GRAVITATIONAL-RADIATION FROM 1ST-ORDER PHASE-TRANSITIONS

被引:662
作者
KAMIONKOWSKI, M
KOSOWSKY, A
TURNER, MS
机构
[1] FERMILAB NATL ACCELERATOR LAB,NASA,FERMILAB ASTROPHYS CTR,BATAVIA,IL 60510
[2] UNIV CHICAGO,DEPT PHYS & ASTRON,CHICAGO,IL 60637
[3] UNIV CHICAGO,DEPT ASTRON,CHICAGO,IL 60637
[4] UNIV CHICAGO,ENRICO FERMI INST,CHICAGO,IL 60637
来源
PHYSICAL REVIEW D | 1994年 / 49卷 / 06期
关键词
D O I
10.1103/PhysRevD.49.2837
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We consider the stochastic background of gravity waves produced by first-order cosmological phase transitions from two types of sources: colliding bubbles and hydrodynamic turbulence. First we discuss the fluid mechanics of relativistic spherical combustion. We then numerically collide many bubbles expanding at a velocity v and calculate the resulting spectrum of gravitational radiation in the linearized gravity approximation. Our results are expressed as simple functions of the mean bubble separation, the bubble expansion velocity, the latent heat, and the efficiency of converting latent heat to kinetic energy of the bubble walls. A first-order phase transition is also likely to excite a Kolmogoroff spectrum of turbulence. We estimate the gravity waves produced by such a spectrum of turbulence and find that the characteristic amplitude of the gravity waves produced is comparable to that from bubble collisions. Finally, we apply these results to the electroweak transition. Using the one-loop effective potential for the minimal electroweak model, the characteristic amplitude of the gravity waves produced is h congruent-to 1.5 x 10(-27) at a characteristic frequency of 4.1 x 10(-3) Hz corresponding to OMEGA approximately 10(-22) in gravity waves, far too small for detection. Gravity waves from more strongly first-order phase transitions, including the electroweak transition in nonminimal models, have better prospects for detection, though probably not by LIGO.
引用
收藏
页码:2837 / 2851
页数:15
相关论文
共 35 条
[11]   ON THE ELECTROWEAK PHASE-TRANSITION IN THE MINIMAL SUPERSYMMETRIC STANDARD MODEL [J].
ESPINOSA, JR ;
QUIROS, M ;
ZWIRNER, F .
PHYSICS LETTERS B, 1993, 307 (1-2) :106-115
[12]   AN ANTENNA FOR LASER GRAVITATIONAL-WAVE OBSERVATIONS IN SPACE [J].
FALLER, JE ;
BENDER, PL ;
HALL, JL ;
HILS, D ;
STEBBINS, RT ;
VINCENT, MA .
RELATIVISTIC GRAVITATION, 1989, 9 :107-111
[13]   SENSITIVITY OF THE LASER INTERFEROMETER GRAVITATIONAL-WAVE OBSERVATORY TO A STOCHASTIC BACKGROUND, AND ITS DEPENDENCE ON THE DETECTOR ORIENTATIONS [J].
FLANAGAN, EE .
PHYSICAL REVIEW D, 1993, 48 (06) :2389-2407
[14]   ELECTROWEAK PHASE-TRANSITION IN SUPERSYMMETRY [J].
GIUDICE, GF .
PHYSICAL REVIEW D, 1992, 45 (09) :3177-3182
[15]   DEFLAGRATIONS AND DETONATIONS AS A MECHANISM OF HADRON BUBBLE-GROWTH IN SUPERCOOLED QUARK-GLUON PLASMAS [J].
GYULASSY, M ;
KAJANTIE, K ;
KURKISUONIO, H ;
MCLERRAN, L .
NUCLEAR PHYSICS B, 1984, 237 (03) :477-501
[16]   GRAVITATIONAL-RADIATION FROM COSMOLOGICAL PHASE-TRANSITIONS [J].
HOGAN, CJ .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 1986, 218 (04) :629-636
[17]   HYDRODYNAMIC STABILITY ANALYSIS OF BURNING BUBBLES IN ELECTROWEAK THEORY IN QCD [J].
HUET, P ;
KAJANTIE, K ;
LEIGH, RG ;
LIU, BH ;
MCLERRAN, L .
PHYSICAL REVIEW D, 1993, 48 (06) :2477-2492
[18]   INSTABILITY AND SUBSEQUENT EVOLUTION OF ELECTROWEAK BUBBLES [J].
KAMIONKOWSKI, M ;
FREESE, K .
PHYSICAL REVIEW LETTERS, 1992, 69 (19) :2743-2746
[19]  
KIRZHNITS DA, 1972, JETP LETT-USSR, V15, P529
[20]  
KIRZHNITS DA, 1972, PHYS LETT B, V72, P471