爱因斯坦的广义相对论:个人天才与集体智慧的交织 Big Think 2025-11-07

科学发现的社会背景

我喜欢说,爱因斯坦作为一名物理学家,即使被评价得再高,也可能被低估了。当我们讲述物理学史时,我们试图保持清晰,但不可能记住所有细节,所以我们倾向于将大部分功劳归于少数几位杰出人物,爱因斯坦就是其中之一。

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I like to say that Einstein is if if anything underrated as a physicist, which is hard to imagine given how highly he is rated. When we tell the history of physics, we try to keep things straight and we can't remember everything. So, we kind of give a lot of credit to a relatively small number of individuals, Einstein being one of them.

然而,实际情况是,所有这些非常聪明的人,包括艾萨克·牛顿,都在与其他人交流。因此,观察思想的演变总是很有趣的,它并不完全与个人的发展同步。

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The messy reality of it is that all of these very smart people, including Isaac Newton, were talking to other people. So it's always interesting to see the evolution of ideas which is not exactly lock step with the evolution of people.

不同的人在不同的时间有不同的想法,他们从不同的来源获取这些想法。这就是科学研究中混乱的人类现实。我是Sean Carroll,约翰霍普金斯大学的物理学家和哲学家,Mindscape播客的主持人,也是多本书的作者,最近的作品是“宇宙中最大的思想”系列,包括《时空与运动》和《量子与场》。

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Different people have different ideas. They have different ideas at different times. They get them from different sources. That's the messy human reality of doing science. I'm Sean Carroll. I am a physicist and philosopher at Johns Hopkins University, host of the Mindscape podcast, and also author of a bunch of books, most recently the biggest ideas in the universe series, including spacetime in motion and quanta and fields.

从经典力学到电磁学

阅读这些思想发展史是如此有趣,因为今天我们只学习最终结果,但在早期,人们并不知道发生了什么。物理学中第一次真正巨大的革命是经典力学(Classical Mechanics: 描述宏观物体运动的物理学理论)的存在,由艾萨克·牛顿及其他人创立。

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It's so much fun reading the history of how these ideas developed because today we're just taught the final result, but you know, they didn't know what was going on back in the early days. The first really huge revolution in physics was the existence of classical mechanics handed down by Isaac Newton and others.

在牛顿之前有亚里士多德,亚里士多德认为物体有它们想要到达的自然位置和自然运动方式。而牛顿则提出了完全不同的观点。他认为,如果一个物体不受力的作用,它将永远以恒定速度沿直线运动。如果它受到力的作用,我可以用一个方程来描述它的运动。

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Before Newton, there was Aristotle and Aristotle says that things have natural places they want to be, natural ways they want to move. And Newton says something completely different. He says if something is not acted on by a force, it's going to continue in a straight line at a constant velocity forever. And if it is acted on by a force, I can tell you how it will move. I have an equation to do that.

经典力学的一个组成部分是空间和时间都独立存在且是绝对的。这具有其意义。宇宙中没有优选的位置,你可以身处任何地方,物理定律都以相同的方式运作。宇宙甚至没有优选的速度。这是伽利略发现的,牛顿将其采纳。

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One part of classical mechanics is the idea of space and time both separately existing and being absolute. There is a meaningfulness to that. There is no preferred position in the universe. You can be anywhere you want. The laws of physics work the same. There's not even a preferred velocity to the universe. This was figured out by Galileo and Newton kind of took it on board.

事实证明,这些假设并不完全正确。而达到这一认识经历了一个过程,正如常有的那样。它始于19世纪,随着电磁学(Electromagnetism: 研究电场、磁场及其相互作用的物理学分支)的发明。

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Turns out those assumptions are not quite right. And there was a journey to get there as it often is. It started in the 1800s with the invention of electromagnetism.

是詹姆斯·克拉克·麦克斯韦在法拉第和安德烈-玛丽·安培等人的工作基础上,将整个理论整合起来。他意识到宇宙中弥漫着两种场:电场和磁场。

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It was James Clark Maxwell who put the whole story together after work by people like Faraday and Aier and so forth. And what he realized is there's two fields pervading the universe, an electric field and a magnetic field.

人们对电磁学的存在感到非常高兴,并开始思考它意味着什么。他们意识到,麦克斯韦电磁理论中处理空间和时间的方式,与牛顿理论中处理它们的方式明显不同。

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People were very happy at the existence of electromagnetism. They started thinking about what it all meant. And what they realized is that the sort of way that space and time are treated in Maxwell's theory of electromagnetism is different than the way they are apparently treated in Newton's theory.

特别是,麦克斯韦方程组预言了一个特殊的速度。在牛顿力学中没有特殊的速度,每个速度都是平等的。麦克斯韦说存在一种叫做光速的东西,它是电磁场中波的传播速度。

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In particular, Maxwell's equations predicted a special velocity. There's no special velocity in Newtonian mechanics. Every velocity is created the same. Maxwell says there is something called the speed of light. It is the speed at which waves in the electromagnetic fields move.

直观地看这些方程,每个人测量的光速都是相同的,它是一个自然常数。即使观察者之间相互运动,每个人如何可能测量到相同的光速呢?

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And naively you look at the equations and everyone measures the same value for the speed of light. It's a constant of nature. How can it possibly be the case that everyone measures the same speed for light even if they're moving with respect to each other?

狭义相对论的诞生

因此,在很长一段时间里,几十年来,物理学家们一直在这个问题上绞尽脑汁。他们提出了非常复杂的方案来解决它。直到1905年,爱因斯坦在他的伟大论文中首次提出,我们应该放弃波在介质中传播的观念。

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So for a long time, for decades, people physicists bashed their heads against this problem. They came with very elaborate schemes to get rid of it. And it was Einstein, Albert Einstein in his great paper in 1905 who first said you should get rid of the idea of these waves traveling through a medium.

我们应该认为电磁波本身就是真实存在的。当方程告诉我们每个人测量的光速都相同时,那是因为事实就是如此。认真对待这一点。我们所要做的就是彻底重新调整我们对空间和时间的看法。

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You should think of the electromagnetic waves as really being the thing that exists. And when the equations tell you everyone measures the speed of light the same, that's because they do. Take that seriously. All you have to do is entirely rejigger your thoughts about what space and time are.

事实上,直到两年后,爱因斯坦的数学教授赫尔曼·闵可夫斯基才说,理解爱因斯坦理论的正确方法是认为空间和时间不再是独立的。

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And in fact, it wasn't until two years later when Herman Minkovsky, who was a mathematician who had been one of Einstein's professors, said, you know, the right way to think about Einstein's theory is to say that space and time aren't separate anymore.

他提出,应该设想存在一个叫做时空(Spacetime: 物理学中将空间和时间结合在一起的四维流形)的整体,不同的观察者以不同的方式在宇宙中运动时,会以不同的方式将其划分为空间和时间。

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to imagine there's one thing called spacetime and different people, different observers moving in different ways through the universe will divide it up into space and time differently.

关于我此刻打响指时,光年之外正在发生什么,并没有一个客观的真实事实。这取决于观察者和测量者是谁。通过设想一个单一的四维时空,而不是独立的空间和时间,所有这些都可以被非常漂亮地解释。

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There's no objective true fact about when I snap my fingers now what's happening light years away. That's going to depend on who's doing the observing and who's doing the measuring. It can all be explained very beautifully by imagining a single four-dimensional spaceime instead of separate space and time.

爱因斯坦本人对此并不以为然。爱因斯坦是一个非常有趣的性格,因为他是一个纯粹的物理学家。他在数学上非常熟练。请不要相信那些说爱因斯坦在学校数学不好听的故事。他数学很好,但他不是为了数学而学习数学,他是为了物理学。

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Einstein himself was not impressed by this move. Einstein was a hilarious character because he was a physicist's physicist. He was very mathematically adept. You know, don't believe the stories that Einstein wasn't good at math in school. He was very good at it, but he wasn't in it for the math. He was in it for the physics.

所以,他只学习了他所需要的数学。当闵可夫斯基说:“我有一些新的数学,可以基于爱因斯坦的理论统一空间和时间。”爱因斯坦自己却说:“我不需要那个。那就像是多余的数学废话。”

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So, he learned as much math as he needed. And when Bikovsky says,"I have some new math that unifies space and time based on Einstein's theories," Einstein himself's like, "I don't need that. That's like extra mathematical nonsense."

他很快就改变了主意,因为事实证明,将空间和时间从分离变为结合的这一举动在未来的发展中非常有用。

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He soon changed his mind because it turns out that that move from space and time being separate to being combined is super useful going forward.

当爱因斯坦提出我们现在称之为狭义相对论(Special Theory of Relativity: 爱因斯坦于1905年提出的关于时空和运动的理论)时,其核心思想是宇宙中没有优选的静止标准,但每个人都认为光速是相同的。

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When Einstein put together what we now call the special theory of relativity, the idea that there's no preferred standard of rest in the universe, but also everyone thinks the speed of light is the same.

我们所要做的就是最终设想空间和时间是紧密结合在一起的。这是对物理学框架的彻底改造。牛顿关于独立空间和独立时间,绝对且被所有人认同的观念已经存在了数百年。

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All you have to do is imagine ultimately that space and time are glued together. That was a radical reworking of the framework of physics. You know, Newton's idea of separate space and separate time, absolute and agreed upon by everyone, had been there for hundreds of years.

当你这样做时,当你决定“好吧,我要完全重新构想空间和时间,部分原因是为了与我们现有的这个美妙理论——麦克斯韦的电磁理论相匹配”时,你必须回顾你以前所有成功的方法,并问:“它还适用吗?”

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And when you do that, when you say, "Okay, I'm going to completely invent space and time in part because I want to match this wonderful theory we have, Maxwell's theory of electricity and magnetism." You have to go back to everything that was a success in your previous way of doing things and say, "Does it still work?"

广义相对论的突破

牛顿经典力学最大的成功是引力。著名的引力平方反比定律。牛顿提出,如果有两个不同质量的物体,它们之间会存在引力,引力的大小与它们之间距离的平方成反比。

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The biggest success of Newtonian classical mechanics was gravity. The famous inverse square law of gravity. Newton posited that if you have two objects with two different masses, they have a gravitational force that will pull them together that diminishes as one over the square of the distance between them.

这个简单的规则加上牛顿力学的框架,足以精确匹配你在天空中看到的行星运动。它足以发射火箭并将其送上月球。

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And that simple rule plus the framework of Newtonian mechanics is enough to match exactly what you see in the sky in terms of the planets moving around. It's enough to launch a rocket and get it to the moon.

所以爱因斯坦来了,他说:“好吧,我能创造一个与我的新狭义相对论兼容的牛顿引力理论版本吗?”经过尝试,他说:“不,我不能。你必须做一些更戏剧性的事情。”

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So Einstein comes along and says, "Well, okay, can I make a version of Newton's theory of gravity that is compatible with my new theory of special relativity?" And after trying, he said, "No, I can't. You have to do something much more dramatic."

他意识到引力不是时空之上的力,而是时空本身的特征。那会是什么特征呢?我的前教授闵可夫斯基说时空具有几何结构。它是一个结合体,有方程告诉我粒子在其中如何运动。

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And what he realized is that gravity is not a force on top of spaceime. It's a feature of spaceime itself. What feature could it be? Well, my ex-professor Minkovski says that spacetime has a geometry. It's one combined thing, and there are equations telling me how particles move in it.

也许这个几何结构是弯曲的。也许它不像欧几里得几何那样是一个平坦的桌面。也许它会因质量和能量的存在而扭曲、弯曲和动态变化。这是一个很好的想法。要弄清楚它需要付出大量的努力和数学工作。

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Maybe that geometry is curved. Maybe it's not like a flat tabletop like ukitian geometry. Maybe it's warped and bent and dynamical and changes in response to the existence of mass and energy and things like that. It's a it's a good idea to have. It takes you a lot of effort and a lot of mathematical work to figure it out.

所以十年后,在1915年,爱因斯坦最终完成了我们称之为广义相对论(General Theory of Relativity: 爱因斯坦于1915年提出的关于引力的新理论,将引力解释为时空的弯曲)的理论。广义相对论指出,时空是一个四维实体。这个四维实体具有几何结构。它受到物质和能量的推动。我们所体验到的引力,就是时空弯曲的表现。

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So 10 years later in 1915, Einstein finally completes what we call the general theory of relativity. And the general theory of relativity says spaceime is a four-dimensional thing. That four-dimensional thing has a geometry. It's pushed around by matter and energy. And we experience the curvature of spaceime as the force of gravity.

科学发现的集体性质

我会把爱因斯坦和伽利略列入我的万神殿,他们对宇宙应该是什么样子有着非常深刻的直觉。这让爱因斯坦取得了巨大的进步。但问题是,一旦你使用了这种直觉,爱因斯坦利用他对引力在时空小区域内消失的理解,发明了广义相对论。

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I would put Einstein and Galileo in my pantheon of of people who just felt what the universe should be like very very deeply. And this let Einstein make enormous amounts of progress. But the thing is once you use that intuition, Einstein used his ideas about gravity disappearing in small regions of spaceime to invent general relativity.

但当你有了理论,有了广义相对论,有了方程之后,这些方程就不再关心你的直觉了。我喜欢说,方程比我们更聪明。一旦爱因斯坦写下他的方程,任何人都可以解它。

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But then you have the theory, then you have general relativity, then you have equations. And the equations don't care what your intuition is. I like to say that the equations are smarter than we are. Once Einstein writes down his equation, anybody can solve it.

事实上,爱因斯坦本人看着他的方程说:“我不知道是否有人能解这个。这看起来太复杂了。太令人望而生畏了。”但许多其他人并没有被吓倒。

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And indeed, Einstein himself looked at his equation and goes, I don't know if anyone's going to ever go to solve this. This is too complicated looking. It's too intimidating. But a bunch of other people were not intimidated.

最著名、最迅速的是卡尔·史瓦西,他是一位德国天文学家,曾旁听爱因斯坦在柏林的讲座。他自学了广义相对论。第一次世界大战期间从东线回来后,他说:“爱因斯坦教授,我解出了您的方程。我解出了太阳周围引力场的方程,现在我们可以用它来预测行星的运动等。”

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Most famously, most quickly, Carl Schwarziel, who was a German astronomer who sat in on lectures that Einstein gave in Berlin. He taught himself general relativity. Came back from the Eastern Front in World War I and said, "Professor Einstein, I've solved your equations. I've solved them for the gravitational field around the sun, and now we can use that to predict the motions of planets and things like that."

这非常出色。爱因斯坦立刻就喜欢上了它。他明白了,哦,是的,我早该想到的。你说得对。所以,我认为现实的不同层面如何相互依赖,这一点非常重要。

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And this was brilliant. And Einstein loved it right away. He got the fact, oh yeah, you know, I should have figured that out. You're right. So, I think it's incredibly significant how the different layers of reality depend on each other.

我们对一个层面,即量子场论、原子等粒子和力的层面,了解得非常非常好。我们希望在这个层面做得更好,但我们已经理解得非常透彻。它引向了化学和原子的层面。

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And we know one layer really, really well, the layers of particles and forces at the level of quantum field theory and atoms and things like that. Uh we would like to do even better at that layer, but we understand it very very well. It leads to the layer of chemistry and atoms.

我坐的椅子的稳定性最终归结为量子场论(Quantum Field Theory: 结合量子力学和狭义相对论来描述粒子和力的理论)的规则。这些原子和分子通过电和磁结合在一起,构成了所有的化学,这是一个相当大的成就。化学结合起来构成了生物学,以此类推。

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The stability of the chair that I'm sitting on ultimately comes down to the rules of quantum field theory. Those atoms and molecules come together with electricity and magnetism to make all of chemistry, which is a pretty big deal. Chemistry comes together to make biology and so up on the ladder.

我们既可以认识到这些不同层面相互依赖,同时也可以认识到,为了研究和理解它们,我们需要认真对待每个层面本身。

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We can both appreciate that these different levels depend on each other while appreciating also that to study them and to understand them, we need to take each level seriously for its own sake.

我怀疑如果威廉·莎士比亚从未存在,莎士比亚的戏剧就永远不会被创作出来。但我很确定,如果阿尔伯特·爱因斯坦从未存在,广义相对论仍然会被发明。

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I suspect that if William Shakespeare had never existed, Shakespeare's plays never would have been written. But I'm pretty sure that if Albert Einstein had never existed, general relativity would still have been invented.

事实上,我认为它不会花费更长的时间。这是物理学进步的某种特点,有非常非常聪明的人在取得这些进展,但他们也恰好在对的时间出现在对的地点。

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Indeed, I don't think it would have taken that much longer. It's something about the progress of physics that there are super duper smart people who are making these advances, but they're also in the right place at the right time.

回到艾萨克·牛顿的时代,当他首次理解引力平方反比定律预示行星以椭圆形轨道绕太阳运动时。首先,他是在前人的基础上进行研究的,对吗?是约翰内斯·开普勒提出行星确实以椭圆形轨道运动,并提出了一些现象学规则。

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If you go back to the time of Isaac Newton, when Isaac Newton first understood that the inverse square law of gravity predicts that planets move in ellipses around the sun. So, number one, he's building on prior progress, right? It was Johannes Kepler who argued that planets do move in ellipses and came up with sort of some phenomenological rules about that.

但问题是,提出平方反比定律这个想法的不仅仅是艾萨克·牛顿。荷兰的克里斯蒂安·惠更斯展示了物体运动速度与作用力强度之间的关系。罗伯特·胡克,一位后来成为著名的英国科学家,并帮助创立了伦敦皇家学会。

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But the thing is that it wasn't only Isaac Newton who had this idea of the inverse square law. Christian Huygens in the Netherlands show that there's a relationship between how fast things move and the strength of the force pulling on them. Robert Hook, who was going to become a famous British scientist and helped found the Royal Society in London.

他和他的朋友们讨论了引力可能由平方反比定律描述的想法。只是他们中没有人像艾萨克·牛顿那样精通数学。事实上,胡克的一个朋友是克里斯托弗·雷恩,他建造了圣保罗大教堂。

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He and his friends batted around the idea that maybe gravity is described by an inverse square law. It's just that none of them were quite as mathematically adept as Isaac Newton. And indeed, one of Hook's friends was Christopher Ren, the architect who built St. Paul's Cathedral.

另一个是天文学家哈雷,他发现了彗星。他们基本上说服了当时年轻的斯图尔特去剑桥拜访艾萨克·牛顿,并说:“您能帮我们解决这个数学问题吗?如果一个行星在平方反比引力作用下运动,会发生什么?”

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And another one was Halley, the astronomer who discovered comet. And they basically cajjoli who was a young stver at the time to go up to Cambridge from London visit Isaac Newton and say could you please solve this math problem for us what happens if you have a planet moving in an inverse square law gravitational force and of course Newton said oh I already did that it's a it's an ellipse and so how said would you please write that up so that we can share it and Newton eventually wrote the Prancipia Mathematica the most important book in the history of physics so even the Great discoveries made by individuals come about because of a social context.

当然,牛顿说:“哦,我早就做过了,那是一个椭圆。”于是哈雷说:“您能把它写下来,以便我们分享吗?”牛顿最终写下了《自然哲学的数学原理》,这是物理学史上最重要的著作。所以,即使是个人做出的伟大发现,也是在社会背景下产生的。

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And of course Newton said oh I already did that it's a it's an ellipse and so how said would you please write that up so that we can share it and Newton eventually wrote the Prancipia Mathematica the most important book in the history of physics so even the Great discoveries made by individuals come about because of a social context.

我认为了解这一点有助于我们更深思熟虑地创造最佳的社会环境,以便在未来取得更令人印象深刻的发现。

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And I think that knowing that helps us try to be a little bit more thoughtful about creating the best possible social context for making more impressive discoveries toward the future.

广义相对论与量子力学发展模式的对比

我们有时会对科学或物理学的“伟人理论”产生错误的印象,因为你看,艾萨克·牛顿和阿尔伯特·爱因斯坦确实做了很多,他们理应得到很多赞誉。但请思考一下量子力学(Quantum Mechanics: 描述微观粒子行为的物理学理论)的发展与广义相对论发展的区别。

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We sometimes get the wrong impression about the great man theory of science or physics because look, Isaac Newton and Albert Einstein did a lot and they deserve a lot of credit. But think about the difference between the development of quantum mechanics for example versus general relativity.

广义相对论是爱因斯坦的伟大成就,它确实是他个人的成就。当时几乎没有人能与他竞争。但量子力学则不同。

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General relativity was Einstein's great accomplishment and it was really his accomplishment. No one else was even really competing with him that much at the time. But quantum mechanics

马克斯·普朗克指出,需要调整方程才能对黑体辐射(Black-body Radiation: 理想热辐射体发出的电磁辐射)做出正确预测。爱因斯坦本人说:“哦,我能理解为什么光有时会使电子松动。”卢瑟福进行实验,发现原子内部有原子核。

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mock plunk points out that you need to fiddle with the equations to make the right prediction for black body radiation. Einstein himself says, "Oh, I can understand why light jiggles loose electrons sometimes." Rutherford builds experiments and he detects that there are nuclei inside atoms.

尼尔斯·玻尔说:“我能解释原子中电子轨道不同大小的原因。”路易·德布罗意说,如果把电子想象成波而不是粒子,那就更好了。维尔纳·海森堡说,我可以用矩阵力学(Matrix Mechanics: 海森堡创立的一种量子力学形式)来发明一个理论,精确解释正在发生的一切。

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Neils Boore says, "I can explain the different sizes of the orbits of the electrons in the atoms." Louis De Bruy says it's even better if you imagine that those electrons are waves rather than particles. Berner Heisenberg says I can invent a theory using matrices that explains exactly what's going on.

马克斯·玻恩和帕斯库尔·约旦说,我们可以改进海森堡理论的数学,使其更具普遍性。埃尔温·薛定谔接着说,我们可以用波来取代矩阵,这就是波动力学(Wave Mechanics: 薛定谔创立的另一种量子力学形式)。

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Maxourne and Pascal Yordon say we can improve the mathematics of Heisenberg's theory to make it more general. Irwin Schroinger comes along and says we can replace the matrices by waves.

然后马克斯·玻恩再次出现,说这些实际上对于预测概率很有用。沃尔夫冈·泡利说有一种叫做自旋的东西,它会影响电子在原子中的行为。保罗·狄拉克说:“我能为电子发明一个方程,它能预测电子的行为并与相对论相符。”

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And then Maxourne comes again and says actually these are useful for predicting probabilities. Wolffegong Powley says there's something called spin and that affects what the electrons can do in an atom. Paul Durac says, "I can invent an equation for the electron that predicts what it will do and fits it in with relativity."

狄拉克方程还预测了电子的反粒子(Anti-particle: 具有与对应粒子相同质量但电荷和其他量子数相反的粒子)。卡尔·安德森去发现了电子的反粒子,也发现了μ子。恩里科·费米发明了一个理论,解释了中子和μ子如何衰变,这被称为费米β衰变理论。

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Durac's equation also predicts an anti-particle of the electron. Carl Anderson goes and discovers the antiparticle of the electron and also discovers the muon. Enrico Farmy invents a theory that explains how neutrons and muons can decay called the Fairmy theory of beta decay.

费米和萨特延德拉·纳特·玻色发明了费米子(Fermions: 遵循费米-狄拉克统计的粒子,如电子、质子)和玻色子(Bosons: 遵循玻色-爱因斯坦统计的粒子,如光子、希格斯玻色子)的概念。杨振宁和罗伯特·米尔斯将电磁学的思想推广到其他对称群,并提出这是强核力和弱核力的起源。

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Vermy and Bose invent the idea of firmians and Bzons. Yang and Mills generalize the idea of electromagnetism to other symmetry groups and propose that this is an origin of the strong and weak nuclear forces.

李政道和杨振宁说,弱核力中可能存在宇称不守恒(Parity Violation: 物理学中指弱相互作用不遵守宇称对称性)现象。即右手性相互作用与左手性相互作用的速度不同。吴健雄通过实验检测到这确实是事实。

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Lee and Yang say that maybe there is violation of par in the weak nuclear force. The fact that a right-handed interaction does not happen at the same speed as the left-hand interaction. CS Woo detects experimentally that this is in fact true.

彼得·希格斯、弗朗索瓦·恩格勒、罗伯特·布劳特、菲利普·安德森及其他人利用杰弗里·戈德斯通和南部阳一郎开创的对称性破缺(Symmetry Breaking: 物理系统中对称性被破坏的现象)思想,来解释为什么核力是短程的。

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Peter Higgs and Franco and Robert Brow and Philip Anderson and others use the idea of symmetry breaking which have been pioneered by Jeffrey Goldstone and Yoshiro Namboo to explain why the nuclear forces are short range.

史蒂文·温伯格与阿卜杜斯·萨拉姆一起,将拼图的最后几块拼合起来,以理解电磁力和弱核力的统一。弗兰克·维尔切克、戴维·格罗斯和H.戴维·波利策通过理解夸克禁闭(Quark Confinement: 夸克无法单独存在,只能束缚在强子内部的现象),为强核力做了类似的事情。

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Steven Weineberg fits the final pieces of the puzzle together along with Abdul Salam to understand the unification of the electromagnetic and weak nuclear forces. Frank Wilchek and David Gross and David Pitzer do an analogous thing for the strong nuclear force by understanding confinement.

他们解释了为什么夸克被困在质子和中子内部。默里·盖尔曼与乔治·茨威格一起发明了夸克的概念,将其整合起来。而这仅仅是到1970年的发展。

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Why quarks are stuck inside protons and neutrons. Murray Galman puts together by inventing the idea of quarks along with George Swag. And that's only getting us up to 1970.

自那时以来,由于许多杰出的理论家和实验家,粒子物理学又有了许多发展。这种许多人共同贡献,许多不同部分需要整合在一起的观念,实际上比一个人独自发明一切更能代表物理学通常的运作方式。

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So many developments in particle physics since then due to many many brilliant theorists and experimenters. This idea that there are many people contributing and many different parts of the pieces need to put together is actually much more characteristic of how physics is usually done than the single person inventing everything all by themselves.

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