论文标题

重力波检测器Decigo的设计参数的优化包括基本噪声

Optimization of Design Parameters for Gravitational Wave Detector DECIGO Including Fundamental Noises

论文作者

Kawasaki, Yuki, Shimizu, Ryuma, Ishikawa, Tomohiro, Nagano, Koji, Iwaguchi, Shoki, Watanabe, Izyumi, Bin, Wu, Yokoyama, Shuichiro, Kawamura, Seiji

论文摘要

DECI HERTZ干涉仪重力波观测站(Decigo)是空间引力波(GW)检测器。 Decigo最初设计为足够敏感以观察原始GW背景(PGW)。但是,由于普朗克观察结果降低了PGW的上限,因此需要进一步提高Decigo的目标灵敏度。在先前的研究中,对Decigo的参数进行了优化,以最大程度地提高PGW的信噪比(SNR)与量子噪声,包括衍射损失的影响。为了更真实地模拟SNR,我们考虑了Decigo的参数,考虑到Decigo的参数,考虑到双白矮人(DWD)和测试质量的热噪声。我们考虑了DWDS的GW截止频率的两种情况。此外,我们考虑了两种热噪声:残留气体中的热噪声和内部热噪声。为了研究镜几何形状如何影响灵敏度,我们通过更改镜子质量,保持镜子的厚度来计算它,反之亦然。结果,我们获得了最大化依赖镜像半径的SNR的参数的最佳。该结果表明,较大的半径较大的镜子可提供良好的SNR,并使我们能够根据对镜子尺寸的可行性研究来优化Decigo的设计。

The DECi hertz Interferometer Gravitational-Wave Observatory (DECIGO) is a space gravitational wave (GW) detector. DECIGO was originally designed to be sensitive enough to observe primordial GW background (PGW). However, due to the lowered upper limit of the PGW by the Planck observation, further improvement of the target sensitivity of DECIGO is required. In the previous studies, DECIGO's parameters were optimized to maximize the signal-to-noise ratio (SNR) of the PGW to quantum noise including the effect of diffraction loss. To simulate the SNR more realistically, we optimize DECIGO's parameters considering the GWs from double white dwarfs (DWDs) and the thermal noise of test masses. We consider two cases of the cutoff frequency of GWs from DWDs. In addition, we consider two kinds of thermal noise: thermal noise in a residual gas and internal thermal noise. To investigate how the mirror geometry affects the sensitivity, we calculate it by changing the mirror mass, keeping the mirror thickness, and vice versa. As a result, we obtained the optimums for the parameters that maximize the SNR that depends on the mirror radius. This result shows that a thick mirror with a large radius gives a good SNR and enables us to optimize the design of DECIGO based on the feasibility study of the mirror size in the future.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源