Literature DB >> 27341221

Sub-Femto-g Free Fall for Space-Based Gravitational Wave Observatories: LISA Pathfinder Results.

M Armano1, H Audley2, G Auger3, J T Baird4, M Bassan5, P Binetruy3, M Born2, D Bortoluzzi6, N Brandt7, M Caleno8, L Carbone9, A Cavalleri10, A Cesarini9, G Ciani9, G Congedo9, A M Cruise11, K Danzmann2, M de Deus Silva1, R De Rosa12, M Diaz-Aguiló13, L Di Fiore14, I Diepholz2, G Dixon11, R Dolesi9, N Dunbar15, L Ferraioli16, V Ferroni9, W Fichter17, E D Fitzsimons18, R Flatscher7, M Freschi1, A F García Marín2, C García Marirrodriga8, R Gerndt7, L Gesa13, F Gibert9, D Giardini16, R Giusteri9, F Guzmán2, A Grado19, C Grimani20, A Grynagier17, J Grzymisch8, I Harrison21, G Heinzel2, M Hewitson2, D Hollington4, D Hoyland11, M Hueller9, H Inchauspé3, O Jennrich8, P Jetzer22, U Johann7, B Johlander8, N Karnesis2, B Kaune2, N Korsakova2, C J Killow23, J A Lobo13, I Lloro13, L Liu9, J P López-Zaragoza13, R Maarschalkerweerd21, D Mance16, V Martín13, L Martin-Polo1, J Martino3, F Martin-Porqueras1, S Madden8, I Mateos13, P W McNamara8, J Mendes21, L Mendes1, A Monsky2, D Nicolodi9, M Nofrarias13, S Paczkowski2, M Perreur-Lloyd23, A Petiteau3, P Pivato9, E Plagnol3, P Prat3, U Ragnit8, B Raïs3, J Ramos-Castro24, J Reiche2, D I Robertson23, H Rozemeijer8, F Rivas13, G Russano9, J Sanjuán13, P Sarra25, A Schleicher7, D Shaul4, J Slutsky26, C F Sopuerta13, R Stanga27, F Steier2, T Sumner4, D Texier1, J I Thorpe26, C Trenkel15, M Tröbs2, H B Tu9, D Vetrugno9, S Vitale9, V Wand2, G Wanner2, H Ward23, C Warren15, P J Wass4, D Wealthy15, W J Weber9, L Wissel2, A Wittchen2, A Zambotti6, C Zanoni6, T Ziegler7, P Zweifel16.   

Abstract

We report the first results of the LISA Pathfinder in-flight experiment. The results demonstrate that two free-falling reference test masses, such as those needed for a space-based gravitational wave observatory like LISA, can be put in free fall with a relative acceleration noise with a square root of the power spectral density of 5.2±0.1  fm s^{-2}/sqrt[Hz], or (0.54±0.01)×10^{-15}  g/sqrt[Hz], with g the standard gravity, for frequencies between 0.7 and 20 mHz. This value is lower than the LISA Pathfinder requirement by more than a factor 5 and within a factor 1.25 of the requirement for the LISA mission, and is compatible with Brownian noise from viscous damping due to the residual gas surrounding the test masses. Above 60 mHz the acceleration noise is dominated by interferometer displacement readout noise at a level of (34.8±0.3)  fm/sqrt[Hz], about 2 orders of magnitude better than requirements. At f≤0.5  mHz we observe a low-frequency tail that stays below 12  fm s^{-2}/sqrt[Hz] down to 0.1 mHz. This performance would allow for a space-based gravitational wave observatory with a sensitivity close to what was originally foreseen for LISA.

Year:  2016        PMID: 27341221     DOI: 10.1103/PhysRevLett.116.231101

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  12 in total

1.  Quantum technologies in space.

Authors:  Rainer Kaltenbaek; Antonio Acin; Laszlo Bacsardi; Paolo Bianco; Philippe Bouyer; Eleni Diamanti; Christoph Marquardt; Yasser Omar; Valerio Pruneri; Ernst Rasel; Bernhard Sang; Stephan Seidel; Hendrik Ulbricht; Rupert Ursin; Paolo Villoresi; Mathias van den Bossche; Wolf von Klitzing; Hugo Zbinden; Mauro Paternostro; Angelo Bassi
Journal:  Exp Astron (Dordr)       Date:  2021-06-25       Impact factor: 2.012

Review 2.  Electromagnetic counterparts to massive black-hole mergers.

Authors:  Tamara Bogdanović; M Coleman Miller; Laura Blecha
Journal:  Living Rev Relativ       Date:  2022-06-24       Impact factor: 42.900

Review 3.  Role of microfluidics in accelerating new space missions.

Authors:  Shuangyang Kuang; Nishtha Manish Singh; Yichao Wu; Yan Shen; Weijia Ren; Liangcheng Tu; Ken-Tye Yong; Peiyi Song
Journal:  Biomicrofluidics       Date:  2022-04-21       Impact factor: 3.258

4.  Magnetorotational collapse of supermassive stars: Black hole formation, gravitational waves, and jets.

Authors:  Lunan Sun; Vasileios Paschalidis; Milton Ruiz; Stuart L Shapiro
Journal:  Phys Rev D       Date:  2017-08-15       Impact factor: 5.296

5.  Relativistic dynamics and extreme mass ratio inspirals.

Authors:  Pau Amaro-Seoane
Journal:  Living Rev Relativ       Date:  2018-05-15       Impact factor: 40.429

Review 6.  Detection methods for stochastic gravitational-wave backgrounds: a unified treatment.

Authors:  Joseph D Romano; Neil J Cornish
Journal:  Living Rev Relativ       Date:  2017-04-04       Impact factor: 40.429

7.  Drop tower tests of Taiji-1 inertial sensor substitute.

Authors:  Jian Min; Zuo-Lei Wang; Yun-Peng Li; Wen-Ze Tao; Cun-Hui Li; Jun-Gang Lei; Dong-Xue Xi; Da Fan; Jun-Biao Wang
Journal:  NPJ Microgravity       Date:  2021-07-07       Impact factor: 4.415

Review 8.  Research and Development of Electrostatic Accelerometers for Space Science Missions at HUST.

Authors:  Yanzheng Bai; Zhuxi Li; Ming Hu; Li Liu; Shaobo Qu; Dingyin Tan; Haibo Tu; Shuchao Wu; Hang Yin; Hongyin Li; Zebing Zhou
Journal:  Sensors (Basel)       Date:  2017-08-23       Impact factor: 3.576

9.  Invited Review Article: Measurements of the Newtonian constant of gravitation, G.

Authors:  C Rothleitner; S Schlamminger
Journal:  Rev Sci Instrum       Date:  2017-11       Impact factor: 1.523

10.  Investigation on Stray-Capacitance Influences of Coaxial Cables in Capacitive Transducers for a Space Inertial Sensor.

Authors:  Jianbo Yu; Chengrui Wang; Ying Wang; Yanzheng Bai; Ming Hu; Ke Li; Zhuxi Li; Shaobo Qu; Shuchao Wu; Zebing Zhou
Journal:  Sensors (Basel)       Date:  2020-06-06       Impact factor: 3.576

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.