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Wired AI · 2026/7/28 09:00:00
An Extreme Solar Storm May Be Even More Devastating Than Previously Imagined

An Extreme Solar Storm May Be Even More Devastating Than Previously Imagined

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科学家刚刚发现,我们对太阳风暴的认知可能大错特错。过去认为太阳风的强度存在一个天花板,但新研究表明,这个上限可能根本不存在——这意味着一旦极端太阳风暴来袭,后果可能比我们想象的还要可怕。 简单来说,太阳就像个不断喷射带电粒子的大火球,这些粒子到了地球周围,会被磁场“挡住”一部分。1859年的卡林顿事件就曾让全球一半电报系统瘫痪,北极光甚至出现在古巴。而今天,我们的电网、GPS和卫星通讯都更加脆弱。研究者指出,此前用来估算太阳风暴强度的卫星测量数据存在一个统计陷阱:因为观测点离地球还有150万公里,太阳风在路上会变化,超高强度的测量值往往会“缩水”——如果我们直接拿那个夸张的数值去预测,反而会低估真实的破坏力。 这对普通人意味着什么?一旦类似卡林顿事件再次发生,你的手机导航可能彻底失效,飞机停飞,甚至大规模停电数天。现在全球的基础设施对卫星和电网的依赖比19世纪多了千百倍,而新研究告诉我们:我们可能还没有准备好面对真正“天花板级”的太阳风暴。
Javier CarbajalScienceJul 28, 2026 5:00 AMAn Extreme Solar Storm May Be Even More Devastating Than Previously ImaginedScientists have long assumed that there’s an upper limit to the intensity of the solar winds that reach Earth. New research suggests there’s not—and the implications are alarming.Illustration of an extreme solar storm.Illustration: magann/Getty ImagesCommentLoaderSave StorySave this storyCommentLoaderSave StorySave this storyIt's well known that a solar storm, depending on its level of intensity, can affect the functioning of electrical grids, navigation systems, or satellite communications. The problem is that it's unclear what would happen today if the intensity of a storm reached levels like those of the so-called Carrington Event in 1859, one of those extraordinarily rare phenomena that occur only once every thousand years. New research, though, suggests the impact might be even worse than scientists had thought.Solar storms occur when the solar wind—a continuous stream of charged particles emitted by the sun—interacts with Earth's magnetosphere. During the Carrington Event, telegraph communications collapsed across half the world, and the northern lights were visible throughout North America as far south as Cuba. In today's world, strong solar storms can have wider-ranging effects and can even alter the upper atmosphere.“Our planet’s magnetic field does a really great job of protecting us against many space weather effects and so they often just show up as glitches or beautiful aurora,” notes Maria Walach, a researcher at Lancaster University who collaborated on the study. “There are however extreme cases, where satellites unexpectedly fall back to Earth, or we lose communication and GPS signals.”To estimate the intensity of the solar wind, researchers primarily use measurements taken by satellites located at the L1 Lagrange point, about 1.5 million kilometers from Earth. The problem is that those observations do not correspond exactly to the environment where the solar wind ultimately interacts with Earth's magnetic field. A variable amount of time passes between the two points, and the solar plasma also changes during its journey.The authors argue that this uncertainty, far from being mere experimental noise, introduces a systematic bias into the analysis of the data.Solar StatisticsThe central point of the study lies in a well-known statistical phenomenon called regression toward the mean. In simple terms, when a measurement is extraordinarily high, the true value it is trying to represent is, on average, less extreme. This happens because random uncertainties can occasionally exaggerate an observation.In the case of the solar wind, an exceptionally intense measurement made at L1 probably corresponds to a somewhat less intense solar wind by the time it reaches the region where it actually interacts with the magnetosphere. If scientists directly relate that extreme measurement to Earth's observed response, the effect will appear insignificant relative to such a large stimulus. Repeated thousands of times, this effect creates the false impression that the magnetosphere stops responding as the intensity of the solar wind increases.What has happened is that, for years, scientists have believed that there is a natural limit to the intensity with which Earth responds to the most extreme solar storms. According to that idea, when the solar wind reaches very high values, Earth's magnetic field stops reacting proportionally, and its response enters a kind of “saturation.” However, this new study suggests that perhaps that limit never existed. What appeared to be a physical phenomenon could, in reality, be an illusion caused by the way the measurements are analyzed.To test this hypothesis, the researchers developed a statistical model that incorporates the main sources of uncertainty: variations in the time it takes the solar wind to reach Earth and the random changes it undergoes during that journey. The model r
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