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[主观题]

There are some earth phenomena you can count on, but the magnetic field, someday is not of

them. It fluctuates in strength, drifts from its axis, and every few 100, 000 years undergo a dramatic polarity reversal-a period when north pole becomes south pole and south pole becomes north pole. But how is the field generated, and why is it so unstable?

Groundbreaking research by two French geophysicists promises to shed some light on the mystery. Using 80 meters of deep sea sediment core, they have obtained measurements of magnetic-field intensity that span 11 polarity reversals and four million years. The analysis reveals that intensity appears to fluctuate with a clear, well-defined rhythm. Although the strength of the magnetic field varies irregularly during the shout term, there seems to be an inevitable long term decline preceding each polarity reversal. When the poles flip-a process that takes several hundred thousand years--the magnetic field rapidly regains its strength and the cycle is repeated.

The results have caused a stir among geophysicists. The magnetic field is thought to originate from molten iron in the outer core, 3,000 kilometers beneath the earth's surface. By studying mineral grains found in material ranging from rocks to clay articles, previous researchers have already been able to identify reversals dating back 170 million years, including the most recent switch 730, 000 years age. How and why they occur, however, has been widely debated. Several theories link polarity flips to external disasters such as meteor impacts. But Peter Olson, a geophysicist at the Johns Hopkins University in Baltimore, says this is unlikely if the French researchers are right. In fact, Olson says intensity that predictably declines from one reversal to the next contradicts 90 percent of the models currently under study. If the results prove to be valid, geophysicists will have a new theory to guide them in their quest to understand the earth's inner physics. It certainly points the direction for future research.

Which of the following titles in most appropriate to the passage?

A.Polarity Reversal: A Fantastic Phenomenon of Nature

B.Measurement of the Earth's Magnetic-Field Intensity

C.Formation of the Two Poles of the Earth

D.A New Approach to the Study of Geophysics

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更多“There are some earth phenomena…”相关的问题

第1题

以下对药物的电子云密度分布和药效关系的描述正确的是A.受体和酶都是蛋白质,不带电荷B.药物分子

以下对药物的电子云密度分布和药效关系的描述正确的是

A.受体和酶都是蛋白质,不带电荷

B.药物分子中电子云密度分布正好和受体或酶的特定电子云相适应时,由于电荷产生的静电引力,有利于药物分子与受体或酶结合,形成比较稳定的药物—受体或药物—酶的复合物

C.在苯甲酸乙酯的5位上引入氨基,可使药物与受体结合得更牢固,作用时间延长

D.在苯甲酸乙酯的4位上引入硝基,可使麻醉作用增强

E.以上说法都正确

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第2题

HCoCH分子中p电子云的分布状态是什么?与乙烯分子中p电...

HCºCH分子中p电子云的分布状态是什么?与乙烯分子中p电子云的分布状态有什么区别?

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第3题

A.解离度 B.分配系数 C.立体构型 D.空间构象 E.电子云密度分布 影响手性药物对映体之间活性差异

A.解离度 B.分配系数

C.立体构型 D.空间构象

E.电子云密度分布

影响手性药物对映体之间活性差异的因素是E.

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第4题

HCºCH分子中p电子云的分布状态是

A.面的上下分布

B.圆筒状分布

C.主要分布在面上

D.主要分布在面下

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第5题

亲电反应发生在分子中电子云密度低的位点,是否正确?()

亲电反应发生在分子中电子云密度低的位点,是否正确?()

参考答案:错误

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第6题

薁(yù)结构如图所示,关于该分子说法正确的是

A.电子云密度五元环>七元环

B.电子云密度五元环<七元环<br>

C.电子云密度五元环和七元环没差别

D.发生硝化反应时在七元环上

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第7题

影响手性药物对映体之间活性差异的因素是 A.解离度 B.分配系数 C.立体构型 D.空间构象 E.电子云

影响手性药物对映体之间活性差异的因素是

A.解离度

B.分配系数

C.立体构型

D.空间构象

E.电子云密度分布

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