NASA的新型暗能量太空望远镜还能探测到致命小行星

MIT Technology Review 新闻

摘要

NASA的南希·格雷斯·罗曼太空望远镜,发射旨在研究暗能量,也可能凭借其广角红外相机帮助探测危险小行星,与詹姆斯·韦布空间望远镜形成互补。

<div data-chronoton-summary="&lt;ul&gt;&lt;br&gt;&lt;li&gt;&lt;strong&gt;A dark-energy telescope moonlights as a planetary defender:&lt;/strong&gt; NASA&#039;s Roman Space Telescope, launching later this month, wasn&#039;t built to hunt asteroids—but its massive infrared camera can spot space rocks as small as 60 feet long, comparable to the asteroid that sent 1,500 people in Russia to the hospital in 2013.&lt;/li&gt;&lt;br&gt;&lt;li&gt;&lt;strong&gt;Strength in numbers:&lt;/strong&gt; Roman&#039;s real power lies in how it complements other telescopes. Its enormous field of view lets it rapidly assess multiple suspicious asteroids at once, handing off the most dangerous candidates to other telescopes like the James Webb Space Telescope for closer inspection.&lt;/li&gt;&lt;br&gt;&lt;li&gt;&lt;strong&gt;Half of Earth&#039;s biggest threats are yet to be found:&lt;/strong&gt; Of the roughly 25,000 asteroids large enough to devastate a city, more than half remain unlocated—a gap Roman, alongside a new dedicated planetary defense telescope set to launch next year, is now being enlisted to help close.&lt;/li&gt;&lt;br&gt;&lt;/ul&gt;" data-chronoton-post-id="1141200" data-chronoton-expand-collapse="1" data-chronoton-analytics-enabled="1"></div> <p>At the end of August, NASA is set to launch the Nancy Grace Roman Space Telescope from Kennedy Space Center in Florida. Its goal is to help us better understand how the universe works, from the glue-like dark matter that keeps galaxies together to the elusive dark energy that drives the expansion of the cosmos. But Roman could also serve another purpose: defending Earth from killer asteroids. In September, a multi-institutional team of planetary scientists and astronomers will <a href="https://meetingorganizer.copernicus.org/EPSC2026/EPSC2026-712.html">outline</a> how the space telescope is uniquely placed to scan asteroids and provide information about their trajectories, sizes, and compositions.</p> <p>Roman, named after NASA’s first chief astronomer, is equipped with a super-wide-angle, 300-megapixel infrared camera, allowing it to see a large patch of space at any one time—roughly 100 times larger than is possible with the Hubble Space Telescope. That will allow it to discover thousands of new planets and tens of thousands of exploding stars, and survey over a billion galaxies in remarkable detail.</p> <p>While doing so, it’ll be looking “through” our solar system, and this is what makes it uniquely well placed to spot asteroids. </p> <h3 class="wp-block-heading">A planetary defense pivot</h3> <p>Roman was not built for this purpose, but last summer, it was (<a href="https://www.space.com/trump-nasa-2020-budget-cancels-wfirst-earth-missions.html">once again</a>) threatened with significant funding cuts by the <a href="https://www.theguardian.com/us-news/2025/may/29/trump-nasa-cuts">Trump administration</a>. “My colleague <a href="https://science.gsfc.nasa.gov/sci/bio/richard.cosentino">Rick Cosentino</a> [a planetary scientist at NASA] said to me in July 2025 that we need to show what Roman can do for planetary defense as a way to further increase the visibility of the mission with lawmakers and taxpayers,” says <a href="https://www.stsci.edu/stsci-research/research-directory/bryan-holler">Bryan Holler</a>, a researcher at the Space Telescope Science Institute in Baltimore.</p> <p>Holler and his colleagues’ <a href="https://arxiv.org/abs/2508.14412">proposal</a>, which will be presented at the Europlanet Science Congress at The Hague, reveals that Roman’s epic field of view and infrared vision allow it to spot small asteroids up to 60 feet long. This is comparable to the asteroid that exploded above the Russian city of <a href="https://www.planetary.org/articles/what-was-the-chelyabinsk-meteor-event">Chelyabinsk</a> in 2013, unleashing the force of 500,000 tons of TNT and sending 1,500 people to the hospital. </p> <p>Roman’s software will need some tweaking to spy space rocks. The telescope, as designed, will see through—and beyond—the solar system in order to gather the clearest possible pictures of the rest of the universe. “Streaks, whether caused by cosmic rays or glitches or asteroids, are caught by the software and discarded,” says <a href="https://www.jhuapl.edu/about/people/andrew-rivkin">Andy Rivkin</a>, a planetary scientist and planetary defense researcher at the Johns Hopkins Applied Physics Laboratory in Laurel, Maryland. But astronomers could go in, study those streaks, and pick out those they identify as asteroids.</p> <p>Even with those potential adjustments, Roman won’t be an asteroid-finding wunderkind on its own. Its strength lies in its ability to complement the James Webb Space Telescope (JWST), another observatory that’s built to peer at galaxies and stars in the far reaches of the universe. It can also intensely focus on a single asteroid when needed—as it did last year, playing a key role in tracking 2024 YR4, which was briefly the <a href="https://www.technologyreview.com/2025/07/08/1119757/asteroid-hunt-2024-yr4-earth-planet-protection/">most dangerous asteroid</a> ever discovered. “But Roman’s field of view is <em>much</em> bigger,” says Rivkin. </p> <p>That means it could look at multiple questionable asteroids very quickly. “Roman can provide infrared observations of more asteroids than JWST could hope to observe in a reasonable amount of observing time,” says Holler.</p> <p>If those asteroids are found to be benign travelers, we can relax. But if they might collide with Earth, other telescopes—including JWST—can follow up from Roman’s observations. Those observations could give experts the information they need to assess the likely damage of an upcoming asteroid strike—or to launch a mission to attempt to swat an asteroid away.</p> <p>“Roman will sample such a large volume of the cosmos that we’ve long known it will offer vast opportunities for a range of additional science,” says <a href="https://science.nasa.gov/about-us/communications/">Alise Fisher</a>, the astrophysics communications lead at NASA headquarters in Washington, DC. </p> <p>NASA’s Planetary Defense Coordination Office, and its partners across the world, are chiefly worried about asteroids 460 feet long and larger. Around 25,000 of those are estimated to have near-Earth orbits, and just over half have yet to be found. Should one hit a city, much of it would be destroyed or irreversibly damaged in a heartbeat. Astronomers estimate that there are also 230,000 or so 165-foot-long asteroids orbiting close to Earth, and fewer than 10% have been located. A strike on a city from one of those might not annihilate it, but it would unleash a force comparable to that of a large atomic bomb, albeit without the radiation. </p> <p>Such an asteroid could theoretically be <a href="https://science.nasa.gov/mission/dart/">deflected</a> (by ramming a spacecraft into it) or <a href="https://www.technologyreview.com/2025/04/14/1114306/space-nuclear-explosion-asteroid-protection-research/">vaporized</a> (perhaps using a nuclear weapon). But planetary defenders need to know where they are first, which is why NASA funds a <a href="https://www.technologyreview.com/2025/07/08/1119757/asteroid-hunt-2024-yr4-earth-planet-protection/">network of ground-based telescopes</a> designed to seek them out. They work well, but there’s only so much of the night sky they can see, and Earth’s atmosphere peskily gets in their way.</p> <p>That’s why NASA is launching the <a href="https://www.science.org/content/article/nasa-telescope-will-hunt-down-city-killer-asteroids">Near-Earth Object (NEO) Surveyor</a> space telescope in 2027. By positioning itself between Earth and the sun, it’ll find many elusive asteroids that ground-based telescopes cannot see. And unlike many of its asteroid-seeking cousins, it’ll see in infrared, not visible light. Not only do asteroids show up more clearly in infrared, but seeing them through this lens gives scientists a considerably better measure of their size. In a matter of years, it could find 90% of the city-killer-size asteroids in near-Earth orbits.</p> <h3 class="wp-block-heading">Telescope teamwork</h3> <p>NEO Surveyor is explicitly a planetary defense observatory. But it’ll work with other telescopes with more science-minded missions, including Roman and JWST (both of which conveniently have infrared scopes too) as well as the <a href="https://www.technologyreview.com/2025/06/23/1119129/first-images-vera-c-rubin-observatory/">Vera Rubin Observatory</a>, which just began its 10-year survey of the entire night sky from atop a mountain in Chile. As part of its inventory of the cosmos, it’s expected to discover <a href="https://sorcha.space/">89,000 near-Earth asteroids</a>. </p> <p>Here’s how they might all work together. Say NEO Surveyor spies an asteroid that, to judge from a few observations, has a chance of impacting Earth. Then it finds five more just like it. Those initial observations leave a lot of uncertainty about their orbits. Roman, with its huge field of view, could be commanded to look at the corner of the night sky that includes all those asteroids, and in a matter of days it could improve the precision by several orders of magnitude.</p> <p>Roman also occupies a different part of space from both NEO Surveyor and the Rubin observatory. “Those slightly different viewing angles will also help narrow orbits down more quickly than if all objects were looking from the same place,” says Holler.</p> <p>Perhaps five of those potentially hazardous asteroids are found to stand no chance of colliding with Earth for the foreseeable future. One, however, might not be able to be ruled out—and that’s when other telescopes, including JWST, could be asked to track it down and study it further.</p> <p>“Telescope resources, whether in space or on the ground, are typically oversubscribed and will not be available to follow up on all [near-Earth asteroids] with a non-zero impact probability when they are first discovered,” says Holler. Roman, then, will help scientists “make sure we follow up on the correct targets.”</p> <p>Roman’s infrared scope also allows it to offer a decent estimate of an asteroid’s size and can even tell whether it’s a stony rock, a puffy and watery carbon-rich rock, or a metallic one. “This in turn provides strong clues to the composition and thereby the density and mass of the asteroid, which are important when estimating the impact damage or, less ghoulishly, the effort required to nudge it out of its current orbit,” says Holler.</p> <p>Roman won’t play the lead role in protecting Earth in the way NEO Surveyor will. But while it’s seeking out supernovas and planets scooting around other stars, it will also be doing its part to protect all 8 billion of us from a cosmic catastrophe.</p>
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# NASA的新暗能量太空望远镜也能探测杀手小行星 来源:https://www.technologyreview.com/2026/08/05/1141200/nasas-roman-telescope-detect-asteroids 八月底,NASA计划从佛罗里达州的肯尼迪航天中心发射南希·格蕾丝·罗曼太空望远镜(Nancy Grace Roman Space Telescope)。它的使命是帮助人类更好地理解宇宙的运作方式,从像胶水一样将星系聚合在一起的暗物质,到驱动宇宙膨胀的难以捉摸的暗能量。但罗曼望远镜还可以服务于另一个目的:保护地球免受杀手小行星的撞击。九月份,一个由行星科学家和天文学家组成的多机构团队将概述(https://meetingorganizer.copernicus.org/EPSC2026/EPSC2026-712.html)这台太空望远镜在扫描小行星、提供其轨迹、大小和成分信息方面的独特优势。 罗曼望远镜以NASA首位首席天文学家的名字命名,配备了一台超广角、300兆像素的红外相机,可以同时看到一大片太空区域——大约是哈勃太空望远镜的100倍。这将使它能够发现数千颗新行星、数万颗爆炸恒星,并以前所未有的细节勘测超过十亿个星系。 罗曼望远镜并非为此目的而建造,但去年夏天,它([再一次](https://www.space.com/trump-nasa-2020-budget-cancels-wfirst-earth-missions.html))面临[特朗普政府](https://www.theguardian.com/us-news/2025/may/29/trump-nasa-cuts)大幅削减资金的风险。“我的同事[Rick Cosentino](https://science.gsfc.nasa.gov/sci/bio/richard.cosentino)(NASA行星科学家)在2025年7月对我说,我们需要展示罗曼望远镜能为行星防御做些什么,以此进一步提高该任务在立法者和纳税人中的能见度,”位于马里兰州巴尔的摩的太空望远镜科学研究所研究员[Bryan Holler](https://www.stsci.edu/stsci-research/research-directory/bryan-holler)说道。 霍勒及其同事的[提案](https://arxiv.org/abs/2508.14412)将在荷兰海牙举行的欧洲行星科学大会上展示,该提案揭示了罗曼望远镜巨大的视场和红外视觉使其能够发现长达60英尺的小型小行星。这相当于2013年在俄罗斯[车里雅宾斯克](https://www.planetary.org/articles/what-was-the-chelyabinsk-meteor-event)市上空爆炸的那颗小行星,它释放了50万吨TNT当量的威力,并导致1500人住院。 罗曼望远镜的软件需要一些调整才能发现太空岩石。按照设计,这台望远镜将穿透并超越太阳系进行观测,以尽可能清晰地拍摄宇宙其他部分的图像。“无论是宇宙射线、故障还是小行星造成的条纹,都会被软件捕捉并丢弃,”[Andy Rivkin](https://www.jhuapl.edu/about/people/andrew-rivkin)说,他是马里兰州劳雷尔约翰斯·霍普金斯应用物理实验室的行星科学家和行星防御研究员。但天文学家可以介入,研究这些条纹,并从中识别出小行星。 即使有了这些潜在的调整,罗曼望远镜也不会独自成为寻找小行星的神童。它的优势在于补充詹姆斯·韦伯太空望远镜(JWST)——另一台旨在观测宇宙遥远星系和恒星的观测站。韦伯还可以在需要时集中聚焦于单颗小行星——就像去年那样,在追踪2024 YR4的过程中发挥了关键作用,这颗小行星曾一度是迄今发现的[最危险的小行星](https://www.technologyreview.com/2025/07/08/1119757/asteroid-hunt-2024-yr4-earth-planet-protection/)。“但罗曼的视场*要大得多*,”里夫金说。 这意味着它可以非常快速地观测多颗可疑的小行星。“在合理的观测时间内,罗曼可以提供比JWST能够观测到的更多小行星的红外观测数据,”霍勒说。 如果这些小行星被证明是良性的过客,我们就可以放心了。但如果它们可能与地球碰撞,其他望远镜——包括JWST——可以跟进罗曼的观测。这些观测可以为专家提供所需的信息,以评估即将发生的小行星撞击可能造成的损害——或者启动一项任务,尝试将小行星撞离轨道。 “罗曼将采样如此广阔的宇宙空间,我们早就知道它将为一系列附加科学提供巨大的机会,”NASA总部天体物理通信负责人[Alise Fisher](https://science.nasa.gov/about-us/communications/)在华盛顿特区表示。 NASA的行星防御协调办公室及其全球合作伙伴主要担心长度460英尺及以上的小行星。据估计,其中约2.5万颗的轨道接近地球,但刚刚超过一半尚未被发现。如果其中一颗击中城市,大部分城市将在瞬间被摧毁或遭受不可逆转的破坏。天文学家估计,还有约23万颗165英尺长的小行星在地球附近运行,而发现的还不到10%。其中一颗撞击城市可能不会将其彻底毁灭,但它释放的力量堪比大型原子弹,尽管没有辐射。 这类小行星理论上可以被[偏转](https://science.nasa.gov/mission/dart/)(通过将航天器撞向它)或[汽化](https://www.technologyreview.com/2025/04/14/1114306/space-nuclear-explosion-asteroid-protection-research/)(也许使用核武器)。但行星防御者首先需要知道它们在哪里,这就是为什么NASA资助了一个旨在寻找它们的[地基望远镜网络](https://www.technologyreview.com/2025/07/08/1119757/asteroid-hunt-2024-yr4-earth-planet-protection/)。这些望远镜工作得很好,但它们能看到的夜空有限,而且地球大气层会恼人地挡在中间。 这就是为什么NASA将在2027年发射[近地天体(NEO)探测器](https://www.science.org/content/article/nasa-telescope-will-hunt-down-city-killer-asteroids)太空望远镜。通过将自己定位在地球和太阳之间,它将发现许多地面望远镜无法看到的难以捉摸的小行星。与许多寻找小行星的同类不同,它将用红外而不是可见光观测。小行星不仅在红外线下更清晰可见,而且通过这种镜头观测,科学家可以更好地测量它们的大小。几年之内,它就可能发现近地轨道上90%的城市杀手级小行星。 ### 望远镜协作 NEO Surveyor明确是一个行星防御观测站。但它将与其他承担更多科学任务的望远镜合作,包括罗曼、JWST——这两者恰好也有红外设备——以及[维拉·鲁宾天文台](https://www.technologyreview.com/2025/06/23/1119129/first-images-vera-c-rubin-observatory/),该天文台刚刚开始在智利山顶对整个夜空进行为期10年的巡天观测。作为其宇宙编目工作的一部分,预计它将发现8.9万颗近地小行星。 下面是它们可能如何协同工作的方式。假设NEO Surveyor发现了一颗小行星,根据几次观测,它有撞击地球的可能。然后它又发现了五颗类似的。根据这些初始观测,它们的轨道存在很多不确定性。罗曼凭借其巨大的视场,可以受命观测包含所有这些小行星的夜空区域,并在几天内将这些轨道的精度提高几个数量级。 罗曼在太空中的位置也与NEO Surveyor和鲁宾天文台不同。“这些略微不同的观测角度也有助于更快地缩小轨道范围,而不是让所有设备从同一位置观测,”霍勒说。 也许其中五颗潜在危险小行星在可预见的未来根本没有机会与地球碰撞。然而,其中一颗可能无法排除——这时就可以请包括JWST在内的其他望远镜追踪并进一步研究它。 “无论是太空还是地面的望远镜资源,通常都是超负荷预订的,不可能在首次发现时就对所有撞击概率非零的[近地小行星]进行跟进,”霍勒说。因此,罗曼将帮助科学家“确保我们跟进的是正确的目标。” 罗曼的红外设备还能对小行星的大小做出相当准确的估计,甚至能分辨出它是石质岩石、蓬松且富含水的富碳岩石,还是金属岩石。“这反过来为小行星的成分、密度和质量提供了有力的线索,而这些在评估撞击损害时——或者不那么可怕地说,在评估将小行星从其当前轨道推离所需的努力时——都很重要,”霍勒说。 罗曼不会像NEO Surveyor那样在保护地球方面扮演主角。但在寻找超新星和围绕其他恒星运行的行星的同时,它也将尽自己的一份力量,保护我们所有人(80亿人)免遭宇宙灾难。

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