论文标题

用重力波探测基本物理

Probing Fundamental Physics with Gravitational Waves

论文作者

Carson, Zack

论文摘要

两次黑洞的爆炸性结合度13亿光年,这是第一次使我们凝视着这些事件周围时空的极端重力区域。随着这些最大紧凑的物体达到的速度高达60%的光速,诸如此类的碰撞事件创造了苛刻的时空环境,在该环境中,田地强,非线性和高度动态性 - 在人类历史上却没有企业。 2015年9月14日,这次事件的标志性chirp信号由激光干涉仪重力波动台(Ligo)探测器同时注册,这是由现代工程的无与伦比的壮举。这个引力波事件被称为“ GW150914”,为进入宇宙的全新观察窗口铺平了道路,从一个全新的角度提供了独特的机会来探测基本物理的机会。自历史性事件以来,Ligo/处女座合作(LVC)在其前两次观察跑中进一步确定了十个引力波信号,其中包括无数不同的事件。在这些新的分类探测中,重要的是GW170817,这是从两个中子星的合并中首次检测引力波,使位于内部居住的近视物理学的新见解。 本文探讨了这个新的独特机会,以利用引力浪潮中的信息来源的来源,以便从一个全新的角度探究基本物理。 A部分重点是通过二进制中子星合并引力波中编码的潮汐信息来探测核物理。 B部分着重于通过在重力波信号中编码的这种时空的残留物测试一般相对论。

The explosive coalescence of two black holes 1.3 billion light years away has for the very first time allowed us to peer into the extreme gravity region of spacetime surrounding these events. With these maximally compact objects reaching speeds up to 60% the speed of light, collision events such as these create harsh spacetime environments where the fields are strong, non-linear, and highly dynamical -- a place yet un-probed in human history. On September 14, 2015, the iconic chirp signal from such an event was registered simultaneously by both of the Laser Interferometer Gravitational-Wave Observatory (LIGO) detectors -- by an unparalleled feat of modern engineering. Dubbed "GW150914", this gravitational wave event paved the way for an entirely new observing window into the universe, providing for the unique opportunity to probe fundamental physics from an entirely new viewpoint. Since this historic event, the LIGO/Virgo collaboration (LVC) has further identified ten additional gravitational wave signals in its first two observing runs, composed of a myriad of different events. Important among these new cataloged detections is GW170817, the first detection of gravitational waves from the merger of two neutron stars, giving way to new insight into the supranuclear physics resident within. This thesis explores this new unique opportunity to harness the information encoded within gravitational waves in regards to their source whence they came, to probe fundamental physics from an entirely new perspective. Part A focuses on probing nuclear physics by way of the tidal information encoded within gravitational waves from binary neutron star mergers. Part B focuses on testing general relativity from such events by way of the remnants of such spacetime encoded within the gravitational wave signal.

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