揭秘:黑洞图像是如何拍摄的?甚长基线干涉测量技术详解 veritasium 2022-05-12

银河系中心黑洞的首张图像

这是一个位于我们银河系中心、被称为人马座A*(Sagittarius A*: 银河系中心的超大质量黑洞)的超大质量黑洞的图像。

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This is a picture of the supermassive black hole at the center of our Milky Way galaxy known as Sagittarius A*.

黑洞本身不发光,所以我们看到的实际上是围绕它旋转的热等离子体。

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The black hole itself doesn't emit light so what we're seeing is the hot plasma swirling around it.

这是有史以来拍摄到的第二张黑洞图像。

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This is only the second picture of a black hole ever.

这张图像是由事件视界望远镜(Event Horizon Telescope: EHT,一个全球射电望远镜网络)合作组织拍摄的,他们也曾发布了位于M87星系中心的超大质量黑洞图像。

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It was taken by the Event Horizon Telescope collaboration, the same people who brought you this image of the supermassive black hole at the center of galaxy M87.

观测人马座A*的挑战

最初,他们的计划是首先拍摄人马座A*的图像。

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Now, their original plan was to image Sagittarius A* first.

由于它位于我们自己的星系中,比M87星系中心的黑洞近2000倍。

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Since it's in our own galaxy, it is 2,000 times closer than M87*.

但它也小了1000多倍,所以从地球上看,它只比M87星系中心的黑洞略大一点。

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but it's also over 1,000 times smaller so from Earth, it appears only slightly larger than M87*.

此外,观测它还面临许多额外的挑战。

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And there are a number of additional challenges to observing it.

首先,在我们和银河系中心之间有大量的尘埃和气体,所以用可见光根本无法看到它。

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First of all, there is a lot of dust and gas between us and the center of our galaxy so you can't even see it with visible light.

在这段来自欧洲南方天文台(European Southern Observatory: ESO,一个跨政府天文学研究组织)的视频中,我们放大观察银河系的核心。

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In this video from the European Southern Observatory, we zoom in on our Galaxy's core.

当我们越来越接近时,在某个点我们必须切换到红外光,它能更好地穿透这些尘埃,使我们能够从地球上看到它。

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As we get closer and closer, at some point we have to switch over to infrared light which can better penetrate the debris, allowing us to see it from Earth.

在过去的三十年里,我们得以窥视银河系的心脏,并目睹了一些真正令人惊叹的景象。

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Over the past three decades, we've been able to peer into the heart of the Milky May and witness something truly amazing.

一群恒星以各种偏心轨道高速运行。

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A collection of stars zipping around on all kinds of eccentric orbits.

它们的速度快得惊人。

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They go incredibly fast.

其中一颗恒星的速度被测定为每秒2400万米,相当于光速的8%。

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One of the stars was clocked going 24 million meters per second. That's 8% the speed of light.

所有这些恒星似乎都在围绕着一个极其巨大且致密的天体运行。

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All these stars appear to be orbiting something incredibly massive and compact.

但这个天体不像恒星那样明亮发光。

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but this object isn't glowing brightly like a star.

如果你仔细观察,会发现它偶尔会闪烁。

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If you watch closely, you can see it flicker now and then.

这就是我们认为是超大质量黑洞的物体。

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This is what we believe to be a supermassive black hole.

根据周围恒星的运动,我们可以推断出这个黑洞的质量大约是我们太阳的400万倍。

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From the motion of the stars around it, we can infer that the black hole's mass is about 4 million times that of our Sun.

但所有这些质量都挤压在一个微小的点上,即奇点。

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but all crammed down into a tiny point, the singularity.

任何进入这个点史瓦西半径(Schwarzschild radius: 黑洞视界半径,光线无法逃逸的临界距离)范围内的物体,包括光线,都无法逃逸,最终会落入奇点。

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Anything including light that comes within a Schwarzschild radius of this point can't escape and ends up in the singularity.

所以,如果我们想看到黑洞发出的任何辐射,它必须来自比这个范围更远的地方,通常是落入黑洞的超热等离子体。

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So for us to see any radiation from the black hole, it must come from further out than this, usually from superheated plasma as it falls in.

但就其大小而言,人马座A*消耗的物质并不多。

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But for its size, Sagittarius A* doesn't consume much matter.

它异常安静和黑暗。

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It's unusually quiet and dark.

相比之下,M87星系中心的超大质量黑洞则活跃得多,不断吞噬其吸积盘(accretion disk: 围绕黑洞旋转的物质盘)中的物质。

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The supermassive black hole at the center of M87 in contrast is much more active, gobbling up matter from its accretion disk.

此外,由于它大了1000多倍,物体围绕它运行所需的时间也长了1000倍。

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Plus, since it's over 1,000 times bigger, it takes 1,000 times longer for objects to orbit it.

这意味着从地球上看,它随时间变化的外观更具一致性,与人马座A*不同,后者的情况可能在几分钟内就发生变化。

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And that means from Earth, its appearance over time is more consistent in contrast to Sagittarius A* where things can change on the order of minutes.

这些可视化图像来自法兰克福歌德大学(Goethe University Frankfurt)的Luciano Rezzolla及其同事。

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These visualizations are from Luciano Rezzolla and colleagues at Goethe University Frankfurt.

图像分辨率的巨大挑战

然而,拍摄任何一个超大质量黑洞图像的最大挑战在于,这些天体如此致密,距离地球又如此遥远,在天空中它们显得非常非常微小。

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But the biggest challenge of all in making an image of either supermassive black hole is that these objects are so compact and so far from Earth, in the sky, they appear very, very tiny.

为了了解它们到底有多小,想象一下将整个天空分成180度。

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To get a sense of just how tiny, take the whole sky and divide it into 180 degrees.

仙女座星系横跨大约三度。

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The Andromeda galaxy spans about three degrees.

然后将一度分成60弧分,一弧分再分成60弧秒。

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Then divide one degree into 60 arcminutes and one arc minute into 60 arcseconds.

将一弧秒再分成100份,再分成100份,再分成100份。

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Divide an arcsecond into 100, into a 100 again and into 100 once more.

这就是黑洞在天空中所占的大小。

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And this is the size of the black holes on the sky.

这相当于拍摄月球上一个甜甜圈的照片。

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It's equivalent to taking a picture of a donut on the moon.

目前地球上没有光学望远镜能够生成这样的图像。

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Now, there is no optical telescope on Earth that could produce such an image.

那么,他们是如何做到的?我们到底在看什么?

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So in this video, I wanna answer two questions. How did they do it? And what are we actually looking at?

甚长基线干涉测量(VLBI)的原理

首先,这些黑洞图像并非用可见光拍摄。

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So starting with, how did they make these images of black holes? Well, the first thing to know is they weren't made with visible light.

它们是使用波长为1.3毫米的无线电波拍摄的。

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They were made using radio waves with a wavelength of 1.3 millimeters.

因此,所有观测都是由射电望远镜进行的,它们看起来基本上就像巨大的卫星天线。

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So all the observations were taken by radio telescopes which essentially look like huge satellite dishes.

当一个源发出无线电波时,它们会向四面八方辐射出去,但地球距离太远,以至于当它们到达我们星球时,波前几乎完全是平坦且平行的。

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When a source emits radio waves, they travel out radially in all directions, but Earth is so far away that by the time they reach our planet, the wavefronts are almost completely flat and parallel.

这被称为平面波。

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This is known as a plane wave.

射电望远镜通过在天空中来回扫描来工作。

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A radio telescope works by scanning back and forth across the sky.

当它直接指向一个无线电源时,会产生一个亮点。

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When it is pointed directly at a radio source, it produces a bright spot.

这是因为所有无线电波传播相同的距离,从天线反射回来,并同时被接收,所以它们是同相的,这意味着波峰与波峰对齐,波谷与波谷对齐。

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That's because all the radio waves travel the same distance, bounce off the dish, and are received at the same time so they are in phase meaning peaks line up with peaks and troughs with troughs.

它们发生建设性干涉。

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They constructively interfere.

当望远镜移过光源时,一些无线电波现在传播的距离比其他波更远,因此它们会异相相遇,发生破坏性干涉,信号强度降至零。

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As the telescope moves past the source, some of the radio waves now travel farther than others and therefore they meet up out of phase, destructively interfere, and the intensity of the signal drops to zero.

为了制作清晰的图像,你希望这种下降尽可能陡峭,这样望远镜只有在直接对准光源时才能产生峰值强度,然后当望远镜稍微向任何方向移动时,强度就会迅速下降。

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To make a sharp image, you want this drop off to be as steep as possible so the telescope produces peak intensity only when aimed directly at the source and then the intensity drops rapidly when the dish is moved just a tiny bit in any direction.

有两种方法可以实现这一点。

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There are two ways of achieving this.

一种是观测更高频率的无线电波。

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One is to observe higher frequency radio waves.

这样,望远镜的任何微小移动都代表了波长更大的一个部分。

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That way any slight movement of the telescope represents a greater fraction of a wavelength.

这会导致破坏性干涉更快发生。

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This causes destructive interference to occur sooner.

另一种方法是增加望远镜的直径,这会增加望远镜相对两侧无线电波的路径长度差异,以实现给定的角度调整。

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The other way is to increase the diameter of the telescope, and this increases the difference in path length between radio waves on opposite sides of the telescope for a given angular adjustment.

望远镜识别无线电源的精确程度被称为其角分辨率(angular resolution: 望远镜区分两个相邻物体细节的能力)。

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How narrowly a telescope can identify the source of radio waves is known as its angular resolution.

你可以将其视为望远镜敏感的天空中光斑的大小。

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You can think of it as the size of the spot on the sky that the telescope is sensitive to.

它与波长成正比,与望远镜直径成反比。

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It is proportional to wavelength, and inversely proportional to the diameter of the telescope.

拍摄黑洞图像的挑战在于,你试图在天空中一个微小区域内看到其结构。

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The challenge with making a picture of a black hole is that you're trying to see the structure in a tiny area of the sky.

想象一下用射电望远镜扫描黑洞中心。

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Imagine scanning a radio telescope across the center of a black hole.

你希望当望远镜经过左边缘时看到亮点,然后是暗点,然后当它经过右边缘时再看到另一个亮点。

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You would want to see the bright spot as the telescope passes over the left edge and then a dark spot and then another bright spot as it passes the right edge.

问题是,对于地球上的任何单个射电望远镜来说,角分辨率都太大了。

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The problem is, for any individual radio telescope on Earth, the angular resolution is too large.

所以当它经过黑洞时,它在开始接收右侧无线电波的同时,仍然会接收到左侧的无线电波。

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So as it passes over the black hole, it would still be receiving radio waves from the left side as it begins receiving radio waves from the right side.

分辨率不够高,无法判断那里是否有我们预期的黑洞环形结构,或者它只是一个模糊的斑点。

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The resolution isn't high enough to tell if there's a ring structure there as we'd expect with a black hole, or if it's just a blob.

观测更短波长的光线实际上不是一个选择,因为那种光会被我们的大气层或黑洞周围的物质阻挡。

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Observing at shorter wavelengths isn't really an option because that light is blocked either by our atmosphere or by the matter around the black hole.

所以如果你想提高分辨率,唯一的方法就是增加望远镜的直径。

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So if you wanna improve resolution, the only way you can do it is by increasing the diameter of the telescope.

但如果你真的进行计算,你会发现你需要一个地球大小的望远镜才能看到黑洞的环,这显然是不可能的。

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But if you actually do the calculation, you find that the telescope you'd need would have to be the size of the Earth in order to see the ring of a black hole, which is obviously impossible.

但有一种方法可以做到几乎同样好。

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but there is a way to do something that's almost as good.

你不需要一个地球大小的完整天线,只需要它的碎片。

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You don't need a complete dish the size of the Earth, just pieces of it.

这些独立的射电望远镜之间相距的距离可达地球直径。

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Individual radio telescopes that are separated by distances up to the Earth's diameter.

只要你能正确地组合来自所有这些遥远望远镜的信号,你就能获得所需的建设性干涉和破坏性干涉,从而达到与地球大小天线相同的角分辨率。

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As long as you can properly combine the signals from all these distant telescopes, you get the constructive and destructive interference required to achieve the same angular resolution as an Earth-sized dish.

这种技术被称为甚长基线干涉测量(Very Long Baseline Interferometry: VLBI,一种利用多个相距遥远的望远镜组合观测以提高分辨率的技术)。

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This technique is called very long baseline interferometry.

因此,事件视界望远镜不仅仅是一个望远镜,而是一个全球射电观测站网络。

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So the event horizon telescope is not just one telescope but a global network of radio observatories.

所有这些望远镜同时观测人马座A*。

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All these telescopes observe Sagittarius A* at the same time.

与单个望远镜不同,你不能将所有无线电波反射到一个中央接收器并实时叠加它们。

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Unlike a single telescope, you can't bounce all the radio waves to a central receiver and add them up in real time.

相反,每个望远镜记录其位置的信号和精确到飞秒的时间。

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So instead each telescope records the signal at its location and the exact time down to the femtosecond.

这会产生PB(拍字节)级别的数据。

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Petabytes of data are generated.

但现在这些数据需要汇集起来,最快的方法实际上是将硬盘作为手提行李运到集中地点。

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But now that data needs to be brought together, and the fastest way to do it was actually to carry hard drives as hand luggage to centralized locations.

现在,想想我们拥有的数据。

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Now, think about the data we've got.

来自世界各地多个射电望远镜的电信号和精确时间。

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Electrical signals and precise timings from a number of radio telescopes around the world.

但这些射电望远镜都没有足够的角分辨率来看到黑洞的环。

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but none of those radio telescopes has enough angular resolution to see the ring of the black hole.

那么,你如何组合这些数据并获得比任何输入都更精细的细节呢?

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So how do you combine that data and get finer detail than any of the inputs?

嗯,这些望远镜之间的相对距离以及波前击中一个望远镜相对于其他望远镜的时间延迟中包含额外的信息。

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Well, there is additional information in the relative distances between these telescopes and in the time delays between when a wavefront hits one telescope relative to the others.

想象一下组合来自两个遥远望远镜的信号。

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Imagine combining the signals from two distant telescopes.

假设它们同时接收到相同的波,所以这些波是同相到达的。

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Let's say they both received the same wave at the same time so those waves were coming in phase.

那么,光源一定位于它们之间。

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Well, then the source must have been located directly between them.

无线电波会传播相同的距离到达每个望远镜,从而同时到达。

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The radio waves would've traveled the same distance to each telescope to arrive at the same time.

但仅凭两个望远镜,这只能将其缩小到天空中一条与两个望远镜等距的线。

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except with just two telescopes, that only narrows it down to a line in the sky that is equidistant from both telescopes.

光源可能位于那条线上的任何地方。

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The source could have been anywhere on that line.

实际上情况更糟。

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And it's actually worse than that.

光源可能比其中一个望远镜恰好近一个波长,这样无线电波仍然会完美地同相到达。

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It's possible that the source could be exactly one wavelength closer to one of the telescopes and that way the radio waves would still arrive perfectly in phase.

或者差异可能是两个、三个或四个波长,但你明白了。

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Or the difference could be two or three or four wavelengths, but you get the point.

所以从一对望远镜中,我们获得的光源信息实际上是一系列明暗条纹。

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So from one pair of telescopes, the information we get about the source is actually a series of bright and dark fringes.

距离近的望远镜会产生宽条纹,而距离远的望远镜会产生窄条纹。

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Telescopes that are close together produce wide fringes, while those that are far apart produce narrow fringes.

因此,要制作图像,你需要具有不同方向和不同距离的望远镜对。

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So to make an image, you need pairs of telescopes at all different orientations and different distances apart.

每对望远镜都会产生不同的干涉图样。

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Each pair makes a different interference pattern.

然后通过组合所有这些图样,我们就能得到黑洞的图像。

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And then by combining all these patterns, we get an image of the black hole which created them.

黑洞图像揭示了什么?

既然我们有了这张照片,它究竟向我们展示了什么?

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But now that we have this picture, what exactly is it showing us?

这是我第一次黑洞图像发布时解释的方式。

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Well, this is how I explained it when the first image of a black hole was released.

这是我的科学模拟黑洞。

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So here is my mock black hole of science.

这个球体代表了事件视界(event horizon: 黑洞周围的边界,一旦进入就无法逃脱)。

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And this sphere represents the event horizon.

一旦你进入这里,就无法回头,即使是光也不行。

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Once you're inside here, there is no coming back, not even for light.

事件视界的半径被称为史瓦西半径。

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The radius of the event horizon is known as the Schwarzschild radius.

现在,如果我们只看一个周围什么都没有的黑洞,我们将无法制作出这样的图像,因为,它会吸收所有落在其上的电磁辐射。

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Now, if we were just to look at a black hole with nothing around it, we would not be able to make an image like this because, well, it would just absorb all electromagnetic radiation that falls on it.

但他们正在观测的黑洞周围有一个吸积盘。

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but the black hole that they're looking at has matter around it in an accretion disk.

在这个吸积盘中,有尘埃和气体在这里混沌地旋转。

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In this accretion disk, there is dust and gas swirling around here very chaotically.

它非常热,我们说的是数百万度。

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It's incredibly hot. We're talking millions of degrees.

而且它运行得非常快,接近光速的一大部分。

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And it's going really fast, a significant fraction of the speed of light.

正是这些物质供养着黑洞,使其随着时间变得越来越大。

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And it's this matter that the black hole feeds off and gets bigger and bigger over time.

但你会注意到吸积盘并没有一直延伸到事件视界。

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but you'll notice that the accretion disk does not extend all the way in to the event horizon.

这是为什么呢?

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Why is that?

那是因为存在一个最内层稳定圆轨道,对于非旋转黑洞周围的物质,该轨道位于三个史瓦西半径处。

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Well that's because there is an innermost stable circular orbit, and for matter around a non-spinning black hole, that orbit is at three Schwarzschild radii.

很可能我们银河系中心的黑洞正在旋转。

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Now, in all likelihood, the black hole at the center of our galaxy will be spinning.

但为了简化,我只考虑非旋转情况。

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But for simplicity, I'm just considering the non-spinning case.

如果你想了解更多,可以观看我关于旋转黑洞的视频。

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You can see my video on spinning black holes if you wanna find out more about that.

所以这是物质围绕黑洞运行的最内层轨道。

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So this is the innermost orbit for matter going around a black hole.

如果它进入这个轨道内部,它会非常迅速地进入黑洞中心,我们再也听不到它的消息。

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If it goes inside this orbit, it very quickly goes into the center of the black hole and we never hear from it again.

但有一种东西可以更接近黑洞轨道,那就是光。

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but there is something that can orbit closer to the black hole, and that is light.

因为光没有质量,它实际上可以在1.5个史瓦西半径处运行。

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Because light has no mass, it can actually orbit at 1.5 Schwarzschild radii.

这里,我用一个环来表示它,但实际上这可以是任何方向。

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Now here, I'm representing it with a ring, but really this could be in any orientation.

所以它是一个光子球(photon sphere: 黑洞周围的一个区域,光线可以在其中以圆形轨道运行)。

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So it's a sphere of photon orbits.

如果你站在那里,当然你永远无法到达那里,但如果你能,你可以向前看,实际上看到自己的后脑勺,因为光子可以绕一圈完成那个轨道。

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And if you were standing there, of course you could never go there, but if you could, you could look forward and actually see the back of your head 'cause the photons could go around and complete that orbit.

现在,光子球是一个不稳定的轨道,这意味着光子最终要么螺旋进入奇点,要么螺旋向外并飞向无限远。

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Now, the photon sphere is an unstable orbit meaning eventually either the photons have to spiral into the singularity or spiral out and head off to infinity.

现在,我想回答的问题是,图像中这个黑色的“阴影”在这个实际发生在黑洞周围的图像中对应着什么?

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Now, the question I want to answer is, what does this black, quote unquote, shadow in the image correspond to in this picture of what's actually going on around the black hole?

它是事件视界吗?我们只是在看这个吗?

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Is it the event horizon? Are we simply looking at this?

还是光子球或最内层稳定圆轨道?

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Or is it the photon sphere or the innermost stable, circular orbit?

嗯,事情很复杂。

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Well, things are complicated.

原因是,这个黑洞扭曲了它周围的时空(space-time: 物理学中将空间和时间结合在一起的四维流形),这改变了光线的路径。

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And the reason is, this black hole warps space-time around it which changes the path of light rays.

所以它们不像我们通常想象的那样直线传播。

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so they don't just go in straight lines like we normally imagine that they do.

我的意思是,它们确实是直线传播的,但是时空是弯曲的,所以它们会沿着曲线运动。

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I mean, they are going in straight lines, but space-time's curved so yeah, they go in curves.

所以最好的思考方式可能是想象平行光线从观察者射入并撞击这里的几何结构。

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So the best way to think of this is maybe to imagine parallel light rays coming in from the observer and striking this geometry here.

当然,如果平行光线穿过事件视界,我们将永远看不到它们,所以它们就消失了。

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Of course, if the parallel light rays cross the event horizon, we'll never see them again so they're gone.

那肯定是一个黑暗区域。

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That will definitely be a dark region.

但如果一束光线刚好在事件视界上方射入,它也会被弯曲并最终穿过事件视界。

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but if a light ray comes in just above the event horizon, it too will get bent and end up crossing the event horizon.

它最终会落入黑洞。

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It ends up in the black hole.

即使是与光子球距离相同的光线也会被扭曲进入黑洞,并弯曲穿过事件视界。

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Even a light ray coming in the same distance away as the photon sphere will end up getting warped into the black hole and curving across the event horizon.

因此,为了获得不会落入黑洞的平行光线,你实际上必须离开2.6个半径的距离。

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So in order for you to get a parallel ray which does not end up in the black hole, you actually have to go out 2.6 radii away.

如果一束光线在2.6个史瓦西半径的距离射入,它将在最接近时擦过光子球,然后飞向无限远。

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If a light ray comes in 2.6 Schwarzschild radii away, it will just graze the photon sphere at its closest approach and then it will go off to infinity.

因此,我们得到的阴影看起来像这样。

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And so the resulting shadow that we get looks like this.

它比事件视界大2.6倍。

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It is 2.6 times bigger than the event horizon.

你可能会问,我们到底在看什么?这个阴影是什么?

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And you say, what are we really looking at here? What is this shadow?

嗯,它的中心是事件视界。

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Well in the center of it is the event horizon.

它相当清晰地映射到阴影的中心。

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It maps pretty cleanly onto the center of the shadow.

但如果你仔细想想,向上或向下移动的光线最终也会穿过事件视界,只是在背面。

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But if you think about it, light rays going above or below also end up crossing the event horizon, just on the backside.

所以实际上,我们得到的是整个事件视界的背面被映射到这个阴影上的一个环。

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So in fact, what we get is the whole backside of the event horizon mapped onto a ring on this shadow.

所以从我们空间中的一个点看黑洞,我们实际上可以看到黑洞事件视界的整体。

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So looking from our one point in space at the black hole, we actually get to see the entirety of the black hole's event horizon.

我的意思是,谈论“看到”它可能有点傻,因为它完全是黑色的,但那确实是这些点将映射到这个阴影上的位置。

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I mean, maybe it's silly to talk about seeing it because it's completely black, but that really is where the points would map to on this shadow.

情况比这更奇怪,因为光线可以从后面射入,然后,比如说,在前面被吸收,你会在旁边看到整个视界的另一个图像,在一个环形区域中。

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It gets weirder than that because the light can come in and go around the back and, say, get absorbed in the front, you get another image of the entire horizon next to that in another annular ring.

然后是另一个,再另一个。

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And then another one after that and another one after that.

当你接近这个阴影的边缘时,你基本上会得到无限多个事件视界的图像。

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And you get basically infinite images of the event horizon as you approach the edge of this shadow.

那么我们能看到的第一束光是什么?

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So what is the first light that we can see?

是那些以恰好能擦过光子球的角度射入,然后到达我们望远镜的光线。

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It is those light rays that come in at just such an angle that they graze the photon sphere and then end up at our telescopes.

它们产生了一个比事件视界大2.6倍的阴影。

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and they produce a shadow which is 2.6 times the size of the event horizon.

所以这大致就是如果我们恰好垂直于吸积盘观察时会看到的情景。

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So this is roughly what we'd see if we happen to be looking perpendicular to the accretion disk.

但我们更有可能以某种随机角度观察吸积盘。

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but more likely we will be looking at some sort of random angle to the accretion disk.

我们甚至可能从侧面观察。

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We may be even looking edge on.

在这种情况下,我们能看到黑洞的这个阴影吗?

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And in that case, do we see this shadow of the black hole?

你可能认为不能,但事实是,由于黑洞扭曲时空并弯曲光线的方式,我们实际上可以看到吸积盘的背面。

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You might think that we wouldn't, but the truth is because of the way the black hole warps space time and bends light rays, we actually see the back of the accretion disk.

它的工作原理是,从吸积盘发出的光线弯曲到顶部,最终到达我们的望远镜。

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The way it works is light rays coming off the accretion disk bend over the top and end up coming to our telescopes.

所以我们最终看到的是这样的景象。

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So what we end up seeing is something that looks like that.

同样,来自吸积盘底部的光线从下方射入,在黑洞下方弯曲,并像那样朝我们而来。

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Similarly, light from the bottom of the accretion disk comes underneath, gets bent underneath the black hole and comes towards us like that.

这就是我们得到像《星际穿越》中黑洞图像的原因。

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And this is where we get an image that looks something like the interstellar black hole.

情况甚至比这更疯狂,因为从吸积盘顶部发出的光线可以绕到黑洞背面,擦过光子球,然后从底部射出,在阴影下方形成一个非常细的环。

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It gets even crazier than this 'cause light that comes off the top of the accretion disk here can go around the back of the black hole, graze the photon sphere, and come out the bottom right here producing a very thin ring underneath the shadow.

同样,来自吸积盘前部下方的光线可以从下方绕到背面,然后从顶部射出,这就是我们在这里看到这个光环的原因。

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Similarly, light from underneath the accretion disk in the front can go underneath and around the back and come out over the top, which is why we see this ring of light here.

如果我们非常接近黑洞,我们可能会看到这样的景象,那真是壮观。

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This is what we could see if we were very close to the black hole, something that looks truly spectacular.

另一个非常重要的效应需要考虑,那就是吸积盘中的物质运动速度非常快,接近光速。

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One other really important effect to consider is that the matter in this accretion disk is going very fast, close to the speed of light.

所以如果它朝我们而来,它会看起来比远离我们时亮得多。

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And so if it's coming towards us, it's gonna look much brighter than if it's going away.

这被称为相对论性聚束(relativistic beaming: 由于相对论效应,高速运动的物体朝向观察者时显得更亮)。

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That's called relativistic beaming or Doppler beaming.

因此,吸积盘的一侧会比另一侧亮得多。

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And so one side of this accretion disk is going to look much brighter than the other.

这就是为什么我们会在图像中看到一个亮点。

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and that's why we're gonna see a bright spot in our image.

希望这能让你对我们看到黑洞图像时到底在看什么有一个概念。

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So hopefully this gives you an idea of what we're really looking at when we look at an image of a black hole.

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