Diamonds are almost impossible to detect directly because they are so rare: very rich kimberlitepipes, the routes through which diamonds rise, may contain only three carats of diamonds per ton of kimberlite. Kimberlite begins as magma in Earth's mantle (the layer between the crust and the core). As the magma smashes through layers of rock, it rips out debris, creating a mix of liquid and solid material. Some of the solid material it brings up may come from a so-called diamond-stability field, where conditions of pressure and temperature are conducive to the formation of diamonds. If diamonds are to survive, though, they must shoot toward Earth's surface quickly. Otherwise, they revert to graphite or burn. Explorers seeking diamonds look for specks of "indicator minerals" peculiar to the mantle but carried up in greater quantities than diamonds and eroded out of kimberlite pipes into the surrounding land. The standard ones are garnets, chromites, and ilmenites. One can spend years searching for indicators and tracing them back to the pipes that are their source; however, 90 percent of kimberlite pipes found this way are barren of diamonds, and the rest are usually too sparse to mine.
In the 1970's the process of locating profitable pipes was refined by focusing on the subtle differences between the chemical signatures of indicator minerals found in diamond-rich pipes as opposed to those found in barren pipes. For example, G10 garnets, a type of garnet typically found in diamond-rich pipes, are lower in calcium and higher in chrome than garnets from barren pipes. Geochemists John Gurney showed that garnets with this composition were formed only in the diamond-stability field; more commonly found versions came from elsewhere in the mantle. Gurney also found that though ilmenites did not form in the diamond-stability field, there was a link useful for prospectors: when the iron in ilmenite was highly oxidized, its source pipe rarely contained any diamonds. He reasoned that iron took on more or less oxygen in response to conditions in the kimberlitic magma itself—mainly in response to heat and the available oxygen. When iron became highly oxidized, so did diamonds; that is, they vaporized into carbon dioxide.
The passage suggests that the presence of G10 garnet in a kimberlite pipe indicates that
the pipe in which the garnet is found has a 90% chance of containing diamonds
the levels of calcium and chrome in the pipe are conducive to diamond formation
the pipe passed through a diamond-stability field and thus may contain diamonds
any diamonds the pipe contains would not have come from the diamond-stability field
the pipe's temperature was so high that it oxidized any diamonds the pipe might have contained
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正确答案是 C。由文中的“G10 garnets a type of garnet typically found in diamondrich pipes are lower in calcium and higher in chrome than garnets from barren pipes”和“Gurney showed that garnets with this composition were formed only in the diamondstability field”可以得出,G10金刚石的存在意味着,这个管道通过了一个钻石稳定场,因此可能包含钻石。
如果kimberlite包含了G10 garnet,则这个kimberlite有很大可能是经过Dimond-stability field,因此可能有钻.原文“ For example, G10 garnets, a type of garnet typically found in diamond-rich pipes, are lower in calcium and higher in chrome than garnets from barren pipes. Geochemists John Gurney showed that garnets with this composition were formed only in the diamond-stability field; more commonly found versions came from elsewhere in the mantle.”
回复所有人:答案已更正。
我也选了C,原文中提到Conducive的只有“where conditions of pressure and temperature are conducive to the formation of diamonds.”并没有说Cal和chrome也可以conducive。而且原文中也提到“John Gurney showed that garnets with this composition were formed only in the diamond-stability field”,所以答案应该是C无误。
Geochemists John Gurney showed that garnets with this composition were formed only in the diamond-stability field;
往前看一句,再往后看一句,
不在前面就在后面
如果kimberlite包含了G10 garnet,则这个kimberlite有很大可能是经过Dimond-stability field,因此可能有钻石💎
这道题要注意一下前后联系!
这里不是有助于形成吧
tn24上答案是C
答案好像是C
B中只说了calcium 和 chrome 能帮助找到diamonds 没说有助于形成diamonds吧?
本题C为何不对?
the pipe passed through a diamond-stability field and thus may contain diamonds