Conquering Earth’s space junk problem
Satellites, rocket shards and collision debris are creating major traffic risks in orbit around the planet. Researchers are working to reduce these threats
A Last year, commercial companies, military and civil departments and amateurs sent more than 400 satellites into orbit, over four times the yearly average in the previous decade. Numbers could rise even more sharply if leading space companies follow through on plans to deploy hundreds to thousands of large constellations of satellites to space in the next few years.
All that traffic can lead to disaster. Ten years ago, a US commercial Iridium satellite smashed into an inactive Russian communications satellite called Cosmos-2251, creating thousands of new pieces of space shrapnel that now threaten other satellites in low Earth orbit – the zone stretching up to 2,000 kilometres in altitude. Altogether, there are roughly 20,000 human-made objects in orbit, from working satellites to small rocket pieces. And satellite operators can’t steer away from every potential crash, because each move consumes time and fuel that could otherwise be used for the spacecraft’s main job.
B Concern about space junk goes back to the beginning of the satellite era, but the number of objects in orbit is rising so rapidly that researchers are investigating new ways of attacking the problem. Several teams are trying to improve methods for assessing what is in orbit, so that satellite operators can work more efficiently in ever-more-crowded space. Some researchers are now starting to compile a massive data set that includes the best possible information on where everything is in orbit. Others are developing taxonomies of space – working on measuring properties such as the shape and size of an object, so that satellite operators know how much to worry about what’s coming their way.
The alternative, many say, is unthinkable. Just a few uncontrolled space crashes could generate enough debris to set off a runaway cascade of fragments, rendering near-Earth space unusable. ‘If we go on like this, we will reach a point of no return,’ says Carolin Frueh, an astrodynamical researcher at Purdue University in West Lafayette, Indiana.
C Even as our ability to monitor space objects increases, so too does the total number of items in orbit. That means companies, governments and other players in space are collaborating in new ways to avoid a shared threat. International groups such as the Inter-Agency Space Debris Coordination Committee have developed guidelines on space sustainability. Those include inactivating satellites at the end of their useful life by venting pressurised materials or leftover fuel that might lead to explosions. The intergovernmental groups also advise lowering satellites deep enough into the atmosphere that they will burn up or disintegrate within 25 years. But so far, only about half of all missions have abided by this 25-year goal, says Holger Krag, head of the European Space Agency’s space-debris office in Darmstadt, Germany. Operators of the planned large constellations of satellites say they will be responsible stewards in their enterprises in space, but Krag worries that problems could increase, despite their best intentions. ‘What happens to those that fail or go bankrupt?’ he asks. They are probably not going to spend money to remove their satellites from space.’
D In theory, given the vastness of space, satellite operators should have plenty of room for all these missions to fly safely without ever nearing another object. So some scientists are tackling the problem of space junk by trying to find out where all the debris is to a high degree of precision. That would alleviate the need for many of the unnecessary manoeuvres that are carried out to avoid potential collisions. ‘If you knew precisely where everything was, you would almost never have a problem,’ says Marlon Sorge, a space-debris specialist at the Aerospace Corporation in El Segundo, California.
E The field is called space traffic management, because it’s similar to managing traffic on the roads or in the air. Think about a busy day at an airport, says Moriba Jah, an astrodynamicist at the University of Texas at Austin: planes line up in the sky, landing and taking off close to one another in a carefully choreographed routine. Air-traffic controllers know the location of the planes down to one metre in accuracy. The same can’t be said for space debris. Not all objects in orbit are known, and even those included in databases are not tracked consistently.
F An additional problem is that there is no authoritative catalogue that accurately lists the orbits of all known space debris. Jah illustrates this with a web-based database that he has developed. It draws on several sources, such as catalogues maintained by the US and Russian governments, to visualise where objects are in space. When he types in an identifier for a particular space object, the database draws a purple line to designate its orbit. Only this doesn’t quite work for a number of objects, such as a Russian rocket body designated in the database as object number 32280. When Jah enters that number, the database draws two purple lines: the US and Russian sources contain two completely different orbits for the same object. Jah says that it is almost impossible to tell which is correct, unless a third source of information made it possible to cross-correlate.
Jah describes himself as a space environmentalist: ‘I want to make space a place that is safe to operate, that is free and useful for generations to come.’ Until that happens, he argues, the space community will continue devolving into a tragedy in which all spaceflight operators are polluting a common resource.
Reading Passage 3 has six sections, A-F.
Which section contains the following information?
Write the correct letter, A-F, in boxes 27-31 on your answer sheet.
题目关键词:cooperation, minimise risk
答案位置:Section C 第 2 行
题解:题目:提及为最小化风险而进行合作
分析:按照文章顺序阅读至 Section C 可知,为了避免共同的威胁(avoid a shared threat),公司、政府和其他的太空参与者正在以新的方式合作(collaborating)。 这与题目中的 minimise risk 和 cooperation 一一对应。因此答案为 C。
题目关键词:explanation,a person’s aims
答案位置:Section F 第 2 小节第 1 行
题解:题目:解释某个人的目标
分析:读题可知,某人的目标在原文中会出现具体 某人的某个志向。按文章顺序读题,直至 F 段最后 一小节,才出现 Moriba Jah 说出的自己主观愿望:“我想让太空成为一个可以安全运行的地方,子孙后代都可以免费使用。”这符合题目中的 a person’s aims 这一描述。因此答案为 F。
题目关键词:major collision
答案位置:Section A 第 2 小节第 1 行
题解:题目:对于太空中一次大型撞击的描述
分析:读题可知,一次大型撞击的描述须有具体的时间、地点和事件。Section A 第 2 小节记述着,10 年前,美俄之间曾有过一次商业人造卫星和通讯人造卫星的撞击事件(smashed into),该描述符合题目表述的 collision;虽然原文中并未明确指出该撞击是否 major,但是从后续描述(这些撞击后产生的碎片至今仍威胁着近地球轨道中的其他人造卫星—— 这个区域的高度可达 2000 公里)可知这些碎片的范围之广阔,使用 major 来改写是恰当的。因此答案为 A。
题目关键词:comparison,tracking,in space,transportation system
答案位置:Section E 第 1 行
题解:题目:将追踪太空物体这一操作和高效的运输系统相对比
分析:读题可知,答案段落应当体现出两相比较(comparison)。按照文章顺序阅读至 Section E,已 知 Section D 中提到攻克太空垃圾难题的一个办法是精确定位轨道中所有碎片的位置(find out where all the debris),而这一办法在 Section E 中被称为太空交通管理(space traffic management)。此处体现了按文章顺序读文章、保持逻辑连贯的重要性:如果没有 Section D 的铺垫,题目中的 tracking objects 比较难以确定是 Section E 中的太空交通管理。只要将此二者建立联系,那么后文中路面交通管理或空中交通(traffic)管理就容易与题目中的 transportation system 一一对应了。因此答案为 E。
题目关键词:efforts,classify
答案位置:Section B 第 1 小节倒数第 3 行
题解:题目:为了太空垃圾分类所做出的努力
分析:读题可知,主要查找太空垃圾分类。按照文章顺序读到 Section B 时,提及不同的研究人员为了解决太空垃圾而做出的不同努力。其中,有些研究人员正在研发太空碎片分类学(developing taxonomies),这与题目中的 classify 是同义替换。由于 taxonomy 这一学科名词不算常用,也可以从上下文来确定其意思:下文说到通过物体的形状、大小来测量其属性(measuring properties),即通过形状大小给太空碎片(space debris)进行分类。因此答案为 B。
