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大全--8,晕菜,恳请指点

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楼主
发表于 2005-8-13 12:02:00 | 只看该作者

大全--8,晕菜,恳请指点

Passage 8 (8/63)


Virtually everything astronomers known about objects outside the solar system is based on the detection of photons—quanta of electromagnetic radiation. Yet there is another form of radiation that permeates the universe: neutrinos. With (as its name implies) no electric charge, and negligible mass, the neutrino interacts with other particles so rarely6 that a neutrino can cross the entire universe, even traversing substantial aggregations of matter, without being absorbed or even deflected. Neutrinos can thus escape from regions of space where light and other kinds of electromagnetic radiation are blocked by matter. Furthermore, neutrinos carry with them information about the site and circumstances of their production: therefore, the detection of cosmic neutrinos could provide new information about a wide variety of cosmic phenomena and about the history of the universe.


But how can scientists detect a particle that interacts so infrequently with other matter?7 Twenty-five years passed between Pauli’s hypothesis that the neutrino existed and its actual detection: since then virtually all research with neutrinos has been with neutrinos created artificially in large particle accelerators and studied under neutrino microscopes. But a neutrino telescope, capable of detecting cosmic neutrinos, is difficult to construct. No apparatus can detect neutrinos unless it is extremely massive, because great mass is synonymous with huge numbers of nucleons (neutrons and protons), and the more massive the detector, the greater the probability of one of its nucleon’s reacting with a neutrino. In addition, the apparatus must be sufficiently shielded from the interfering effects of other particles.


Fortunately, a group of astrophysicists has proposed a means of detecting cosmic neutrinos by harnessing the mass of the ocean. Named DUMAND, for Deep Underwater Muon (muon: n. μ介子) and Neutrino Detector, the project calls for placing an array of light sensors at a depth of five kilometers under the ocean surface. The detecting medium is the seawater itself: when a neutrino interacts with a particle in an atom of seawater, the result is a cascade of electrically charged particles and a flash of light that can be detected by the sensors.8 The five kilometers of seawater above the sensors will shield them from the interfering effects of other high-energy particles raining down through the atmosphere.


The strongest motivation for the DUMAND project is that it will exploit an important source of information about the universe. The extension of astronomy from visible light to radio waves to x-rays and gamma rays never failed to lead to the discovery of unusual objects such as radio galaxies, quasars, and pulsars. Each of these discoveries came as a surprise. Neutrino astronomy will doubtless bring its own share of surprises.


9.     According to the passage, one of the methods used to establish the properties of neutrinos was


(A) detection of photons


(B) observation of the interaction of neutrinos with gamma rays


(C) observation of neutrinos that were artificially created


(D) measurement of neutrinos that interacted with particles of seawaterC


(E) experiments with electromagnetic radiation


d为什么不对呢?文中黑体部分就有提到啊,实在搞不明白,劳驾各位指点一下


另外,我做大全的速度很慢,读文章要7分钟,做题要10分钟左右(9题),着急着急...大家都是怎样的速度呢?

沙发
发表于 2005-8-13 14:39:00 | 只看该作者

The detecting medium is the seawater itself: when a neutrino interacts with a particle in an atom of seawater, the result is a cascade of electrically charged particles and a flash of light that can be detected by the sensors.


这里说了,seawater是中介,然后要观察的是a cascade of electrically charged particles and a flash of light,而不是neutrinos。所以ETS狡猾狡猾滴。


楼主这个速度可以了。考试的时候,rc的速度一般是2-2.5min每题。

板凳
 楼主| 发表于 2005-8-14 00:43:00 | 只看该作者

呵呵,明白了,多谢叶子,这题抠得还真是死呀,感叹感叹...



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