Billingsley, G.
    Birch, J.
    Biscans, S.
    Biwer, C.
    Blair, C. D.
    Bork, R.
    Brooks, A. F.
    Ciani, G.
    Clara, F.
    Countryman, S. T.
    Cowart, M. J.
    Coyne, D. C.
    Cumming, A.
    Cunningham, L.
    Danzmann, K.
    Costa, C. F. Da Silva
    Daw, E. J.
    Debra, D.
    DeRosa, R. T.
    DeSalvo, R.
    Dooley, K. L.
    Doravari, S.
    Driggers, J. C.
    PHYSICAL REVIEW A, 2017, 95 (04)